Binary refrigerating fluid

Information

  • Patent Grant
  • 10858562
  • Patent Number
    10,858,562
  • Date Filed
    Thursday, September 27, 2018
    6 years ago
  • Date Issued
    Tuesday, December 8, 2020
    4 years ago
Abstract
Binary compositions of 2,3,3,3-tetrafluoropropene and difluoromethane, and especially to the uses thereof as a heat transfer fluid in compression systems with exchangers operating in counterflow mode or in split flow mode with counterflow tendency. Also, a method of heat transfer in which a binary composition of 2,3,3,3-tetrafluoropropene and difluoromethane is used as refrigerant in compression systems with exchangers in countercurrent mode or in crossed-current mode with countercurrent tendency.
Description
TECHNICAL FIELD

The present invention relates to binary compositions of 2,3,3,3-tetrafluoropropene and difluoromethane and their uses as heat transfer fluids.


BACKGROUND

The problems posed by substances with ozone depletion potential (ODP) were discussed in Montreal, where the protocol was signed requiring a reduction of the production and use of chlorofluorocarbons (CFCs). Amendments have been made to this protocol, requiring abandonment of CFCs and extending the regulations to cover other products, including hydrochlorofluorocarbons (HCFCs).


The refrigeration and air conditioning industry has made a considerable investment in substitution of these refrigerants, and accordingly hydrofluorocarbons (HFCs) were put on the market.


In the automobile industry, the systems for air conditioning of vehicles marketed in many countries have changed over from a chlorofluorocarbon refrigerant (CFC-12) to a hydrofluorocarbon refrigerant (1,1,1,2-tetrafluoroethane: HFC-134a), which is less harmful to the ozone layer. However, with respect to the objectives established by the Kyoto protocol, HFC-134a (GWP=1300) is considered to have a high warming power. A fluid's contribution to the greenhouse effect is quantified by a criterion, GWP (Global Warming Potential), which summarizes the warming power by taking a reference value of 1 for carbon dioxide.


As carbon dioxide is nontoxic, nonflammable and has a very low GWP, it has been proposed as a refrigerant for air conditioning systems in place of HFC-134a. However, the use of carbon dioxide has several drawbacks, notably connected with the very high pressure for its application as refrigerant in existing equipment and technologies.


Moreover, the mixture R-404A consisting of 44 wt. % of pentafluoroethane, 52 wt. % of trifluoroethane and 4 wt. % of HFC-134a is widely used as refrigerant for large areas (supermarkets) and in refrigerated transport. However, this mixture has a GWP of 3900.


Document JP 4110388 describes the use of hydrofluoropropenes of formula C3HmFn, with m, n representing an integer between 1 and 5 inclusive and m+n=6, as heat transfer fluids, in particular tetrafluoropropene and trifluoropropene.


Document WO2004/037913 discloses the use of compositions comprising at least one fluoroalkene having three or four carbon atoms, notably pentafluoropropene and tetrafluoropropene, preferably having a GWP of at most 150, as heat transfer fluids.


Document WO 2006/094303 discloses an azeotropic composition containing 7.4 wt. % of 2,3,3,3-tetrafluoropropene (HFO-1234yf) and 92.6 wt. % of difluoromethane (HFC-32). This document also discloses quasi-azeotropic compositions containing from 1 to 57 wt. % of 2,3,3,3-tetrafluoropropene and from 43 to 99 wt. % of difluoromethane.


A heat exchanger is a device for transferring thermal energy from one fluid to another, without mixing them. The thermal flux passes through the exchange surface that separates the fluids. Mostly this method is used for cooling or heating a liquid or a gas that cannot be cooled or heated directly.


In compression systems, heat exchange between the refrigerant and the heat sources takes place via heat-transfer fluids. These heat-transfer fluids are in the gaseous state (the air in air conditioning and direct-expansion refrigeration), liquid (water in domestic heat pumps, glycol solution) or two-phase.


There are various transfer modes:

    • the two fluids are arranged in parallel and go in the same sense: co-current mode (antimethodical);
    • the two fluids are arranged in parallel but go in the opposite sense: countercurrent mode (methodical);
    • the two fluids are positioned perpendicularly: crossed-current mode. The crossed current can have co-current or countercurrent tendency;
    • one of the two fluids makes a U-turn in a wider pipeline, which the second fluid passes through. This configuration is comparable to a co-current exchanger on half its length, and to a countercurrent exchanger for the other half: pin-head mode.


The applicant has now discovered that binary compositions of 2,3,3,3-tetrafluoropropene and difluoromethane are particularly advantageous as heat transfer fluid in compression-type refrigeration systems with exchangers operating in countercurrent mode or in crossed-current mode with countercurrent tendency.


Thus, these compositions can be used as heat transfer fluid in heat pumps, optionally reversible, up to a heating temperature of 95° C., in air conditioning, industrial air conditioning (paper, rooms for servers), in mobile domestic air conditioning, in domestic refrigeration and freezing, employing compression systems with exchangers in countercurrent mode or in crossed-current mode with countercurrent tendency.


