This application claims the priority benefit of Korean Patent Application No. 2012-0000037 and No. 2012-0150144, filed on Jan. 2, 2012 and Dec. 21, 2012 in the Korean Intellectual Property Office, the disclosures of which are incorporated herein by reference.
1. Field
Embodiments relate to heat pump in which an air conditioner and an environmentally friendly cooling/heating device are combined.
2. Description of the Related Art
Generally, a heat pump includes an outdoor unit (a compressor, a single refrigerant flow path switching member for cooling/heating, an expansion device, and an outdoor heat exchanger), an indoor unit, and a hydro unit (a hot water heat exchanger).
In the heat pump with the above-stated construction, water in a storage tank is heated by the hydro unit, which is connected in parallel to the indoor unit, with the result that in the indoor unit and the hydro unit are not simultaneously operated in a heat recovery mode.
Also, cooling/heating using the indoor unit and cooling/heating using the hydro unit may not independently performed.
Furthermore, the performance of the hydro unit may be lowered due to a refrigerant collected in the indoor unit when the indoor unit is operated.
In an aspect of one or more embodiments, there is provided simultaneous performance of an air to air mode, which is a cooling/heating mode using an indoor unit, and an air to water mode, which is a cooling/heating mode using a hydro unit, in a heat recovery mode of a heat pump.
In an aspect of one or more embodiments, there is provided independent performance of an air to air mode, which is a cooling/heating mode using an indoor unit, and an air to water mode, which is a cooling/heating mode using a hydro unit, irrespective of a heat recovery mode of a heat pump.
In an aspect of one or more embodiments, there is provided prevention of the introduction of a refrigerant into an indoor unit, which is not operated, when an air to water heating mode, which is a heating mode using a hydro unit, is performed irrespective of a heat recovery mode of a heat pump.
In an aspect of one or more embodiments, there is provided performance of only heating in an air to water mode using a hydro unit. To this end, a refrigerant flow path switching member provided between the hydro unit and a compressor may be constituted by a one-way valve, thereby reducing cost and simplifying the structure of a heat pump.
In accordance with an aspect of one or more embodiments, there is provided a heat pump includes an outdoor unit including a compressor, an outdoor heat exchanger, and a first expansion valve, an indoor unit including an indoor heat exchanger and a second expansion valve, a hydro unit including a hot water heat exchanger and a third expansion valve, the hydro unit heating or cooling water through heat exchange between a refrigerant and the water, a refrigerant flow path switching member to switch refrigerant flow paths among the compressor, the outdoor heat exchanger, the indoor unit, and the hydro unit such that heating and/or cooling through the indoor unit and the hydro unit is performed in a heat recovery mode to recover and reuse residual heat, and a controller to control the refrigerant flow path switching member such that the heating and/or the cooling is performed in the heat recovery mode.
The refrigerant flow path switching member may include a first valve to form a flow path between an outlet port of the compressor and the outdoor heat exchanger and a flow path between an inlet port of the compressor and the outdoor heat exchanger and to perform switching between the flow paths according to an operation mode, a second valve to form a flow path between the outlet port of the compressor and the indoor unit and a flow path between the inlet port of the compressor and the indoor unit and to perform switching between the flow paths according to an operation mode, and a third valve to form a flow path between the outlet port of the compressor and the hydro unit and a flow path between the inlet port of the compressor and the hydro unit and to perform switching between the flow paths according to an operation mode.
The refrigerant flow path switching member may include a first valve to form a flow path between an outlet port of the compressor and the outdoor heat exchanger and a flow path between an inlet port of the compressor and the outdoor heat exchanger and to perform switching between the flow paths according to an operation mode, a second valve to form a flow path between the outlet port of the compressor and the indoor unit and a flow path between the inlet port of the compressor and the indoor unit and to perform switching between the flow paths according to an operation mode, and a one-way valve to form a flow path between the outlet port of the compressor and the hydro unit and a flow path between the inlet port of the compressor and the hydro unit and to perform switching between the flow paths according to an operation mode.
