WO2006050282A2 - Multiple condenser reheat system with tandem compressors - Google Patents

Multiple condenser reheat system with tandem compressors Download PDF

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Publication number
WO2006050282A2
WO2006050282A2 PCT/US2005/039306 US2005039306W WO2006050282A2 WO 2006050282 A2 WO2006050282 A2 WO 2006050282A2 US 2005039306 W US2005039306 W US 2005039306W WO 2006050282 A2 WO2006050282 A2 WO 2006050282A2
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WIPO (PCT)
Prior art keywords
refrigerant
set forth
reheat
condensers
compressors
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
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PCT/US2005/039306
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French (fr)
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WO2006050282A3 (en
Inventor
Michael F. Taras
Alexander Lifson
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Carrier Corp
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Carrier Corp
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Publication of WO2006050282A3 publication Critical patent/WO2006050282A3/en
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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B1/00Compression machines, plants or systems with non-reversible cycle
    • F25B1/10Compression machines, plants or systems with non-reversible cycle with multi-stage compression
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F3/00Air-conditioning systems in which conditioned primary air is supplied from one or more central stations to distributing units in the rooms or spaces where it may receive secondary treatment; Apparatus specially designed for such systems
    • F24F3/12Air-conditioning systems in which conditioned primary air is supplied from one or more central stations to distributing units in the rooms or spaces where it may receive secondary treatment; Apparatus specially designed for such systems characterised by the treatment of the air otherwise than by heating and cooling
    • F24F3/14Air-conditioning systems in which conditioned primary air is supplied from one or more central stations to distributing units in the rooms or spaces where it may receive secondary treatment; Apparatus specially designed for such systems characterised by the treatment of the air otherwise than by heating and cooling by humidification; by dehumidification
    • F24F3/153Air-conditioning systems in which conditioned primary air is supplied from one or more central stations to distributing units in the rooms or spaces where it may receive secondary treatment; Apparatus specially designed for such systems characterised by the treatment of the air otherwise than by heating and cooling by humidification; by dehumidification with subsequent heating, i.e. with the air, given the required humidity in the central station, passing a heating element to achieve the required temperature
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B6/00Compression machines, plants or systems, with several condenser circuits
    • F25B6/02Compression machines, plants or systems, with several condenser circuits arranged in parallel
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B2400/00Component parts or details not otherwise provided for in this subclass
    • F25B2400/07Details of compressors or related parts
    • F25B2400/075Details of compressors or related parts with parallel compressors
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B2600/00Control issues
    • F25B2600/25Control of valves
    • F25B2600/2507Flow-diverting valves
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B41/00Fluid-circulation arrangements
    • F25B41/20Disposition of valves, e.g. of on-off valves or flow control valves
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B41/00Fluid-circulation arrangements
    • F25B41/20Disposition of valves, e.g. of on-off valves or flow control valves
    • F25B41/24Arrangement of shut-off valves for disconnecting a part of the refrigerant cycle, e.g. an outdoor part

