Heat pump device and heat pump system
The heat pump device uses provisional values from functioning sensors to maintain operation when temperature sensors fail, reducing downtime and discomfort by controlling compressor frequency and other components.
Patent Information
- Application Number
- JP2024564112
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-12-16
- Publication Date
- 2025-12-12
- Estimated Expiration
- 2042-12-16
AI Technical Summary
Heat pump devices often abnormally shut down when sensors measuring refrigerant temperature on the discharge or suction side fail, leading to prolonged downtime and user inconvenience.
The heat pump device includes a control device that derives provisional values from functioning sensors when a discharge or suction temperature sensor fails, reducing the maximum operating frequency of the compressor and controlling other components based on these provisional values.
Enables the heat pump device to continue operating even when one or both discharge and suction temperature sensors fail, minimizing shutdown duration and user discomfort.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a heat pump device and a heat pump system that adjust the temperature of a temperature-adjustable object based on the temperatures of a refrigerant on the discharge side and the suction side of a compressor. [Background technology]
[0002] Conventionally, a refrigerant circuit of a heat pump device such as an air conditioner is provided with multiple sensors that measure the temperature of the refrigerant, etc. A control device for the heat pump device controls the operation of controlled objects such as a compressor and a blower based on the measurement results from the multiple sensors (see Patent Document 1). That is, the control device derives values of control parameters for controlling the compressor, blower, etc. based on the measurement results from each sensor, and performs control based on the derived values of the control parameters. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2011-133136 Summary of the Invention [Problem to be solved by the invention]
[0004] If any of the sensors fails, the control device will be unable to derive the value of the control parameter, which will result in an inability to control the heat pump device. As a result, the heat pump device will abnormally shut down. It often takes a long time for the heat pump device to recover after the abnormal shutdown, and during that time, the user will be unable to use the heat pump device, which is inconvenient.
[0005] The present disclosure has been made to solve the above-mentioned problems, and aims to provide a heat pump device that can operate even if a sensor that measures the temperature of the refrigerant on the discharge side or suction side of the compressor fails, and a heat pump system that includes the heat pump device. [Means for solving the problem]
[0006] The heat pump device according to the present disclosure is a heat pump device that cools or heats a temperature adjustment target by a refrigerant circulating through a refrigerant circuit, and includes: a load device including a load heat exchanger that exchanges heat between the temperature adjustment target and the refrigerant; a heat source device that adjusts the temperature of the refrigerant circulating through the load heat exchanger; a throttling device that decompresses and expands the refrigerant; and a group of sensors that measure physical quantities of the refrigerant circulating through the refrigerant circuit, wherein the heat source device includes a compressor that compresses the refrigerant and a heat source heat exchanger that exchanges heat between the refrigerant and the heat exchange target, and the compressor, the heat source heat exchanger, the throttling device, and the load heat exchanger are included in the refrigerant circuit, and the group of sensors includes a discharge pressure sensor that measures the pressure of the refrigerant on the discharge side of the compressor, and a pressure sensor that measures the pressure of the refrigerant on the discharge side of the compressor. a suction pressure sensor that measures the pressure of the refrigerant on the suction side of the compressor, a discharge temperature sensor that measures the temperature of the refrigerant on the discharge side of the compressor, an suction temperature sensor that measures the temperature of the refrigerant on the suction side of the compressor, and a load object temperature sensor that measures the temperature of the temperature control object flowing into the load heat exchanger, wherein the discharge pressure sensor, the suction pressure sensor, the discharge temperature sensor, and the suction temperature sensor are provided in the heat source device, and the load object temperature sensor is provided in the load device, and the heat pump device further has a control device that controls the control object including the compressor based on the measurement results by the group of sensors, and when one of the discharge temperature sensor and the suction temperature sensor fails, reducing the maximum operating frequency of the compressor to a value lower than the maximum operating frequency during operation when the discharge temperature sensor and the suction temperature sensor are not malfunctioning;A provisional value is derived based on the measurement results from at least one of the other of the discharge temperature sensor and the suction temperature sensor, the discharge pressure sensor, the suction pressure sensor, and the load object temperature sensor, and the controlled object is controlled based on the provisional value instead of the measurement result from one of the discharge temperature sensor and the suction temperature sensor.