In accordance with an aspect of one or more embodiments, there is provided a heat pump includes an outdoor unit including a compressor, an outdoor heat exchanger, and a first expansion valve, an indoor unit including an indoor heat exchanger and a second expansion valve, a hydro unit including a hot water heat exchanger and a third expansion valve, the hydro unit heating or cooling water through heat exchange between a refrigerant and the water, a refrigerant flow path switching member including a first valve to form a flow path between an outlet port of the compressor and the outdoor heat exchanger and a flow path between an inlet port of the compressor and the outdoor heat exchanger and to perform switching between the flow paths, a second valve to form a flow path between the outlet port of the compressor and the indoor unit and a flow path between the inlet port of the compressor and the indoor unit and to perform switching between the flow paths, and a third valve to form a flow path between the outlet port of the compressor and the hydro unit and a flow path between the inlet port of the compressor and the hydro unit and to perform switching between the flow paths, and a controller to control the first to third valves to perform switching between the flow paths such that simultaneous cooling and heating operations and/or simultaneous heating and cooling operations are performed in a heat recovery mode to recover and reuse residual heat.
The controller may control the first valve to form the flow path between the inlet port of the compressor and the outdoor heat exchanger, the second valve to form the flow path between the inlet port of the compressor and the indoor unit, and the third valve to form the flow path between the outlet port of the compressor and the hydro unit such that a refrigerant discharged from the compressor is supplied to both the outdoor heat exchanger and the indoor unit via the hydro unit, thereby simultaneously performing heating through the hydro unit (air to water heating) and cooling through the indoor unit (air to air cooling).
The controller may control opening degrees of the first expansion valve provided in the outdoor unit and the second expansion valve provided in the indoor unit to adjust flow rate of the refrigerant introduced into the outdoor unit and the indoor unit, thereby adjusting a heating capacity of the hydro unit and a cooling capacity of the indoor unit.
The controller may control the first valve to form the flow path between the inlet port of the compressor and the outdoor heat exchanger, the second valve to form the flow path between the outlet port of the compressor and the indoor unit, and the third valve to form the flow path between the inlet port of the compressor and the hydro unit such that a refrigerant discharged from the compressor is supplied to both the outdoor heat exchanger and the hydro unit via the indoor unit, thereby simultaneously performing heating through the indoor unit (air to air heating) and cooling through the hydro unit (air to water cooling).
The controller may control opening degrees of the first expansion valve provided in the outdoor unit and the third expansion valve provided in the hydro unit to adjust flow rate of the refrigerant introduced into the outdoor unit and the hydro unit, thereby adjusting a heating capacity of the indoor unit and a cooling capacity of the hydro unit.
The controller may control the first valve to form the flow path between the outlet port of the compressor and the outdoor heat exchanger, the second valve to form the flow path between the inlet port of the compressor and the indoor unit, and the third valve to form the flow path between the outlet port of the compressor and the hydro unit such that a refrigerant discharged from the compressor is supplied to the indoor unit via the outdoor heat exchanger and is directly supplied to the hydro unit, thereby simultaneously performing cooling through the indoor unit and heating through the hydro unit.
The controller may control opening degrees of the first expansion valve provided in the outdoor unit, the second expansion valve provided in the indoor unit, and the third expansion valve provided in the hydro unit to adjust flow rate of the refrigerant introduced into the hydro unit and the indoor unit, thereby adjusting a heating capacity of the hydro unit and a cooling capacity of the indoor unit.
The controller may control the first valve to form the flow path between the outlet port of the compressor and the outdoor heat exchanger, the second valve to form the flow path between the outlet port of the compressor and the indoor unit, and the third valve to form the flow path between the inlet port of the compressor and the hydro unit such that a refrigerant discharged from the compressor is supplied to the hydro unit via the outdoor heat exchanger and is directly supplied to the indoor unit, thereby simultaneously performing cooling through the hydro unit and heating through the indoor unit.
The controller may control opening degrees of the first expansion valve provided in the outdoor unit, the second expansion valve provided in the indoor unit, and the third expansion valve provided in the hydro unit to adjust flow rate of the refrigerant introduced into the hydro unit and the indoor unit, thereby adjusting a cooling capacity of the hydro unit and a heating capacity of the indoor unit.