SUMMARY

The use of a binary composition of 2,3,3,3-tetrafluoropropene and difluoromethane as heat transfer fluid in compression-type refrigeration systems with exchangers in countercurrent mode or in crossed-current mode with countercurrent tendency.


The use characterized in that the composition contains essentially from 70 to 90 wt. % of 2,3,3,3-tetrafluoropropene and from 10 to 30 wt. % of difluoromethane.


The characterized in that the composition contains essentially from 78 to 84 wt. % of 2,3,3,3-tetrafluoropropene and from 16 to 22 wt. % of difluoromethane.


The use characterized in that the composition contains essentially from 81 to 83 wt. % of 2,3,3,3-tetrafluoropropene and from 17 to 19 wt. % of difluoromethane.


The use characterized in that the binary composition is employed as heat transfer fluid for air conditioning and heat pumps.


A method of heat transfer in which a binary composition of 2,3,3,3-tetrafluoropropene and difluoromethane is used as refrigerant in compression systems with exchangers in countercurrent mode or in crossed-current mode with countercurrent tendency.


The method characterized in that the composition contains essentially from 70 to 90 wt. % of 2,3,3,3-tetrafluoropropene and from 10 to 30 wt. % of difluoromethane.


The method characterized in that the composition contains essentially from 78 to 84 wt. % of 2,3,3,3-tetrafluoropropene and from 16 to 22 wt. % of difluoromethane.


The method characterized in that the binary composition is stabilized.


The method characterized in that it is implemented in the presence of a lubricant.


A composition, characterized in that it contains essentially from 78 to 84 wt. % of 2,3,3,3-tetrafluoropropene and from 16 to 20 wt. % of difluoromethane.


The composition characterized in that it contains essentially from 81 to 83 wt. % of 2,3,3,3-tetrafluoropropene and from 17 to 19 wt. % of difluoromethane.


The composition characterized in that it comprises a stabilizer.


The composition characterized in that it comprises a lubricant.







DETAILED DESCRIPTION

A first object of the present invention relates to the use of binary compositions of 2,3,3,3-tetrafluoropropene and difluoromethane as heat transfer fluid in compression-type refrigeration systems with exchangers in countercurrent mode or in crossed-current mode with countercurrent tendency.


Preferably, binary compositions of 2,3,3,3-tetrafluoropropene and difluoromethane are used as heat transfer fluid for air conditioning and heat pumps, with exchangers in countercurrent mode or in crossed-current mode with countercurrent tendency.


The binary compositions of 2,3,3,3-tetrafluoropropene and difluoromethane are preferably zeotropic and contain essentially from 70 to 90 wt. % of 2,3,3,3-tetrafluoropropene and from 10 to 30 wt. % of difluoromethane.


Preferably, the zeotropic compositions contain essentially from 78 to 84 wt. % of 2,3,3,3-tetrafluoropropene and from 16 to 22 wt. % of difluoromethane.


The advantageously preferred zeotropic compositions contain essentially from 81 to 83 wt. % of 2,3,3,3-tetrafluoropropene and from 17 to 19 wt. % of difluoromethane.


The binary compositions used in the present invention have both a zero ODP and a low GWP. Their high critical temperature (>90° C.) means that they can be used in extreme conditions, namely very high ambient temperatures or for producing heat at high temperature (in heat pumps). The coefficient of performance (COP: the ratio of the thermal power to the electricity consumption of a heat pump or of an air conditioner) of these binary compositions, in exchangers in countercurrent mode, is higher than that of existing refrigerant compositions. Taking into account the pressure level at the condenser and the compression ratios, it is not necessary to develop new compressors; the compressors currently on the market may be suitable.


The binary compositions used in the present invention can replace R-404A and R-407C (ternary mixture containing 52 wt. % of HFC-134a, 25 wt. % of pentafluoroethane and 23 wt. % of difluoromethane) in compression-type heat-transfer systems with exchangers operating in countercurrent mode or in crossed-current mode with countercurrent tendency.


Moreover, binary zeotropic compositions can be used in compression systems equipped with a device for varying the composition by controlled distillation. Such a device makes it possible to improve efficiency and reduce losses during compressor starting and stopping.


The binary compositions used according to the present invention can be stabilized. The amount of stabilizer preferably represents at most 5 wt. % relative to the binary composition.


As stabilizers, we may notably mention nitromethane, ascorbic acid, terephthalic acid, azoles such as tolutriazole or benzotriazole, phenolic compounds such as tocopherol, hydroquinone, t-butyl hydroquinone, 2,6-di-tert-butyl-4-methylphenol, epoxides (alkyl optionally fluorinated or perfluorinated or alkenyl or aromatic) such as n-butyl glycidyl ether, hexanediol diglycidyl ether, allyl glycidyl ether, butylphenylglycidyl ether, phosphites, phosphates, phosphonates, thiols and lactones.


