HEAT TRANSFER COMPOSITIONS COMPRISING R-1225YE(E), HFO-1234YF, R-32, R-125, AND CO2

Information

  • Patent Application
  • 20220162488
  • Publication Number
    20220162488
  • Date Filed
    March 03, 2020
    4 years ago
  • Date Published
    May 26, 2022
    2 years ago
Abstract
The present application relates to compositions comprising (E)-1,2,3,3,3-pentafluoro-1-propene (i.e., R-1225ye(E) or HFO-1225ye(E)), HFO-1234yf, R-32, and, one or more additional components selected from R-125 and CO2, that are useful in refrigeration, air conditioning, or heat pump systems. Methods of replacing R-22, R-407C, or R-404A in refrigeration, air conditioning, or heat pump systems are also provided.
Description
TECHNICAL FIELD

The present application relates to compositions comprising (E)-1,2,3,3,3-pentafluoro-1-propene (i.e., R-1225ye(E) or HFO-1225ye(E)), HFO-1234yf, R-32, and a compound selected from R-125 and CO2, or a mixture thereof, for use in refrigeration, air conditioning or heat pump systems. The compositions of the present invention are useful in methods for producing cooling and heating, and methods for replacing refrigerants and refrigeration, air conditioning and heat pump apparatus.


BACKGROUND

Many current commercial refrigerants employ hydrochlorofluorocarbons (“HCFCs”) or hydrofluorocarbons (“HFCs”). HCFCs contribute to ozone depletion and are scheduled for eventual phaseout under the Montreal Protocol. HFCs, while not contributing to ozone depletion, can contribute to global warming and the use of such compounds has come under scrutiny by environmental regulators. Thus, there is a need for refrigerants that are characterized by a no ozone depletion potential (ODP) and low impact on global warming. This application addresses this need and others.


SUMMARY

The present application provides, inter alia, compositions comprising (E)-1,2,3,3,3-pentafluoro-1-propene (i.e., R-1225ye(E) or HFO-1225ye(E)), HFO-1234yf, R-32, and a compound selected from R-125 and CO2, or a mixture thereof.


The present application further provides processes for producing cooling, comprising condensing a composition provided herein and thereafter evaporating said composition in the vicinity of a body to be cooled.


The present application further provides processes for producing heating, comprising evaporating a composition provided herein and thereafter condensing said composition in the vicinity of a body to be heated.


The present application further provides methods of replacing R-22, R-407C, or R-404A in a refrigeration, air conditioning, or heat pump system, comprising providing a composition provided herein as replacement for said R-22, R-407C, or R-404A.


The present application further provides air conditioning systems, heat pump systems, and refrigeration systems comprising a composition provided herein.


Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. Methods and materials are described herein for use in the present invention; other, suitable methods and materials known in the art can also be used. The materials, methods, and examples are illustrative only and not intended to be limiting. All publications, patent applications, patents, sequences, database entries, and other references mentioned herein are incorporated by reference in their entirety. In case of conflict, the present specification, including definitions, will control.







DETAILED DESCRIPTION

The present disclosure provides methods for producing cooling and heating, and methods for replacing incumbent refrigerants used in refrigeration, air conditioning and heat pump systems, comprising replacing said incumbent refrigerants with compositions comprising (E)-1,2,3,3,3-pentafluoro-1-propene (i.e., R-1225ye(E) or HFO-1225ye(E)), HFO-1234yf, R-32, and a compound selected from R-125 and CO2, or a mixture thereof.


Definitions and Abbreviations

As used herein, the terms “comprises,” “comprising,” “includes,” “including,” “has,” “having” or any other variation thereof, are intended to cover a non-exclusive inclusion. For example, a process, method, article, or apparatus that comprises a list of elements is not necessarily limited to only those elements but may include other elements not expressly listed or inherent to such process, method, article, or apparatus. Further, unless expressly stated to the contrary, “or” refers to an inclusive or and not to an exclusive or. For example, a condition A or B is satisfied by any one of the following: A is true (or present) and B is false (or not present), A is false (or not present) and B is true (or present), and both A and B are true (or present).


As used herein, the term “consisting essentially of” is used to define a composition, method that includes materials, steps, features, components, or elements, in addition to those literally disclosed provided that these additional included materials, steps, features, components, or elements do not materially affect the basic and novel characteristic(s) of the claimed invention, especially the mode of action to achieve the desired result of any of the processes of the present invention. The term “consists essentially of” or “consisting essentially of” occupies a middle ground between “comprising” and “consisting of”.


Also, use of “a” or “an” are employed to describe elements and components described herein. This is done merely for convenience and to give a general sense of the scope of the invention. This description should be read to include one or at least one and the singular also includes the plural unless it is obvious that it is meant otherwise.


As used herein, the term “about” is meant to account for variations due to experimental error (e.g., plus or minus approximately 10% of the indicated value). All measurements reported herein are understood to be modified by the term “about”, whether or not the term is explicitly used, unless explicitly stated otherwise.


When an amount, concentration, or other value or parameter is given as either a range, preferred range or a list of upper preferable values and/or lower preferable values, this is to be understood as specifically disclosing all ranges formed from any pair of any upper range limit or preferred value and any lower range limit or preferred value, regardless of whether ranges are separately disclosed. Where a range of numerical values is recited herein, unless otherwise stated, the range is intended to include the endpoints thereof, and all integers and fractions within the range.


Global warming potential (GWP) is an index for estimating relative global warming contribution due to atmospheric emission of a kilogram of a particular greenhouse gas compared to emission of a kilogram of carbon dioxide. GWP can be calculated for different time horizons showing the effect of atmospheric lifetime for a given gas. The GWP for the 100-year time horizon is commonly the value referenced.


As used herein the term “Ozone depletion potential” (ODP) is defined in “The Scientific Assessment of Ozone Depletion, 2002, A report of the World Meteorological Association's Global Ozone Research and Monitoring Project,” section 1.4.4, pages 1.28 to 1.31 (see first paragraph of this section). ODP represents the extent of ozone depletion in the stratosphere expected from a compound on a mass-for-mass basis relative to fluorotrichloromethane (CFC-11).


Refrigeration capacity (sometimes referred to as cooling capacity) is a term to define the change in enthalpy of a refrigerant or working fluid in an evaporator per unit mass of refrigerant or working fluid circulated. Volumetric cooling capacity refers to the amount of heat removed by the refrigerant or working fluid in the evaporator per unit volume of refrigerant vapor exiting the evaporator. The refrigeration capacity is a measure of the ability of a refrigerant, working fluid or heat transfer composition to produce cooling. Therefore, the higher the volumetric cooling capacity of the working fluid, the greater the cooling rate that can be produced at the evaporator with the maximum volumetric flow rate achievable with a given compressor. Cooling rate refers to the heat removed by the refrigerant in the evaporator per unit time.


Similarly, volumetric heating capacity is a term to define the amount of heat supplied by the refrigerant or working fluid in the condenser per unit volume of refrigerant or working fluid vapor entering the compressor. The higher the volumetric heating capacity of the refrigerant or working fluid, the greater the heating rate that is produced at the condenser with the maximum volumetric flow rate achievable with a given compressor.


Coefficient of performance (COP) is the amount of heat removed in the evaporator divided by the energy required to operate the compressor. The higher the COP, the higher the energy efficiency. COP is directly related to the energy efficiency ratio (EER), that is, the efficiency rating for refrigeration or air conditioning equipment at a specific set of internal and external temperatures.


As used herein, a heat transfer medium comprises a composition used to carry heat from a heat source to a heat sink. For example, heat from a body to be cooled to a chiller evaporator or from a chiller condenser to a cooling tower or other configuration where heat can be rejected to the ambient.


As used herein, a working fluid or refrigerant comprises a compound or mixture of compounds (e.g., a composition provided herein) that function to transfer heat in a cycle wherein the working fluid undergoes a phase change from a liquid to a gas and back to a liquid in a repeating cycle.


Subcooling is the reduction of the temperature of a liquid below that liquid's saturation point for a given pressure. The saturation point is the temperature at which a vapor composition is completely condensed to a liquid (also referred to as the bubble point). But subcooling continues to cool the liquid to a lower temperature liquid at the given pressure. By cooling a liquid below the saturation temperature, the net refrigeration capacity can be increased. Subcooling thereby improves refrigeration capacity and energy efficiency of a system. Subcool amount is the amount of cooling below the saturation temperature (in degrees) or how far below its saturation temperature a liquid composition is cooled.


The term “superheat” defines how far above the saturation vapor temperature of a vapor composition a vapor composition is heated. Saturation vapor temperature is the temperature at which, if a vapor composition is cooled, the first drop of liquid is formed, also referred to as the “dew point”.


Chemicals, Abbreviations, and Acronyms





    • HFC: hydrofluorocarbon

    • HCFC: hydrochlorofluorocarbon

    • HFO: hydrofluoroolefin

    • R-22 or HCFC-22: chlorodifluoromethane

    • R-32 or HFC-32: difluoromethane

    • R-125 or HFC-125: 1,1,1,2,2-pentafluoroethane

    • R-134a or HFC-134a: 1,1,1,2-tetrafluoroethane

    • R-143a or HFC-143a: 1,1,1-trifluoroethane

    • R-1225ye(E), HFO-1225yeE, or 1225yeE: (E)-1,2,3,3,3-pentafluoro-1-propene

    • R-1234yf, HFO-1234yf, or 1234yf: 2,3,3,3-tetrafluoropropene

    • R-22: chloro(difluoro)methane

    • R-407C: a mixture of 23 wt % HFC-32, 25 wt % HFC-125, and 52 wt % HFC-134a

    • R-404A: a mixture of 44 wt % HFC-125, 4 wt % HFC-134a, and 52 wt % 143a

    • CAP: cooling (or heating) capacity

    • COP: coefficient of performance

    • GWP: global warming potential

    • ODP: ozone depletion potential





Compositions

The present application provides a composition comprising (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, and a compound selected from R-125 and CO2, or a mixture thereof. In some embodiments, the composition consists essentially of (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, and a compound selected from R-125 and CO2, or a mixture thereof. In some embodiments, the composition consists of (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, and a compound selected from R-125 and CO2, or a mixture thereof.


In some embodiments, the composition comprises (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, and R-125. In some embodiments, the composition consists essentially of (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, and R-125. In some embodiments, the composition consists of (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, and R-125.


In some embodiments, the composition comprises about 28 to about 40 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, for example, about 28, about 30, about 32, about 35, or about 40 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene. In some embodiments, the composition comprises about 28 to about 32 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene. In some embodiments, the composition comprises about 30 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene. In some embodiments, the composition comprises about 28 to about 35 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene. In some embodiments, the composition comprises about 28 to about 34 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene.


In some embodiments, the composition comprises about 27 to about 39 weight percent HFO-1234yf, for example about 27, about 30, about 33, about 35, about 36, or about 39 weight percent HFO-1234yf. In some embodiments, the composition comprises about 27 to about 32 weight percent HFO-1234yf. In some embodiments, the composition comprises about 30 weight percent HFO-1234yf. In some embodiments, the composition comprises about 27 to about 35 weight percent HFO-1234yf. In some embodiments, the composition comprises about 27 to about 33 weight percent HFO-1234yf.


In some embodiments, the composition comprises about 14 to about 30 weight percent R-32, for example, about 14, about 20, about 25, or about 30 weight percent R-32. In some embodiments, the composition comprises about 24 to about 30 weight percent R-32. In some embodiments, the composition comprises about 20 to about 30 weight percent R-32. In some embodiments, the composition comprises about 22 to about 30 weight percent R-32.


In some embodiments, the composition comprises about 7 to about 15 weight percent R-125, for example, about 7, about 10, about 12, or about 15 weight percent R-125. In some embodiments, the composition comprises about 12 to about 15 weight percent R-125. In some embodiments, the composition comprises about 12 weight percent R-125. In some embodiments, the composition comprises about 15 weight percent R-125. In some embodiments, the composition comprises about 10 to about 15 weight percent R-125.


In some embodiments, the composition comprises about 28 to about 40 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 39 weight percent HFO-1234yf, about 14 to about 30 weight percent R-32, and about 7 to about 15 weight percent R-125.


In some embodiments, the composition comprises about 28 to about 32 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 32 weight percent HFO-1234yf, about 24 to about 30 weight percent R-32, and about 12 to about 15 weight percent R-125.


In some embodiments, the composition comprises about 28 to about 35 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 35 weight percent HFO-1234yf, about 20 to about 30 weight percent R-32, and about 10 to about 15 weight percent R-125.


In some embodiments, the composition comprises about 28 to about 34 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 33 weight percent HFO-1234yf, about 22 to about 30 weight percent R-32, and about 11 to about 15 weight percent R-125.


In some embodiments, the composition comprises about 28 to about 32 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 32 weight percent HFO-1234yf, about 24 to about 30 weight percent R-32, and about 12 to about 15 weight percent R-125.


In some embodiments, the composition comprises (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, and CO2. In some embodiments, the composition consists essentially of (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, and CO2. In some embodiments, the composition consists of (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, and CO2.


In some embodiments, the composition comprises about 35 to about 44 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, for example, about 35, about 40, about 42, or about 44 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene. In some embodiments, the composition comprises about 40 to about 41 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene. In some embodiments, the composition comprises about 40 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene. In some embodiments, the composition comprises about 41 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene. In some embodiments, the composition comprises about 40 to about 43 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene. In some embodiments, the composition comprises about 38 to about 41 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene. In some embodiments, the composition comprises about 37 to about 41 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene.