The controller may control the first valve to form the flow path between the inlet port of the compressor and the outdoor heat exchanger, the second valve to form the flow path between the outlet port of the compressor and the indoor unit, the third valve to form the flow path between the inlet port of the compressor and the hydro unit, and the third expansion valve provided in the hydro unit to be closed such that a refrigerant discharged from the compressor is recovered to the outdoor unit via the indoor unit, thereby independently performing heating through the indoor unit.
The controller may control the first valve to form the flow path between the inlet port of the compressor and the outdoor heat exchanger, the second valve to form the flow path between the inlet port of the compressor and the indoor unit, the third valve to form the flow path between the outlet port of the compressor and the hydro unit, and the second expansion valve provided in the indoor unit to be closed such that a refrigerant discharged from the compressor is recovered to the outdoor unit via the hydro unit, thereby independently performing heating through the hydro unit.
The controller may control the first valve to form the flow path between the inlet port of the compressor and the outdoor heat exchanger, the second valve to form the flow path between the outlet port of the compressor and the indoor unit, and the third valve to form the flow path between the outlet port of the compressor and the hydro unit such that a refrigerant discharged from the compressor is supplied to both the indoor unit and the hydro unit, thereby performing heating through both the indoor unit and the hydro unit, and control opening degrees of the second expansion valve provided in the indoor unit and the third expansion valve provided in the hydro unit to adjust a heating capacity of the indoor unit and a heating capacity of the hydro unit.
If the sum of the heating capacity of the hydro unit and the heating capacity of the indoor unit exceeds 100% a capacity of the outdoor unit, the controller may control all flow paths of the third valve to be closed while controlling the second valve to form the flow path between the outlet port of the compressor and the indoor unit such that supply of the refrigerant to the hydro unit is interrupted, thereby performing heating through the indoor unit first, and, when the heating through the indoor unit is performed to a predetermined level, the controller may control all flow paths of the second valve to be closed and the third valve to form the flow path between the outlet port of the compressor and the hydro unit, thereby performing heating through the hydro unit.
The controller may control the first valve to form the flow path between the outlet port of the compressor and the outdoor heat exchanger, the second valve to form the flow path between the inlet port of the compressor and the indoor unit, the third valve to form the flow path between the inlet port of the compressor and the hydro unit, and the third expansion valve provided in the hydro unit to be closed such that a refrigerant discharged from the compressor is supplied to the indoor unit via the outdoor heat exchanger, thereby independently performing cooling through the indoor unit.
The controller may control the first valve to form the flow path between the outlet port of the compressor and the outdoor heat exchanger, the second valve to form the flow path between the inlet port of the compressor and the indoor unit, the third valve to form the flow path between the inlet port of the compressor and the hydro unit, and the second expansion valve provided in the indoor unit to be closed such that a refrigerant discharged from the compressor is supplied to the hydro unit via the outdoor heat exchanger, thereby independently performing cooling through the hydro unit.
The controller may control the first valve to form the flow path between the outlet port of the compressor and the outdoor heat exchanger, the second valve to form the flow path between the inlet port of the compressor and the indoor unit, and the third valve to form the flow path between the inlet port of the compressor and the hydro unit such that a refrigerant discharged from the compressor is supplied to both the indoor unit and the hydro unit via the outdoor heat exchanger, thereby performing cooling through both the indoor unit and the hydro unit.
In accordance with an aspect of one or more embodiments, there is provided a control method of a heat pump including an outdoor unit, an indoor unit, and a hydro unit to heat or cool water through heat exchange between a refrigerant and the water includes controlling a first valve to form a flow path between an outlet port of the compressor and the outdoor heat exchanger and a flow path between an inlet port of the compressor and the outdoor heat exchanger and to perform switching between the flow paths according to an operation mode, controlling a second valve to form a flow path between the outlet port of the compressor and the indoor unit and a flow path between the inlet port of the compressor and the indoor unit and to perform switching between the flow paths according to an operation mode, controlling a third valve to form a flow path between the outlet port of the compressor and the hydro unit and a flow path between the inlet port of the compressor and the hydro unit and to perform switching between the flow paths according to an operation mode, and controlling the first, second, and third valves to perform switching between the flow paths such that simultaneous cooling and heating operations and/or simultaneous heating and cooling operations are performed in a heat recovery mode to recover and reuse residual heat.