A second object of the present invention relates to a method of heat transfer in which binary compositions of 2,3,3,3-tetrafluoropropene and difluoromethane, as defined above, are used as refrigerant in compression systems using exchangers in countercurrent mode or in crossed-current mode with countercurrent tendency. The method according to the present invention can be employed in the presence of lubricants such as mineral oil, alkylbenzene, polyalkylene glycol, polyol ester and polyvinyl ether.


A third object of the present invention relates to a binary composition containing essentially 78 to 84 wt. % of 2,3,3,3-tetrafluoropropene and from 16 to 22 wt. % of difluoromethane.


The binary composition preferred according to the third object contains essentially from 81 to 83 wt. % of 2,3,3,3-tetrafluoropropene and from 17 to 19 wt. % of difluoromethane.


The binary compositions, according to the third object of the present invention, can be stabilized. The amount of stabilizer preferably represents at most 5 wt. % relative to the binary composition.


The stabilizer can be selected from those mentioned above.


The composition according to the third object can be used as heat transfer fluid.


A fourth object according to the present invention relates to a composition comprising the binary composition according to the third object, optionally stabilized, and at least one lubricant. The lubricant can be selected from mineral oil, alkylbenzene, polyalkylene glycol, polyol ester and polyvinyl ether.


EXPERIMENTAL SECTION

Tools for Calculation


The RK-Soave equation is used for calculating the densities, enthalpies, entropies and the data on liquid-vapor equilibrium of the mixtures. To use this equation it is necessary to know the properties of the pure substances used in the mixtures in question as well as the coefficients of interaction for each binary mixture.


The data required for each pure substance are:


Boiling point, critical temperature and pressure, curve of pressure as a function of temperature from the boiling point to the critical point, the saturated liquid density and saturated vapor density as a function of temperature.


HFC-32:


The data for HFC-32 are published in ASHRAE Handbook 2005 chapter 20 and are also available using Refrop (software developed by NIST for calculating the properties of refrigerants)


HFO-1234yf:


The data of the temperature-pressure curve of HFO-1234yf are measured by the static method. The critical temperature and pressure are measured with a C80 calorimeter marketed by Setaram. The densities, at saturation as a function of temperature, are measured by the vibrating tube densimeter technology developed by the laboratories of the Ecole de Mines (“Mining Engineering College”) in Paris.


Coefficient of Binary Interaction of HFC-32/HFO-1234yf:


The RK-Soave equation uses coefficients of binary interaction for representing the behavior of the products in mixtures. The coefficients are calculated as a function of experimental data for liquid-vapor equilibrium.


The technique used for the measurements of liquid-vapor equilibrium is the static analytical cell method. The equilibrium cell comprises a sapphire tube and is equipped with two ROLSITM electromagnetic samplers. It is immersed in a cryothermostat bath (HUBER HS40). Magnetic stirring driven by a field rotating at variable speed is used for accelerating attainment of the equilibria. The samples are analyzed by gas chromatography (HP5890 series II) using a catharometer (TCD).


The measurements of liquid-vapor equilibrium on the HFC-32/HFO-1234yf binary mixture are performed for the following isotherms: −10° C., 30° C. and 70° C.


Compression System


Consider a compression system equipped with an evaporator and countercurrent condenser, a screw compressor and a pressure reducing valve.


The system operates with 15° C. of superheating and 5° C. of supercooling. The minimum temperature difference between the secondary fluid and the refrigerant is considered to be of the order of 5° C.


The isentropic efficiency of the compressors is a function of the compression ratio. This efficiency is calculated from the following equation:










η
isen

=

a
-


b


(

τ
-
c

)


2

-

d

τ
-
e







(
1
)







For a screw compressor, the constants a, b, c, d and e in equation (1) of isentropic efficiency are calculated on the basis of the standard data published in the Handbook


“Handbook of air conditioning and refrigeration”, page 11.52.


The coefficient of performance (COP) is defined as the ratio of the useful power delivered by the system to the power supplied to or consumed by the system.


The Lorenz coefficient of performance (COPLorenz) is a reference coefficient of performance. It is a function of temperature and is used for comparing the COPs of different fluids.


The Lorenz coefficient of performance is defined as follows:


(The Temperatures T are in K)

Tmeancondenser=Tinletcondenser−Toutletcondenser  (2)
Tmeanevaporator=Toutletevaporator−Tinletevaporator  (3)


The Lorenz COP in the case of air conditioning and refrigeration is:









COPlorenz
=


T
mean
evaporator



T
mean
condenser

-

T
mean
evaporator







(
4
)







The Lorenz COP in the case of heating is:









COPlorenz
=


T
mean
condenser



T
mean
condenser

-

T
mean
evaporator







(
5
)







For each composition, the coefficient of performance of the Lorenz cycle is calculated as a function of the corresponding temperatures.


% COP/COPLorenz is the ratio of the COP of the system relative to the COP of the corresponding Lorenz cycle.