In some embodiments, the composition comprises about 35 to about 44 weight percent HFO-1234yf, for example, about 35, about 40, about 42, or about 44 weight percent HFO-1234yf. In some embodiments, the composition comprises about 39 to about 41 weight percent HFO-1234yf. In some embodiments, the composition comprises about 40 weight percent HFO-1234yf. In some embodiments, the composition comprises about 39 to about 42 weight percent HFO-1234yf. In some embodiments, the composition comprises about 38 to about 41 weight percent HFO-1234yf. In some embodiments, the composition comprises about 36 to about 41 weight percent HFO-1234yf.


In some embodiments, the composition comprises about 8 to about 20 weight percent R-32, for example, about 8, about 10, about 15, or about 20 weight percent R-32. In some embodiments, the composition comprises about 12 to about 14 weight percent R-32. In some embodiments, the composition comprises about 10 to about 14 weight percent R-32. In some embodiments, the composition comprises about 12 to about 16 weight percent R-32. In some embodiments, the composition comprises about 12 to about 18 weight percent R-32.


In some embodiments, the composition comprises about 4 to about 10 weight percent CO2, for example, about 4, about 5, about 8, or about 10 weight percent CO2. In some embodiments, the composition comprises about 6 to about 7 weight percent CO2. In some embodiments, the composition comprises about 6 weight percent CO2. In some embodiments, the composition comprises about 7 weight percent CO2. In some embodiments, the composition comprises about 5 to about 7 weight percent CO2. In some embodiments, the composition comprises about 6 to about 8 weight percent CO2. In some embodiments, the composition comprises about 6 to about 9 weight percent CO2.


In some embodiments, the composition comprises about 35 to about 44 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 35 to about 44 weight percent HFO-1234yf, about 8 to about 20 weight percent R-32, and about 4 to about 10 weight percent CO2.


In some embodiments, the composition comprises about 40 to about 41 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 39 to about 41 weight percent HFO-1234yf, about 12 to about 14 weight percent R-32, and about 6 to about 7 weight percent CO2.


In some embodiments, the composition comprises about 40 to about 43 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 39 to about 42 weight percent HFO-1234yf, about 10 to about 14 weight percent R-32, and about 5 to about 7 weight percent CO2.


In some embodiments, the composition comprises about 38 to about 41 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 38 to about 41 weight percent HFO-1234yf, about 12 to about 16 weight percent R-32, and about 6 to about 8 weight percent CO2.


In some embodiments, the composition comprises about 37 to about 41 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 36 to about 41 weight percent HFO-1234yf, about 12 to about 18 weight percent R-32, and about 6 to about 9 weight percent CO2.


In some embodiments, the composition comprises about 38 to about 40 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 38 to about 39 weight percent HFO-1234yf, about 14 to about 16 weight percent R-32, about 1 weight percent R-125, and about 6 to about 7 weight percent CO2.


In some embodiments, the composition comprises (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, R-125, and CO2. In some embodiments, the composition consists essentially of (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, R-125, and CO2. In some embodiments, the composition consists of (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, R-125, and CO2.


In some embodiments, the composition comprises about 28 to about 44 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, for example, about 28, about 30, about 35, about 40, or about 44 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene. In some embodiments, the composition comprises about 28 to about 40 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene. In some embodiments, the composition comprises about 38 to about 44 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene. In some embodiments, the composition comprises about 38 to about 40 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene. In some embodiments, the composition comprises about 28 to about 41 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene. In some embodiments, the composition comprises about 38 to about 41 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene.


In some embodiments, the composition comprises about 27 to about 44 weight percent HFO-1234yf, for example, about 27, about 30, about 35, about 40, about 42, or about 44 weight percent HFO-1234yf. In some embodiments, the composition comprises about 27 to about 39 weight percent HFO-1234yf. In some embodiments, the composition comprises about 38 to about 44 weight percent HFO-1234yf. In some embodiments, the composition comprises about 38 to about 39 weight percent HFO-1234yf. In some embodiments, the composition comprises about 27 to about 41 weight percent HFO-1234yf. In some embodiments, the composition comprises about 38 to about 41 weight percent HFO-1234yf.


In some embodiments, the composition comprises about 8 to about 30 weight percent R-32, for example, about 8, about 10, about 15, about 20, about 25, or about 30 weight percent R-32. In some embodiments, the composition comprises about 14 to about 30 weight percent R-32. In some embodiments, the composition comprises about 8 to about 16 weight percent R-32. In some embodiments, the composition comprises about 14 to about 16 weight percent R-32. In some embodiments, the composition comprises about 12 to about 30 weight percent R-32. In some embodiments, the composition comprises about 12 to about 16 weight percent R-32.


In some embodiments, the composition comprises about 1 to about 14 weight percent R-125, for example, about 1, about 2, about 5, about 10, or about 14 weight percent R-125. In some embodiments, the composition comprises about 1 to about 2 weight percent R-125. In some embodiments, the composition comprises about 1 weight percent R-125.


In some embodiments, the composition comprises about 1 to about 10 weight percent CO2, for example, about 1, about 3, about 5, about 7, or about 10 weight percent CO2. In some embodiments, the composition comprises about 1 to about 7 weight percent CO2. In some embodiments, the composition comprises about 3 to about 7 weight percent CO2. In some embodiments, the composition comprises about 6 to about 7 weight percent CO2. In some embodiments, the composition comprises about 5 to about 7 weight percent CO2. In some embodiments, the composition comprises about 1 to about 7 weight percent CO2.


In some embodiments, the composition comprises about 28 to about 44 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 44 weight percent HFO-1234yf, about 8 to about 30 weight percent R-32, about 1 to about 14 weight percent R-125, and about 1 to about 10 weight percent CO2.


In some embodiments, the composition comprises about 28 to about 40 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 39 weight percent HFO-1234yf, about 14 to about 30 weight percent R-32, about 1 to about 14 weight percent R-125, and about 1 to about 7 weight percent CO2.


In some embodiments, the composition comprises about 38 to about 44 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 38 to about 44 weight percent HFO-1234yf, about 8 to about 16 weight percent R-32, about 1 to about 2 weight percent R-125, and about 3 to about 7 weight percent CO2.


In some embodiments, the composition comprises about 38 to about 40 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 38 to about 39 weight percent HFO-1234yf, about 14 to about 16 weight percent R-32, about 1 weight percent R-125, and about 6 to about 7 weight percent CO2.


In some embodiments, the composition comprises about 28 to about 41 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 41 weight percent HFO-1234yf, about 12 to about 30 weight percent R-32, about 1 to about 14 weight percent R-125, and about 1 to about 7 weight percent CO2.


In some embodiments, the composition comprises about 38 to about 41 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 38 to about 41 weight percent HFO-1234yf, about 12 to about 16 weight percent R-32, about 1 weight percent R-125, and about 5 to about 7 weight percent CO2. In some embodiments, the composition provided herein is selected from the group of compositions provided in Tables 1A-1C.


In some embodiments, the composition is a composition selected from the group of compositions provided in Tables 1A-1C, wherein the composition exhibits a cooling capacity (CAP) that is within about ±3% to about ±20% of the cooling capacity of R-22, R-407C, or R-404A.


In some embodiments, the composition is a composition selected from the group of compositions provided in Tables 1A-1C, wherein the composition exhibits a cooling capacity (CAP) that is within about ±20% of the cooling capacity of R-22, R-407C, or R-404A. In some embodiments, the composition is a composition selected from the group of compositions provided in Tables 1A-1C, wherein the composition exhibits a cooling capacity (CAP) that is within about ±15% of the cooling capacity of R-22, R-407C, or R-404A. In some embodiments, the composition is a composition selected from the group of compositions provided in


Tables 1A-1C, wherein the composition exhibits a cooling capacity (CAP) that is within about ±10% of the cooling capacity of the R-22, R-407C, or R-404A. In some embodiments, the composition is a composition selected from the group of compositions provided in Tables 1A-1C, wherein the composition exhibits a cooling capacity (CAP) that is within about ±5% of the cooling capacity of the R-22, R-407C, or R-404A. In some embodiments, the composition is a composition selected from the group of compositions provided in Tables 1A-1C, wherein the composition exhibits a GWP less than about 750. In some embodiments, the composition is a composition selected from the group of compositions provided in Tables 1A-1C, wherein the composition exhibits a GWP less than about 400. In some embodiments, the composition is a composition selected from the group of compositions provided in Tables 1A-1C, wherein the composition exhibits a GWP less than about 250. In some embodiments, the composition is a composition selected from the group of compositions provided in Tables 1A-1C, wherein the composition exhibits a GWP less than about 150.


In some embodiments, the composition provided herein is selected from the group of compositions provided in Tables 2A-2C.


In some embodiments, the composition is a composition selected from the group of compositions provided in Tables 2A-2C, wherein the composition exhibits a cooling capacity (CAP) that is within about ±3% to about ±20% of the cooling capacity of R-22, R-407C, or R-404A.


In some embodiments, the composition is a composition selected from the group of compositions provided in Tables 2A-2C, wherein the composition exhibits a cooling capacity (CAP) that is within about ±20% of the cooling capacity of R-22, R-407C, or R-404A. In some embodiments, the composition is a composition selected from the group of compositions provided in Tables 2A-2C, wherein the composition exhibits a cooling capacity (CAP) that is within about ±15% of the cooling capacity of R-22, R-407C, or R-404A. In some embodiments, the composition is a composition selected from the group of compositions provided in Tables 2A-2C, wherein the composition exhibits a cooling capacity (CAP) that is within about ±10% of the cooling capacity of the R-22, R-407C, or R-404A. In some embodiments, the composition is a composition selected from the group of compositions provided in Tables 2A-2C, wherein the composition exhibits a cooling capacity (CAP) that is within about ±5% of the cooling capacity of the R-22, R-407C, or R-404A. In some embodiments, the composition is a composition selected from the group of compositions provided in Tables 2A-2C, wherein the composition exhibits a GWP less than about 750. In some embodiments, the composition is a composition selected from the group of compositions provided in Tables 2A-2C, wherein the composition exhibits a GWP less than about 400. In some embodiments, the composition is a composition selected from the group of compositions provided in Tables 2A-2C, wherein the composition exhibits a GWP less than about 250. In some embodiments, the composition is a composition selected from the group of compositions provided in Tables 2A-2C, wherein the composition exhibits a GWP less than about 150.


In some embodiments, the composition provided herein is selected from the group of compositions provided in Tables 3A-3C.


In some embodiments, the composition is a composition selected from the group of compositions provided in Tables 3A-3C, wherein the composition exhibits a cooling capacity (CAP) that is within about ±3% to about ±20% of the cooling capacity of R-22, R-407C, or R-404A.


In some embodiments, the composition is a composition selected from the group of compositions provided in Tables 3A-3C, wherein the composition exhibits a cooling capacity (CAP) that is within about ±20% of the cooling capacity of R-22, R-407C, or R-404A. In some embodiments, the composition is a composition selected from the group of compositions provided in Tables 3A-3C, wherein the composition exhibits a cooling capacity (CAP) that is within about ±15% of the cooling capacity of R-22, R-407C, or R-404A. In some embodiments, the composition is a composition selected from the group of compositions provided in Tables 3A-3C, wherein the composition exhibits a cooling capacity (CAP) that is within about ±10% of the cooling capacity of the R-22, R-407C, or R-404A. In some embodiments, the composition is a composition selected from the group of compositions provided in Tables 3A-3C, wherein the composition exhibits a cooling capacity (CAP) that is within about ±5% of the cooling capacity of the R-22, R-407C, or R-404A. In some embodiments, the composition is a composition selected from the group of compositions provided in Tables 3A-3C, wherein the composition exhibits a GWP less than about 750. In some embodiments, the composition is a composition selected from the group of compositions provided in Tables 3A-3C, wherein the composition exhibits a GWP less than about 400. In some embodiments, the composition is a composition selected from the group of compositions provided in Tables 3A-3C, wherein the composition exhibits a GWP less than about 250. In some embodiments, the composition is a composition selected from the group of compositions provided in Tables 3A-3C, wherein the composition exhibits a GWP less than about 150.


Methods of Use

The compositions provided herein can act as a working fluid used to carry heat from a heat source to a heat sink. Such heat transfer compositions may also be useful as a refrigerant in a cycle wherein the fluid undergoes a phase change; that is, for example, from a liquid to a gas and back, or vice versa. Examples of heat transfer systems include but are not limited to air conditioners, freezers, refrigerators, heat pumps, water chillers, flooded evaporator chillers, direct expansion chillers, walk-in coolers, high temperature heat pumps, mobile refrigerators, mobile air conditioning units, immersion cooling systems, data-center cooling systems, and combinations thereof. Accordingly, the present application provides a heat transfer system (e.g., a heat transfer apparatus) as described herein, comprising a composition provided herein. In some embodiments, the composition provided herein is useful as a working fluid (e.g., a working fluid for refrigeration or heating applications) in the heat transfer apparatus. In some embodiments, the compositions provided herein are useful in an apparatus or system comprising a high temperature heat pump. In some embodiments, the high temperature heat pump comprises a centrifugal compressor. In some embodiments, the compositions provided herein are useful in an apparatus or system comprising a chiller apparatus. In some embodiments, the compositions provided herein are useful in an apparatus or system comprising a centrifugal chiller apparatus. In some embodiments, the compositions provided herein are useful in a centrifugal high temperature heat pump.