In accordance with an aspect of one or more embodiments, there is provided a heat pump includes an outdoor unit including a compressor, an outdoor heat exchanger, and a first expansion valve, an indoor unit including an indoor heat exchanger and a second expansion valve, a hydro unit including a hot water heat exchanger and a third expansion valve, the hydro unit heating or cooling water through heat exchange between a refrigerant and the water, a refrigerant flow path switching member including a first valve to form a flow path between an outlet port of the compressor and the outdoor heat exchanger and a flow path between an inlet port of the compressor and the outdoor heat exchanger and to perform switching between the flow paths, a second valve to form a flow path between the outlet port of the compressor and the indoor unit and a flow path between the inlet port of the compressor and the indoor unit and to perform switching between the flow paths, and a one-way valve to form a flow path between the outlet port of the compressor and the hydro unit and a flow path between the inlet port of the compressor and the hydro unit and to perform switching between the flow paths, and a controller to control the first valve and the one-way valve to perform switching between the flow paths such that simultaneous cooling and heating operations and/or simultaneous heating and cooling operations are performed in a heat recovery mode to recover and reuse residual heat.
The controller may control the first valve to form the flow path between the inlet port of the compressor and the outdoor heat exchanger, the second valve to form the flow path between the inlet port of the compressor and the indoor unit, and the one-way valve to form the flow path between the outlet port of the compressor and the hydro unit such that a refrigerant discharged from the compressor is supplied to both the outdoor heat exchanger and the indoor unit via the hydro unit, thereby simultaneously performing heating through the hydro unit (air to water heating) and cooling through the indoor unit (air to air cooling).
The controller may control opening degrees of the first expansion valve provided in the outdoor unit and the second expansion valve provided in the indoor unit to adjust flow rate of the refrigerant introduced into the outdoor unit and the indoor unit, thereby adjusting a heating capacity of the hydro unit and a cooling capacity of the indoor unit.
The controller may control the first valve to form the flow path between the outlet port of the compressor and the outdoor heat exchanger, the second valve to form the flow path between the inlet port of the compressor and the indoor unit, and the one-way valve to form the flow path between the outlet port of the compressor and the hydro unit such that a refrigerant discharged from the compressor is supplied to the indoor unit via the outdoor heat exchanger and is directly supplied to the hydro unit, thereby simultaneously performing cooling through the indoor unit (air to air cooling) and heating through the hydro unit (air to water heating).
The controller may control opening degrees of the first expansion valve provided in the outdoor unit, the second expansion valve provided in the indoor unit, and the third expansion valve provided in the hydro unit to adjust flow rate of the refrigerant introduced into the hydro unit and the indoor unit, thereby adjusting a heating capacity of the hydro unit and a cooling capacity of the indoor unit.
The controller may control the first valve to form the flow path between the inlet port of the compressor and the outdoor heat exchanger, the second valve to form the flow path between the outlet port of the compressor and the indoor unit, the one-way valve to be closed such that the flow path between the inlet port of the compressor and the hydro unit is not formed, and the third expansion valve provided in the hydro unit to be closed such that a refrigerant discharged from the compressor is recovered to the outdoor unit via the indoor unit, thereby independently performing heating through the indoor unit (air to air heating).
The controller may control the first valve to form the flow path between the inlet port of the compressor and the outdoor heat exchanger, the second valve to form the flow path between the inlet port of the compressor and the indoor unit, the one-way valve to form the flow path between the outlet port of the compressor and the hydro unit, and the second expansion valve provided in the indoor unit to be closed such that a refrigerant discharged from the compressor is recovered to the outdoor unit via the hydro unit, thereby independently performing heating through the hydro unit (air to water heating).
The controller may control the first valve to form the flow path between the inlet port of the compressor and the outdoor heat exchanger, the second valve to form the flow path between the outlet port of the compressor and the indoor unit, and the one-way valve to form the flow path between the outlet port of the compressor and the hydro unit such that a refrigerant discharged from the compressor is supplied to both the indoor unit and the hydro unit, thereby performing heating through both the indoor unit and the hydro unit (air to air heating+air to water heating), and control opening degrees of the second expansion valve provided in the indoor unit and the third expansion valve provided in the hydro unit to adjust a heating capacity of the indoor unit and a heating capacity of the hydro unit.