Results, Heating Mode


In heating mode, the compression system operates between a refrigerant inlet temperature at the evaporator of −5° C. and a refrigerant inlet temperature at the condenser of 50° C. The system delivers heat at 45° C.


The performance of the compositions according to the invention in heat pump operating conditions are given in Table 1. The values of the constituents (HFO-1234yf, HFC-32) for each composition are given as percentage by weight.



















TABLE 1







Temp outlet
Temp outlet
T outlet
evap P
cond P
Ratio

efficiency
% COP/



evap (° C.)
comp (° C.)
cond (° C.)
(bar)
(bar)
(w/w)
Shift
comp
COPLorenz

























R404A
−5
77
50
5.2
23.0
4.4
0.38
79.7
57.7




















HFO-1234yf
HFC-32














85
15
0
76
43
4.0
16.5
4.1
4.84
80.6
64.7


84
16
0
77
43
4.1
16.7
4.1
5.01
80.7
64.7


83
17
0
77
43
4.2
17.0
4.1
5.16
80.7
64.7


82
18
0
78
43
4.2
17.2
4.1
5.29
80.8
64.7


81
19
0
78
43
4.3
17.5
4.1
5.39
80.8
64.7


80
20
0
79
43
4.4
17.7
4.0
5.48
80.8
64.7


79
21
1
80
43
4.5
18.0
4.0
5.54
80.9
64.7


78
22
1
80
43
4.5
18.2
4.0
5.59
80.9
64.7










Results, Cooling Mode


In cooling mode, the compression system operates between a refrigerant inlet temperature at the evaporator of −5° C. and a refrigerant inlet temperature at the condenser of 50° C. The system delivers cold at 0° C.


The performance of the compositions according to the invention in the operating conditions of cooling are given in Table 2. The values of the constituents (HFO-1234yf, HFC-32) for each composition are given as percentage by weight.



















TABLE 2







Temp outlet
Temp outlet
T outlet
evap P
cond P
Ratio

efficiency
% COP/



evap (° C.)
comp (° C.)
cond (° C.)
(bar)
(bar)
(w/w)
Shift
comp
COPLorenz

























R404A
−5
77
50
5.2
23.0
4.4
0.38
79.7
47.9




















HFO-1234yf
HFC-32














88
12
−1
75
44
3.7
15.7
4.2
4.20
80.3
55.9


87
13
−1
75
43
3.8
16.0
4.2
4.44
80.4
56.0


86
14
0
76
43
3.9
16.2
4.2
4.65
80.5
56.2


85
15
0
76
43
4.0
16.5
4.1
4.84
80.6
56.3


84
16
0
77
43
4.1
16.7
4.1
5.01
80.7
56.4


83
17
0
77
43
4.2
17.0
4.1
5.16
80.7
56.4


82
18
0
78
43
4.2
17.2
4.1
5.29
80.8
56.5


81
19
0
78
43
4.3
17.5
4.1
5.39
80.8
56.5


80
20
0
79
43
4.4
17.7
4.0
5.48
80.8
56.5


79
21
1
80
43
4.5
18.0
4.0
5.54
80.9
56.6


78
22
1
80
43
4.5
18.2
4.0
5.59
80.9
56.6








Claims
  • 1. A method of replacing a first heat transfer fluid comprising R-404A with a second heat transfer fluid comprising a refrigerant consisting essentially of from 70 to 90 wt. % 2,3,3,3-tetrafluoropropene and from 10 to 30 wt. % of difluoromethane, wherein said replacing is in a compression-type refrigeration system with an exchanger operating in countercurrent mode or in crossed-current mode with countercurrent tendency.
  • 2. The method as claimed in claim 1, wherein the refrigerant consists essentially of from 81 to 83 wt. % of 2,3,3,3-tetrafluoropropene and from 17 to 19 wt. % of difluoromethane.
  • 3. The method as claimed in claim 1, wherein the refrigerant consists essentially of from 78 to 84 wt. % of 2,3,3,3-tetrafluoropropene and from 16 to 22 wt. % of difluoromethane.
  • 4. The method as claimed in claim 1, wherein the refrigerant consists of from 70 to 90 wt. % of 2,3,3,3-tetrafluoropropene and from 10 to 30 wt. % of difluoromethane.
  • 5. The method as claimed in claim 1, wherein the refrigerant consists of from 81 to 83 wt. % of 2,3,3,3-tetrafluoropropene and from 17 to 19 wt. % of difluoromethane.
  • 6. The method as claimed in claim 1, wherein the refrigerant consists of from 78 to 84 wt. % of 2,3,3,3-tetrafluoropropene and from 16 to 22 wt. % of difluoromethane.
  • 7. The method as claimed in claim 1, wherein the second heat transfer fluid further comprises a stabilizer.
  • 8. The method as claimed in claim 1, wherein the second heat transfer fluid further comprises a lubricant.
  • 9. The method as claimed in claim 8, wherein the lubricant is mineral oil.
  • 10. The method as claimed in claim 8, wherein the lubricant is alkylbenzene.
  • 11. The method as claimed in claim 8, wherein the lubricant is polyalkylene glycol.
  • 12. The method as claimed in claim 8, wherein the lubricant is polyol ester.
  • 13. The method as claimed in claim 8, wherein the lubricant is polyvinyl ether.
  • 14. The method as claimed in claim 1, wherein said replacing is in a compression-type refrigeration system with an exchanger operating in countercurrent mode.
  • 15. The method as claimed in claim 1, wherein said replacing is in compression-type refrigeration systems with an exchanger operating in crossed-current mode with countercurrent tendency.
Priority Claims (1)
Number Date Country Kind
09 56240 Sep 2009 FR national
CROSS REFERENCE TO RELATED APPLICATIONS

