The present invention generally relates to a refrigerant system. More specifically, the present invention relates to a heat pump with head pressure control for hot gas reheat.
Refrigerant systems are utilized to control the temperature and humidity of air in various indoor environments to be conditioned.
A heat pump is a refrigerant system that is typically operable in both cooling and heating modes. While air conditioners are familiar examples of heat pumps, the term “heat pump” is more general and applies to many HVAC (heating, ventilating, and air conditioning) devices used for space heating or space cooling. When a heat pump is used for heating, it employs the same basic refrigeration-type cycle used by an air conditioner or a refrigerator, but in the opposite direction, releasing heat into the conditioned space rather than the surrounding environment. In this use, heat pumps generally draw heat from cooler external air, water or from the ground.
In a cooling mode, a heat pump operates like a typical air conditioner, i.e., a refrigerant is compressed in a compressor and delivered to a condenser (or an outdoor heat exchanger). In the condenser, heat is exchanged between a medium such as outside air, water or the like and the refrigerant. From the condenser, the refrigerant passes to an expansion device, at which the refrigerant is expanded to a lower pressure and temperature, and then to an evaporator (or an indoor heat exchanger). In the evaporator, heat is exchanged between the refrigerant and the indoor air, to condition the indoor air. When the refrigerant system is operating, the evaporator cools the air that is being supplied to the indoor environment. In addition, as the temperature of the indoor air is lowered, moisture usually is also taken out of the air. In this manner, the humidity level of the indoor air can also be controlled.
Reversible heat pumps work in either direction to provide heating or cooling to the internal space as mentioned above. Reversible heat pumps employ a reversing valve to reverse the flow of refrigerant from the compressor through the condenser and evaporation coils. In heating mode, the outdoor coil is an evaporator, while the indoor coil is a condenser. The refrigerant flowing from the evaporator (outdoor coil) carries the thermal energy from outside air (or soil) indoors. Vapor temperature is augmented within the pump by compressing it. The indoor coil then transfers thermal energy (including energy from the compression) to the indoor air, which is then moved around the inside of the building by an air handler.
Alternatively, thermal energy can be transferred to water, which is then used to heat the building via radiators or underfloor heating. The heated water may also be used for domestic hot water consumption. The refrigerant is then allowed to expand, cool, and absorb heat from the outdoor temperature in the outside evaporator, and the cycle repeats. This is a standard refrigeration cycle, save that the “cold” side of the refrigerator (the evaporator coil) is positioned so it is outdoors where the environment is colder.
In addition, instead of an air source heat pump, water source heat pumps can also be provided in which the outdoor unit exchanges heat with a water source, and the indoor unit exchanges heat with air. In cooling mode the cycle is similar, but the outdoor coil is now the condenser and the indoor coil (which reaches a lower temperature) is the evaporator. This is the familiar mode in which air conditioners operate. If a water coil is used for the so-called outdoor heat exchanger, it is not necessary for the water coil to be outside.
U.S. Pat. Nos. 7,275,384 and 7,287,394 disclose prior art heat pumps with reheat circuits.
This invention relates to a heat pump system that is operable in both cooling and heating modes, and which utilizes a hot gas reheat coil operable in a hot gas reheat mode.
While reheat coils have been incorporated into the air source air conditioning systems operating in the cooling mode, they have not been utilized in water source heat pump systems as disclosed herein.
One illustrative embodiment utilizes a pressure switch located on compressor discharge line, a two way water valve located at the inlet of the coax coil and a relay to control the afore mentioned water valve. The purpose of this switch is to control the operation of a water valve either allowing water flow or stopping water flow to the coax coil depending on the compressor discharge pressure switch settings. The pressure switch is allowed to energize or deenergize the two way valve maintaining the discharge pressure (saturated discharge temperature) over an operating window. Maintaining an adequate discharge pressure allows proper operation of the TEV and proper flow of refrigerant to the evaporator preventing the evaporator coil from dropping below the freezing point of water at the surface of the coil. Without the arrangement inherent safeties in the control system of the water source heat pump could shut the unit down. The switch also ensures that discharge pressure does not elevate above the maximum operating pressure allowed. The configuration is set up to not be employed when the unit is in straight cooling mode or in heating mode. Allowing operation during either of these modes would inhibit the operating efficiency of the water source heat pump.
The system can be configured to utilize a normally open or normally closed two way valve depending on the customer's needs.
This invention can improve the overall operating window of hot gas reheat operation improving compressor reliability by reducing compressor cycling and avoiding nuisance trips as a result of coil freeze ups thereby reducing overall warranty claims. This system would also be a suitable response to units which offer hybrid systems to address similar applications.