If the sum of the heating capacity of the hydro unit and the heating capacity of the indoor unit exceeds 100% a capacity of the outdoor unit, the controller may control all flow paths of the one-way valve to be closed while controlling the second valve to form the flow path between the outlet port of the compressor and the indoor unit such that supply of the refrigerant to the hydro unit is interrupted, thereby performing heating through the indoor unit first, and, when the heating through the indoor unit is performed to a predetermined level, the controller may control all flow paths of the second valve to be closed and the one-way valve to form the flow path between the outlet port of the compressor and the hydro unit, thereby performing heating through the hydro unit.
The controller may control the first valve to form the flow path between the outlet port of the compressor and the outdoor heat exchanger, the second valve to form the flow path between the inlet port of the compressor and the indoor unit, the one-way valve to be closed such that the flow path between the inlet port of the compressor and the hydro unit is formed, and the third expansion valve provided in the hydro unit to be closed such that a refrigerant discharged from the compressor is supplied to the indoor unit via the outdoor heat exchanger, thereby independently performing cooling through the indoor unit (air to air cooling).
In accordance with an aspect of one or more embodiments, there is provided a control method of a heat pump including an outdoor unit, an indoor unit, and a hydro unit to heat water through heat exchange between a refrigerant and the water includes controlling a first valve to form a flow path between an outlet port of the compressor and the outdoor heat exchanger and a flow path between an inlet port of the compressor and the outdoor heat exchanger and to perform switching between the flow paths according to an operation mode, controlling a second valve to form a flow path between the outlet port of the compressor and the indoor unit and a flow path between the inlet port of the compressor and the indoor unit and to perform switching between the flow paths according to an operation mode, controlling a one-way valve to form a flow path between the outlet port of the compressor and the hydro unit and to open or close the flow path according to an operation mode, and controlling the first valve, the second valve, and the one-way valve to perform switching between the flow paths such that simultaneous cooling and heating operations are performed in a heat recovery mode to recover and reuse residual heat. This control method may further provide controlling the one-way valve to form a sixth flow path between the inlet port of the compressor and the hydro unit and to open or close the flow path according to an operation mode, and controlling the first valve, the second valve, and the one-way valve to perform switching between the first through sixth flow paths such that simultaneous cooling and heating operations are performed in a heat recovery mode to recover and reuse residual heat.
These and/or other aspects of embodiments will become apparent and more readily appreciated from the following description of embodiments, taken in conjunction with the accompanying drawings of which:
Reference will now be made in detail to embodiments, examples of which are illustrated in the accompanying drawings, wherein like reference numerals refer to like elements throughout.
The outdoor unit 102 includes a compressor 108, an accumulator 110, refrigerant flow path switching members 112a, 112b, and 112c, an outdoor heat exchanger 114, and a first expansion device 116. The refrigerant flow path switching members 112a, 112b, and 112c include a first four-way valve 112a, a second four-way valve 112b, and a third four-way valve 112c. The first expansion device 116 is realized by an electronic expansion valve. The first expansion device 116 expands a refrigerant, adjusts flow rate of the refrigerant, and interrupts flow of the refrigerant as needed. Another expansion device to perform the above functions may be used.
The compressor 108 compresses a low-temperature, low-pressure refrigerant, suctioned through an inlet port 108a, and discharges a high-temperature, high-pressure refrigerant through an outlet port 108b. The compressor 108 may include a single inverter compressor, the compression capacity of which is changed depending upon input frequencies, or a plurality of constant-speed compressors having a fixed compression capacity. The inlet port 108a of the compressor 108 is connected to the accumulator 110. The outlet port 108b of the compressor 108 is connected to the first four-way valve 112a, the second four-way valve 112b, and the third four-way valve 112c. The first four-way valve 112a, the second four-way valve 112b, and the third four-way valve 112c are also connected to the accumulator 110.