Mechanical vapor-compression refrigeration, air conditioning and heat pump systems include an evaporator, a compressor, a condenser, and an expansion device. A refrigeration cycle re-uses refrigerant in multiple steps producing a cooling effect in one step and a heating effect in a different step. The cycle can be described as follows: Liquid refrigerant enters an evaporator through an expansion device, and the liquid refrigerant boils in the evaporator, by withdrawing heat from the environment, at a low temperature to form a gas and produce cooling. Often air or a heat transfer fluid flows over or around the evaporator to transfer the cooling effect caused by the evaporation of the refrigerant in the evaporator to a body to be cooled. The low-pressure gas enters a compressor where the gas is compressed to raise its pressure and temperature. The higher-pressure (compressed) gaseous refrigerant then enters the condenser in which the refrigerant condenses and discharges its heat to the environment. The refrigerant returns to the expansion device through which the liquid expands from the higher-pressure level in the condenser to the low-pressure level in the evaporator, thus repeating the cycle.


A body to be cooled or heated may be defined as any space, location, object or body for which it is desirable to provide cooling or heating. Examples include spaces (open or enclosed) requiring air conditioning, cooling, or heating, such as a room, an apartment, or building, such as an apartment building, university dormitory, townhouse, or other attached house or single-family home, hospitals, office buildings, supermarkets, college or university classrooms or administration buildings and automobile or truck passenger compartments. Additionally, a body to be cooled may include electronic devices, such as computer equipment, central processing units (cpu), data-centers, server banks, and personal computers among others.


By “in the vicinity of” is meant that the evaporator of the system containing the refrigerant is located either within or adjacent to the body to be cooled, such that air moving over the evaporator would move into or around the body to be cooled. In the process for producing heating, “in the vicinity of” means that the condenser of the system containing the refrigerant is located either within or adjacent to the body to be heated, such that the air moving over the evaporator would move into or around the body to be heated. In some embodiments, for heat transfer, “in the vicinity of” may mean that the body to be cooled is immersed directly in the heat transfer composition or tubes containing heat transfer compositions run into around internally, and out of electronic equipment, for instance.


Exemplary refrigeration systems include, but are not limited to, equipment including commercial, industrial or residential refrigerators and freezers, ice machines, self-contained coolers and freezers, vending machines, flooded evaporator chillers, direct expansion chillers, water chiller, centrifugal chillers, walk-in and reach-in coolers and freezers, and combination systems. In some embodiments, the compositions provided herein may be used in supermarket refrigeration systems. Additionally, stationary applications may utilize a secondary loop system that uses a primary refrigerant to produce cooling in one location that is transferred to a remote location via a secondary heat transfer fluid.


In some embodiments, the compositions provided herein are useful in mobile heat transfer systems, including refrigeration, air conditioning, or heat pump systems or apparatus. In some embodiments, the compositions are useful in stationary heat transfer systems, including refrigeration, air conditioning, or heat pump systems or apparatus.


As used herein, mobile refrigeration, air conditioning, or heat pump systems refers to any refrigeration, air conditioner, or heat pump apparatus incorporated into a transportation unit for the road, rail, sea or air. Mobile air conditioning or heat pumps systems may be used in automobiles, trucks, railcars or other transportation systems. Mobile refrigeration may include transport refrigeration in trucks, airplanes, or rail cars. In addition, apparatus which are meant to provide refrigeration for a system independent of any moving carrier, known as “intermodal” systems, are including in the present inventions. Such intermodal systems include “containers” (combined sea/land transport) as well as “swap bodies” (combined road and rail transport).


As used herein, stationary air conditioning or heat pump systems are systems that are fixed in place during operation. A stationary air conditioning or heat pump system may be associated within or attached to buildings of any variety. These stationary applications may be stationary air conditioning and heat pumps, including but not limited to chillers, heat pumps, including residential and high temperature heat pumps, residential, commercial or industrial air conditioning systems, and including window, ductless, ducted, packaged terminal, and those exterior but connected to the building such as rooftop systems.


Stationary heat transfer may refer to systems for cooling electronic devices, such as immersion cooling systems, submersion cooling systems, phase change cooling systems, data-center cooling systems or simply liquid cooling systems.


In some embodiments, a method is provided for using the present compositions as a heat transfer fluid. The method comprises transporting said composition from a heat source to a heat sink.


In some embodiments, a method is provided for producing cooling comprising evaporating any of the present compounds or compositions in the vicinity of a body to be cooled, and thereafter condensing said composition.


In some embodiments, a method is provided for producing heating comprising condensing any of the present compositions in the vicinity of a body to be heated, and thereafter evaporating said compositions.


In some embodiments, the composition is for use in heat transfer, wherein the working fluid is a heat transfer component.


In some embodiments, the compositions of the invention are for use in refrigeration or air conditioning.


In some embodiments, compositions of the present invention may be useful for reducing or eliminating the flammability of flammable refrigerants provided herein (e.g., R-22, R-407C, or R-404A). In some embodiments, the present application provided herein is a method for reducing the flammability of a flammable refrigerant comprising adding a composition comprising a composition as disclosed herein to a flammable refrigerant.


The compositions provided herein may be useful as a replacement for a currently used (“incumbent”) refrigerant. As used herein, the term “incumbent refrigerant” shall be understood to mean the refrigerant for which the heat transfer system was designed to operate, or the refrigerant that is resident in the heat transfer system. In some embodiments, the incumbent refrigerant is R-22, R-407C, or R-404A. In some embodiments, the incumbent refrigerant is R-22. In some embodiments, the incumbent refrigerant is R-407C. In some embodiments, the incumbent refrigerant is R-404A. In some embodiments, the replacement refrigerant is a composition provided herein.


Often replacement refrigerants are most useful if capable of being used in the original refrigeration equipment designed for a different refrigerant, e.g., with minimal to no system modifications. In many applications, some embodiments of the disclosed compositions are useful as refrigerants and provide at least comparable cooling performance (meaning cooling capacity) as the refrigerant for which a replacement is being sought.


In some embodiments, the replacement refrigerant provided herein (i.e., a composition provided herein) exhibits a cooling capacity that is within about ±3% to about ±20% of the cooling capacity of the R-22, R-407C, or R-404A. In some embodiments, the replacement refrigerant provided herein exhibits a cooling capacity that is within about ±20% of the cooling capacity of the R-22, R-407C, or R-404A. In some embodiments, the replacement refrigerant provided herein exhibits a cooling capacity that is within about ±15% of the cooling capacity of the R-22, R-407C, or R-404A. In some embodiments, the replacement refrigerant provided herein exhibits a cooling capacity that is within about ±10% of the cooling capacity of the R-22, R-407C, or R-404A. In some embodiments, the replacement refrigerant provided herein exhibits a cooling capacity that is within about ±5% of the cooling capacity of the R-22, R-407C, or R-404A. In some embodiments, the replacement refrigerant provided herein exhibits a cooling capacity that is within about ±3% of the cooling capacity of the R-22, R-407C, or R-404A.


In some embodiments, the replacement refrigerant provided herein (i.e., a composition provided herein) exhibits a cooling capacity that is within about ±3% to about ±20% of the cooling capacity of the R-22, R-407C, or R-404A and has a GWP less than about 750. In some embodiments, the replacement refrigerant provided herein exhibits a cooling capacity that is within about ±3% to about ±20% of the cooling capacity of the R-22, R-407C, or R-404A and has a GWP less than about 400. In some embodiments, the replacement refrigerant provided herein exhibits a cooling capacity that is within about ±3% to about ±20% of the cooling capacity of the R-22, R-407C, or R-404A and has a GWP less than about 250. In some embodiments, the replacement refrigerant provided herein exhibits a cooling capacity that is within about ±3% to about ±20% of the cooling capacity of the R-22, R-407C, or R-404A and has a GWP less than about 150.


In some embodiments, the replacement refrigerant provided herein exhibits a cooling capacity that is within about ±5% of the cooling capacity of the R-22, R-407C, or R-404A and has a GWP less than about 150.


In some embodiments, the method comprises replacing the R-22, R-407C, or R-404A in a high temperature heat pump with a replacement refrigerant composition provided herein. In some embodiments, the high temperature heat pump is a centrifugal high temperature heat pump.


In some embodiments, the high temperature heat pump comprises a condenser operating at a temperature greater than about 50° C. In some embodiments, the high temperature heat pump comprises a condenser operating at a temperature greater than about 100° C. In some embodiments, the high temperature heat pump comprises a condenser operating at a temperature greater than about 120° C. In some embodiments, the high temperature heat pump comprises a condenser operating at a temperature greater than about 150° C.


In some embodiments, the replacement refrigerant exhibits a coefficient of performance for heating (COP) that is within about ±5% of the COP of the R-22, R-407C, or R-404A. In some embodiments, the replacement refrigerant exhibits a COP that is within about ±3% of the COP of the R-22, R-407C, or R-404A. In some embodiments, the replacement refrigerant exhibits a COP that is about equal to the COP of the R-22, R-407C, or R-404A.


In some embodiments, the present application provides a method for improving energy efficiency of a heat transfer system or apparatus comprising an incumbent refrigerant, comprising substantially replacing the incumbent refrigerant with a replacement refrigerant composition provided herein, thereby improving the efficiency of the heat transfer system. In some embodiments, the heat transfer system is a chiller system or chiller apparatus provided herein.


In some embodiments is provided a method for operating a heat transfer system or for transferring heat that is designed to operate with an incumbent refrigerant by charging an empty system with a composition of the present invention, or by substantially replacing said incumbent refrigerant with a composition of the present invention.


As used herein, the term “substantially replacing” shall be understood to mean allowing the incumbent refrigerant to drain from the system, or pumping the incumbent refrigerant from the system, and then charging the system with a composition of the present invention. The system may be flushed with one or more quantities of the replacement refrigerant before being charged. It shall be understood that in some embodiments, some small quantity of the incumbent refrigerant may be present in the system after the system has been charged with the composition of the present invention.


In another embodiment is provided a method for recharging a heat transfer system that contains an incumbent refrigerant and a lubricant, said method comprising substantially removing the incumbent refrigerant from the heat transfer system while retaining a substantial portion of the lubricant in said system and introducing one of the present compositions to the heat transfer system. In some embodiments, the lubricant in the system is partially replaced.


In some embodiments, the compositions of the present invention may be used to top-off a refrigerant charge in a chiller. For example, if a chiller using R-22, R-407C, or R-404A has diminished performance due to leakage of refrigerant, the compositions as disclosed herein may be added to bring performance back up to specification.


In some embodiments, a heat exchange system containing any one or more of the presently disclosed compositions is provided, wherein said system is selected from the group consisting of air conditioners, freezers, refrigerators, heat pumps, water chillers, flooded evaporator chillers, direct expansion chillers, walk-in coolers, heat pumps, mobile refrigerators, mobile air conditioning units, and systems having combinations thereof. Additionally, the compositions provided herein may be useful in secondary loop systems wherein these compositions serve as the primary refrigerant thus providing cooling to a secondary heat transfer fluid that thereby cools a remote location.


The compositions of the present invention may have some temperature glide in the heat exchangers. Thus, the systems may operate more efficiently if the heat exchangers are operated in counter-current mode or cross-current mode with counter-current tendency. Counter-current tendency means that the closer the heat exchanger can get to counter-current mode the more efficient the heat transfer. Thus, air conditioning heat exchangers, in particular evaporators, are designed to provide some aspect of counter-current tendency.


Therefore, provided herein is an air conditioning or heat pump system wherein said system includes one or more heat exchangers (either evaporators, condensers or both) that operate in counter-current mode or cross-current mode with counter-current tendency.


In some embodiments, provided herein is a refrigeration system wherein said system includes one or more heat exchangers (either evaporators, condensers or both) that operate in counter-current mode or cross-current mode with counter-current tendency.


In some embodiments, the refrigeration, air conditioning or heat pump system is a stationary refrigeration, air conditioning or heat pump system. In some embodiments the refrigeration, air conditioning, or heat pump system is a mobile refrigeration, air conditioning or heat pump system.


Additionally, in some embodiments, the disclosed compositions may function as primary refrigerants in secondary loop systems that provide cooling to remote locations by use of a secondary heat transfer fluid, which may comprise water, an aqueous salt solution (e.g., calcium chloride), a glycol, carbon dioxide, or a fluorinated hydrocarbon fluid (meaning an HFC, HCFC, hydrofluoroolefin (“HFO”), hydrochlorofluoroolefin (“HCFO”), chlorofluoroolefin (“CFO”), or perfluorocarbon (“PFC”). In this case, the secondary heat transfer fluid is the body to be cooled as it is adjacent to the evaporator and is cooled before moving to a second remote body to be cooled. In other embodiments, the disclosed compositions may function as the secondary heat transfer fluid, thus transferring or providing cooling (or heating) to the remote location.


In some embodiments, the compositions provided herein further comprise one or more non-refrigerant components (also referred to herein as additives) selected from the group consisting of lubricants, dyes (including UV dyes), solubilizing agents, compatibilizers, stabilizers, tracers, perfluoropolyethers, anti-wear agents, extreme pressure agents, corrosion and oxidation inhibitors, polymerization inhibitors, metal surface energy reducers, metal surface deactivators, free radical scavengers, foam control agents, viscosity index improvers, pour point depressants, detergents, viscosity adjusters, and mixtures thereof. Indeed, many of these optional non-refrigerant components fit into one or more of these categories and may have qualities that lend themselves to achieve one or more performance characteristic.