Definitions

  • This application relates to a refrigerant system utilizing tandem compressors sharing a common evaporator, but having separate condensers and wherein a reheat coil is incorporated into the system design.
  • Refrigerant systems are utilized in applications to change the temperature and humidity or otherwise condition the environment.
  • a compressor delivers a compressed refrigerant to a heat exchanger, known as a condenser, which is typically located outside.
  • the refrigerant passes through an expansion device to an indoor heat exchanger, known as an evaporator.
  • an evaporator moisture may be removed from the air, and the temperature of air blown over the evaporator coil is lowered.
  • the refrigerant returns to the compressor.
  • basic refrigerant cycles are utilized in combination with many configuration variations and optional features. However, the above provides a brief understanding of the fundamental concept.
  • tandem compressors In more advanced refrigerant systems, a capacity of the air conditioning system can be controlled by the implementation of so-called tandem compressors.
  • the tandem compressors are normally connected together via common suction and common discharge manifolds. From a single common evaporator, the refrigerant is returned through a suction manifold, and then distributed to each of the tandem compressors. From the individual compressors the refrigerant is delivered into a common discharge manifold and then into a common single condenser.
  • the tandem compressors are also separately controlled and can be started and shut off independently of each other such that one or both compressors may be operated at a time. By controlling which compressor is running, control over the capacity of the combined system is achieved.
  • tandem compressors may have shutoff valves to isolate some of the compressors from the active refrigerant circuit, when they are shutdown. Moreover, if these compressors operate at different saturation suction temperatures, pressure equalization and oil equalization lines are frequently employed.
  • tandem compressor system is that better capacity control is provided, without the requirement of having each of the compressors operating on a dedicated circuit. This reduces the system cost.
  • Tandem compressors provide untapped potential for even greater control.
  • the tandem compressors have not been provided in many beneficial combinations that would be valuable.
  • the temperature level at which the air is delivered to provide comfort environment in a conditioned space may need to be higher than the temperature that would provide the ideal humidity level.
  • tandem compressors will not have a common discharge manifold connecting these tandem compressors together.
  • Each of these tandem compressors is connected to its own condenser, while the same compressors are still connected to a common suction manifold and a single evaporator. Consequently, for such tandem compressor system configurations, additional temperature levels of heat rejection, associated with each condenser, become available.
  • An amount of refrigerant flowing through each condenser can be regulated by flow control devices placed at the compressor discharge ports as well as by controlling related expansion devices or utilizing other control means, such as condenser airflow.
  • a reheat function is provided by a reheat circuit that includes a reheat coil associated with and placed behind the evaporator.
  • the present invention by providing separate condensers, allows for heat rejection at two different temperature levels and to two different zones.
  • a first condenser could be associated with an outdoor zone, while the second condenser is associated with an indoor zone that would be preferably at a different temperature.
  • the amount of the refrigerant passing 06 By controlling the temperature at which heat is rejected, the amount of the refrigerant passing 06
  • each condenser can be tightly controlled.
  • One possible application would be to utilize one of the condensers to prevent excessive frost formation (defrost operation), with the other condenser being operable in a conventional manner as in normal air conditioning installations.
  • Another possible application is to utilize this invention in heat pump systems where heating of two separate environments requiring different levels of heating is desired.
  • each condenser can be employed to provide heating to each environment.
  • Many other applications such as air stream reheat in dehumidification applications or space heating are also feasible.
  • Figure 1 is a first schematic.
  • Figure 2 is a second schematic. 39306
  • Figure 3 shows an option.
  • Figure 4 shows another option.
  • Figure 5 shows another option.
  • Figure 6 shows yet another option.
  • a refrigerant system 20 is illustrated in Figure 1 having a pair of compressors 22 and 23 that are operating generally as tandem compressors.
  • a pressure equalization line 24 and an oil equalization line 25 may connect the two compressors 22 and 23, as known.
  • Optional flow control devices such as valves 26 are positioned downstream on a discharge line associated with each of the compressors 22 and 23. These valves can be controlled to prevent high to low leak through the compressor that is not operational. That is, if for instance the compressor 22 is operational with the compressor 23 stopped, then the valve 26 associated with the compressor 23 will be closed.
  • the valves 26 can be of a conventional shutoff or adjustable type. In a latter case, additional flexibility in system control and operation can be provided by controlling the valves 26.
  • Refrigerant from the compressor 23 travels to a condenser 28.
  • the refrigerant continues downstream and through an expansion device 30. From the expansion device 30, the flow passes through an evaporator 32.
  • the refrigerant passing through the evaporator 32 passes to a suction manifold 34 leading back to the compressors 22 and 23.
  • the refrigerant from the compressor 22 passes through a condenser 33.
  • the refrigerant also passes through an expansion device 30 and then returned through the evaporator 32 and suction manifold 34 back to the compressors 22 and 23.
  • the present invention by providing separate condensers, allows heat rejection at two different temperature levels and to two different zones A and B.
  • a first condenser could be associated with an outdoor zone A, while the second condenser is associated with the indoor zone B that would be at a different temperature.
  • the amount of the refrigerant passing through that condenser can be tightly controlled.
  • One possible application would be to utilize one of the condensers to prevent excessive frost formation (defrost operation), with the other condenser being operable in a conventional manner as in normal air conditioning installations. Many other applications such as air stream reheat in dehumidification applications or space heating are also feasible.