[0007] A heat pump system according to the present disclosure is a heat pump system having a plurality of heat pump devices that cool or heat a temperature-adjusted object by a refrigerant circulating through a refrigerant circuit, and having a management system for managing the plurality of heat pump devices, wherein the heat pump device includes a compressor that compresses the refrigerant, a heat source heat exchanger that exchanges heat between the refrigerant and the heat exchange object, a throttling device that decompresses and expands the refrigerant, a load heat exchanger that exchanges heat between the refrigerant and the temperature-adjusted object, a group of sensors that measure physical quantities of the refrigerant circulating through the refrigerant circuit, and a management system for managing the plurality of heat pump devices based on the measurement results of the group of sensors. and a control device for controlling controlled objects including the compressor, the heat source heat exchanger, the throttling device, and the load heat exchanger, wherein the compressor, the heat source heat exchanger, the throttling device, and the load heat exchanger are included in the refrigerant circuit, and the sensor group includes a heat source temperature sensor that measures the temperature of the refrigerant on the discharge side or the suction side of the compressor, and when the heat source temperature sensor of a first heat pump device that is one of the heat pump devices among the plurality of heat pump devices fails, and a second heat pump device that is a heat pump device among the plurality of heat pump devices and whose heat source temperature sensor is not failed satisfies a predetermined specific condition, reducing the maximum operating frequency of the compressor to a value lower than the maximum operating frequency during operation when the heat source temperature sensor of the first heat pump device is not malfunctioning; The measurement result by the heat source temperature sensor of the second heat pump device is used as a provisional value in place of the measurement result by the heat source temperature sensor of the first heat pump device, and the control device of the first heat pump device is instructed to control the controlled object in the first heat pump device based on the provisional value instead of the measurement result by the heat source temperature sensor in the first heat pump device. [Effects of the Invention]
[0008] According to a heat pump apparatus disclosed herein, when one or both of the discharge temperature sensor and the inlet temperature sensor fail, the control device derives a provisional value based on the measurement results of the other of the discharge temperature sensor and the inlet temperature sensor, the discharge pressure sensor, the inlet pressure sensor, and / or the load temperature sensor. The control device then controls the controlled object based on the provisional value instead of the measurement result of the one of the discharge temperature sensor and the inlet temperature sensor. Therefore, the heat pump apparatus can continue to operate even when one or both of the discharge temperature sensor and the inlet temperature sensor fail. Furthermore, according to a heat pump system disclosed herein, when the heat source temperature sensor of a first heat pump apparatus fails but a second heat pump apparatus whose heat source temperature sensor is not failed satisfies a specific condition, the management system substitutes the measurement result of the heat source temperature sensor of the second heat pump apparatus for the measurement result of the heat source temperature sensor of the first heat pump apparatus as a provisional value instead of the measurement result of the heat source temperature sensor of the first heat pump apparatus. The management system then instructs the control device of the first heat pump apparatus to control the first heat pump apparatus based on the provisional value instead of the measurement result of the heat source temperature sensor of the first heat pump apparatus. Therefore, each heat pump device in the heat pump system can continue to operate even if the heat source temperature sensor fails. [Brief explanation of the drawings]
[0009] [Figure 1] 1 is a schematic diagram illustrating a configuration example of a heat pump device according to a first embodiment. [Figure 2] 4 is a flowchart illustrating an example of a process for setting an emergency operation by the heat pump apparatus according to the first embodiment. [Figure 3] 4 is a flowchart illustrating a flow of a process of deriving a provisional value and a control process based on the provisional value, performed by the control device in the first embodiment. [Figure 4] 10 is a flowchart showing a first example of a process for deriving a provisional value by the control device when the faulty sensor is a discharge temperature sensor in the first embodiment. [Figure 5]10 is a flowchart showing a second example of the process of deriving a provisional value by the control device when the faulty sensor is a discharge temperature sensor in the first embodiment. [Figure 6] 10 is a flowchart showing a third example of the process of deriving a provisional value by the control device when the faulty sensor is a discharge temperature sensor in the first embodiment. [Figure 7] 10 is a flowchart showing a first example of a process for deriving a provisional value by the control device when the faulty sensor is an intake temperature sensor in the first embodiment. [Figure 8] 10 is a flowchart showing a second example of the process of deriving a provisional value by the control device when the faulty sensor is an intake temperature sensor in the first embodiment. [Figure 9] 2 is a block diagram illustrating a hardware configuration of a control device according to the first embodiment. FIG. [Figure 10] FIG. 10 is a schematic diagram showing a configuration example of a heat pump device according to a second embodiment. [Figure 11] 10 is a flowchart illustrating a process of deriving a provisional value by the first control device according to the second embodiment. [Figure 12] 10 is a flowchart illustrating a process of determining whether or not a second heat source device that satisfies a specific condition is present, performed by a first control device in the second embodiment. [Figure 13] FIG. 10 is a block diagram illustrating a hardware configuration of a control device according to a second embodiment. [Figure 14] FIG. 10 is a schematic diagram showing a configuration example of a heat pump system according to a third embodiment. [Figure 15] 11 is a flowchart showing a flow of a process for deriving a provisional value and a control process based on the provisional value in the third embodiment. [Figure 16] 11 is a flowchart illustrating a process of determining whether or not a second heat pump device that satisfies a specific condition is present, performed by a management system in a third embodiment. [Figure 17] FIG. 11 is a block diagram illustrating a hardware configuration of a management system according to a third embodiment. [Figure 18]13 is a flowchart showing a first example of a process for determining whether or not there is device information of a second heat pump device that satisfies a specific condition, performed by the management system in the fourth embodiment. [Figure 19] 13 is a flowchart showing a second example of the process of determining whether or not there is device information of a second heat pump device that satisfies a specific condition, performed by the management system in the fourth embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0010] A heat pump device 100 and a heat pump system 200 according to an embodiment will be described in detail below with reference to the drawings. Note that the size relationships between the components in the drawings may differ from the actual size relationships.
[0011] Embodiment 1 FIG. 1 is a schematic diagram showing an example configuration of a heat pump device 100 according to a first embodiment. The heat pump device 100 has a refrigerant circuit 1 through which a refrigerant circulates, and adjusts the temperature of a temperature-adjustable object, such as indoor air or water supplied to a user, to a temperature desired by the user by heat exchange between the refrigerant and the object. Examples of the heat pump device 100 include an air conditioner and a water heater. FIG. 1 shows an example in which the heat pump device 100 is an air conditioner. Note that the refrigerant in the first embodiment is a non-azeotropic refrigerant mixture. The heat pump device 100 includes a heat source device 3 and a load device 4 connected by a refrigerant pipe 2 on the refrigerant circuit 1.
[0012] The heat source device 3 includes a compressor 30, a flow path switching device 31, a heat source heat exchanger 32, a heat source blower 33, and an accumulator 34. The compressor 30, the flow path switching device 31, the heat source heat exchanger 32, the heat source blower 33, and the accumulator 34 are arranged inside a housing that forms the outer shell of the heat source device 3. The housing of the heat source device 3 is schematically shown by a dashed square in FIG. 1 .
[0013] The load device 4 includes a load heat exchanger 40, a load fan 41, and a throttling device 42. The load heat exchanger 40, the load fan 41, and the throttling device 42 are arranged inside a housing that forms the outer shell of the load device 4. The housing of the load device 4 is schematically shown by a dashed-dotted rectangle in FIG. 1 .