In some embodiments, one or more non-refrigerant components are present in small amounts relative to the overall composition. In some embodiments, the amount of additive(s) concentration in the disclosed compositions is from less than about 0.1 weight percent to as much as about 5 weight percent of the total composition. In some embodiments of the present invention, the additives are present in the disclosed compositions in an amount between about 0.1 weight percent to about 5 weight percent of the total composition or in an amount between about 0.1 weight percent to about 3.5 weight percent. The additive component(s) selected for the disclosed composition is selected on the basis of the utility and/or individual equipment components or the system requirements.


In some embodiments, the lubricant is selected from the group consisting of mineral oil, alkylbenzene, polyol esters, polyalkylene glycols, polyvinyl ethers, polycarbonates, perfluoropolyethers, silicones, silicate esters, phosphate esters, paraffins, naphthenes, polyalpha-olefins, and combinations thereof.


The lubricants as disclosed herein may be commercially available lubricants. For instance, the lubricant may be paraffinic mineral oil, sold by BVA Oils as BVM 100 N, naphthenic mineral oils sold by Crompton Co. under the trademarks Suniso® 1GS, Suniso® 3GS and Suniso® 5GS, naphthenic mineral oil sold by Pennzoil under the trademark Sontex® 372LT, naphthenic mineral oil sold by Calumet Lubricants under the trademark Calumet® RO-30, linear alkylbenzenes sold by Shrieve Chemicals under the trademarks Zerol® 75, Zerol® 150 and Zerol® 500 and branched alkylbenzene sold by Nippon Oil as HAB 22, polyol esters (POEs) sold under the trademark Castrol® 100 by Castrol, United Kingdom, polyalkylene glycols (PAGs) such as RL-488A from Dow (Dow Chemical, Midland, Mich.), and mixtures thereof, meaning mixtures of any of the lubricants disclosed in this paragraph.


Notwithstanding the above weight ratios for compositions disclosed herein, it is understood that in some heat transfer systems, while the composition is being used, it may acquire additional lubricant from one or more equipment components of such heat transfer system. For example, in some refrigeration, air conditioning and heat pump systems, lubricants may be charged in the compressor and/or the compressor lubricant sump. Such lubricant would be in addition to any lubricant additive present in the refrigerant in such a system. In use, the refrigerant when in the compressor may pick up an amount of the equipment lubricant to change the refrigerant-lubricant composition from the starting ratio.


The non-refrigerant component used with the compositions of the present invention may include at least one dye. The dye may be at least one ultra-violet (UV) dye. As used herein, “ultra-violet” dye is defined as a UV fluorescent or phosphorescent composition that absorbs light in the ultra-violet or “near” ultra-violet region of the electromagnetic spectrum. The fluorescence produced by the UV fluorescent dye under illumination by a UV light that emits at least some radiation with a wavelength in the range of from 10 nanometers to about 775 nanometers may be detected.


UV dye is a useful component for detecting leaks of the composition by permitting one to observe the fluorescence of the dye at or in the vicinity of a leak point in an apparatus (e.g., refrigeration unit, air-conditioner or heat pump). The UV emission, e.g., fluorescence from the dye may be observed under an ultra-violet light. Therefore, if a composition containing such a UV dye is leaking from a given point in an apparatus, the fluorescence can be detected at the leak point, or in the vicinity of the leak point.


In some embodiments, the UV dye may be a fluorescent dye. In some embodiments, the fluorescent dye is selected from the group consisting of naphthalimides, perylenes, coumarins, anthracenes, phenanthracenes, xanthenes, thioxanthenes, naphthoxanthenes, fluoresceins, and derivatives of said dye, and combinations thereof, meaning mixtures of any of the foregoing dyes or their derivatives disclosed in this paragraph.


Another non-refrigerant component which may be used with the compositions of the present invention may include at least one solubilizing agent selected to improve the solubility of one or more dye in the disclosed compositions. In some embodiments, the weight ratio of dye to solubilizing agent ranges from about 99:1 to about 1:1. The solubilizing agents include at least one compound selected from the group consisting of hydrocarbons, hydrocarbon ethers, polyoxyalkylene glycol ethers (such as dipropylene glycol dimethyl ether), amides, nitriles, ketones, chlorocarbons (such as methylene chloride, trichloroethylene, chloroform, or mixtures thereof), esters, lactones, aromatic ethers, fluoroethers, and 1,1,1-trifluoroalkanes and mixtures thereof, meaning mixtures of any of the solubilizing agents disclosed in this paragraph.


In some embodiments, the non-refrigerant component comprises at least one compatibilizer to improve the compatibility of one or more lubricants with the disclosed compositions. The compatibilizer may be selected from the group consisting of hydrocarbons, hydrocarbon ethers, polyoxyalkylene glycol ethers (such as dipropylene glycol dimethyl ether), amides, nitriles, ketones, chlorocarbons (such as methylene chloride, trichloroethylene, chloroform, or mixtures thereof), esters, lactones, aromatic ethers, fluoroethers, 1,1,1-trifluoroalkanes, and mixtures thereof, meaning mixtures of any of the compatibilizers disclosed in this paragraph.


The solubilizing agent and/or compatibilizer may be selected from the group consisting of hydrocarbon ethers consisting of the ethers containing only carbon, hydrogen and oxygen, such as dimethyl ether (DME) and mixtures thereof, meaning mixtures of any of the hydrocarbon ethers disclosed in this paragraph.


The compatibilizer may be linear or cyclic aliphatic or aromatic hydrocarbon compatibilizer containing from 3 to 15 carbon atoms. The compatibilizer may be at least one hydrocarbon, which may be selected from the group consisting of at least propanes, including propylene and propane, butanes, including n-butane and isobutene, pentanes, including n-pentane, isopentane, neopentane and cyclopentane, hexanes, octanes, nonane, and decanes, among others. Commercially available hydrocarbon compatibilizers include but are not limited to those from Exxon Chemical (USA) sold under the trademarks Isopar® H, a mixture of undecane (C11) and dodecane (C12) (a high purity C11 to C12 iso-paraffinic), Aromatic 150 (a C9 to C11 aromatic) (Aromatic 200 (a C9 to C15 aromatic) and Naptha 140 (a mixture of C5 to C11 paraffins, naphthenes and aromatic hydrocarbons) and mixtures thereof, meaning mixtures of any of the hydrocarbons disclosed in this paragraph.


The compatibilizer may alternatively be at least one polymeric compatibilizer. The polymeric compatibilizer may be a random copolymer of fluorinated and non-fluorinated acrylates, wherein the polymer comprises repeating units of at least one monomer represented by the formulae CH2═C(R1)CO2R2, CH2═C(R3)C6H4R4, and CH2═C(R5)C6H4XR6, wherein X is oxygen or sulfur; R1, R3, and R5 are independently selected from the group consisting of H and C1-C4 alkyl radicals; and R2, R4, and R6 are independently selected from the group consisting of carbon-chain-based radicals containing C, and F, and may further contain H, Cl, ether oxygen, or sulfur in the form of thioether, sulfoxide, or sulfone groups and mixtures thereof. Examples of such polymeric compatibilizers include those commercially available from E. I. du Pont de Nemours and Company, (Wilmington, Del., 19898, USA) under the trademark Zonyl® PHS. Zonyl® PHS is a random copolymer made by polymerizing 40 weight percent CH2═C(CH3)CO2CH2CH2(CF2CF2)mF (also referred to as Zonyl® fluoromethacrylate or ZFM) wherein m is from 1 to 12, primarily 2 to 8, and 60 weight percent lauryl methacrylate (CH2═C(CH3)CO2(CH2)11CH3, also referred to as LMA).


In some embodiments, the compatibilizer component contains from about 0.01 to 30 weight percent (based on total amount of compatibilizer) of an additive which reduces the surface energy of metallic copper, aluminum, steel, or other metals and metal alloys thereof found in heat exchangers in a way that reduces the adhesion of lubricants to the metal. Examples of metal surface energy reducing additives include those commercially available from DuPont under the trademarks Zonyl® FSA, Zonyl® FSP, and Zonyl® FSJ.


Another non-refrigerant component which may be used with the compositions of the present invention may be a metal surface deactivator. The metal surface deactivator is selected from the group consisting of areoxalyl bis (benzylidene) hydrazide (CAS reg no. 6629-10-3), N,N′-bis(3,5-di-tert-butyl-4-hydroxyhydrocinnamoylhydrazine (CAS reg no. 32687-78-8), 2,2,′-oxamidobis-ethyl-(3,5-di-tert-butyl-4-hydroxyhydrocinnamate (CAS reg no. 70331-94-1), N,N′-(disalicyclidene)-1,2-diaminopropane (CAS reg no. 94-91-7) and ethylenediaminetetra-acetic acid (CAS reg no. 60-00-4) and its salts, and mixtures thereof, meaning mixtures of any of the metal surface deactivators disclosed in this paragraph.


The non-refrigerant component used with the compositions of the present invention may alternatively be a stabilizer selected from the group consisting of hindered phenols, thiophosphates, butylated triphenylphosphorothionates, organo phosphates, or phosphites, aryl alkyl ethers, terpenes, terpenoids, epoxides, fluorinated epoxides, oxetanes, ascorbic acid, thiols, lactones, thioethers, amines, nitromethane, alkylsilanes, benzophenone derivatives, aryl sulfides, divinyl terephthalic acid, diphenyl terephthalic acid, hydrazones, such as acetaldehyde dimethylhydrazone, ionic liquids, and mixtures thereof, meaning mixtures of any of the stabilizers disclosed in this paragraph. Terpene or terpenoid stabilizers may include farnesene. Phosphite stabilizers may include diphenyl phosphite.


The stabilizer may be selected from the group consisting of tocopherol; hydroquinone; t-butyl hydroquinone; monothiophosphates; and dithiophosphates, commercially available from Ciba Specialty Chemicals, Basel, Switzerland, hereinafter “Ciba”, under the trademark Irgalube® 63; dialkylthiophosphate esters, commercially available from Ciba under the trademarks Irgalube® 353 and Irgalube® 350, respectively; butylated triphenylphosphorothionates, commercially available from Ciba under the trademark Irgalube® 232; amine phosphates, commercially available from Ciba under the trademark Irgalube® 349 (Ciba); hindered phosphites, commercially available from Ciba as Irgafos® 168 and Tris-(di-tert-butylphenyl)phosphite, commercially available from Ciba under the trademark Irgafos® OPH; (Di-n-octyl phosphite); and iso-decyl diphenyl phosphite, commercially available from Ciba under the trademark Irgafos® DDPP; trialkyl phosphates, such as trimethyl phosphate, triethylphosphate, tributyl phosphate, trioctyl phosphate, and tri(2-ethylhexyl)phosphate; triaryl phosphates including triphenyl phosphate, tricresyl phosphate, and trixylenyl phosphate; and mixed alkyl-aryl phosphates including isopropylphenyl phosphate (IPPP), and bis(t-butylphenyl)phenyl phosphate (TBPP); butylated triphenyl phosphates, such as those commercially available under the trademark Syn-O-Ad® including Syn-O-Ad® 8784; tert-butylated triphenyl phosphates such as those commercially available under the trademark Durad®620; isopropylated triphenyl phosphates such as those commercially available under the trademarks Durad® 220 and Durad®110; anisole; 1,4-dimethoxybenzene; 1,4-diethoxybenzene; 1,3,5-trimethoxybenzene; myrcene, alloocimene, limonene (in particular, d-limonene); retinal; pinene (α or β); menthol; geraniol; farnesol; phytol; Vitamin A; terpinene; delta-3-carene; terpinolene; phellandrene; fenchene; dipentene; caratenoids, such as lycopene, beta carotene, and xanthophylls, such as zeaxanthin; retinoids, such as hepaxanthin and isotretinoin; bornane; 1,2-propylene oxide; 1,2-butylene oxide; n-butyl glycidyl ether; trifluoromethyloxirane; 1,1-bis(trifluoromethyl)oxirane; 3-ethyl-3-hydroxymethyl-oxetane, such as OXT-101 (Toagosei Co., Ltd); 3-ethyl-3-((phenoxy)methyl)-oxetane, such as OXT-211 (Toagosei Co., Ltd); 3-ethyl-3-((2-ethyl-hexyloxy)methyl)-oxetane, such as OXT-212 (Toagosei Co., Ltd); ascorbic acid; methanethiol (methyl mercaptan); ethanethiol (ethyl mercaptan); Coenzyme A; dimercaptosuccinic acid (DMSA); grapefruit mercaptan ((R)-2-(4-methylcyclohex-3-enyl)propane-2-thiol)); cysteine ((R)-2-amino-3-sulfanyl-propanoic acid); lipoamide (1,2-dithiolane-3-pentanamide); 5,7-bis(1,1-dimethylethyl)-3-[2,3(or 3,4)-dimethylphenyl]-2(3H)-benzofuranone, commercially available from Ciba under the trademark Irganox® HP-136; benzyl phenyl sulfide; diphenyl sulfide; diisopropylamine; dioctadecyl 3,3′-thiodipropionate, commercially available from Ciba under the trademark Irganox® PS 802 (Ciba); didodecyl 3,3′-thiopropionate, commercially available from Ciba under the trademark Irganox® PS 800; di-(2,2,6,6-tetramethyl-4-piperidyl)sebacate, commercially available from Ciba under the trademark Tinuvin® 770; poly-(N-hydroxyethyl-2,2,6,6-tetramethyl-4-hydroxy-piperidyl succinate, commercially available from Ciba under the trademark Tinuvin® 622LD (Ciba); methyl bis tallow amine; bis tallow amine; phenol-alpha-naphthylamine; bis(dimethylamino)methylsilane (DMAMS); tris(trimethylsilyl)silane (TTMSS); vinyltriethoxysilane; vinyltrimethoxysilane; 2,5-difluorobenzophenone; 2′,5′-dihydroxyacetophenone; 2-aminobenzophenone; 2-chlorobenzophenone; benzyl phenyl sulfide; diphenyl sulfide; dibenzyl sulfide; ionic liquids; and mixtures and combinations thereof.