  • a reheat schematic is incorporated into the refrigerant system 20. It should be understood that while specific reheat schematics may be disclosed, any other reheat option can be utilized within the present invention. Thus, the reheat circuit design options such as the location of where the reheat fluid is tapped or position of the reheat coil in relationship to the condenser and evaporator can be modified in various schematics, according to this invention. In the Figure 1 schematic, a hot gas reheat concept is utilized, with the reheat coil 152 is shown as communicating with a three-way valve 150 for tapping refrigerant from a location upstream of the condenser 28.
  • the refrigerant flows through the reheat coil 152, which is placed in the path of airflow from the air-moving device such as fan F across the evaporator 32.
  • the refrigerant returns through a check valve 156 to a return point 158 also upstream of the condenser 28, such that the reheat coil is in a series configuration with the condenser 28.
  • the reheat function is utilized as known to allow removal of moisture while still maintaining a desired temperature.
  • a control 40 for the refrigerant system 20 is operably connected to control the compressors 22 and 23, the expansion devices 30, the discharge valves 26 and the three- way valve 150.
  • tandem compressors 22 and 23 utilizing a common evaporator 32 but separate condensers, preferably operating at different temperature levels, reduces the number of components necessary for providing the independent control for the heat rejection to zones A and B, and thus is an improvement over the prior art. Also, use of the reheat function provides an improved temperature and humidity control.
  • valves 26 can be of a conventional on/off or adjustable type, with the valve control executed through pulsation or modulation.
  • the three-way valve 150 can be of a standard shutoff or adjustable design, once again controlled by a modulation or pulsation technique, and can be substituted by a pair of conventional valves. In such cases even more flexibility in system control and operation can be achieved.
  • Figure 2 shows a more complicated refrigerant system 50 for rejecting heat to zones A and B. As shown, a single evaporator 52 communicates with a common suction manifold 51. Compressors 22 and 23 are connected as in the prior embodiment.
  • the refrigerant passes to condensers 25 and 33 and then through separate expansion devices 60, and to evaporator 52. As is shown, the condenser 33 rejects heat to zone B, and the condenser 28 rejects heat to zone A. Again, a control 72 is provided that controls each of the components to achieve the desired 06
  • a bypass line 160 including a bypass flow control device such as valve 162 allows refrigerant to be bypassed around the condenser 28. Such a bypass would be utilized when dehumidification is desired with reduced sensible load of the air delivered into an environment to be conditioned.
  • the refrigerant cycle 50 incorporates two distinct reheat circuits, with a first reheat circuit once again utilizing the hot gas reheat concept and having a reheat coil 166 receiving refrigerant from a three-way valve 164 positioned upstream of the condenser 33. Refrigerant having passed through the reheat coil 166 is returned to a main circuit at a point 168, also upstream of the condenser 33, through a check valve 170.
  • a second reheat circuit employs a warm liquid or two-phase refrigerant reheat concept and has a reheat coil 172 that receives refrigerant from a three-way valve 174 positioned downstream of the condenser 28.
  • the refrigerant having passed through the reheat coil 172 passes through a check valve 176 and is returned to the main circuit at a point 178.
  • the reheat circuits shown in Figure 2 employ specific design concepts and schematics, with the specific positions of the reheat coils relative to each other as well as to the respective condensers and evaporator, other configurations within the refrigerant system 50 are also feasible.
  • control 72 will select how to operate the reheat coils 166 and 172 in combination or independently to achieve a desired temperature of the air having passed over the evaporator 52, and men the reheat coils 166 and 172 before entering an environment to be conditioned.
  • various reheat stages can be provided for the refrigerant system 50 improving comfort in the environment to be conditioned.
  • the reheat coils 166 and 172 can be associated with a single condenser 28 or 33 if desired.
  • Figure 3 shows a refrigerant system 200, wherein an evaporator 202 is provided with two spaced reheat coils 204 and 206 treating separate portions of air having passed over the evaporator 202.
  • the reheat coils 204 and 206 can be associated with distinct environments A and B if desired. By controlling the flow of the refrigerant into the two reheat coils 204 and 206, the conditions of air being directed into the individual environments A and B can be accurately controlled.
  • the Figure 3 embodiment is similar to the schematic shown in Figure 2.
  • FIG. 4 shows an embodiment 220, wherein an evaporator 222 is associated with a pair of reheat coils 224 and 226.
  • the reheat coils 224 and 226 are in a serial flow relationship, and receive refrigerant flow from a common point in the refrigerant cycle.
  • both reheat coils 224 and 226 employ similar reheat concepts, but the refrigerant flowing through each coil would have a different thermodynamic state and consequently would provide different amount of reheat.
  • the reheat coils 224 and 226 can be placed side-by-side behind the evaporator 222 to treat separate portions of the airflow.
  • FIG. 5 shows a system 240, wherein an evaporator 242 is associated with a pair of reheat coils 246 and 248.
  • a common supply line 250 for the refrigerant flowing into the reheat coils 246 and 248 is utilized, however, the reheat coils 246 and 248 receive the refrigerant in a similar thermodynamic state and in a parallel flow relationship, providing stages of reheat.
  • Refrigerant passes through a flow control devices such as valves 252 on its way to the reheat coils 246 and 248 such that one or the other reheat coil can be shut off or refrigerant flow can be controlled to each reheat coil independently.
  • the reheat coils 246 and 248 can be located side-by-side behind the evaporator 242.
  • Figure 6 shows an embodiment 300, wherein an evaporator 336 is associated with a reheat coil 333, and wherein the reheat coil 333 is actually one of the condensers associated with a compressor 322 and a discharge valve 326.
  • the evaporator 336 would be associated with at least one more compressor in this embodiment.
  • one of the condensers (the condenser 333 in this case) utilized as a reheat coil in this embodiment may represent only one of multiple reheat stages (coils) associated with the evaporator 336, and a conventional supplemental reheat coil 400 could also be employed here.
  • the various refrigerant systems disclosed in this application can all be utilized as air conditioning units or as heat pumps.