The present application is a continuation of U.S. application Ser. No. 15/856,703, filed on Dec. 28, 2017, which is a continuation of U.S. application Ser. No. 14/830,130, filed on Aug. 19, 2015, which is a continuation of U.S. application Ser. No. 13/391,400, filed on Feb. 29, 2012, now U.S. Pat. No. 9,133,379, which is a U.S. National Stage of International Application No. PCT/FR2010/051724, filed on Aug. 17, 2020, which claims the benefit of French Application No. 09.56240, filed on Sep. 11, 2009. The entire contents of each of U.S. application Ser. No. 15/856,703, U.S. application Ser. No. 14/830,130, U.S. application Ser. No. 13/391,400, International Application No. PCT/FR2010/051724, and French Application No. 09.56240 are hereby incorporated herein by reference in their entirety.

US Referenced Citations (141)
Number Name Date Kind
6176102 Novak et al. Jan 2001 B1
6503417 Bivens Jan 2003 B1
8070977 Rached Dec 2011 B2
8075798 Rached Dec 2011 B2
8246850 Rached Aug 2012 B2
8252198 Rached Aug 2012 B2
8557135 Rached Oct 2013 B2
8808569 Rached Aug 2014 B2
8858824 Boussand Oct 2014 B2
8858825 Guerin et al. Oct 2014 B2
8992793 Sato Mar 2015 B2
9011711 Rached Apr 2015 B2
9028706 Rached et al. May 2015 B2
9039922 Rached May 2015 B2
9046348 Abbas Jun 2015 B2
9057010 Rached Jun 2015 B2
9127191 Rached Sep 2015 B2
9133379 Rached Sep 2015 B2
9175203 Rached Nov 2015 B2
9267064 Rached Feb 2016 B2
9315708 Guerin et al. Apr 2016 B2
9359540 Rached Jun 2016 B2
9399726 Rached Jul 2016 B2
9505968 Rached Nov 2016 B2
9512343 Rached et al. Dec 2016 B2
9599381 Rached Mar 2017 B2
9650551 Collier et al. May 2017 B2
9650553 Deur-Bert et al. May 2017 B2
9663697 Rached May 2017 B2
9676984 Guerin et al. Jun 2017 B2
9683154 Rached Jun 2017 B2
9683155 Deur-Bert et al. Jun 2017 B2
9683157 Rached Jun 2017 B2
9758709 Shibanuma et al. Sep 2017 B2
9845419 Yana Motta et al. Dec 2017 B2
9884984 Rached Feb 2018 B2
9908828 Rached et al. Mar 2018 B2
9969918 Deur-Bert et al. May 2018 B2
10023780 Guerin et al. Jul 2018 B2
10035938 Rached Jul 2018 B2
10119055 Boussand Nov 2018 B2
10125296 Rached Nov 2018 B2
10131829 Deur-Bert et al. Nov 2018 B2
10208236 Minor Feb 2019 B2
10252913 Bonnet et al. Apr 2019 B2
10316231 Rached Jun 2019 B2
10358592 Rached Jul 2019 B2
10377935 Guerin et al. Aug 2019 B2
10399918 Rached Sep 2019 B2
10450488 Boussand Oct 2019 B2
20060243944 Minor et al. Nov 2006 A1
20070069175 Thomas et al. Mar 2007 A1
20080184731 Sienel et al. Aug 2008 A1
20080230738 Minor et al. Sep 2008 A1
20080314073 Minor Dec 2008 A1
20090120619 Sievert May 2009 A1
20090267019 Motta et al. Oct 2009 A1
20090314015 Minor et al. Dec 2009 A1
20100044619 Hulse et al. Feb 2010 A1
20100122545 Minor May 2010 A1
20100186432 Perti et al. Jul 2010 A1
20100319377 Moriwaki et al. Dec 2010 A1
20100326129 Moriwaki et al. Dec 2010 A1
20110084228 Rached Apr 2011 A1
20110089366 Rached Apr 2011 A1
20110095224 Rached Apr 2011 A1
20110186772 Rached Aug 2011 A1
20110219791 Rached Sep 2011 A1
20110219792 Rached Sep 2011 A1
20110240254 Rached Oct 2011 A1
20110284181 Rached Nov 2011 A1
20120049104 Rached Mar 2012 A1
20120056123 Rached Mar 2012 A1
20120068105 Rached et al. Mar 2012 A1
20120097885 Hulse et al. Apr 2012 A9
20120144857 Rached Jun 2012 A1
20120151958 Rached Jun 2012 A1
20120151959 Rached Jun 2012 A1
20120153213 Rached Jun 2012 A1
20120159982 Rached Jun 2012 A1
20120161064 Rached Jun 2012 A1