[0014] The accumulator 34, the compressor 30, the flow path switching device 31, the heat source heat exchanger 32, the expansion device 42, and the load heat exchanger 40 are connected in sequence by refrigerant piping 2. The load heat exchanger 40 and the flow path switching device 31 are also connected by refrigerant piping 2.
[0015] The compressor 30 draws refrigerant from the refrigerant pipe 2 and compresses the drawn refrigerant. Then, the compressor 30 discharges the compressed refrigerant into the refrigerant pipe 2. The compressor 30 is a scroll type, rotary type, reciprocating type, screw type, or other compressor, and is an inverter compressor whose capacity can be controlled by an inverter.
[0016] The flow path switching device 31 is, for example, a four-way valve, and switches the refrigerant flow path and the flow direction, which is the direction in which the refrigerant flows. The heat pump device 100 can switch between cooling operation and heating operation through switching processing by the flow path switching device 31. Note that the cooling operation refers to an operation in which the heat pump device 100 cools a temperature-adjusted object, such as cooling operation. The heating operation refers to an operation in which the heat pump device 100 heats a temperature-adjusted object, such as heating operation. The solid line portion of the flow path switching device 31 shown in FIG. 1 indicates the refrigerant flow path during cooling operation, and the dashed line portion indicates the refrigerant flow path during heating operation. Furthermore, the solid line arrow in FIG. 1 indicates the refrigerant flow direction during cooling operation, and the dashed line arrow indicates the refrigerant flow direction during heating operation.
[0017] The heat pump device 100 may perform only one of the cooling operation and the heating operation. When the heat pump device 100 performs only the cooling operation of the cooling operation and the heating operation, the heat pump device 100 includes a refrigerant flow path indicated by a solid line in the flow path switching device 31 in FIG. 1 and configured by the refrigerant pipe 2, instead of the flow path switching device 31. When the heat pump device 100 performs only the heating operation of the cooling operation and the heating operation, the heat pump device 100 includes a refrigerant flow path indicated by a dashed line in the flow path switching device 31 in FIG. 1 and configured by the refrigerant pipe 2, instead of the flow path switching device 31.
[0018] The heat source heat exchanger 32 exchanges heat between the refrigerant and a heat exchange target. Here, the heat exchange target refers to air, water, or the like that is used to adjust the temperature of the refrigerant provided to the load heat exchanger 40 by exchanging heat with the refrigerant. Examples of the heat exchange target include the air outdoors or around the refrigerator, or water discharged outdoors. During cooling operation, the heat source heat exchanger 32 functions as a condenser that cools and condenses the refrigerant, and during heating operation, it functions as an evaporator that heats and evaporates the refrigerant.
[0019] The heat source blower 33 includes a heat source fan motor 33A and a heat source fan 33B. The heat source fan 33B is, for example, a propeller fan, a turbo fan, or a sirocco fan. The heat source blower 33 guides the heat exchange target to the heat source heat exchanger 32 and sends the heat exchange target after heat exchange with the refrigerant to the outside of the heat source heat exchanger 32. Note that if the heat exchange target is a liquid such as water, the heat pump device 100 does not need to include the heat source blower 33. In this case, the heat pump device 100 may include a pump such as a water pump.
[0020] The accumulator 34 is provided on the suction side of the compressor 30, and stores excess refrigerant resulting from differences in the operating states between cooling operation and heating operation, or excess refrigerant resulting from transient changes in operation. The accumulator 34 separates and stores liquid refrigerant from the inflowing refrigerant, and allows only gas refrigerant to flow to the compressor 30.
[0021] The load heat exchanger 40 exchanges heat between the refrigerant and the temperature-adjustable object, and adjusts the temperature of the temperature-adjustable object to a temperature desired by the user. The load heat exchanger 40 functions as a condenser that condenses the refrigerant during heating operation, and as an evaporator that evaporates the refrigerant during cooling operation.
[0022] The load fan 41 includes a load fan motor 41A and a load fan 41B. The load fan 41B is, for example, a crossflow fan, a turbo fan, or a sirocco fan. The load fan 41 guides the temperature-adjusted object to the load heat exchanger 40 and sends the temperature-adjusted object after heat exchange with the refrigerant into the room or the inside of a refrigerator. If the temperature-adjusted object is a liquid such as water, the heat pump device 100 does not need to include the load fan 41. In this case, the heat pump device 100 may include a pump such as a water pump.
[0023] Specifically, the expansion device 42 is an expansion valve that reduces the pressure of the refrigerant and expands it. The expansion valve is, for example, an electric expansion valve whose opening degree can be variably controlled. Note that, although FIG. 1 shows an example in which the expansion device 42 is provided inside the housing of the load device 4, the expansion device 42 may also be provided outside the load device 4.
[0024] The state and flow of the refrigerant during cooling operation and heating operation by the heat pump unit 100 will be described below. First, the cooling operation will be described. The refrigerant drawn into the compressor 30 is compressed, becoming a high-temperature, high-pressure gas refrigerant, which is then discharged from the compressor 30. The gas refrigerant discharged from the compressor 30 flows into the heat-source heat exchanger 32 via the flow switching device 31. The gas refrigerant that flows into the heat-source heat exchanger 32 releases heat to the heat exchange target and condenses, becoming a high-pressure liquid refrigerant. The liquid refrigerant that flows out of the heat-source heat exchanger 32 flows out of the heat source unit 3 and flows into the load unit 4. The high-pressure liquid refrigerant that flows into the load unit 4 is decompressed by the throttle unit 42, becoming a low-temperature, low-pressure two-phase gas-liquid refrigerant, which then flows into the load heat exchanger 40, which functions as an evaporator. The two-phase gas-liquid refrigerant that flows into the load heat exchanger 40 absorbs heat from the target to be temperature-adjusted and vaporizes, cooling the target to be temperature-adjusted and becoming a low-temperature, low-pressure gas refrigerant. The gas refrigerant that flows out of the load heat exchanger 40 flows out of the load device 4 and flows into the heat source device 3. The low-temperature, low-pressure gas refrigerant that flows into the heat source device 3 passes through the flow switching device 31 and the accumulator 34, and is sucked into the compressor 30.