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Physics & Mathematics (AREA)
  • Thermal Sciences (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Air Conditioning Control Device (AREA)
  • Compression-Type Refrigeration Machines With Reversible Cycles (AREA)

Abstract

A tandem compressor system is utilized that receives refrigerant from a common suction manifold, and from a common evaporator. From the compressors, the refrigerant passes to a plurality of condensers, with each of the condensers being associated with a separate zone for heat rejection, preferably at different temperature levels. Each of the condensers is associated with at least one of the plurality of compressors. A reheat coil is associated with the evaporator to improve comfort level in the environment to be conditioned. Multiple reheat circuits associated with separate condensers are employed to provide various stages of reheat or to condition separate environments. By utilizing the common evaporator, a plurality of condensers, and the reheat coils, the ability to independently control temperature, humidity and amount of heat rejection to a number of zones is achieved without the requirement of having dedicated circuits with multiple additional components. Thus, the overall system cost and complexity is significantly reduced and its operational and control flexibility is improved.

Description

MULTIPLE CONDENSER REHEAT SYSTEM WITH TANDEM COMPRESSORS
BACKGROUND OF THE INVENTION
[0001] This application relates to a refrigerant system utilizing tandem compressors sharing a common evaporator, but having separate condensers and wherein a reheat coil is incorporated into the system design.
[0002] Refrigerant systems are utilized in applications to change the temperature and humidity or otherwise condition the environment. In a standard refrigerant system, a compressor delivers a compressed refrigerant to a heat exchanger, known as a condenser, which is typically located outside. From the condenser, the refrigerant passes through an expansion device to an indoor heat exchanger, known as an evaporator. In the evaporator, moisture may be removed from the air, and the temperature of air blown over the evaporator coil is lowered. From the evaporator, the refrigerant returns to the compressor. Of course, basic refrigerant cycles are utilized in combination with many configuration variations and optional features. However, the above provides a brief understanding of the fundamental concept.
[0003] In more advanced refrigerant systems, a capacity of the air conditioning system can be controlled by the implementation of so-called tandem compressors. The tandem compressors are normally connected together via common suction and common discharge manifolds. From a single common evaporator, the refrigerant is returned through a suction manifold, and then distributed to each of the tandem compressors. From the individual compressors the refrigerant is delivered into a common discharge manifold and then into a common single condenser. The tandem compressors are also separately controlled and can be started and shut off independently of each other such that one or both compressors may be operated at a time. By controlling which compressor is running, control over the capacity of the combined system is achieved. Often, the two compressors are selected to have different sizes, such that even better capacity control is provided. Also, tandem compressors may have shutoff valves to isolate some of the compressors from the active refrigerant circuit, when they are shutdown. Moreover, if these compressors operate at different saturation suction temperatures, pressure equalization and oil equalization lines are frequently employed.
[0004] One advantage of the tandem compressor system is that better capacity control is provided, without the requirement of having each of the compressors operating on a dedicated circuit. This reduces the system cost.
[0005] Tandem compressors provide untapped potential for even greater control. The tandem compressors have not been provided in many beneficial combinations that would be valuable.
[0006] In some cases, while the system is operating in a cooling mode, the temperature level at which the air is delivered to provide comfort environment in a conditioned space may need to be higher than the temperature that would provide the ideal humidity level. Generally, the lower the temperature of the evaporator coil more moisture can be removed from the air stream. These opposite trends have presented challenges to refrigerant system designers. One way to address such challenges is to utilize various schematics incorporating reheat coils. In many cases, a reheat coil placed in the way of an indoor air stream behind the evaporator is employed for the purposes of reheating the air supplied to the conditioned space after it has been cooled in the evaporator, where the moisture has been removed as well.
[0007] While reheat coils have been incorporated into air conditioning systems, they have not been utilized in an air conditioning system having an ability to operate at multiple temperature levels.
SUMMARY OF THE INVENTION
[0008] In this invention, as opposed to the conventional tandem system, at least some of the tandem compressors will not have a common discharge manifold connecting these tandem compressors together. Each of these tandem compressors is connected to its own condenser, while the same compressors are still connected to a common suction manifold and a single evaporator. Consequently, for such tandem compressor system configurations, additional temperature levels of heat rejection, associated with each condenser, become available. An amount of refrigerant flowing through each condenser can be regulated by flow control devices placed at the compressor discharge ports as well as by controlling related expansion devices or utilizing other control means, such as condenser airflow. Further, a reheat function is provided by a reheat circuit that includes a reheat coil associated with and placed behind the evaporator.
[0009] The present invention, by providing separate condensers, allows for heat rejection at two different temperature levels and to two different zones. As an example, a first condenser could be associated with an outdoor zone, while the second condenser is associated with an indoor zone that would be preferably at a different temperature. By controlling the temperature at which heat is rejected, the amount of the refrigerant passing 06