One or more of the foregoing objects can basically be attained by providing an air conditioning system and/or method in accordance with any one or more of the aspects below, and/or any of the features discussed below and/or illustrated in the attached drawings.
A heat pump system in accordance with a first aspect includes a compressor, a usage side heat exchanger, a heat source side heat exchanger arranged to exchange heat between a heat transfer medium and refrigerant flowing therethrough, an expansion mechanism, a main refrigerant flow control device switchable between a cooling mode and a heating mode, a gas reheat heat exchanger connected in the refrigerant circuit, a fan disposed to direct an airflow across the usage side heat exchanger and the gas reheat heat exchanger into a target space, and a secondary refrigerant flow control device switchable between a first mode and a second mode. The compressor delivers compressed refrigerant to a discharge line and receiving a refrigerant from a suction line. In the cooling mode, refrigerant flows from the discharge line through a refrigerant circuit, to the heat source side heat exchanger, to the expansion mechanism and then to the usage side heat exchanger. In the heating mode, refrigerant flows from the discharge line through the refrigerant circuit to the usage side heat exchanger, to the expansion device and then to the heat source side heat exchanger. In the first mode, refrigerant flows from the discharge line to the main refrigerant flow control device in the heating mode and the cooling mode. In the second mode, refrigerant flows from the discharge line to the gas reheat heat exchanger in a gas reheat mode and then flows to the main refrigerant flow control device. A flow of the heat transfer medium to the heat source side heat exchanger is adjustable.
A heat pump in accordance with a second aspect is the heat pump of the first aspect, in which the heat transfer medium of the heat source side heat exchanger is a liquid.
A heat pump in accordance with a third aspect is the heat pump of the second aspect, in which the heat transfer medium of the source side heat exchanger is water.
A heat pump in accordance with a fourth aspect is the heat pump of the second or third aspects, in which the source side heat exchanger is a coaxial heat exchanger.
A heat pump in accordance with a fifth aspect is the heat pump of any of the second to fourth aspects, further including a heat transfer medium flow control device disposed on an inlet side of the heat source side heat exchanger to adjust flow of the heat transfer medium into the heat source side heat exchanger.
A heat pump in accordance with a sixth aspect is the heat pump of the fifth aspect, in which the heat transfer medium flow control device includes a flow control valve.
A heat pump in accordance with a seventh aspect is the heat pump of the fifth or sixth aspects, in which the heat transfer medium flow control device permits flow of the heat transfer medium to flow to the heat source side heat exchanger when the secondary refrigerant flow control device is in the first mode in the heating mode and the cooling mode, and the heat transfer medium flow control device is configured to adjust flow of the heat transfer medium to the heat source side heat exchanger when the secondary refrigerant flow control device is in the second mode in the gas reheat mode.
A heat pump in accordance with an eighth aspect is the heat pump of any of the fifth to seventh aspects, further including a control element disposed between a discharge port of the compressor and an inlet of the gas reheat heat exchanger, the control element being configured to control the heat transfer medium flow control device.
A heat pump in accordance with a ninth aspect is the heat pump of the eighth aspect, in which the control element includes a switch, the switch being connected in a control circuit to the heat transfer medium flow control device.
A heat pump in accordance with a tenth aspect is the heat pump of the ninth aspect, in which the control circuit includes a relay that receives a wired or wireless signal from a thermostat to open or close the relay.
A heat pump in accordance with an eleventh aspect is the heat pump of the ninth or tenth aspects, in which the switch includes a pressure control switch that is normally open unless a pressure of refrigerant at the control element falls below an actuation pressure.
A heat pump in accordance with a twelfth aspect is the heat pump of the eleventh aspect, in which once the pressure at the control element has fallen below the actuation pressure, the switch will be closed until the pressure at the control element rises above a release pressure that is higher than the actuation pressure.
A heat pump in accordance with a thirteenth aspect is the heat pump of the twelfth aspect, in which if the pressure control switch is in a normally open position, the pressure control switch will remain in the open position even when the pressure at the control element falls below the release pressure.
A heat pump in accordance with a fourteenth aspect is the heat pump of any of the first to thirteenth aspects, in which the secondary refrigerant flow control device is a three-way valve that selectively communicates refrigerant from the refrigerant circuit to the reheat coil.
A heat pump in accordance with a fifteenth aspect is the heat pump of any of the first to fourteenth aspects, in which the main refrigerant flow control device is a four-way valve.
A heat pump in accordance with a sixteenth aspect is the heat pump of any of the first to fifteenth aspects, in which the gas reheat heat exchanger is positioned upstream of the usage side heat exchanger in the gas reheat mode along the refrigerant circuit.
A heat pump in accordance with a seventeenth aspect is the heat pump of any of the first to sixteenth aspects, in which the gas reheat heat exchanger is positioned upstream of the main refrigerant flow control device in the gas reheat mode along the refrigerant circuit.