The refrigerant flow path switching members 112a, 112b, and 112c include the first four-way valve 112a, the second four-way valve 112b, and the third four-way valve 112c. The refrigerant flow path switching members 112a, 112b, and 112c selectively switch refrigerant flow paths in a heat recovery mode, a heating mode, and a cooling mode to secure refrigerant flow paths corresponding to the respective modes. The heat recovery mode is an operation mode to recover and reuse residual heat. A heat exchanger is used to recover heat.
The first four-way valve 112a performs switching between a flow path a1-a3 between the outlet port 108b of the compressor 108 and the outdoor heat exchanger 114 and a flow path a1-a2 between the inlet port 108a of the compressor 108 and the outdoor heat exchanger 114.
The second four-way valve 112b performs switching between a flow path b1-b3 between the outlet port 108b of the compressor 108 and the indoor unit 104 and a flow path b1-b2 between the inlet port 108a of the compressor 108 and the indoor unit 104.
The third four-way valve 112c performs switching between a flow path c1-c3 between the outlet port 108b of the compressor 108 and the hydro unit 106 and a flow path c1-c2 between the inlet port 108a of the compressor 108 and the hydro unit 106.
Each of the four-way valves 112a, 112b, and 112c has four ports, through which a refrigerant flows. In this embodiment, one of the ports is closed, and the other three ports are used. In
The outdoor heat exchanger 114 functions as a condenser in a cooling mode and as an evaporator in a heating mode. The first expansion device 116 is connected to one side of the outdoor heat exchanger 114. At the outdoor heat exchanger 114 may be mounted an outdoor fan (not shown) to improve heat exchange efficiency between a refrigerant and outdoor air.
The indoor unit 104 includes an indoor heat exchanger 118 and a second expansion device 120. The indoor heat exchanger 118 functions as an evaporator in a cooling mode and as a condenser in a heating mode. The second expansion device 120 is connected to one side of the indoor heat exchanger 118. The second expansion device 120 is realized by an electronic expansion valve. The second expansion device 120 expands a refrigerant, adjusts flow rate of the refrigerant, and interrupts flow of the refrigerant as needed. Another expansion device to perform the above functions may be used. At the indoor heat exchanger 118 may be mounted an indoor fan (not shown) to improve heat exchange efficiency between a refrigerant and indoor air. According to circumstances, two or more indoor units 104 may be provided.
The hydro unit 106 heats/cools water through heat exchange between a refrigerant and water such that the heated/cooled water is used for heating/cooling. The hydro unit 106 includes a hot water heat exchanger 122 and a third expansion device 124. Refrigerant heat exchange plates, through which a refrigerant flows, and water heat exchange plates, through which water flows, are alternately arranged in the hot water heat exchanger 122. Cold water/hot water is generated through heat exchange between the refrigerant heat exchange plates and the water heat exchange plates. A refrigerant, compressed by the compressor 108, may be directly supplied to the hot water heat exchanger 122 of the hydro unit 106, or a refrigerant, having passed through the outdoor unit 102 or the indoor unit 104, may be supplied to the hot water heat exchanger 122 of the hydro unit 106. The cold water/hot water generated by the hydro unit 106 is supplied to a water supply tank 126, a fan coil unit 128, and floor cooling/heating device 130 such that the cold water/hot water is used for cold water/hot water supply and cooling/heating. The third expansion device 124 is realized by an electronic expansion valve. The third expansion device 124 expands a refrigerant, adjusts flow rate of the refrigerant, and interrupts flow of the refrigerant as needed. Another expansion device to perform the above functions may be used.
In this embodiment, an air to air mode is a cooling/heating mode using the indoor unit 104. In the air to air mode, cooling/heating is performed through heat exchange between a refrigerant and air in the indoor unit 104. Also, an air to water mode is a cooling/heating mode using the hydro unit 106. In the air to water mode, cooling/heating is performed through heat exchange between a refrigerant and water in the hot water heat exchanger 122 of the hydro unit 106. In the air to water mode, heat exchange may be performed between air and the water having been heat-exchanged with the refrigerant to perform cooling/heating.