from that condenser can be tightly controlled. One possible application would be to utilize one of the condensers to prevent excessive frost formation (defrost operation), with the other condenser being operable in a conventional manner as in normal air conditioning installations. Another possible application is to utilize this invention in heat pump systems where heating of two separate environments requiring different levels of heating is desired. In this case, each condenser can be employed to provide heating to each environment. Many other applications such as air stream reheat in dehumidification applications or space heating are also feasible.
[0010] Integration of the reheat coil into the system design provides the additional flexibility of lowering the temperature of air passing over the evaporator to remove moisture, and then reheating the air back to a desired temperature. Several reheat schemes are disclosed. However, it should be understood that the fundamental concept of this invention is the incorporation of a reheat cycle into a refrigerant system having tandem compressors delivering refrigerant to multiple condensers, preferably operating at different temperature levels, and accepting refrigerant from a common evaporator. The particular refrigerant system provides a wide variety of options for the reheat function in terms of the reheat concept and position of the reheat coil in relationship to the condenser and evaporator.
[0011] These and other features of the present invention can be best understood from the following specification and drawings, the following of which is a brief description.
BRIEF DESCRIPTION OF THE DRAWINGS
[0012] Figure 1 is a first schematic. [0013] Figure 2 is a second schematic. 39306
[0014] Figure 3 shows an option.
[0015] Figure 4 shows another option.
[0016] Figure 5 shows another option.
[0017] Figure 6 shows yet another option.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0018] A refrigerant system 20 is illustrated in Figure 1 having a pair of compressors 22 and 23 that are operating generally as tandem compressors. A pressure equalization line 24 and an oil equalization line 25 may connect the two compressors 22 and 23, as known. Optional flow control devices such as valves 26 are positioned downstream on a discharge line associated with each of the compressors 22 and 23. These valves can be controlled to prevent high to low leak through the compressor that is not operational. That is, if for instance the compressor 22 is operational with the compressor 23 stopped, then the valve 26 associated with the compressor 23 will be closed. The valves 26 can be of a conventional shutoff or adjustable type. In a latter case, additional flexibility in system control and operation can be provided by controlling the valves 26.
[0019] Refrigerant from the compressor 23 travels to a condenser 28. The refrigerant continues downstream and through an expansion device 30. From the expansion device 30, the flow passes through an evaporator 32. The refrigerant passing through the evaporator 32 passes to a suction manifold 34 leading back to the compressors 22 and 23. The refrigerant from the compressor 22 passes through a condenser 33. The refrigerant also passes through an expansion device 30 and then returned through the evaporator 32 and suction manifold 34 back to the compressors 22 and 23. [0020] The present invention, by providing separate condensers, allows heat rejection at two different temperature levels and to two different zones A and B. As an example, a first condenser could be associated with an outdoor zone A, while the second condenser is associated with the indoor zone B that would be at a different temperature. By controlling the temperature at which heat is rejected, the amount of the refrigerant passing through that condenser can be tightly controlled. One possible application would be to utilize one of the condensers to prevent excessive frost formation (defrost operation), with the other condenser being operable in a conventional manner as in normal air conditioning installations. Many other applications such as air stream reheat in dehumidification applications or space heating are also feasible.
[0021] A reheat schematic is incorporated into the refrigerant system 20. It should be understood that while specific reheat schematics may be disclosed, any other reheat option can be utilized within the present invention. Thus, the reheat circuit design options such as the location of where the reheat fluid is tapped or position of the reheat coil in relationship to the condenser and evaporator can be modified in various schematics, according to this invention. In the Figure 1 schematic, a hot gas reheat concept is utilized, with the reheat coil 152 is shown as communicating with a three-way valve 150 for tapping refrigerant from a location upstream of the condenser 28. The refrigerant flows through the reheat coil 152, which is placed in the path of airflow from the air-moving device such as fan F across the evaporator 32. The refrigerant returns through a check valve 156 to a return point 158 also upstream of the condenser 28, such that the reheat coil is in a series configuration with the condenser 28. The reheat function is utilized as known to allow removal of moisture while still maintaining a desired temperature. [0022] A control 40 for the refrigerant system 20 is operably connected to control the compressors 22 and 23, the expansion devices 30, the discharge valves 26 and the three- way valve 150. By properly controlling each of these components in combination, the conditions at each condenser 28 and 33 can be controlled as necessary for the sub- environments A and B. The exact controls necessary are as known in the art, and will not be explained here. However, the use of the tandem compressors 22 and 23 utilizing a common evaporator 32 but separate condensers, preferably operating at different temperature levels, reduces the number of components necessary for providing the independent control for the heat rejection to zones A and B, and thus is an improvement over the prior art. Also, use of the reheat function provides an improved temperature and humidity control.