These and other objects, features, aspects and advantages of the present invention will become apparent to those skilled in the art from the following detailed description, which, taken in conjunction with the annexed drawings, discloses preferred embodiments.
Referring now to the attached drawings which form a part of this original disclosure:
Selected embodiments will now be explained with reference to the drawings. It will be apparent to those skilled in the art from this disclosure that the following descriptions of the embodiments are provided for illustration only and not for the purpose of limiting the invention as defined by the appended claims and their equivalents.
Referring initially to
In the cooling mode of
In the heating mode of
In the hot gas reheat mode shown in
In
Referring now to
The water valve (WV) and the head pressure control switch (HPCS) are connected in and form parts of a water valve control circuit, which is shown in
In this case, the water valve (WV) is a “normally open” valve, and thus, unless the relay and the head pressure control switch (HPCS) are both closed, the water valve (WV) will remain open so that water flows to the water coil (16). However, it will be apparent to those skilled in the art from this disclosure that the water valve can be a “normally closed” valve. In such a situation, the switch and the relay operations as well as the control signals could be reversed without departing from the scope of the present invention. In any case, the water valve (WV) is preferably controlled to be open/closed as explained below.
Referring to
Referring to
In
In
In
In
In
As can be understood from the above the heat pump system in accordance with the present invention includes a compressor (C), a usage side heat exchanger (14), a heat source side heat exchanger (16), an expansion mechanism (TEV), a main refrigerant flow control device (12), a gas reheat heat exchanger (18), a fan (20), and a secondary refrigerant flow control device (10).
The compressor (C) delivers compressed refrigerant to a discharge line (DL) and receives a refrigerant from a suction line (SL). Examples of compressors include scroll, piston/cylinder, screw, and centrifugal compressor. The compressor (C) of the illustrated embodiment is not limited to a particular type. The usage side heat exchanger is an air/refrigerant heat exchanger, which is identified as a Dx coil or Evaporator (14) in the drawings. One example is a fin and tube heat exchanger. However, the usage side heat exchanger of the illustrated embodiment is not limited to a particular type. The heat source side heat exchanger in the illustrated embodiment is a liquid/refrigerant heat exchanger, more specifically a water/refrigerant heat exchanger, even more specifically a coax water coil (16) arranged to exchange heat between a heat transfer medium (water) and refrigerant flowing therethrough. However, the heat source side heat exchanger of the illustrated embodiment is not limited to a particular type. The expansion mechanism in the illustrated embodiment is a TEV. However, other examples of expansion mechanisms include electronic expansion valves (EEV), and orifices. However, the expansion mechanism is not intended to be limited to any particular type. The main refrigerant flow control device switchable between a cooling mode in which refrigerant flows from the discharge line through a refrigerant circuit, to the heat source side heat exchanger, to the expansion mechanism and then to the usage side heat exchanger, and a heating mode in which refrigerant flows from the discharge line through the refrigerant circuit to the usage side heat exchanger, to the expansion device and then to the heat source side heat exchanger The main refrigerant flow control device of the illustrated embodiment is a 4-way reversing valve (12). Other examples include multiple one, two and/or three way valves. However, the main refrigerant flow control device is not intended to be limited to any particular type. The gas reheat heat exchanger (18) connected in the refrigerant circuit is an air/refrigerant heat exchanger. One example is a fin and tube heat exchanger. However, the gas reheat heat exchanger of the illustrated embodiment is not limited to a particular type. The fan (20), identified in the drawings as “fan system” is disposed to direct an airflow across the usage side heat exchanger and the gas reheat heat exchanger into a target space. Examples of suitable fans include, an axial flow fan, a cross-flow fan and a centrifugal fan. However, the fan (20) of the illustrated embodiment is not limited to a particular type. The secondary refrigerant flow control device (10) is switchable between a first mode in which refrigerant flows from the discharge line to the main refrigerant flow control device in the heating mode and the cooling mode, and a second mode in which refrigerant flows from the discharge line to the gas reheat heat exchanger in a gas reheat mode and then flows to the main refrigerant flow control device. The secondary refrigerant flow control device in the illustrated embodiment is a three-way valve. Another example of a suitable flow control device is two two-way valves. However, the secondary refrigerant flow control device is not intended to be limited to any particular type. With this arrangement, a flow of the heat transfer medium to the heat source side heat exchanger is adjustable.