The additive used with the compositions of the present invention may alternatively be an ionic liquid stabilizer. The ionic liquid stabilizer may be selected from the group consisting of organic salts that are liquid at room temperature (approximately 25 ° C.), those salts containing cations selected from the group consisting of pyridinium, pyridazinium, pyrimidinium, pyrazinium, imidazolium, pyrazolium, thiazolium, oxazolium and triazolium and mixtures thereof; and anions selected from the group consisting of [BF4], [PF6], [SbF6], [CF3SO3], [HCF2CF2SO3], [CF3HFCCF2SO3], [HCClFCF2SO3], [(CF3SO2)2N], [(CF3CF2SO2)2N], [(CF3SO2)3C], [CF3CO2], and F, and mixtures thereof. In some embodiments, ionic liquid stabilizers are selected from the group consisting of emim BF4 (1-ethyl-3-methylimidazolium tetrafluoroborate); bmim BF4 (1-butyl-3-methylimidazolium tetraborate); emim PF6 (1-ethyl-3-methylimidazolium hexafluorophosphate); and bmim PF6 (1-butyl-3-methylimidazolium hexafluorophosphate), all of which are available from Fluka (Sigma-Aldrich).


In some embodiments, the stabilizer may be a hindered phenol, which is any substituted phenol compound, including phenols comprising one or more substituted or cyclic, straight chain, or branched aliphatic substituent group, such as, alkylated monophenols including 2,6-di-tert-butyl-4-methylphenol; 2,6-di-tert-butyl-4-ethylphenol; 2,4-dimethyl-6-tertbutylphenol; tocopherol; and the like, hydroquinone and alkylated hydroquinones including t-butyl hydroquinone, other derivatives of hydroquinone; and the like, hydroxylated thiodiphenyl ethers, including 4,4′-thio-bis(2-methyl-6-tert-butylphenol); 4,4′-thiobis(3-methyl-6-tertbutylphenol); 2,2′-thiobis(4methyl-6-tert-butylphenol); and the like, alkylidene-bisphenols including,: 4,4′-methylenebis(2,6-di-tert-butylphenol); 4,4′-bis(2,6-di-tert-butylphenol); derivatives of 2,2′- or 4,4-biphenoldiols; 2,2′-methylenebis(4-ethyl-6-tertbutylphenol); 2,2′-methylenebis(4-methyl-6-tertbutylphenol); 4,4-butylidenebis(3-methyl-6-tert-butylphenol); 4,4-isopropylidenebis(2,6-di-tert-butylphenol); 2,2′-methylenebis(4-methyl-6-nonylphenol); 2,2′-isobutylidenebis(4,6-dimethylphenol; 2,2′-methylenebis(4-methyl-6-cyclohexylphenol, 2,2- or 4,4-biphenyldiols including 2,2′-methylenebis(4-ethyl-6-tert-butylphenol); butylated hydroxytoluene (BHT, or 2,6-di-tert-butyl-4-methylphenol), bisphenols comprising heteroatoms including 2,6-di-tert-alpha-dimethylamino-p-cresol, 4,4-thiobis(6-tert-butyl-m-cresol); and the like; acylaminophenols; 2,6-di-tert-butyl-4(N,N′-dimethylaminomethylphenol); sulfides including; bis(3-methyl-4-hydroxy-5-tert-butylbenzyl)sulfide; bis(3,5-di-tert-butyl-4-hydroxybenzyl)sulfide and mixtures thereof, meaning mixtures of any of the phenols disclosed in this paragraph.


The non-refrigerant component which is used with compositions of the present invention may alternatively be a tracer. The tracer may be two or more tracer compounds from the same class of compounds or from different classes of compounds. In some embodiments, the tracer is present in the compositions at a total concentration of about 50 parts per million by weight (ppm) to about 1000 ppm, based on the weight of the total composition. In other embodiments, the tracer is present at a total concentration of about 50 ppm to about 500 ppm. Alternatively, the tracer is present at a total concentration of about 100 ppm to about 300 ppm.


The tracer may be selected from the group consisting of hydrofluorocarbons (HFCs), deuterated hydrofluorocarbons, perfluorocarbons, fluoroethers, brominated compounds, iodinated compounds, alcohols, aldehydes and ketones, nitrous oxide and combinations thereof. Alternatively, the tracer may be selected from the group consisting of trifluoromethane (HFC-23), fluoroethane (HFC-161), 1,1,1,2,2,3,3-heptafluoropropane (HFC-227ca), 1,1,1,2,2,3-hexafluoropropane (HFC-236cb), 1,1,1,2,3,3-hexafluoropropane (HFC-236ea), 1,1,1,2,2-pentafluoropropane (HFC-245cb), 1,1,2,2-tetrafluoropropane (HFC-254cb), 1,1,1,2-tetrafluoropropane (HFC-254eb), 1,1,1-trifluoropropane (HFC-263fb), 2,2-difluoropropane (HFC-272ca), 2-fluoropropane (HFC-281ea), 1-fluoropropane (HFC-281fa), 1,1,1,2,2,3,3,4-nonafluorobutane (HFC-329p), 1,1,1-trifluoro-2-methylpropane (HFC-329mmz), 1,1,1,2,2,4,4,4-octafluorobutane (HFC-338m0, 1,1,2,2,3,3,4,4-octafluorobutane (HFC-338pcc), 1,1,1,2,2,3,3-heptafluorobutane (HFC-347s), hexafluoroethane (perfluoroethane, PFC-116), perfluoro-cyclopropane (PFC-C216), perfluoropropane (PFC-218), perfluoro-cyclobutane (PFC-C318), perfluorobutane (PFC-31-10mc), perfluoro-2-methylpropane (CF3CF(CF3)2), perfluoro-1,3-dimethylcyclobutane (PFC-051-12mycm), trans-perfluoro-2,3-dimethylcyclobutane (PFC-051-12mym, trans), cis-perfluoro-2,3-dimethylcyclobutane (PFC-051-12mym, cis), perfluoromethylcyclopentane, perfluoromethylcyclohexane, perfluorodimethylcyclohexane (ortho, meta, or para), perfluoroethylcyclohexane, perfluoroindan, perfluorotrimethylcyclohexane and isomers thereof, perfluoroisopropylcyclohexane, cis-perfluorodecalin, trans-perfluorodecalin, cis- or trans-perfluoromethyldecalinand mixtures thereof. In some embodiments, the tracer is a blend containing two or more hydrofluorocarbons, or one hydrofluorocarbon in combination with one or more perfluorocarbon.


The tracer may be added to the compositions of the present invention in predetermined quantities to allow detection of any dilution, contamination or other alteration of the composition.


The additive which may be used with the compositions of the present invention may alternatively be a perfluoropolyether as described in detail in US 2007-0284555, the disclosure of which is incorporated herein by reference in its entirety.


It will be recognized that certain of the additives referenced above as suitable for the non-refrigerant component have been identified as potential refrigerants. However, in accordance with this invention, when these additives are used, they are not present at an amount that would affect the novel and basic characteristics of the refrigerant mixtures of this invention.


In some embodiments, the refrigerant compositions disclosed herein may be prepared by any convenient method to combine the desired amounts of the individual components as is standard in the art. A preferred method is to weigh the desired component amounts and thereafter combine the components in an appropriate vessel. Agitation may be used, if desired.


EXAMPLES

The invention will be described in greater detail by way of specific examples. The following examples are offered for illustrative purposes, and are not intended to limit the invention in any manner. Those of skill in the art will readily recognize a variety of non-critical parameters which can be changed or modified to yield essentially the same results. The following parameters were used as a basis for calculating the comparative data for R-22, R-407C, and R-404A, as shown in Table A: Tcondenser=40.0° C.; Tevaporator=4.0° C.; Compressor Clearance: 0.05; Compressor Displacement 0.1 m3/min; Cooling Load: 1.0 tonnes; Efficiency: 75%; Treturn=18° C.; Subcool: 8 K.


















TABLE A






R-
R-




Avg




R-22
407C
404A
AR4
Evap P
Cond P
Disch
Glide

Cap


(wt %)
(wt %)
(wt %)
GWP
(kPa)
(kPa)
T (° C.)
(K)
COP
(kJ/m3)
























100
0
0
1810
566
1534
80
0
5.014
3976


0
100
0
1774
575
1645
72
5.0
4.978
4133


0
0
100
3922
685
1822
63
0.4
4.834
4316









Example 1
R-1225ye(E)/R-1234yf/R-32/R-125 Blends as Replacement Refrigerants for R-22, R-407C, or R-404A

The cooling performance for mixtures containing R-1225ye(E), R-1234yf, R-32 and R-125 was determined including: suction pressure (Suction P), discharge pressure (Disch P), compressor discharge temperature (Disch T), and Average Temperature Glide for the evaporator and condenser (Average glide). Relative energy efficiency (COP) and volumetric cooling capacity (CAP) for mixtures relative to R22, R-407C and R-404A were also determined. The following parameters were used to calculate the data shown in Tables 1A-1C: Tcondenser=40.0° C.; Tevaporator=4.0° C.; Compressor Clearance: 0.05; Compressor Displacement 0.1 m3/min; Cooling Load: 1.0 tonnes; Efficiency: 75%; Treturn=18° C.; Subcool: 8 K.

















TABLE 1A





R-
R-






Avg


1225yeE
1234yf
R-32
R-125
AR4
Evap P
Cond P
Disch
Glide


(wt %)
(wt %)
(wt %)
(wt %)
GWP
(kPa)
(kPa)
T (° C.)
(K)























40
39
14
7
343
448
1290
64
9.6


38
38
16
8
391
470
1349
65
9.8


37
36
18
9
439
491
1401
66
9.8


35
35
20
10
488
512
1457
67
9.7


34
33
22
11
536
532
1508
68
9.5


32
32
24
12
585
553
1562
68
9.1


31
30
26
13
633
572
1610
69
8.8


29
29
28
14
681
593
1663
70
8.4


28
27
30
15
730
612
1710
71
8.0
























TABLE 1B





R-
R-









1225yeE
1234yf
R-32
R-125
AR4

COP rel
COP rel
COP rel


(wt %)
(wt %)
(wt %)
(wt %)
GWP
COP
to R-22
to 407C
to 404A























40
39
14
7
343
5.085
101%
102%
105%


38
38
16
8
391
5.070
101%
102%
105%


37
36
18
9
439
5.054
101%
102%
105%


35
35
20
10
488
5.034
100%
101%
104%


34
33
22
11
536
5.015
100%
101%
104%


32
32
24
12
585
4.993
100%
100%
103%


31
30
26
13
633
4.973
 99%
100%
103%


29
29
28
14
681
4.952
 99%
 99%
102%


28
27
30
15
730
4.934
 98%
 99%
102%
























TABLE 1C





R-
R-









1225yeE
1234yf
R-32
R-125
AR4
Cap
Cap rel
Cap rel
Cap rel


(wt %)
wt (%)
(wt %)
(wt %)
GWP
(kJ/m3)
to R-22
to 407C
to 404A























40
39
14
7
343
3250
 82%
 79%
75%


38
38
16
8
391
3392
 85%
 82%
79%


37
36
18
9
439
3518
 88%
 85%
82%


35
35
20
10
488
3651
 92%
 88%
85%


34
33
22
11
536
3769
 95%
 91%
87%


32
32
24
12
585
3894
 98%
 94%
90%


31
30
26
13
633
4007
101%
 97%
93%


29
29
28
14
681
4128
104%
100%
96%


28
27
30
15
730
4237
107%
103%
98%









The results in Tables 1A, 1B and 1C show that mixtures analyzed in this example are good alternatives to R-22, R-407C and R-404A with similar cooling capacities and energy efficiencies (COP). Preferred mixtures have cooling capacity within +/−20%, most preferably +/−10% of each incumbent refrigerant. Preferred mixtures also have COPs with −2/+5% of each incumbent refrigerant. Compressor discharge temperatures for the mixtures are also similar to R22, R-407C and R-404A.


Example 2
R-1225ye(E)/R-1234yf/R-32/CO2 Blends as Replacement Refrigerants for R-22, R-407C, or R-404A

The cooling performance for mixtures containing R-1225ye(E), R-1234yf, R-32, and CO2 was determined using the same approach as in Example 1.


The following parameters were used to calculate the data shown in Tables 2A-2C: Tcondenser=40.0° C.; Tevaporator=4.0° C.; Compressor Clearance: 0.05; Compressor Displacement 0.1 m3/min; Cooling Load: 1.0 tonnes; Efficiency: 75%; Treturn=18° C.; Subcool: 8 K.

