[0025] Next, the heating operation will be described. The refrigerant drawn into the compressor 30 is compressed, becoming a high-temperature, high-pressure gas refrigerant, which is then discharged from the compressor 30. The gas refrigerant discharged from the compressor 30 flows into the load device 4 via the flow switching device 31. The high-temperature, high-pressure gas refrigerant that has flowed into the load device 4 flows into the load heat exchanger 40. The gas-liquid two-phase refrigerant that has flowed into the load heat exchanger 40 releases heat to the temperature adjustment target, condenses, and cools the temperature adjustment target, becoming a high-pressure liquid refrigerant. The liquid refrigerant that has flowed out of the load heat exchanger 40 is decompressed by the throttling device 42, becoming a low-temperature, low-pressure gas-liquid two-phase refrigerant. The gas-liquid two-phase refrigerant that has flowed out of the throttling device 42 flows out of the load device 4 and flows into the heat source device 3. The gas-liquid two-phase refrigerant that has flowed into the heat source device 3 flows into the heat source heat exchanger 32, absorbs heat from the heat exchange target, evaporates, and becomes a low-temperature, low-pressure gas refrigerant. The gas refrigerant flowing out from the heat source heat exchanger 32 passes through the flow switching device 31 and the accumulator 34 and is sucked into the compressor 30.
[0026] In order to adjust the temperature of the temperature-adjusted object to the temperature desired by the user in each of the cooling operation and heating operation, the heat pump apparatus 100 further includes a control device 6 that controls the compressor 30, the heat-source blower 33, the load blower 41, and the throttling device 42. The heat pump apparatus 100 also includes a discharge pressure sensor 50, an suction pressure sensor 51, a discharge temperature sensor 52, an suction temperature sensor 53, a first load temperature sensor 54, a second load temperature sensor 55, and a load object temperature sensor 56. Hereinafter, the set of the discharge pressure sensor 50, the suction pressure sensor 51, the discharge temperature sensor 52, the suction temperature sensor 53, the first load temperature sensor 54, the second load temperature sensor 55, and the load object temperature sensor 56 may also be referred to as a sensor group. Each of the discharge temperature sensor 52 and the suction temperature sensor 53 may also be referred to as a heat-source temperature sensor.
[0027] The control device 6 includes, for example, a microcontroller and controls all or some of the operating frequency of the compressor 30, the operating frequency of the heat-source blower 33, the operating frequency of the load blower 41, and the opening degree of the expansion device 42 based on either or both of the measurement results from all or some of the sensors and instructions input to a remote controller (not shown). The control device 6 also controls the flow path switching device 31 to switch its operating state based on either or both of the measurement results from all or some of the sensors and instructions input to a remote controller (not shown). Hereinafter, the compressor 30, the heat-source blower 33, the load blower 41, and the expansion device 42, which are controlled by the control device 6, may also be referred to as "controlled objects." The control device 6 acquires measurement results by wired or wireless communication with each of the discharge pressure sensor 50, the suction pressure sensor 51, the discharge temperature sensor 52, the suction temperature sensor 53, the first load temperature sensor 54, the second load temperature sensor 55, and the load target temperature sensor 56. The control device 6 also communicates by wire or wirelessly with each of the compressor 30, the flow path switching device 31, the heat source blower 33, the load blower 41, and the expansion device 42. The control device 6 outputs control signals to each of the compressor 30, the flow path switching device 31, the heat source blower 33, the load blower 41, and the expansion device 42 to control them.
[0028] 1 shows an example in which the control device 6 is provided inside the heat source device 3, but the control device 6 may also be provided outside the heat source device 3. For example, the control device 6 may be provided inside the load device 4, or may be provided outside the heat source device 3 and the load device 4. The control device 6 may also be provided in separate parts. For example, a part of the control device 6 may be provided in the heat source device 3, and another part may be provided in the load device 4.
[0029] The discharge pressure sensor 50 and the suction pressure sensor 51 each measure the pressure of the refrigerant based on a piezoelectric element method, a resistive film method, a capacitance method, or the like. The discharge temperature sensor 52, the suction temperature sensor 53, the first load temperature sensor 54, and the second load temperature sensor 55 each are configured with a thermistor, a thermocouple, a resistance temperature detector, or the like, and measure the temperature of the refrigerant. The load target temperature sensor 56 is configured with a thermistor, a thermocouple, a resistance temperature detector, or the like, and measures the temperature of air, water, or the like. The discharge pressure sensor 50, the suction pressure sensor 51, the discharge temperature sensor 52, and the suction temperature sensor 53 are provided in the heat source device 3. The first load temperature sensor 54, the second load temperature sensor 55, and the load target temperature sensor 56 are provided in the load device 4.
[0030] The discharge pressure sensor 50 is provided in the refrigerant pipe 2 on the discharge side of the compressor 30, and measures the pressure of the high-temperature, high-pressure refrigerant discharged from the compressor 30. In cases where the heat pump apparatus 100 includes a flow path switching device 31, the discharge pressure sensor 50 is provided, for example, in the refrigerant pipe 2 between the compressor 30 and the flow path switching device 31. In cases where the heat pump apparatus 100 does not include the flow path switching device 31 and performs only the cooling operation of the heating operation and the cooling operation, the discharge pressure sensor 50 is provided in the refrigerant pipe 2 between the compressor 30 and the heat source heat exchanger 32. In cases where the heat pump apparatus 100 does not include the flow path switching device 31 and performs only the heating operation of the heating operation and the cooling operation, the discharge pressure sensor 50 is provided in the refrigerant pipe 2 between the compressor 30 and the load heat exchanger 40.