[0023] Also, as mentioned above, the valves 26 can be of a conventional on/off or adjustable type, with the valve control executed through pulsation or modulation. Furthermore, the three-way valve 150 can be of a standard shutoff or adjustable design, once again controlled by a modulation or pulsation technique, and can be substituted by a pair of conventional valves. In such cases even more flexibility in system control and operation can be achieved.
[0024] Figure 2 shows a more complicated refrigerant system 50 for rejecting heat to zones A and B. As shown, a single evaporator 52 communicates with a common suction manifold 51. Compressors 22 and 23 are connected as in the prior embodiment.
[0025] From the compressors 22 and 23, the refrigerant passes to condensers 25 and 33 and then through separate expansion devices 60, and to evaporator 52. As is shown, the condenser 33 rejects heat to zone B, and the condenser 28 rejects heat to zone A. Again, a control 72 is provided that controls each of the components to achieve the desired 06
conditions within each of the condensers 28 and 33 and subsequently in corresponding zones A and B.
[0026] A bypass line 160 including a bypass flow control device such as valve 162 allows refrigerant to be bypassed around the condenser 28. Such a bypass would be utilized when dehumidification is desired with reduced sensible load of the air delivered into an environment to be conditioned. The refrigerant cycle 50 incorporates two distinct reheat circuits, with a first reheat circuit once again utilizing the hot gas reheat concept and having a reheat coil 166 receiving refrigerant from a three-way valve 164 positioned upstream of the condenser 33. Refrigerant having passed through the reheat coil 166 is returned to a main circuit at a point 168, also upstream of the condenser 33, through a check valve 170. A second reheat circuit employs a warm liquid or two-phase refrigerant reheat concept and has a reheat coil 172 that receives refrigerant from a three-way valve 174 positioned downstream of the condenser 28. The refrigerant having passed through the reheat coil 172 passes through a check valve 176 and is returned to the main circuit at a point 178. As mentioned above, while the reheat circuits shown in Figure 2 employ specific design concepts and schematics, with the specific positions of the reheat coils relative to each other as well as to the respective condensers and evaporator, other configurations within the refrigerant system 50 are also feasible. Moreover, the control 72 will select how to operate the reheat coils 166 and 172 in combination or independently to achieve a desired temperature of the air having passed over the evaporator 52, and men the reheat coils 166 and 172 before entering an environment to be conditioned. In such circumstances, various reheat stages can be provided for the refrigerant system 50 improving comfort in the environment to be conditioned. Obviously, the reheat coils 166 and 172 can be associated with a single condenser 28 or 33 if desired.
[0027] The individual control steps taken to achieve desired operating conditions in each of the condensers would be known. It is the provision of the combined system utilizing a common evaporator in combination with the tandem compressors, separate condensers and reheat coils that is inventive here.
[0028] Of course, other multiples of compressors and compressor banks as well as condensers and reheat coils can be utilized within the scope of this invention.
[0029] Although preferred embodiments of this invention have been disclosed, a worker of ordinary skill in this art would recognize that certain modifications would come within the scope of this invention. For that reason, the following claims should be studied to determine the true scope and content of this invention.
[0030] Figure 3 shows a refrigerant system 200, wherein an evaporator 202 is provided with two spaced reheat coils 204 and 206 treating separate portions of air having passed over the evaporator 202. As shown, the reheat coils 204 and 206 can be associated with distinct environments A and B if desired. By controlling the flow of the refrigerant into the two reheat coils 204 and 206, the conditions of air being directed into the individual environments A and B can be accurately controlled. In all other aspects the Figure 3 embodiment is similar to the schematic shown in Figure 2.
[0031] Figure 4 shows an embodiment 220, wherein an evaporator 222 is associated with a pair of reheat coils 224 and 226. As can be seen, the reheat coils 224 and 226 are in a serial flow relationship, and receive refrigerant flow from a common point in the refrigerant cycle. Hence, both reheat coils 224 and 226 employ similar reheat concepts, but the refrigerant flowing through each coil would have a different thermodynamic state and consequently would provide different amount of reheat. Obviously, as in the Figure 3 embodiment, the reheat coils 224 and 226 can be placed side-by-side behind the evaporator 222 to treat separate portions of the airflow.
[0032] Figure 5 shows a system 240, wherein an evaporator 242 is associated with a pair of reheat coils 246 and 248. As can be seen, a common supply line 250 for the refrigerant flowing into the reheat coils 246 and 248 is utilized, however, the reheat coils 246 and 248 receive the refrigerant in a similar thermodynamic state and in a parallel flow relationship, providing stages of reheat. Refrigerant passes through a flow control devices such as valves 252 on its way to the reheat coils 246 and 248 such that one or the other reheat coil can be shut off or refrigerant flow can be controlled to each reheat coil independently. Once again, the reheat coils 246 and 248 can be located side-by-side behind the evaporator 242.
[0033] Finally, Figure 6 shows an embodiment 300, wherein an evaporator 336 is associated with a reheat coil 333, and wherein the reheat coil 333 is actually one of the condensers associated with a compressor 322 and a discharge valve 326. Again, the evaporator 336 would be associated with at least one more compressor in this embodiment. Furthermore, one of the condensers (the condenser 333 in this case) utilized as a reheat coil in this embodiment may represent only one of multiple reheat stages (coils) associated with the evaporator 336, and a conventional supplemental reheat coil 400 could also be employed here.
[0034] Notably, the various refrigerant systems disclosed in this application can all be utilized as air conditioning units or as heat pumps.