Heat Recovery Heating Mode: Air to Water Heating>Air to Air Cooling
In the heat recovery heating mode shown in
As shown in
Heat Recovery Heating Mode: Air to Air Heating>Air to Water Cooling
In the heat recovery heating mode shown in
As shown in
Heat Recovery Cooling Mode: Air to Air Cooling>Air to Water Heating
In the heat recovery cooling mode shown in
As shown in
Heat Recovery Cooling Mode: Air to Water Cooling>Air to Air Heating
In the heat recovery cooling mode shown in
As shown in
Air to Air Heating Mode
In the air to air heating mode shown in
As shown in
Air to Water Heating Mode
In the air to water heating mode shown in
As shown in
In the air to water heating mode, the indoor unit 104 is not used since heating is performed using the hydro unit 106. In
Combination Heating Mode of Air to Air Heating Mode and Air to Water Heating Mode
In the combination heating mode, in which the air to air heating mode and the air to water heating mode are simultaneously performed, shown in
As shown in
Air to Air Cooling Mode
In the air to air cooling mode shown in
As shown in
Air to Water Cooling Mode
In the air to water cooling mode shown in
As shown in
Combination Cooling Mode of Air to Air Cooling Mode and Air to Water Cooling Mode
In the combination cooling mode, in which the air to air cooling mode and the air to water cooling mode are simultaneously performed, shown in
As shown in
The outdoor unit 102 includes a compressor 108, an accumulator 110, refrigerant flow path switching members 112a, 112b, and 112d, an outdoor heat exchanger 114, and a first expansion device 116. The refrigerant flow path switching members 112a, 112b, and 112c include a first four-way valve 112a, a second four-way valve 112b, and a one-way valve 112d. The first expansion device 116 is realized by an electronic expansion valve. The first expansion device 116 expands a refrigerant, adjusts flow rate of the refrigerant, and interrupts flow of the refrigerant as needed. Another expansion device to perform the above functions may be used. The one-way valve 112d is not limited to a valve, through which a fluid flows only in one direction. The other pots) of a two-way valve, a three-way valve, or a four-way valve may be closed such that the two-way valve, the three-way valve, or the four-way valve functions as a one-way valve.
The compressor 108 compresses a low-temperature, low-pressure refrigerant, suctioned through an inlet port 108a, and discharges a high-temperature, high-pressure refrigerant through an outlet port 108b. The compressor 108 may include a single inverter compressor, the compression capacity of which is changed depending upon input frequencies, or a plurality of constant-speed compressors having a fixed compression capacity. The inlet port 108a of the compressor 108 is connected to the accumulator 110. The outlet port 108b of the compressor 108 is connected to the first four-way valve 112a, the second four-way valve 112b, and the one-way valve 112d. The first four-way valve 112a and the second four-way valve 112b are also connected to the accumulator 110.
The refrigerant flow path switching members 112a, 112b, and 112d include the first four-way valve 112a, the second four-way valve 112b, and the one-way valve 112d. The refrigerant flow path switching members 112a, 112b, and 112d selectively switch refrigerant flow paths in a heat recovery mode, a heating mode, and a cooling mode to secure refrigerant flow paths corresponding to the respective modes.
The first four-way valve 112a performs switching between a flow path a1-a3 between the outlet port 108b of the compressor 108 and the outdoor heat exchanger 114 and a flow path a1-a2 between the inlet port 108a of the compressor 108 and the outdoor heat exchanger 114.
The second four-way valve 112b performs switching between a flow path b1-b3 between the outlet port 108b of the compressor 108 and the indoor unit 104 and a flow path b1-b2 between the inlet port 108a of the compressor 108 and the indoor unit 104.
The one-way valve 112d opens or closes a flow path d1-d2 between the outlet port 108b of the compressor 108 and the hydro unit 106.
Each of the four-way valves 112a and 112b has four ports, through which a refrigerant flows. In this embodiment, one of the ports is closed, and the other three ports are used. In
The outdoor heat exchanger 114 functions as a condenser in a cooling mode and as an evaporator in a heating mode. The first expansion device 116 is connected to one side of the outdoor heat exchanger 114. At the outdoor heat exchanger 114 may be mounted an outdoor fan (not shown) to improve heat exchange efficiency between a refrigerant and outdoor air.