[0031] The suction pressure sensor 51 is provided in the refrigerant pipe 2 on the suction side of the compressor 30 and measures the pressure of the low-temperature, low-pressure refrigerant drawn into the compressor 30. The suction pressure sensor 51 may be provided, for example, in the refrigerant pipe 2 between the compressor 30 and the accumulator 34. If the heat pump apparatus 100 includes a flow path switching device 31, the suction pressure sensor 51 may be provided in the refrigerant pipe 2 between the flow path switching device 31 and the accumulator 34. If the heat pump apparatus 100 does not include the flow path switching device 31 and performs only the cooling operation of the heating operation and the cooling operation, the suction pressure sensor 51 may be provided in the refrigerant pipe 2 between the accumulator 34 and the load heat exchanger 40. If the heat pump apparatus 100 does not include the flow path switching device 31 and performs only the heating operation of the heating operation and the cooling operation, the suction pressure sensor 51 may be provided in the refrigerant pipe 2 between the accumulator 34 and the heat source heat exchanger 32.
[0032] The discharge temperature sensor 52 is provided in the refrigerant pipe 2 on the discharge side of the compressor 30, and measures the temperature of the high-temperature, high-pressure refrigerant discharged from the compressor 30. In cases where the heat pump apparatus 100 includes a flow path switching device 31, the discharge temperature sensor 52 is provided, for example, in the refrigerant pipe 2 between the compressor 30 and the flow path switching device 31. In cases where the heat pump apparatus 100 does not include the flow path switching device 31 and performs only the cooling operation of the heating operation and the cooling operation, the discharge temperature sensor 52 is provided in the refrigerant pipe 2 between the compressor 30 and the heat source heat exchanger 32. In cases where the heat pump apparatus 100 does not include the flow path switching device 31 and performs only the heating operation of the heating operation and the cooling operation, the discharge temperature sensor 52 is provided in the refrigerant pipe 2 between the compressor 30 and the load heat exchanger 40.
[0033] The suction temperature sensor 53 is provided in the refrigerant pipe 2 on the suction side of the compressor 30 and measures the temperature of the low-temperature, low-pressure refrigerant drawn into the compressor 30. The suction temperature sensor 53 may be provided, for example, in the refrigerant pipe 2 between the compressor 30 and the accumulator 34. If the heat pump apparatus 100 includes a flow path switching device 31, the suction temperature sensor 53 may be provided in the refrigerant pipe 2 between the flow path switching device 31 and the accumulator 34. If the heat pump apparatus 100 does not include the flow path switching device 31 and performs only the cooling operation of the heating operation and the cooling operation, the suction temperature sensor 53 may be provided in the refrigerant pipe 2 between the accumulator 34 and the load heat exchanger 40. If the heat pump apparatus 100 does not include the flow path switching device 31 and performs only the heating operation of the heating operation and the cooling operation, the suction temperature sensor 53 may be provided in the refrigerant pipe 2 between the accumulator 34 and the heat source heat exchanger 32.
[0034] The first load temperature sensor 54 measures the temperature of the refrigerant flowing into the load heat exchanger 40 during cooling operation, and measures the temperature of the refrigerant flowing out of the load heat exchanger 40 during heating operation. The first load temperature sensor 54 may be provided in the refrigerant piping 2 between the load heat exchanger 40 and the throttling device 42, or may be provided at the refrigerant inlet of the load heat exchanger 40 during cooling operation.
[0035] The second load temperature sensor 55 measures the temperature of the refrigerant flowing out of the load heat exchanger 40 during cooling operation, and measures the temperature of the refrigerant flowing into the load heat exchanger 40 during heating operation. The second load temperature sensor 55 may be provided in the refrigerant pipe 2 downstream of the load heat exchanger 40 during cooling operation, or may be provided at the refrigerant outlet of the load heat exchanger 40 during cooling operation.
[0036] The load object temperature sensor 56 measures the temperature of the temperature-adjusted object flowing into the load heat exchanger 40, and is provided upstream of the load heat exchanger 40 in the flow path of the temperature-adjusted object, or at the inflow portion of the temperature-adjusted object in the load heat exchanger 40.
[0037] Here, the control device 6 in the first embodiment determines whether or not there is excess refrigerant in the accumulator 34 based on the measurement results of at least the suction pressure sensor 51 and the suction temperature sensor 53. The control device 6 also derives information indicating the composition of the refrigerant, which is a non-azeotropic refrigerant mixture whose composition can vary, by performing calculations or the like based on the measurement results of at least the suction pressure sensor 51 and the suction temperature sensor 53. Hereinafter, information indicating the refrigerant composition may also be referred to as composition information. The control device 6 in the first embodiment controls both or one of the operating frequency of the compressor 30 and the operating frequency of the heat-source blower 33 based on the composition information and the measurement results of the discharge pressure sensor 50 and the suction pressure sensor 51.
[0038] During cooling operation, the control device 6 in the first embodiment controls the opening degree of the throttling device 42 so that the degree of superheat of the refrigerant flowing out from the load heat exchanger 40 functioning as an evaporator is constant. The control device 6 derives the degree of superheat based on the saturation temperature of the refrigerant in the load heat exchanger 40 and the measurement result by the second load temperature sensor 55. The control device 6 derives the saturation temperature of the refrigerant flowing out from the evaporator by calculation or the like based on the composition information and the measurement result by the suction pressure sensor 51.
[0039] During heating operation, the control device 6 in the first embodiment controls the opening degree of the expansion device 42 so that the degree of subcooling of the refrigerant flowing out from the load heat exchanger 40, which functions as a condenser, is constant. The control device 6 derives the degree of subcooling by calculation or the like based on the saturation temperature of the refrigerant in the load heat exchanger 40 and the measurement result by the first load temperature sensor 54. The control device 6 derives the saturation temperature of the refrigerant flowing out from the condenser by calculation or the like based on the composition information and the measurement result by the discharge pressure sensor 50.