As mentioned above, in the illustrated embodiment, the heat transfer medium of the heat source side heat exchanger is a liquid, for example water. In addition, as mentioned above, in the illustrated embodiment, the source side heat exchanger is a coaxial heat exchanger. In addition, the heat pump also preferably includes a heat transfer medium flow control device disposed on an inlet side of the heat source side heat exchanger to adjust flow of the heat transfer medium into the heat source side heat exchanger. In the illustrated embodiment, the heat transfer medium flow control device is a liquid valve, for example a water valve that is open or closed. However, the heat transfer medium flow control device is not intended to be limited to any particular type. Therefore, the heat transfer medium flow control device includes a flow control valve.
The heat transfer medium flow control device in accordance with the embodiment permits flow of the heat transfer medium to flow to the heat source side heat exchanger when secondary refrigerant flow control device is in the first mode in the heating mode and the cooling mode, and the heat transfer medium flow control device is configured to adjust flow of the heat transfer medium to the heat source side heat exchanger when secondary refrigerant flow control device is in the second mode in the gas reheat mode.
In addition, the heat pump also preferably includes a control element disposed between a discharge port of the compressor (C) and an inlet of the gas reheat heat exchanger, the control element being configured to control the heat transfer medium flow control device. In the illustrated embodiment, an example of the control element is the head pressure control switch (HPCS). However, the control element is not intended to be limited to any particular type. Therefore, the control element includes a switch. The switch is connected in a control circuit to the heat transfer medium flow control device. In addition, the control circuit includes a relay that receives a wired or wireless signal from a thermostat to open or close the relay. Moreover, the switch includes a pressure control switch that is normally open unless a pressure of refrigerant at the control element falls below an actuation pressure.
As explained above, once the pressure at the control element has fallen below the actuation pressure, the switch will be closed until the pressure at the control element rises above a release pressure that is higher than the actuation pressure. If the pressure control switch is in a normally open position, the pressure control switch will remain in the open position even when the pressure at the control element falls below the release pressure.
As mentioned above, in the illustrated embodiment the secondary refrigerant flow control device (10) is a three-way valve that selectively communicates refrigerant from the refrigerant circuit to said reheat coil and the main refrigerant flow control device is a reversible four-way valve. In the illustrated embodiment, the gas reheat heat exchanger is positioned upstream of the usage side heat exchanger in the gas reheat mode along the refrigerant circuit, and the gas reheat heat exchanger is positioned upstream of the main refrigerant flow control device in the gas reheat mode along the refrigerant circuit.
In understanding the scope of the present invention, the term “comprising” and its derivatives, as used herein, are intended to be open ended terms that specify the presence of the stated features, elements, components, groups, integers, and/or steps, but do not exclude the presence of other unstated features, elements, components, groups, integers and/or steps. The foregoing also applies to words having similar meanings such as the terms, “including”, “having” and their derivatives. Also, the terms “part,” “section,” “portion,” “member” or “element” when used in the singular can have the dual meaning of a single part or a plurality of parts.
The term “detect” as used herein to describe an operation or function carried out by a component, a section, a device or the like includes a component, a section, a device or the like that does not require physical detection, but rather includes determining, measuring, modeling, predicting or computing or the like to carry out the operation or function.
The term “configured” as used herein to describe a component, section or part of a device includes hardware and/or software that is constructed and/or programmed to carry out the desired function.
The terms of degree such as “substantially”, “about” and “approximately” as used herein mean a reasonable amount of deviation of the modified term such that the end result is not significantly changed.
While only selected embodiments have been chosen to illustrate the present invention, it will be apparent to those skilled in the art from this disclosure that various changes and modifications can be made herein without departing from the scope of the invention as defined in the appended claims. For example, the size, shape, location or orientation of the various components can be changed as needed and/or desired. Components that are shown directly connected or contacting each other can have intermediate structures disposed between them. The functions of one element can be performed by two, and vice versa. The structures and functions of one embodiment can be adopted in another embodiment. It is not necessary for all advantages to be present in a particular embodiment at the same time. Every feature which is unique from the prior art, alone or in combination with other features, also should be considered a separate description of further inventions by the applicant, including the structural and/or functional concepts embodied by such feature(s). Thus, the foregoing descriptions of the embodiments according to the present invention are provided for illustration only, and not for the purpose of limiting the invention as defined by the appended claims and their equivalents.
This application claims the benefit of U.S. Provisional Application No. 62/568,963, filed Oct. 6, 2017. The entire disclosure of U.S. Provisional Application No. 62/568,963 is hereby incorporated herein by reference.
Number | Name | Date | Kind |
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5076780 | Erdman | Dec 1991 | A |
7275384 | Taras et al. | Oct 2007 | B2 |
7287394 | Taras et al. | Oct 2007 | B2 |
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20170044744 | Everhart | Feb 2017 | A1 |
Number | Date | Country | |
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20190107299 A1 | Apr 2019 | US |
Number | Date | Country | |
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62568963 | Oct 2017 | US |