The indoor unit 104 includes an indoor heat exchanger 118 and a second expansion device 120. The indoor heat exchanger 118 functions as an evaporator in a cooling mode and as a condenser in a heating mode. The second expansion device 120 is connected to one side of the indoor heat exchanger 118. The second expansion device 120 is realized by an electronic expansion valve. The second expansion device 120 expands a refrigerant, adjusts flow rate of the refrigerant, and interrupts flow of the refrigerant as needed. Another expansion device to perform the above functions may be used. At the indoor heat exchanger 118 may be mounted an indoor fan (not shown) to improve heat exchange efficiency between a refrigerant and indoor air. According to circumstances, two or more indoor units 104 may be provided.
The hydro unit 106 heats water through heat exchange between a refrigerant and water such that the heated water is used for heating. The hydro unit 106 includes a hot water heat exchanger 122 and a third expansion device 124. Refrigerant heat exchange plates, through which a refrigerant flows, and water heat exchange plates, through which water flows, are alternately arranged in the hot water heat exchanger 122. Hot water is generated through heat exchange between the refrigerant heat exchange plates and the water heat exchange plates. A refrigerant, compressed by the compressor 108, is directly supplied to the hot water heat exchanger 122 of the hydro unit 106. The hot water generated by the hydro unit 106 is supplied to a water supply tank 126, a fan coil unit 128, and floor heating device 130 such that the hot water is used for hot water supply and heating. The third expansion device 124 is realized by an electronic expansion valve. The third expansion device 124 expands a refrigerant, adjusts flow rate of the refrigerant, and interrupts flow of the refrigerant as needed. Another expansion device to perform the above functions may be used.
In this embodiment, an air to air mode is a cooling/heating mode using the indoor unit 104. In the air to air mode, cooling/heating is performed through heat exchange between a refrigerant and air in the indoor unit 104. Also, an air to water mode is a heating mode using the hydro unit 106. In the air to water mode, heating is performed through heat exchange between a refrigerant and water in the hot water heat exchanger 122 of the hydro unit 106. In the air to water mode, heat exchange may be performed between air and the water having been heat-exchanged with the refrigerant to perform heating.
Heat Recovery Heating Mode: Air to Water Heating>Air to Air Cooling
In the heat recovery heating mode shown in
As shown in
Heat Recovery Cooling Mode: Air to Air Cooling>Air to Water Heating
In the heat recovery cooling mode shown in
As shown in
Air to Air Heating Mode
In the air to air heating mode shown in
As shown in
Air to Water Heating Mode
In the air to water heating mode shown in
As shown in
In the air to water heating mode, the indoor unit 104 is not used since heating is performed using the hydro unit 106. In
Combination Heating Mode of Air to Air Heating Mode and Air to Water Heating Mode
In the combination heating mode, in which the air to air heating mode and the air to water heating mode are simultaneously performed, shown in
As shown in
Air to Air Cooling Mode
In the air to air cooling mode shown in
As shown in
In an aspect of one or more embodiments, there is provided an air to air mode, which is a cooling/heating mode using the indoor unit, and an air to water mode, which is a cooling/heating mode using the hydro unit, may be simultaneously performed in a heat recovery mode of the heat pump.
In an aspect of one or more embodiments, there is provided an air to air mode, which is a cooling/heating mode using the indoor unit, and an air to water mode, which is a cooling/heating mode using the hydro unit, may be independently performed irrespective of the heat recovery mode of the heat pump.
In an aspect of one or more embodiments, there is provided an introduction of a refrigerant into the indoor unit, which is not operated, may be prevented when an air to water heating mode, which is a heating mode using the hydro unit, is performed irrespective of the heat recovery mode of the heat pump, thereby preventing efficiency of the indoor unit from being lowered due to the refrigerant collected in the indoor unit when the indoor unit is operated.
In an aspect of one or more embodiments, only heating may be performed in an air to water mode using the hydro unit. To this end, the refrigerant flow path switching member provided between the hydro unit and the compressor may be constituted by a one-way valve, thereby reducing cost and simplifying the structure of the heat pump.
Although a few embodiments have been shown and described, it would be appreciated by those skilled in the art that changes may be made in these embodiments without departing from the principles and spirit of the disclosure, the scope of which is defined in the claims and their equivalents.
Number | Date | Country | Kind |
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10-2012-0000037 | Jan 2012 | KR | national |
10-2012-0150144 | Dec 2012 | KR | national |