[0040] As described above, when the control device 6 performs control based on the measurement results of the sensors, a failure of any one of the sensors can cause the control device 6 to become uncontrollable. Conventional heat pump devices would abnormally shut down if a failure of any one of the sensors caused the control device to become uncontrollable. After such an abnormal shutdown, replacement parts had to be arranged for the recovery process, and it took time to complete the work due to the need to adjust the construction schedule. During this time, the user was unable to use the heat pump device, resulting in a loss of user comfort. The heat pump device 100 according to the first embodiment shortens the shutdown period when either the discharge temperature sensor 52 or the inlet temperature sensor 53 of the sensors fails, thereby reducing user discomfort. The configuration and functions of such a heat pump device 100 are described below.
[0041] The heat pump device 100 according to the first embodiment performs emergency operation when a heat source temperature sensor fails. At this time, the control device 6 sets a provisional value in place of the measurement result of the failed heat source temperature sensor, and controls the controlled object based on the provisional value. Hereinafter, the failed heat source temperature sensor may be referred to as a failed sensor. A heat source temperature sensor that is not failed may be referred to as a normal temperature sensor. Furthermore, a sensor that is not failed among the group of sensors, including the normal temperature sensor, may be referred to as a normal sensor.
[0042] Hereinafter, with reference to Fig. 2, the process up to the start of emergency operation by the heat pump apparatus 100 according to the first embodiment will be described. Fig. 2 is a flowchart illustrating the process of setting up emergency operation by the heat pump apparatus 100 according to the first embodiment. It is assumed that prior to step S1, one of the heat source temperature sensors, the discharge temperature sensor 52 or the intake temperature sensor 53, is malfunctioning. The control device 6 determines that the heat source temperature sensor is abnormal based on an event such as the measurement value of the heat source temperature sensor exceeding an upper limit value or a lower limit value. The heat pump apparatus 100 then enters an abnormality stop mode and stops.
[0043] In step S1, the control device 6 accepts the setting of the emergency operation mode by the dispatched serviceman. This activates the emergency operation mode. Note that the control device 6 may be provided with an input device (not shown), and the serviceman may set the control device 6 via the input device. Alternatively, the serviceman may set the control device 6 via a remote controller (not shown).
[0044] In step S2, the control device 6 accepts the setting of failure information indicating the faulty sensor. As a result, the control device 6 is set to control the control target based on the derived provisional value, rather than the measurement result of the faulty sensor. Thereafter, emergency operation is performed using control based on the provisional value instead of the measurement result of the faulty sensor. Note that the control based on the provisional value may be performed after the heat pump device 100 is restarted.
[0045] 3 is a flowchart illustrating the flow of a process for deriving a provisional value and a control process based on the provisional value, performed by the control device 6 in Embodiment 1. The process shown in FIG. 3 is executed after the process of step S2 described above.
[0046] In step S11, the control device 6 determines whether the heat pump device 100 is in an operating state. Specifically, the control device 6 determines whether the heat pump device 100 is in an operating state by determining whether an instruction to start operation has been input to a remote controller (not shown) or whether the control target is being caused to perform, for example, a defrosting operation based on measurement results from a group of sensors. If the heat pump device 100 is in a stopped state (step S11: NO), the control device 6 ends the process.
[0047] If the heat pump apparatus 100 is in an operating state (step S11: YES), in step S12, the control device 6 sets limits on the values of the control parameters of the control objects. The control parameters refer to the operating frequency of the compressor 30 if the control object is the compressor 30; the operating frequency of the heat-source blower 33 if the control object is the heat-source blower 33; and the operating frequency of the load blower 41 if the control object is the load blower 41. Furthermore, the control parameters refer to the opening degree of the expansion device 42 if the control object is the expansion device 42. The control device 6 sets limits on the values of the control parameters by setting both or one of an upper limit and a lower limit for the control parameters. Specifically, during emergency operation, i.e., during operation after receiving settings such as failure information, the control device 6 limits the maximum operating frequency of the compressor 30 to, for example, 70% of the maximum operating frequency during normal operation. Normal operation refers to operation in a state where none of the sensors in the sensor group is faulty. By setting limits on the values of the control parameters, it becomes possible to prevent the heat pump device 100 from operating outside its operating range, which may occur due to deviation of the hypothetical value from the actual value. The processing of step S12 may be omitted. In this case, when the control device 6 determines in step S11 that the heat pump device 100 is in an operating state, the control device 6 proceeds to the processing of step S13.
[0048] In step S13, the control device 6 determines whether control based on a provisional value instead of the measurement result of the faulty sensor is permitted. That is, the control device 6 determines whether emergency operation mode is set and information indicating a faulty sensor is set. If control based on a provisional value is not permitted (step S13: NO), the control device 6 notifies an error in step S14. The control device 6 may also cause a remote controller (not shown) to notify the error. After processing step S14, the control device 6 ends the processing.
[0049] If control based on the temporary value is permitted (step S13: YES), in step S15 the control device 6 determines whether or not a temporary value has been set. The temporary value is set by a service technician via the input device or remote controller. In this case, the control device 6 stores the set temporary value. If a temporary value has been set (step S15: YES), the control device 6 proceeds to step S17. If a temporary value has not been set (step S15: NO), the control device 6 derives a temporary value in step S16. Note that if the control device 6 does not accept a temporary value setting from the service technician, the processing of step S15 may be omitted.
[0050] In step S17, the control device 6 derives values of control parameters based on the provisional values and the measurement results of the normal sensors. In step S18, the control device 6 controls the controlled object based on the values of the control parameters derived in step S17. That is, if the controlled object is the compressor 30, the control device 6 operates the compressor 30 at the operating frequency derived in step S17. If the controlled object is the heat-source fan 33, the control device 6 operates the heat-source fan 33 at the operating frequency derived in step S17. If the controlled object is the expansion device 42, the control device 6 sets the opening degree of the expansion device 42 to the opening degree derived in step S17. If the controlled object is the load fan 41, the control device 6 operates the load fan 41 at the operating frequency derived in step S17. After the processing of step S18, the control device 6 returns the processing to step S11 after a predetermined period of time has elapsed.