TABLE 2A





R-
R-






Avg


1225yeE
1234yf
R-32
CO2
AR4
Evap P
Cond P
Disch
Glide


(wt %)
(wt %)
(wt %)
(wt %)
GWP
(kPa)
(kPa)
T (° C.)
(K)























44
44
8
4
58
455
1367
66
15.6


43
42
10
5
71
496
1482
67
17.3


41
41
12
6
84
540
1597
69
18.4


40
39
14
7
98
580
1706
70
19.2


38
38
16
8
111
623
1817
71
19.6


37
36
18
9
125
663
1921
73
19.9


35
35
20
10
138
704
2029
74
19.9
























TABLE 2B





R-
R-









1225yeE
1234yf
R-32
CO2
AR4

COP rel
COP rel
COP rel


(wt %)
(wt %)
(wt %)
(wt %)
GWP
COP
to R-22
to 407C
to 404A























44
44
8
4
58
5.039
100%
101%
104%


43
42
10
5
71
5.029
100%
101%
104%


41
41
12
6
84
5.012
100%
101%
104%


40
39
14
7
98
4.989
100%
100%
103%


38
38
16
8
111
4.960
 99%
100%
103%


37
36
18
9
125
4.930
 98%
 99%
102%


35
35
20
10
138
4.895
 98%
 98%
101%
























TABLE 2C





R-
R-









1225yeE
1234yf
R-32
CO2
AR4
Cap
Cap rel
Cap rel
Cap rel


(wt %)
(wt %)
(wt %)
(wt %)
GWP
(kJ/m3)
to R-22
to 407C
to 404A























44
44
8
4
58
3393
 85%
 82%
 79%


43
42
10
5
71
3681
 93%
 89%
 85%


41
41
12
6
84
3965
100%
 96%
 92%


40
39
14
7
98
4228
106%
102%
 98%


38
38
16
8
111
4489
113%
109%
104%


37
36
18
9
125
4732
119%
114%
110%


35
35
20
10
138
4977
125%
120%
115%









The results in Tables 1A, 1B and 1C show that the mixtures analyzed in this example are good alternatives to R-22, R-407C and R-404A with similar cooling capacities and energy efficiencies (COP). Preferred mixtures have cooling capacity within +/−20%, most preferably +/−10% of each incumbent refrigerant. Preferred mixtures also have COPs with −2/+5% of each incumbent refrigerant. Compressor discharge temperatures for the mixtures are also similar to R22, R-407C and R-404A.


Example 3
R-1225ye(E)/R-1234yf/R-32/R-125/CO2 Blends as Replacement Refrigerants for R-22, R-407C, or R-404A

The cooling performance for mixtures containing R-1225ye(E), R-1234yf, R-32, R-125 and CO2 was determined using the same approach as in Example 1.


The following parameters were used to calculate the data shown in Tables 3A-3C: Tcondenser=40.0° C.; Tevaporator=4.0° C.; Compressor Clearance: 0.05; Compressor Displacement 0.1 m3/min; Cooling Load: 1.0 tonnes; Efficiency: 75%; Treturn=18° C.; Subcool: 8 K.


















TABLE 3A





R-
R-







Avg


1225yeE
1234yf
R-32
R-125
CO2
AR4
Evap P
Cond P
Disch
Glide


(wt %)
(wt %)
(wt %)
(wt %)
(wt %)
GWP
(kPa)
(kPa)
T (° C.)
(K)
