Claims

06CLAIMSWhat is claimed is:
1. A refrigerant system comprising: a plurality of compressors, where at least two of said compressors receive a refrigerant from a suction manifold leading from a common evaporator, refrigerant from said compressors then passing into a plurality of condensers, said plurality of condensers associated with said plurality of said compressors, where said at least two compressors are connected to separate ones of said condensers; and an evaporator receiving refrigerant from said plurality of condensers, said evaporator being associated with a reheat coil.
2. The refrigerant system as set forth in claim 1, wherein a separate expansion device is positioned to receive refrigerant downstream of said plurality of condensers.
3. The refrigerant system as set forth in claim 1, wherein at least one of said compressors has a flow control device on a discharge line leading to a corresponding one of said plurality of condensers.
4. The refrigerant system as set forth in claim 3, wherein said flow control device is of an adjustable type by one of modulation and pulsation control.
5. The refrigerant system as set forth in claim 1, wherein said at least one reheat coil includes at least two reheat coils, with said two reheat coils receiving refrigerant from distinct locations in the refrigerant cycle.
6. The refrigerant system as set forth in claim 5, wherein said reheat coils treat the same portion of air.
7. The refrigerant system as set forth in claim 5, wherein said reheat coils treat different portions of air.
8. The refrigerant system as set forth in claim 1, wherein said at least one reheat coil includes at least two reheat coils, with said two reheat coils receiving refrigerant from the same location in the refrigerant cycle.
9. The refrigerant system as set forth in claim 8, wherein said reheat coils treat the same portion of air.
10. The refrigerant system as set forth in claim 8, wherein said reheat coils treat different portions of air.
11. The refrigerant system as set forth in claim 8, wherein said reheat coils are in a serial relationship to each other.
12. The refrigerant system as set forth in claim 8, wherein said reheat coils are in a parallel relationship to each other.
13. The refrigerant cycle as set forth in claim 1, wherein said reheat coil is connected to be in a serial flow relationship with at least one of said condensers.
14. The refrigerant system as set forth in claim 13, wherein said reheat coil receives refrigerant from a location upstream of at least one of said plurality of condensers.
15. The refrigerant system as set forth in claim 13, wherein said reheat coil receives refrigerant from a location downstream of at least one of said plurality of condensers.
16. The refrigerant system as set forth in claim 1, wherein said reheat coil is connected to be in a parallel flow relationship with at least one of said condensers.
17. The refrigerant system as set forth in claim 1, wherein the refrigerant system is operated as an air conditioning system.
18. The refrigerant system as set forth in claim 1, wherein said refrigerant system is operated as a heat pump.
19. The refrigerant system as set forth in claim 1, wherein at least one of said plurality of condensers is utilized as said reheat coil.
20. The refrigerant system as set forth in claim 19, wherein said one condenser is associated with at least one other reheat coil.
21. A method of operating a refrigerant system comprising the steps of:
1) providing a refrigerant system including a plurality of compressors where at least two of said compressors receive refrigerant from a common evaporator through a suction manifold, refrigerant passing from said compressors to a plurality of condensers, with each of said condensers receiving refrigerant from one of said plurality of compressors and providing an evaporator and an associated reheat coil; and
2) operating said refrigerant system hy independently controlling refrigerant flow to each of said condensers and to said reheat coil.
22. The method as set forth in claim 21, wherein a discharge flow control device downstream of at least one of said compressors is adjusted by one of modulation and pulsation control.
23. The method as set forth in claim 21, wherein an expansion device is positioned downstream of said condensers, and said expansion device being controlled to achieve a desired condition within an environment.
24. The method as set forth in claim 21, wherein said at least one reheat coil includes at least two reheat coils, with said two reheat coils receiving refrigerant from distinct locations in the refrigerant cycle.
25. The method as set forth in claim 24, wherein said reheat coils treat the same portion of air.
26. The method as set forth in claim 24, wherein said reheat coils treat different portions of air.
27. The method as set forth in claim 21, wherein said reheat coil is connected to be in a serial flow relationship with at least one of said condensers.
28. The method as set forth in claim 27, wherein said reheat coil receives refrigerant from a location upstream of at least one of said plurality of condensers.
29. The method as set forth in claim 27, wherein said reheat coil receives refrigerant from a location downstream of at least one of said plurality of condensers.
30. The method as set forth in claim 21, wherein said reheat coil is connected to be in a parallel flow relationship with at least one of said condensers.
31. The method as set forth in claim 21, wherein at least one of said plurality of condensers is utilized as said reheat coil.
32. The method as set forth in claim 31, wherein said one condenser is associated with at least one other reheat coil.
33. The method as set forth in claim 21, wherein said at least one reheat coil includes at least two reheat coils, with said two reheat coils receiving refrigerant from the same location in the refrigerant cycle.
34. The method as set forth in claim 33, wherein said reheat coils treat the same portion of air.
35. The method as set forth in claim 33, wherein said reheat coils treat different portions of air.
36. The method as set forth in claim 33, wherein said reheat coils are in a serial relationship to each other.
37. The method as set forth in claim 33, wherein said reheat coils are in a parallel relationship to each other.
38. The method as set forth in claim 21, wherein the refrigerant system is operated as an
air conditioning system.
39. The method as set forth in claim 21, wherein said refrigerant system is operated as a
heat pump.
PCT/US2005/039306 2004-11-01 2005-10-28 Multiple condenser reheat system with tandem compressors Ceased WO2006050282A2 (en)