20120167615 Rached Jul 2012 A1
20120205574 Rached et al. Aug 2012 A1
20120267564 Leck Oct 2012 A1
20130055733 Rached Mar 2013 A1
20130055739 Rached Mar 2013 A1
20130061613 Rached Mar 2013 A1
20130092869 Boussand Apr 2013 A1
20130096218 Rached Apr 2013 A1
20130105724 Boussand May 2013 A1
20130186114 Guerin et al. Jul 2013 A1
20140008565 Rached et al. Jan 2014 A1
20140075969 Guerin et al. Mar 2014 A1
20140166923 Motta et al. Jun 2014 A1
20140318160 Rached Oct 2014 A1
20140326017 Rached Nov 2014 A1
20150027146 Boussand Jan 2015 A1
20150152306 Rached Jun 2015 A1
20150152307 Rached Jun 2015 A1
20150184051 Rached Jul 2015 A1
20150184052 Rached Jul 2015 A1
20150322317 Collier et al. Nov 2015 A1
20150322321 Deur-Bert et al. Nov 2015 A1
20150344761 Rached Dec 2015 A1
20150353799 Deur-Bert et al. Dec 2015 A1
20150353802 Rached Dec 2015 A1
20160009555 Bonnet et al. Jan 2016 A1
20160024363 Rached Jan 2016 A1
20160025394 Rached Jan 2016 A1
20160115361 Boussand Apr 2016 A1
20160122609 Rached May 2016 A1
20160194541 Guerin et al. Jul 2016 A1
20160244652 Rached Aug 2016 A1
20160272561 Rached et al. Sep 2016 A1
20160298014 Rached Oct 2016 A1
20160355718 Rached Dec 2016 A1
20160376484 Guerin et al. Dec 2016 A1
20170037291 Rached et al. Feb 2017 A1
20170080773 Rached Mar 2017 A1
20170145276 Rached May 2017 A1
20170210960 Deur-Bert et al. Jul 2017 A1
20170210962 Collier et al. Jul 2017 A1
20170218241 Deur-Bert et al. Aug 2017 A1
20170218242 Rached Aug 2017 A1
20180086173 Rached Mar 2018 A1
20180134936 Rached May 2018 A1
20180148395 Rached et al. May 2018 A1
20180244970 Rached Aug 2018 A1
20180282603 Guerin Oct 2018 A1
20180327645 Boussand Nov 2018 A1
20190023957 Rached Jan 2019 A1
20190203094 Rached Jul 2019 A1
20190249057 Rached Aug 2019 A1
20190284500 Rached Sep 2019 A1
20190337874 Rached et al. Nov 2019 A1
20190359870 Rached Nov 2019 A1
20190367789 Rached Dec 2019 A1
20200165500 Minor May 2020 A1
20200216734 Rached et al. Jul 2020 A1
20200216735 Itano Jul 2020 A1
20200263068 Hulse Aug 2020 A1
Foreign Referenced Citations (39)
Number Date Country
2 149 592 Feb 2010 EP
2 182 956 Dec 1973 FR
2 256 381 Jul 1975 FR
H04-110388 Apr 1992 JP
2000-161805 Jun 2000 JP
2005-202637 Jul 2005 JP
2008-134031 Jun 2008 JP
2008-531836 Aug 2008 JP
2009-532520 Sep 2009 JP
2009-222362 Oct 2009 JP
2009-228984 Oct 2009 JP
2009-257601 Nov 2009 JP
2009-257655 Nov 2009 JP
2009-257743 Nov 2009 JP
2010-002074 Jan 2010 JP
2 189 544 Sep 2002 RU
WO 2004037913 May 2004 WO
WO 2004037913 May 2004 WO
WO 2005105947 Nov 2005 WO
WO 2005105947 Nov 2005 WO
WO 2006094303 Sep 2006 WO
WO 2006094303 Sep 2006 WO
WO 2006101563 Sep 2006 WO
WO 2007126414 Nov 2007 WO
WO 2007126414 Nov 2007 WO
WO 2008027555 Mar 2008 WO
WO 2008027555 Mar 2008 WO
WO 2008085314 Jul 2008 WO
WO 2008140809 Nov 2008 WO
WO 2009107364 Sep 2009 WO
WO 2009110228 Sep 2009 WO
WO 2010000993 Jan 2010 WO
WO 2010000993 Jan 2010 WO
WO 2010000994 Jan 2010 WO
WO 2010000994 Jan 2010 WO
WO 2010002016 Jan 2010 WO
WO 2010002023 Jan 2010 WO
WO 2010059677 May 2010 WO
WO 2010059677 May 2010 WO
Non-Patent Literature Citations (59)
Entry
U.S. Appl. No. 61/116,029, filed Nov. 19, 2008. (Year: 2008).
Notice of Reasons for Refusal (Office Action) issued by the Japanese Patent Office in Japanese Patent Application No. 2018-215896, dated Nov. 15, 2019, and English-language translation (8 pages).