41
41
12
5
1
259
444
1295
64
11.0


40
39
14
6
1
308
465
1349
65
11.2


38
38
16
7
1
356
488
1407
66
11.2


37
36
18
8
1
404
508
1458
67
11.1


35
35
20
9
1
453
530
1514
68
10.9


34
33
22
10
1
501
550
1564
68
10.9


32
32
24
11
1
550
571
1618
69
10.2


31
30
26
12
1
598
591
1666
70
9.9


29
29
28
13
1
646
611
1719
71
9.4


28
27
30
14
1
695
630
1765
71
8.9


43
42
10
3
2
176
439
1297
65
12.4


41
41
12
4
2
224
462
1356
65
12.6


40
39
14
5
2
273
484
1409
66
12.7


38
38
16
6
2
321
506
1466
67
12.6


37
36
18
7
2
369
527
1517
68
12.4


35
35
20
8
2
418
549
1572
68
12.1


34
33
22
9
2
466
568
1621
69
11.8


32
32
24
10
2
515
589
1674
70
11.3


31
30
26
11
2
563
608
1722
71
10.9


29
29
28
12
2
611
630
1775
71
10.3


28
27
30
13
2
660
648
1821
72
9.8


44
44
8
1
3
93
435
1304
65
13.8


43
42
10
2
3
141
458
1359
66
14.1


41
41
12
3
3
189
481
1416
66
14.2


40
39
14
4
3
238
502
1469
67
14.2


38
38
16
5
3
286
525
1525
68
13.9


37
36
18
6
3
334
545
1575
68
13.7


35
35
20
7
3
383
567
1630
69
13.3


34
33
22
8
3
431
587
1679
70
12.9


32
32
24
9
3
480
608
1732
71
12.3


31
30
26
10
3
528
627
1779
71
11.9


29
29
28
11
3
576
648
1831
72
11.2


28
27
30
12
3
625
667
1877
73
10.7


43
42
10
1
4
106
477
1421
66
15.7


41
41
12
2
4
154
500
1477
67
15.7


40
39
14
3
4
203
521
1529
68
15.5


38
38
16
4
4
251
544
1584
68
15.2


37
36
18
5
4
299
564
1634
69
14.9


35
35
20
6
4
348
586
1688
70
14.4


34
33
22
7
4
396
606
1736
71
13.9


32
32
24
8
4
445
627
1789
71
13.3


31
30
26
9
4
493
646
1836
72
12.8


29
29
28
10
4
541
667
1888
73
12.1


28
27
30
11
4
590
686
1934
74
11.6


41
41
12
1
5
119
520
1538
68
17.1


40
39
14
2
5
168
541
1589
69
16.8


38
38
16
3
5
216
563
1643
69
16.4


37
36
18
4
5
264
584
1692
70
16.0


35
35
20
5
5
313
605
1745
71
15.5


34
33
22
6
5
361
625
1794
71
14.9


32
32
24
7
5
410
646
1846
72
14.3


31
30
26
8
5
458
666
1893
73
13.7


29
29
28
9
5
506
687
1944
73
13.0


28
27
30
10
5
555
705
1990
74
12.4


40
39
14
1
6
133
561
1648
69
18.1


38
38
16
2
6
181
583
1701
70
17.6


37
36
18
3
6
229
603
1750
71
17.1


35
35
20
4
6
278
625
1803
71
16.5


34
33
22
5
6
326
644
1851
72
15.9


32
32
24
6
6
375
666
1903
73
15.2


31
30
26
7
6
423
685
1949
73
14.6


29
29
28
8
6
471
706
2001
74
13.8


28
27
30
9
6
520
725
2046
75
13.2


38
38
16
1
7
146
603
1759
71
18.6


37
36
18
2
7
194
623
1808
71
18.1


35
35
20
3
7
243
645
1860
72
17.4


34
33
22
4
7
291
664
1908
73
16.8


32
32
24
5
7
340
685
1959
73
16.0


31
30
26
6
7
388
705
2006
74
15.4


29
29
28
7
7
436
726
2056
75
14.6


28
27
30
8
7
485
744
2102
75
13.9


37
36
18
1
8
160
643
1865
72
19.0


35
35
20
2
8
208
660
1905
73
18.3


34
33
22
3
8
256
684
1964
73
17.6


32
32
24
4
8
305
705
2015
74
16.8


31
30
26
5
8
353
724
2062
75
16.1


35
35
20
1
9
173
684
1973
73
19.1


34
33
22
2
9
221
704
2020
74
18.4


32
32
24
3
9
270
725
2071
75
17.6


31
30
26
4
9
318
744
2117
75
16.8


34
33
22
1
10
186
724
2075
74
19.2


32
32
24
2
10
235
745
2126
75
18.3

























TABLE 3B





R-
R-










1225yeE
1234yf
R-32
R-125
CO2
AR4

COP rel
COP rel
COP rel


(wt %)
(wt %)
(wt %)
(wt %)
(wt %)
GWP
COP
to R-22
to 407C
to 404A
























41
41
12
5
1
259
5.074
101%
102%
105%


40
39
14
6
1
308
5.064
101%
102%
105%


38
38
16
7
1
356
5.049
101%
101%
104%


37
36
18
8
1
404
5.033
100%
101%
104%


35
35
20
9
1
453
5.014
100%
101%
104%


34
33
22
10
1
501
4.995
100%
100%
103%


32
32
24
11
1
550
4.973
 99%
100%
103%


31
30
26
12
1
598
4.953
 99%
 99%
102%


29
29
28
13
1
646
4.933
 98%
 99%
102%


28
27
30
14
1
695
4.915
 98%
 99%
102%


43
42
10
3
2
176
5.062
101%
102%
105%


41
41
12
4
2
224
5.055
101%
102%
105%


40
39
14
5
2
273
5.046
101%
101%
104%


38
38
16
6
2
321
5.031
100%
101%
104%


37
36
18
7
2
369
5.015
100%
101%
104%


35
35
20
8
2
418
4.995
100%
100%
103%


34
33
22
9
2
466
4.976
 99%
100%
103%


32
32
24
10
2
515
4.955
 99%
100%
103%


31
30
26
11
2
563
4.935
 98%
 99%
102%


29
29
28
12
2
611
4.915
 98%
 99%
102%


28
27
30
13
2
660
4.898
 98%
 98%
101%


44
44
8
1
3
93
5.048
101%
101%
104%


43
42
10
2
3
141
5.048
101%
101%
104%


41
41
12
3
3
189
5.040
101%
101%
104%


40
39
14
4
3
238
5.030
100%
101%
104%


38
38
16
5
3
286
5.014
100%
101%
104%


37
36
18
6
3
334
4.998
100%
100%
103%


35
35
20
7
3
383
4.978
 99%
100%
103%


34
33
22
8
3
431
4.959
 99%
100%
103%


32
32
24
9
3
480
4.937
 98%
 99%
102%


31
30
26
10
3
528
4.918
 98%
 99%
102%


29
29
28
11
3
576
4.898
 98%
 98%
101%


28
27
30
12
3
625
4.881
 97%
 98%
101%


43
42
10
1
4
106
5.037
100%
101%
104%


41
41
12
2
4
154
5.028
100%
101%
104%


40
39
14
3
4
203
5.017
100%
101%
104%


38
38
16
4
4
251
5.000
100%
100%
103%


37
36
18
5
4
299
4.983
 99%
100%
103%


35
35
20
6
4
348
4.963
 99%
100%
103%


34
33
22
7
4
396
4.943
 99%
 99%
102%


32
32
24
8
4
445
4.922
 98%
 99%
102%


31
30
26
9
4
493
4.903
 98%
 98%
101%


29
29
28
10
4
541
4.883
 97%
 98%
101%


28
27
30
11
4
590
4.866
 97%
 98%
101%


41
41
12
1
5
119
5.019
100%
101%
104%


40
39
14
2
5
168
5.006
100%
101%
104%


38
38
16
3
5
216
4.988
 99%
100%
103%


37
36
18
4
5
264
4.970
 99%
100%
103%


35
35
20
5
5
313
4.949
 99%
 99%
102%


34
33
22
6
5
361
4.929
 98%
 99%
102%


32
32
24
7
5
410
4.907
 98%
 99%
102%


31
30
26
8
5
458
4.888
 97%
 98%
101%


29
29
28
9
5
506
4.868
 97%
 98%
101%


28
27
30
10
5
555
4.851
 97%
 97%
100%


40
39
14
1
6
133
4.997
100%
100%
103%


38
38
16
2
6
181
4.978
 99%
100%
103%


37
36
18
3
6
229
4.959
 99%
100%
103%


35
35
20
4
6
278
4.937
 98%
 99%
102%


34
33
22
5
6
326
4.916
 98%
 99%
102%


32
32
24
6
6
375
4.894
 98%
 98%
101%


31
30
26
7
6
423
4.875
 97%
 98%
101%


29
29
28
8
6
471
4.854
 97%
 98%
100%


28
27
30
9
6
520
4.838
 96%
 97%
100%


38
38
16
1
7
146
4.969
 99%
100%
103%


37
36
18
2
7
194
4.948
 99%
 99%
102%


35
35
20
3
7
243
4.925
 98%
 99%
102%


34
33
22
4
7
291
4.904
 98%
 99%
101%


32
32
24
5
7
340
4.882
 97%
 98%
101%


31
30
26
6
7
388
4.862
 97%
 98%
101%


29
29
28
7
7
436
4.842
 97%
 97%
100%


28
27
30
8
7
485
4.825
 96%
 97%
100%


37
36
18
1
8
160
4.939
 99%
 99%
102%


35
35
20
2
8
208
4.919
 98%
 99%
102%


34
33
22
3
8
256
4.893
 98%
 98%
101%


32
32
24
4
8
305
4.870
 97%
 98%
101%


31
30
26
5
8
353
4.850
 97%
 97%
100%


35
35
20
1
9
173
4.905
 98%
 99%
101%


34
33
22
2
9
221
4.883
 97%
 98%
101%


32
32
24
3
9
270
4.859
 97%
 98%
101%


31
30
26
4
9
318
4.839
 97%
 97%
100%


34
33
22
1
10
186
4.872
 97%
 98%
101%


32
32
24
2
10
235
4.848
 97%
 97%
100%

























TABLE 3C





R-
R-










1225yeE
1234yf
R-32
R-125
CO2
AR4
Cap
Cap rel
Cap rel
Cap rel


(wt %)
(wt %)
(wt %)
(wt %)
(wt %)
GWP
(kJ/m3)
to R-22
to 407C
to 404A
























41
41
12
5
1
259
3249
 82%
 79%
 75%


40
39
14
6
1
308
3385
 85%
 82%
 78%


38
38
16
7
1
356
3524
 89%
 85%
 82%


37
36
18
8
1
404
3649
 92%
 88%
 85%


35
35
20
9
1
453
3779
 95%
 91%
 88%


34
33
22
10
1
501
3896
 98%
 94%
 90%


32
32
24
11
1
550
4020
101%
 97%
 93%


31
30
26
12
1
598
4136
104%
100%
 96%


29
29
28
13
1
646
4252
107%
103%
 99%


28
27
30
14
1
695
4360
110%
105%
101%


43
42
10
3
2
176
3241
 82%
 78%
 75%


41
41
12
4
2
224
3389
 85%
 82%
 79%


40
39
14
5
2
273
3523
 89%
 85%
 82%


38
38
16
6
2
321
3660
 92%
 89%
 85%


37
36
18
7
2
369
3783
 95%
 92%
 88%


35
35
20
8
2
418
3911
 98%
 95%
 91%


34
33
22
9
2
466
4026
101%
 97%
 93%


32
32
24
10
2
515
4149
104%
100%
 96%


31
30
26
11
2
563
4259
107%
103%
 99%


29
29
28
12
2
611
4378
110%
106%
101%


28
27
30
13
2
660
4485
113%
109%
104%


44
44
8
1
3
93
3243
 82%
 78%
 75%


43
42
10
2
3
141
3386
 85%
 82%
 78%


41
41
12
3
3
189
3532
 89%
 85%
 82%


40
39
14
4
3
238
3663
 92%
 89%
 85%


38
38
16
5
3
286
3797
 95%
 92%
 88%


37
36
18
6
3
334
3918
 99%
 95%
 91%


35
35
20
7
3
383
4044
102%
 98%
 94%


34
33
22
8
3
431
4157
105%
101%
 96%


32
32
24
9
3
480
4278
108%
104%
 99%


31
30
26
10
3
528
4387
110%
106%
102%


29
29
28
11
3
576
4505
113%
109%
104%


28
27
30
12
3
625
4611
116%
112%
107%


43
42
10
1
4
106
3533
 89%
 85%
 82%


41
41
12
2
4
154
3675
 92%
 89%
 85%


40
39
14
3
4
203
3804
 96%
 92%
 88%


38
38
16
4
4
251
3935
 99%
 95%
 91%


37
36
18
5
4
299
4053
102%
 98%
 94%


35
35
20
6
4
348
4177
105%
101%
 97%


34
33
22
7
4
396
4289
108%
104%
 99%


32
32
24
8
4
445
4408
111%
107%
102%


31
30
26
9
4
493
4516
114%
109%
105%


29
29
28
10
4
541
4633
117%
112%
107%


28
27
30
11
4
590
4738
119%
115%
110%


41
41
12
1
5
119
3820
 96%
 92%
 89%


40
39
14
2
5
168
3945
 99%
 95%
 91%


38
38
16
3
5
216
4074
102%
 99%
 94%


37
36
18
4
5
264
4190
105%
101%
 97%


35
35
20
5
5
313
4312
108%
104%
100%


34
33
22
6
5
361
4422
111%
107%
102%


32
32
24
7
5
410
4539
114%
110%
105%


31
30
26
8
5
458
4646
117%
112%
108%


29
29
28
9
5
506
4761
120%
115%
110%


28
27
30
10
5
555
4865
122%
118%
113%


40
39
14
1
6
133
4087
103%
 99%
 95%


38
38
16
2
6
181
4212
106%
102%
 98%


37
36
18
3
6
229
4326
109%
105%
100%


35
35
20
4
6
278
4446
112%
108%
103%


34
33
22
5
6
326
4554
115%
110%
106%


32
32
24
6
6
375
4670
117%
113%
108%


31
30
26
7
6
423
4775
120%
116%
111%


29
29
28
8
6
471
4889
123%
118%
113%


28
27
30
9
6
520
4993
126%
121%
116%


38
38
16
1
7
146
4351
109%
105%
101%


37
36
18
2
7
194
4462
112%
108%
103%


35
35
20
3
7
243
4580
115%
111%
106%


34
33
22
4
7
291
4686
118%
113%
109%


32
32
24
5
7
340
4800
121%
116%
111%


31
30
26
6
7
388
4904
123%
119%
114%


29
29
28
7
7
436
5017
126%
121%
116%


28
27
30
8
7
485
5119
129%
124%
119%


37
36
18
1
8
160
4598
116%
111%
107%


35
35
20
2
8
208
4687
118%
113%
109%


34
33
22
3
8
256
4818
121%
117%
112%


32
32
24
4
8
305
4930
124%
119%
114%


31
30
26
5
8
353
5033
127%
122%
117%


35
35
20
1
9
173
4845
122%
117%
112%


34
33
22
2
9
221
4948
124%
120%
115%


32
32
24
3
9
270
5059
127%
122%
117%


31
30
26
4
9
318
5160
130%
125%
120%


34
33
22
1
10
186
5078
128%
123%
118%


32
32
24
2
10
235
5187
130%
126%
120%









The results in Tables 3A, 3B and 3C show that the mixtures analyzed in this example are good alternatives to R-22, R-407C and R-404A with similar cooling capacities and energy efficiencies (COP). Compressor discharge temperatures for the mixtures are also similar to R22, R-407C and R-404A.


Other Embodiments





    • 1. In some embodiments, the present application provides a composition comprising (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, and a compound selected from R-125 and CO2, or a mixture thereof.

    • 2. The composition of embodiment 1, wherein the composition comprises (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, and R-125.

    • 3. The composition of embodiment 1 or 2, wherein the composition comprises about 28 to about 40 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 39 weight percent HFO-1234yf, about 14 to about 30 weight percent R-32, and about 7 to about 15 weight percent R-125.

    • 4. The composition of embodiment 1 or 2, wherein the composition comprises about 28 to about 32 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 32 weight percent HFO-1234yf, about 24 to about 30 weight percent R-32, and about 12 to about 15 weight percent R-125.

    • 5. The composition of embodiment 1 or 2, wherein the composition comprises about 28 to about 35 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 35 weight percent HFO-1234yf, about 20 to about 30 weight percent R-32, and about 10 to about 15 weight percent R-125.

    • 6. The composition of embodiment 1 or 2, wherein the composition comprises about 28 to about 34 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 33 weight percent HFO-1234yf, about 22 to about 30 weight percent R-32, and about 11 to about 15 weight percent R-125.

    • 7. The composition of embodiment 1 or 2, wherein the composition comprises about 28 to about 32 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 32 weight percent HFO-1234yf, about 24 to about 30 weight percent R-32, and about 12 to about 15 weight percent R-125.

    • 8. The composition of any one of embodiments 2-7, wherein the GWP of the composition is less than about 150.

    • 9. The composition of embodiment 1, wherein the composition comprises (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, and CO2.

    • 10. The composition of embodiment 1 or 9, wherein the composition comprises about 35 to about 44 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 35 to about 44 weight percent HFO-1234yf, about 8 to about 20 weight percent R-32, and about 4 to about 10 weight percent CO2.

    • 11. The composition of embodiment 1 or 9, wherein the composition comprises about 40 to about 41 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 39 to about 41 weight percent HFO-1234yf, about 12 to about 14 weight percent R-32, and about 6 to about 7 weight percent CO2.

    • 12. The composition of embodiment 1 or 9, wherein the composition comprises about 40 to about 43 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 39 to about 42 weight percent HFO-1234yf, about 10 to about 14 weight percent R-32, and about 5 to about 7 weight percent CO2.

    • 13. The composition of embodiment 1 or 9, wherein the composition comprises about 38 to about 41 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 38 to about 41 weight percent HFO-1234yf, about 12 to about 16 weight percent R-32, and about 6 to about 8 weight percent CO2.

    • 14. The composition of embodiment 1 or 9, wherein the composition comprises about 37 to about 41 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 36 to about 41 weight percent HFO-1234yf, about 12 to about 18 weight percent R-32, and about 6 to about 9 weight percent CO2.

    • 15. The composition of any one of embodiments 9-14, wherein the GWP of the composition is less than about 150.

    • 16. The composition of embodiment 1, wherein the composition comprises (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, R-125, and CO2.

    • 17. The composition of embodiment 1 or 16, wherein the composition comprises about 28 to about 44 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 44 weight percent HFO-1234yf, about 8 to about 30 weight percent R-32, about 1 to about 14 weight percent R-125, and about 1 to about 10 weight percent CO2.

    • 18. The composition of embodiment 1 or 16, wherein the composition comprises about 28 to about 40 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 39 weight percent HFO-1234yf, about 14 to about 30 weight percent R-32, about 1 to about 14 weight percent R-125, and about 1 to about 7 weight percent CO2.

    • 19. The composition of embodiment 1 or 16, wherein the composition comprises about 38 to about 44 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 38 to about 44 weight percent HFO-1234yf, about 8 to about 16 weight percent R-32, about 1 to about 2 weight percent R-125, and about 3 to about 7 weight percent CO2.

    • 20. The composition of embodiment 1 or 16, wherein the composition comprises about 38 to about 40 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 38 to about 39 weight percent HFO-1234yf, about 14 to about 16 weight percent R-32, about 1 weight percent R-125, and about 6 to about 7 weight percent CO2.

    • 21. The composition of embodiment 1 or 16, wherein the composition comprises about 28 to about 41 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 41 weight percent HFO-1234yf, about 12 to about 30 weight percent R-32, about 1 to about 14 weight percent R-125, and about 1 to about 7 weight percent CO2.

    • 22. The composition of embodiment 1 or 16, wherein the composition comprises about 38 to about 41 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 38 to about 41 weight percent HFO-1234yf, about 12 to about 16 weight percent R-32, about 1 weight percent R-125, and about 5 to about 7 weight percent CO2.

    • 23. The composition of embodiment 1 or 16, wherein the composition comprises about 28 to about 40 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 39 weight percent HFO-1234yf, about 14 to about 30 weight percent R-32, about 1 to about 14 weight percent R-125, and about 1 to about 8 weight percent CO2.

    • 24. The composition of any one of embodiments16-23, wherein the GWP of the composition is less than about 150.

    • 25. A process for producing cooling, comprising condensing the composition of embodiment 1 and thereafter evaporating said composition in the vicinity of a body to be cooled.

    • 26. A process for producing heating, comprising evaporating the composition of embodiment 1 and thereafter condensing said composition in the vicinity of a body to be heated.

    • 27. A method of replacing R-22, R-407C, or R-404A in a refrigeration, air conditioning, or heat pump system, comprising providing the composition of embodiment 1 as replacement for said R-22, R-407C, or R-404A.

    • 28. An air conditioning system, heat pump system, or refrigeration system comprising the composition of embodiment 1.

    • 29. The air conditioning system, heat pump system, or refrigeration system of embodiment 28, wherein the system comprises an evaporator, compressor, condenser, and expansion device.

    • 30. The air conditioning system, heat pump system, or refrigeration system of embodiment 28, wherein said system comprises one or more heat exchangers that operate in counter-current mode or cross-current mode with counter-current tendency.

    • 31. A process for producing cooling, comprising condensing the composition of any one of embodiments 2-8 and thereafter evaporating said composition in the vicinity of a body to be cooled.

    • 32. A process for producing heating, comprising evaporating the composition of any one of embodiments 2-8 and thereafter condensing said composition in the vicinity of a body to be heated.

    • 33. A method of replacing R-22, R-407C, or R-404A in a refrigeration, air conditioning, or heat pump system, comprising providing the composition of any one of embodiments 2-8 as replacement for said R-22, R-407C, or R-404A.

    • 34. An air conditioning system, heat pump system, or refrigeration system comprising the composition of any one of embodiments 2-8.

    • 35. The air conditioning system, heat pump system, or refrigeration system of embodiment 34, wherein the system comprises an evaporator, compressor, condenser, and expansion device.

    • 36. The air conditioning system, heat pump system, or refrigeration system of embodiment 34, wherein said system comprises one or more heat exchangers that operate in counter-current mode or cross-current mode with counter-current tendency.

    • 37. A process for producing cooling, comprising condensing the composition of any one of embodiments 9-15 and thereafter evaporating said composition in the vicinity of a body to be cooled.

    • 38. A process for producing heating, comprising evaporating the composition of any one of embodiments 9-15 and thereafter condensing said composition in the vicinity of a body to be heated.

    • 39. A method of replacing R-22, R-407C, or R-404A in a refrigeration, air conditioning, or heat pump system, comprising providing the composition of any one of embodiments 9-15 as replacement for said R-22, R-407C, or R-404A.

    • 40. An air conditioning system, heat pump system, or refrigeration system comprising the composition of any one of embodiments 9-15.

    • 41. The air conditioning system, heat pump system, or refrigeration system of embodiment 40, wherein the system comprises an evaporator, compressor, condenser, and expansion device.

    • 42. The air conditioning system, heat pump system, or refrigeration system of embodiment 40, wherein said system comprises one or more heat exchangers that operate in counter-current mode or cross-current mode with counter-current tendency.