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US9618272B2 (en) 2012-07-12 2017-04-11 Carrier Corporation Temperature and humidity independent control air conditioning system and method

Families Citing this family (26)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2001072099A2 (en) * 2000-03-21 2001-09-27 Liebert Corporation Method and apparatus for cooling electronic enclosures
CN100529594C (en) 2003-12-05 2009-08-19 力博特公司 Cooling system for high density heat load
WO2007018994A2 (en) * 2005-08-04 2007-02-15 Liebert Corporation Electronic equipment cabinet with integrated, high capacity, cooling system, and backup ventilation system
ES2399836T3 (en) * 2006-12-21 2013-04-03 Carrier Corporation Refrigerant system with intermediate refrigerator used for an overheating function
CN101688695B (en) * 2007-04-23 2014-07-23 开利公司 CO2 refrigerant system with booster circuit
US9238398B2 (en) * 2008-09-25 2016-01-19 B/E Aerospace, Inc. Refrigeration systems and methods for connection with a vehicle's liquid cooling system
CN101413730B (en) * 2008-09-27 2010-06-02 北京库蓝科技有限公司 Energy-saving type refrigeration and dehumidification integrated machine
US20110146306A1 (en) * 2008-10-02 2011-06-23 Taras Michael F Start-up for refrigerant system with hot gas reheat
US9322581B2 (en) 2011-02-11 2016-04-26 Johnson Controls Technology Company HVAC unit with hot gas reheat
US9038404B2 (en) 2011-04-19 2015-05-26 Liebert Corporation High efficiency cooling system
US20130098086A1 (en) * 2011-04-19 2013-04-25 Liebert Corporation Vapor compression cooling system with improved energy efficiency through economization
US9845981B2 (en) 2011-04-19 2017-12-19 Liebert Corporation Load estimator for control of vapor compression cooling system with pumped refrigerant economization
US10378800B2 (en) * 2011-09-23 2019-08-13 Lennox Industries Inc. Multi-staged water manifold system for a water source heat pump
CA2790732C (en) 2011-09-26 2020-03-10 Lennox Industries Inc. Multi-staged water manifold system for a water source heat pump
US9964346B2 (en) 2012-04-30 2018-05-08 Modine Manufacturing Company Space conditioning system with hot gas reheat, and method of operating the same
US10254028B2 (en) 2015-06-10 2019-04-09 Vertiv Corporation Cooling system with direct expansion and pumped refrigerant economization cooling
DK179079B1 (en) * 2016-03-15 2017-10-09 Hsl Energy Holding Aps Heat pump
CN115388481B (en) 2017-01-12 2025-09-30 尼蓝宝股份有限公司 Control systems for temperature and relative humidity control
US10655897B2 (en) 2017-03-21 2020-05-19 Lennox Industries Inc. Method and apparatus for common pressure and oil equalization in multi-compressor systems
US10731901B2 (en) 2017-03-21 2020-08-04 Lennox Industries Inc. Method and apparatus for balanced fluid distribution in multi-compressor systems
US10495365B2 (en) 2017-03-21 2019-12-03 Lennox Industries Inc. Method and apparatus for balanced fluid distribution in tandem-compressor systems
US10465937B2 (en) 2017-08-08 2019-11-05 Lennox Industries Inc. Hybrid tandem compressor system and method of use
CN109210849A (en) * 2018-08-14 2019-01-15 安徽康佳同创电器有限公司 A kind of adjustable refrigeration system and refrigerator
US11629866B2 (en) 2019-01-02 2023-04-18 Johnson Controls Tyco IP Holdings LLP Systems and methods for delayed fluid recovery
US11530857B2 (en) 2020-11-10 2022-12-20 Rheem Manufacturing Company Air conditioning reheat systems and methods thereto
US12209783B2 (en) 2021-10-26 2025-01-28 Rheem Manufacturing Company Low ambient temperature heat pump water heater systems, heat exchangers, and methods thereto

Family Cites Families (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5875637A (en) * 1997-07-25 1999-03-02 York International Corporation Method and apparatus for applying dual centrifugal compressors to a refrigeration chiller unit
US6381970B1 (en) * 1999-03-05 2002-05-07 American Standard International Inc. Refrigeration circuit with reheat coil
KR100357988B1 (en) * 2000-05-08 2002-10-25 진금수 Heat pump type air conditioning apparatus
US6705093B1 (en) * 2002-09-27 2004-03-16 Carrier Corporation Humidity control method and scheme for vapor compression system with multiple circuits
US7287394B2 (en) * 2004-09-16 2007-10-30 Carrier Corporation Refrigerant heat pump with reheat circuit
US7155920B2 (en) * 2004-10-18 2007-01-02 Carrier Corporation Refrigerant cycle with tandem compressors and multiple condensers
US7325414B2 (en) * 2004-10-28 2008-02-05 Carrier Corporation Hybrid tandem compressor system with economizer circuit and reheat function for multi-level cooling

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US9618272B2 (en) 2012-07-12 2017-04-11 Carrier Corporation Temperature and humidity independent control air conditioning system and method

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