[0051] The process of deriving provisional values will be described below with reference to FIGS. 4 to 8. The processes in each of FIGS. 4 to 8 correspond to the process of step S16. FIG. 4 is a flowchart showing a first example of the process of deriving provisional values by the control device 6 when the faulty sensor in the first embodiment is the discharge temperature sensor 52. In FIG. 4, the control device 6 derives various physical quantities based on the most recently acquired measurement results of the discharge pressure sensor 50, the suction pressure sensor 51, and the suction temperature sensor 53. It is assumed that the control device 6 stores information corresponding to a Moliere diagram in advance. Hereinafter, information corresponding to a Moliere diagram may also be referred to as Moliere information. The control device 6 derives various physical quantities from the measurement results of the discharge pressure sensor 50, the suction pressure sensor 51, and the suction temperature sensor 53 based on the Moliere information. It is assumed that the discharge pressure sensor 50, the suction pressure sensor 51, and the suction temperature sensor 53 are not faulty.
[0052] In step S21, the control device 6 derives the entropy of the refrigerant drawn into the compressor 30 based on the measurement results of the suction pressure sensor 51 and the suction temperature sensor 53. In step S22, the control device 6 derives the discharge temperature, which is the temperature of the refrigerant discharged from the compressor 30, based on the entropy derived in step S21 and the measurement result of the discharge pressure sensor 50. Note that the discharge temperature derived in step S22 is a theoretical value, and the actual discharge temperature varies depending on the adiabatic efficiency of the refrigerant circuit 1. It is assumed that the control device 6 in the first embodiment has previously acquired the value of the adiabatic efficiency of the refrigerant circuit 1. Hereinafter, the theoretical value of the discharge temperature obtained by calculation or the like may also be referred to as the theoretical discharge temperature.
[0053] In step S23, the control device 6 derives the discharge enthalpy, which is the enthalpy of the refrigerant discharged from the compressor 30, based on the theoretical discharge temperature derived in step S22 and the measurement result by the discharge pressure sensor 50. Note that the discharge enthalpy derived in step S23 is a theoretical value, and the actual discharge enthalpy varies depending on the adiabatic efficiency of the refrigerant circuit 1. Hereinafter, the theoretical value of the discharge enthalpy obtained by calculation or the like may also be referred to as the theoretical discharge enthalpy.
[0054] In step S24, the control device 6 derives the discharge enthalpy based on the theoretical discharge enthalpy and the adiabatic efficiency, for example by multiplying the theoretical discharge enthalpy derived in step S23 by the adiabatic efficiency. In step S25, the control device 6 derives the discharge temperature as the provisional value based on the discharge enthalpy derived in step S24 and the measurement result by the discharge pressure sensor 50. After processing in step S25, the control device 6 ends the process of deriving the provisional value and proceeds to the above-mentioned step S17.
[0055] Fig. 5 is a flowchart showing a second example of the process of deriving provisional values by the control device 6 in the first embodiment when the faulty sensor is the discharge temperature sensor 52. In Fig. 5, the control device 6 derives various physical quantities based on the most recent measurement results acquired by the discharge pressure sensor 50. It is assumed that the discharge pressure sensor 50 is not faulty.
[0056] In step S31, the control device 6 derives the condensing temperature of the refrigerant in the condenser based on the measurement result by the discharge pressure sensor 50. In step S32, the control device 6 derives the discharge temperature as the provisional value by, for example, adding the heat release temperature, which is a temperature corresponding to the amount of heat release of the refrigerant in the condenser, to the condensation temperature obtained in step S31. The heat release temperature may be determined based on, for example, the operating frequency of the compressor 30, or may be a constant value preset in the control device 6. After processing step S32, the control device 6 ends the provisional value derivation process and proceeds to the above-mentioned step S17. The provisional value derivation process shown in FIG. 5 reduces the amount of processing, such as the amount of calculations, compared to the process shown in FIG. 4.
[0057] Fig. 6 is a flowchart showing a third example of the process of deriving a provisional value by the control device 6 when the faulty sensor in the first embodiment is the discharge temperature sensor 52. In Fig. 6, the control device 6 derives various physical quantities based on the most recently acquired measurement results of the load temperature sensor 56. The process shown in Fig. 6 is preferably performed during operation in which the refrigerant discharged from the compressor 30 flows into the load heat exchanger 40 without passing through the heat source heat exchanger 32 or the like. In other words, the process shown in Fig. 6 is preferably performed in the refrigerant flow direction during heating operation. Note that in Fig. 6, it is assumed that the load temperature sensor 56 is not faulty.
[0058] In step S41, the control device 6 derives a provisional discharge temperature based on the temperature of the temperature-control target measured by the load temperature sensor 56 and the heat dissipation temperature. Specifically, the control device 6 derives the provisional discharge temperature by adding the heat dissipation temperature to the measured temperature of the temperature-control target. After processing step S41, the control device 6 ends the provisional value derivation process and moves the process to step S17 described above. The provisional value derivation process shown in FIG. 6 reduces the amount of processing, such as the amount of calculations, compared to the process shown in FIG. 4.
[0059] 7 is a flowchart showing a first example of the process of deriving provisional values by the control device 6 when the faulty sensor in the first embodiment is the intake temperature sensor 53. In FIG. 7, it is assumed that the control device 6 stores the Moliere information. The control device 6 derives various physical quantities based on the Moliere information from the most recent measurement results of the discharge pressure sensor 50, the intake pressure sensor 51, and the discharge temperature sensor 52. It is assumed that the discharge pressure sensor 50, the intake pressure sensor 51, and the discharge temperature sensor 52 are not faulty.