    • 43. A process for producing cooling, comprising condensing the composition of any one of embodiments 16-24 and thereafter evaporating said composition in the vicinity of a body to be cooled.

    • 44. A process for producing heating, comprising evaporating the composition of any one of embodiments 16-24 and thereafter condensing said composition in the vicinity of a body to be heated.

    • 45. A method of replacing R-22, R-407C, or R-404A in a refrigeration, air conditioning, or heat pump system, comprising providing the composition of any one of embodiments 16-24 as replacement for said R-22, R-407C, or R-404A.

    • 46. An air conditioning system, heat pump system, or refrigeration system comprising the composition of any one of embodiments 16-24.

    • 47. The air conditioning system, heat pump system, or refrigeration system of embodiment 46, wherein the system comprises an evaporator, compressor, condenser, and expansion device.

    • 48. The air conditioning system, heat pump system, or refrigeration system of embodiment 46, wherein said system comprises one or more heat exchangers that operate in counter-current mode or cross-current mode with counter-current tendency.

    • 49. In some embodiments, the present application provides a method of replacing R-22, R-407C, or R-404A in a refrigeration, air conditioning, or heat pump system, the method comprising providing a composition as replacement for said R-22, R-407C, or R-404A, wherein the composition comprises (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, and a compound selected from R-125 and CO2, or a mixture thereof.

    • 50. The method of embodiment 49, wherein the composition comprises (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, and R-125.

    • 51. The method of embodiment 49 or 50, wherein the composition comprises about 28 to about 40 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 39 weight percent HFO-1234yf, about 14 to about 30 weight percent R-32, and about 7 to about 15 weight percent R-125.

    • 52. The method of embodiment 49 or 50, wherein the composition comprises about 28 to about 32 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 32 weight percent HFO-1234yf, about 24 to about 30 weight percent R-32, and about 12 to about 15 weight percent R-125.

    • 53. The method of embodiment 49, wherein the composition comprises (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, and CO2.

    • 54. The method of any one of embodiments 49-53, wherein the GWP of the composition is less than about 150.

    • 55. The method of any one of embodiments 49, 53, and 54, wherein the composition comprises about 35 to about 44 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 35 to about 44 weight percent HFO-1234yf, about 8 to about 20 weight percent R-32, and about 4 to about 10 weight percent CO2.

    • 56. The method of any one of embodiments 49, 53, and 54, wherein the composition comprises about 40 to about 41 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 39 to about 41 weight percent HFO-1234yf, about 12 to about 14 weight percent R-32, and about 6 to about 7 weight percent CO2.

    • 57. The method of embodiment 49, wherein the composition comprises (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, R-125, and CO2.

    • 58. The method of embodiment 49 or 57, wherein the composition comprises about 28 to about 44 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 44 weight percent HFO-1234yf, about 8 to about 30 weight percent R-32, about 1 to about 14 weight percent R-125, and about 1 to about 10 weight percent CO2.

    • 59. The method of embodiment 49 or 57, wherein the composition comprises about 28 to about 40 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 39 weight percent HFO-1234yf, about 14 to about 30 weight percent R-32, about 1 to about 14 weight percent R-125, and about 1 to about 7 weight percent CO2.

    • 60. The method of any one of embodiments 55-59, wherein the GWP of the composition is less than about 150.

    • 61. The method of any one of embodiments 49 and 57-60, wherein the composition comprises about 38 to about 44 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 38 to about 44 weight percent HFO-1234yf, about 8 to about 16 weight percent R-32, about 1 to about 2 weight percent R-125, and about 3 to about 7 weight percent CO2.

    • 62. The method of any one of embodiments 49 and 57-60, wherein the composition comprises about 38 to about 40 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 38 to about 39 weight percent HFO-1234yf, about 14 to about 16 weight percent R-32, about 1 weight percent R-125, and about 6 to about 7 weight percent CO2.

    • 63. The method of embodiment 49, wherein the method is a method of replacing R-22 in a refrigeration, air conditioning, or heat pump system.

    • 64. The method of embodiment 49 or 63, wherein the composition comprises (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, and R-125.

    • 65. The method of any one of embodiments 49, 63, and 64, wherein the composition comprises about 28 to about 35 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 35 weight percent HFO-1234yf, about 20 to about 30 weight percent R-32, and about 10 to about 15 weight percent R-125.

    • 66. The method of embodiment 49 or 63, wherein the composition comprises (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, and CO2.

    • 67. The method of any one of embodiments 61-66, wherein the composition has a GWP of less than about 150.

    • 68. The method of any one of embodiments 49, 63, 66, and 67, wherein the composition comprises about 40 to about 43 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 39 to about 42 weight percent HFO-1234yf, about 10 to about 14 weight percent R-32, and about 5 to about 7 weight percent CO2.

    • 69. The method of embodiment 49 or 63, wherein the composition comprises (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, R-125, and CO2.

    • 70. The method of any one of embodiments 49, 63, and 69, wherein the composition comprises about 28 to about 41 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 41 weight percent HFO-1234yf, about 12 to about 30 weight percent R-32, about 1 to about 14 weight percent R-125, and about 1 to about 7 weight percent CO2.

    • 71. The method of any one of embodiments 49, 63, and 69, wherein the composition has a GWP of less than about 150.

    • 72. The method of any one of embodiments 49, 63, 69, and 71, wherein the composition comprises about 38 to about 41 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 38 to about 41 weight percent HFO-1234yf, about 12 to about 16 weight percent R-32, about 1 weight percent R-125, and about 5 to about 7 weight percent CO2.

    • 73. The method of embodiment 49, wherein the method is a method of replacing R-407C in a refrigeration, air conditioning, or heat pump system.

    • 74. The method of embodiment 49 or 73, wherein the composition comprises (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, and R-125.

    • 75. The method of any one of embodiments 49, 73, and 74, wherein the composition comprises about 28 to about 34 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 33 weight percent HFO-1234yf, about 22 to about 30 weight percent R-32, and about 11 to about 15 weight percent R-125.

    • 76. The method of embodiment 49 or 73, wherein the composition comprises (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, and CO2.

    • 77. The method of any one of embodiments 49, 73, and 76, wherein the composition has a GWP of less than about 150.

    • 78. The method of any one of embodiments 49, 73, 76, and 77, wherein the composition comprises about 38 to about 41 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 38 to about 41 weight percent HFO-1234yf, about 12 to about 16 weight percent R-32, and about 6 to about 8 weight percent CO2.

    • 79. The method of embodiment 49 or 73, wherein the composition comprises (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, R-125, and CO2.

    • 80. The method of any one of embodiments 49, 73, and 79, wherein the composition comprises about 28 to about 41 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 41 weight percent HFO-1234yf, about 12 to about 30 weight percent R-32, about 1 to about 14 weight percent R-125, and about 1 to about 7 weight percent CO2.

    • 81. The method of any one of embodiments 49, 73, 79, and 80, wherein the composition has a GWP of less than about 150.

    • 82. The method of any one of embodiments 49, 73, and 79-81, wherein the composition comprises about 38 to about 41 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 38 to about 41 weight percent HFO-1234yf, about 12 to about 16 weight percent R-32, about 1 weight percent R-125, and about 5 to about 7 weight percent CO2.

    • 83. The method of embodiment 49, wherein the method is a method of replacing R-404A in a refrigeration, air conditioning, or heat pump system.

    • 84. The method of embodiment 49 or 83, wherein the composition comprises (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, and R-125.

    • 85. The method of any one of embodiments 49, 83, and 84, wherein the composition comprises about 28 to about 32 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 32 weight percent HFO-1234yf, about 24 to about 30 weight percent R-32, and about 12 to about 15 weight percent R-125.

    • 86. The method of embodiment 49 or 83, wherein the composition comprises (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, and CO2.

    • 87. The method of any one of embodiment 49, 83, and 86, wherein the composition has a GWP of less than about 150.

    • 88. The method of any one of embodiments 49, 83, 86, and 87, wherein the composition comprises about 37 to about 41 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 36 to about 41 weight percent HFO-1234yf, about 12 to about 18 weight percent R-32, and about 6 to about 9 weight percent CO2.

    • 89. The method of embodiment 49 or 83, wherein the composition comprises (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, R-125, and CO2.

    • 90. The method of any one of embodiments 49, 83, and 89, wherein the composition comprises about 28 to about 40 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 39 weight percent HFO-1234yf, about 14 to about 30 weight percent R-32, about 1 to about 14 weight percent R-125, and about 1 to about 8 weight percent CO2.

    • 91. The method of any one of embodiments 49, 83, 86, and 87, wherein the composition has a GWP of less than about 150.

    • 92. The method of any one of embodiments 49, 83, 86, 87, and 91, wherein the composition comprises about 38 to about 40 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 38 to about 39 weight percent HFO-1234yf, about 14 to about 16 weight percent R-32, about 1 weight percent R-125, and about 6 to about 7 weight percent CO2.





It is to be understood that while the invention has been described in conjunction with the detailed description thereof, the foregoing description is intended to illustrate and not limit the scope of the invention, which is defined by the scope of the appended claims. Other aspects, advantages, and modifications are within the scope of the following claims. It should be appreciated by those persons having ordinary skill in the art(s) to which the present invention relates that any of the features described herein in respect of any particular aspect and/or embodiment of the present invention can be combined with one or more of any of the other features of any other aspects and/or embodiments of the present invention described herein, with modifications as appropriate to ensure compatibility of the combinations. Such combinations are considered to be part of the present invention contemplated by this disclosure.

Claims
  • 1. A composition comprising (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R 32, and a compound selected from R-125 and CO2, or a mixture thereof.
  • 2. The composition of claim 1, wherein the composition comprises (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, and R-125.
  • 3. The composition of claim 2, wherein the composition comprises about 28 to about 40 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 39 weight percent HFO-1234yf, about 14 to about 30 weight percent R-32, and about 7 to about 15 weight percent R-125.
  • 4-7. (canceled)
  • 8. The composition of claim 1, wherein the composition comprises (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, and CO2.
  • 9. The composition of claim 8, wherein the composition comprises about 35 to about 44 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 35 to about 44 weight percent HFO-1234yf, about 8 to about 20 weight percent R-32, and about 4 to about 10 weight percent CO2.
  • 10-13. (canceled)
  • 14. The composition of claim 1, wherein the composition comprises (E)-1,2,3,3,3-pentafluoro-1-propene, HFO-1234yf, R-32, R-125, and CO2.
  • 15. The composition of claim 14, wherein the composition comprises about 28 to about 44 weight percent (E)-1,2,3,3,3-pentafluoro-1-propene, about 27 to about 44 weight percent HFO-1234yf, about 8 to about 30 weight percent R-32, about 1 to about 14 weight percent R-125, and about 1 to about 10 weight percent CO2.
  • 16-21. (canceled)
  • 22. A process for producing cooling, comprising condensing the composition of claim 1 and thereafter evaporating said composition in the vicinity of a body to be cooled.
  • 23. A process for producing heating, comprising evaporating the composition of claim 1 and thereafter condensing said composition in the vicinity of a body to be heated.
  • 24. A method of replacing R-22, R-407C, or R-404A in a refrigeration, air conditioning, or heat pump system, comprising providing the composition of claim 1 as replacement for said R-22, R-407C, or R-404A.
  • 25. An air conditioning system, heat pump system, or refrigeration system comprising the composition of claim 1.
  • 26. (canceled)
  • 27. A process for producing cooling, comprising condensing the composition of claim 2 and thereafter evaporating said composition in the vicinity of a body to be cooled.
  • 28. A process for producing heating, comprising evaporating the composition of claim 2 and thereafter condensing said composition in the vicinity of a body to be heated.
  • 29. A method of replacing R-22, R-407C, or R-404A in a refrigeration, air conditioning, or heat pump system, comprising providing the composition of claim 2 as replacement for said R-22, R-407C, or R-404A.
  • 30. An air conditioning system, heat pump system, or refrigeration system comprising the composition of claim 2.
  • 31. (canceled)
  • 32. A process for producing cooling, comprising condensing the composition of claim 8 and thereafter evaporating said composition in the vicinity of a body to be cooled.
  • 33. A process for producing heating, comprising evaporating the composition of claim 8 and thereafter condensing said composition in the vicinity of a body to be heated.
  • 34. A method of replacing R-22, R-407C, or R-404A in a refrigeration, air conditioning, or heat pump system, comprising providing the composition of claim 8 as replacement for said R-22, R-407C, or R-404A.
  • 35. An air conditioning system, heat pump system, or refrigeration system comprising the composition of claim 8.
  • 36. (canceled)
  • 37. A process for producing cooling, comprising condensing the composition of claim 14 and thereafter evaporating said composition in the vicinity of a body to be cooled.
  • 38. A process for producing heating, comprising evaporating the composition of claim 14 and thereafter condensing said composition in the vicinity of a body to be heated.
  • 39. A method of replacing R-22, R-407C, or R-404A in a refrigeration, air conditioning, or heat pump system, comprising providing the composition of claim 14 as replacement for said R-22, R-407C, or R-404A.
  • 40. An air conditioning system, heat pump system, or refrigeration system comprising the composition of claim 14.
  • 41. (canceled)
PCT Information
Filing Document Filing Date Country Kind
PCT/US2020/020737 3/3/2020 WO 00
Provisional Applications (1)
Number Date Country
62813270 Mar 2019 US