U.S. Appl. No. 13/146,721, Wissam Rached, filed Jul. 28, 2011 (Cited herein as US Patent Application Publication 2011/0284181 A1 of Nov. 24, 2011).
U.S. Appl. No. 14/371,118, Béatrice Boussand, filed Jul. 8, 2014 (Cited herein as US Patent Application Publication No. 2015/0027146 A1 of Jan. 29, 2015).
U.S. Appl. No. 14/615,780, Wissam Rached, filed Feb. 6, 2015 (Cited herein as US Patent Application Publication No. 2015/0152307 A1 of Jun. 4, 2015).
U.S. Appl. No. 14/772,950, Phillippe Bonnet, Bertrand Collier, Dominique Deur-Bert, filed Sep. 4, 2015 (Cited herein as US Patent Application Publication No. 2016/0009555 A1 of Jan. 14, 2016).
U.S. Appl. No. 15/297,569, Wissam Rached and Béatrice Boussand, filed Oct. 19, 2016 (Cited herein as US Patent Application Publication No. 2017/0037291 A1 of Feb. 9, 2017).
U.S. Appl. No. 15/368,347, Wissam Rached, filed Dec. 2, 2016 (Cited herein as US Patent Application Publication No. 2017/0080773 A1 of Mar. 23, 2017).
U.S. Appl. No. 15/481,815, Bertrand Collier, Dominique Deur-Bert and Laurent Wendlinger, filed Apr. 7, 2017 (Cited herein as US Patent Application Publication No. 2017/0210962 A1 of Jul. 27, 2017).
U.S. Appl. No. 15/491,717, Wissam Rached, filed Apr. 19, 2017 (Cited herein as US Patent Application Publication No. 2017/0218242 A1 of Aug. 3, 2017).
U.S. Appl. No. 15/809,164, Wissam Rached, filed Nov. 10, 2017 (Cited herein as US Patent Application Publication No. 2018/0086173 A1 of Mar. 29, 2018).
U.S. Appl. No. 15/820,996, Wissam Rached, filed Nov. 22, 2017, (Cited herein as US Patent Application Publication No. 2018/0244970 A1 of Aug. 30, 2018).
U.S. Appl. No. 15/878,794, Wissam Rached, Sophie Guerin and Pascale Kindler, filed Jan. 24, 2018 (Cited herein as US Patent Application Publication No. 2018/0148395 A1 of May 31, 2018).
U.S. Appl. No. 15/997,077, Sophie Guerin and Wissam Rached, filed Jun. 4, 2018 (Cited herein as US Patent Application Publication No. 2018/0282603 A1 of Oct. 4, 2018).
U.S. Appl. No. 16/034,539, Béatrice Boussand, filed Jul. 13, 2018 (Cited herein as US Patent Application Publication No. 2018/0327645 A1 of Nov. 15, 2018).
U.S. Appl. No. 16/142,492, Wissam Rached, filed Sep. 26, 2018.
U.S. Appl. No. 16/142,492, Rached.
International Search Report issued in PCT/FR2010/051724, dated Jan. 21, 2011, EPO, Rijswijk, NL, 6 pages (English/French language versions).
Third Party Observation in corresponding EP 2475734, submitted Mar. 13, 2016 with European Patent Office, 76 pages.
Third Party Observation in corresponding Application No. EP 10 762 989.1, submitted Feb. 26, 2016 with European Patent Office, 40 pages.
Notice of Cancellation dated Jul. 27, 2016, issued in JP Patent No. 5,801,810 (English-language translation only), 10 pages.
CAS Reg. No. 754-12-1, Nov. 16, 1984, 1 page.
CAS Reg. No. 75-10-5, Nov. 16, 1984, 1 page.
Bigot, G., et al., “Optimized Design of Heat Exchangers for “Reversible” Heat Pump Using R-407C,” Paper 463, Eighth International Refrigeration and Air Conditioning Conference at Purdue University, West Lafayette, IN, USA Jul. 25-28, 2000, pp. 38-46, Purdue University, Purdue e-Pubs, htte://docs.lib.purdue.edu/iracc/463.
Liu, X., “Efficiency of Non-Azeotropic Refrigerant Cycle,” International Refrigeration and Air Conditioning Conference, Paper 396, 1998, pp. 108-114, Purdue University, Purdue e-Pubs, http://docs.lib.purdue.edu/iracc/396.
Minor, Barbara Haviland, et al., Certified U.S. Appl. No. 61/116,029, filed Nov. 19, 2008, 60 pages, including cover page.
Minor, Barbara Haviland, et al., Certified U.S. Appl. No. 61/180,201, filed May 21, 2009, 63 pages, including cover page.
Third Party Observation Pursuant to Article 115 EPC Relating to EP 10 762 989.1 (EP 2475734), dated Aug. 23, 2018, European Patent Office, Munich, DE, 13 pages.
Excerpt from Römpp Chemistry Encyclopedia, Editors: Prof. Dr. Jürgen Falbe, Prof Dr. Manfred Regitz, “binary system”, 1996, three pages including p. 432, Georg Thieme Verlag, Stuttgart, DE.
Excerpt from Heat and Mass Transfer Second, revised Edition, Editors: Hans Dieter Baehr, Karl Stephan, 2006, 21 pages, including pp. 40-57, Springer, Berlin-Heidelberg-New York.
Radermacher, R., et al., “Vapor Compression Heat Pumps with Refrigerant Mixtures,” 2005, 4 pages, CRC Press, Taylor & Francis Group, Boca Raton, FL.
U.S. Appl. No. 16/142,492 entitled “Heat Transfer Fluid,” filed Sep. 26, 2018.
U.S. Appl. No. 16/339,903, Wissam Rached, filed Apr. 5, 2019.
U.S. Appl. No. 16/339,956, Wissam Rached, filed Apr. 5, 2019.
U.S. Appl. No. 16/395,413, Wissam Rached, filed Apr. 26, 2019.
U.S. Appl. No. 16/477,263, Wissam Rached, filed Jul. 11, 2019.
U.S. Appl. No. 16/477,318, Wissam Rached, filed Jul. 11, 2019.
U.S. Appl. No. 16/514,241, Wissam Rached, Sophie Guerin and Pascale Kindler, filed Jul. 17, 2019.
U.S. Appl. No. 16/339,903, Rached.
U.S. Appl. No. 16/339,956, Rached.
U.S. Appl. No. 16/395,413, Rached.
U.S. Appl. No. 16/477,263, Rached.
U.S. Appl. No. 16/477,318, Rached.
U.S. Appl. No. 16/514,241, Rached et al.
Rached, Wissam, U.S. Appl. No. 16/339,903 entitled “Tetrafluoropropene-Based Azeotropic Compositions,” filed Apr. 5, 2019.
Rached, Wissam, U.S. Appl. No. 16/339,956 entitled “Use of Tetrafluoropropene Based Compositions”, filed Apr. 5, 2019.
Rached, Wissam, U.S. Appl. No. 16/395,413 entitled “Low-Temperature and Average-Temperature Refrigeration,” filed Apr. 26, 2019.
Rached, Wissam, U.S. Appl. No. 16/477,263 entitled “Composition Comprising 2,3,3,3-Tetrafluoropropene,” filed Jul. 11, 2019.
Rached, Wissam, U.S. Appl. No. 16/477,318 entitled “Composition Comprising 2,3,3,3-Tetrafluoropropene,” filed Jul. 11, 2019.
Rached, Wissam, et al., U.S. Appl. No. 16/514,241 entitled “Stabilization of 1-Chloro-3,3,3-Trifluoropropene,” filed Jul. 17, 2019.
U.S. Appl. No. 16/962,143, Wissam Rached, filed Jul. 14, 2020.
U.S. Appl. No. 16/965,533, Wissam Rached, filed Jul. 28, 2020.
U.S. Appl. No. 16/965,638, Dominique Deur-Bert, Laurent Wendlinger, Béatrice Berger, filed Jul. 29, 2020.
U.S. Appl. No. 16/962,143, Rached.
U.S. Appl. No. 16/965,533, Rached.
U.S. Appl. No. 16/965,638, Deur-Bert et al.
Rached, Wissam, U.S. Appl. No. 16/962,143 entitled “Heat Transfer Compositions as Replacement for R-134a,” filed Jul. 14, 2020.
Rached, Wissam, U.S. Appl. No. 16/965,533 entitled “Method for Cooling and/or Heating a Body or a Fluid in a Motor Vehicle,” filed Jul. 28, 2020.
Deur-Bert, Dominique, et al., U.S. Appl. No. 16/965,638 entitled “Ternary Azeotropic or Quasi-Azeotropic Composition Comprising HF, 2,3,3,3-Tetrafluoropropene and 1,1,1,2,2-Pentafluoropropane,” filed Jul. 29, 2020.
Related Publications (1)
Number Date Country
20190023957 A1 Jan 2019 US
Continuations (3)
Number Date Country
Parent 15856703 Dec 2017 US
Child 16143518 US
Parent 14830130 Aug 2015 US
Child 15856703 US
Parent 13391400 US
Child 14830130 US