[0060] In step S51, the control device 6 derives the discharge enthalpy based on the measurement results of the discharge pressure sensor 50 and the discharge temperature sensor 52. In step S52, the control device 6 derives the theoretical discharge enthalpy based on the discharge enthalpy and the adiabatic efficiency, for example, by dividing the discharge enthalpy derived in step S51 by the adiabatic efficiency. In step S53, the control device 6 derives the discharge entropy, which is the entropy of the refrigerant discharged from the compressor 30, based on the theoretical discharge enthalpy derived in step S52 and the measurement result by the discharge pressure sensor 50. Note that the discharge entropy derived in step S53 is a theoretical value, and the actual discharge entropy varies depending on the adiabatic efficiency of the refrigerant circuit 1, etc. Hereinafter, the theoretical value of the discharge entropy obtained by calculation, etc., may also be referred to as the theoretical discharge entropy.
[0061] In step S54, the control device 6 derives the suction temperature, which is the temperature of the refrigerant sucked into the compressor 30, as the provisional value based on the theoretical discharge entropy derived in step S53 and the measurement result by the discharge pressure sensor 50. After processing step S54, the control device 6 ends the process of deriving the provisional value and proceeds to the above-mentioned step S17.
[0062] Fig. 8 is a flowchart showing a second example of the process of deriving temporary values by the control device 6 in the first embodiment when the faulty sensor is the intake temperature sensor 53. In Fig. 8, the control device 6 derives various physical quantities based on the most recent measurement results of the intake pressure sensor 51. It is assumed that the intake pressure sensor 51 is not faulty.
[0063] In step S61, the control device 6 derives the evaporation temperature of the refrigerant in the evaporator based on the measurement result from the suction pressure sensor 51. In step S62, the control device 6 derives a provisional suction temperature based on the evaporation temperature obtained in step S61 and the endothermic temperature. The endothermic temperature is a temperature corresponding to the amount of heat absorbed by the refrigerant in the evaporator. The endothermic temperature may be determined based on, for example, the operating frequency of the compressor 30, or may be preset in the control device 6 as a constant value. In step S62, the control device 6 derives the suction temperature by, for example, adding the endothermic temperature to the evaporation temperature obtained in step S61. After processing step S62, the control device 6 ends the derivation process of the provisional value and proceeds to step S17 described above. The derivation process shown in FIG. 8 reduces the amount of processing, such as the amount of calculations, compared to the process shown in FIG. 7.
[0064] The hardware configuration of the control device 6 in the first embodiment will be described below with reference to FIG. 9. FIG. 9 is a block diagram illustrating an example of the hardware configuration of the control device 6 in the first embodiment. The control device 6 can be configured with a first processor 60, a first memory 61, and an input / output interface circuit 62. The first processor 60, the first memory 61, and the input / output interface circuit 62 are connected to each other via a first bus 63. Examples of the first processor 60 include a central processing unit (CPU) or a micro processing unit (MPU). Examples of the first memory 61 include a read-only memory (ROM) or a random access memory (RAM). The function of the control device 6 to derive temporary values can be realized by the first processor 60 reading and executing various programs, such as an emergency operation program, stored in the first memory 61. The function of the control device 6 to acquire measurement results from the sensor group can be realized by the first processor 60 communicating with the sensor group via wired or wireless communication via the input / output interface circuit 62. The function of the control device 6 to control the controlled object can be realized by the first processor 60 transmitting a control signal to the controlled object via the input / output interface circuit 62.
[0065] The functions of the control device 6 may be obtained by cooperation between software and hardware as described above, or may be obtained by dedicated hardware. For example, all or part of the control device 6 may be configured by hardware such as a CPLD (Complex Programmable Logic Device) or an FPGA (Field Programmable Gate Array).
[0066] The effects of the heat pump apparatus 100 according to the first embodiment will be described below. The heat pump apparatus 100 according to the first embodiment cools or heats a temperature-adjustment target by using a refrigerant circulating through a refrigerant circuit 1. The heat pump apparatus 100 includes a load apparatus 4, a heat source apparatus 3, a throttling device 42, a sensor group, and a control apparatus 6. The load apparatus 4 includes a load heat exchanger 40 that exchanges heat between the temperature-adjustment target and the refrigerant. The heat source apparatus 3 adjusts the temperature of the refrigerant circulating through the load heat exchanger 40. The throttling device 42 reduces the pressure of the refrigerant to expand it. The sensor group measures physical quantities of the refrigerant circulating through the refrigerant circuit 1. The physical quantities include temperature and pressure. The heat source apparatus 3 includes a compressor 30 and a heat-source heat exchanger 32. The compressor 30 compresses the refrigerant, and the heat-source heat exchanger 32 exchanges heat between the refrigerant and the heat exchange target. The compressor 30, the heat-source heat exchanger 32, the throttling device 42, and the load heat exchanger 40 are included in the refrigerant circuit 1. The sensor group includes a discharge pressure sensor 50, a suction pressure sensor 51, a discharge temperature sensor 52, a suction temperature sensor 53, and a load object temperature sensor 56. The discharge pressure sensor 50 measures the pressure of the refrigerant on the discharge side of the compressor 30. The suction pressure sensor 51 measures the pressure of the refrigerant on the suction side of the compressor 30. The discharge temperature sensor 52 measures the temperature of the refrigerant on the discharge side of the compressor 30. The suction temperature sensor 53 measures the temperature of the refrigerant on the suction side of the compressor 30. The load object temperature sensor 56 measures the temperature of the temperature-controlled object flowing into the load heat exchanger 40. The discharge pressure sensor 50, the suction pressure sensor 51, the discharge temperature sensor 52, and the suction temperature sensor 53 are provided in the heat source device 3, and the load object temperature sensor 56 is provided in the load device 4. The control device 6 controls the controlled objects, including the compressor 30, based on the measurement results of the sensors. When one of the discharge temperature sensor 52 and the suction temperature sensor 53 fails, the control device 6 derives a provisional value based on the measurement results of the other of the discharge temperature sensor 52 and the suction temperature sensor 53, and at least one of the discharge pressure sensor 50, the suction pressure sensor 51, and the load object temperature sensor 56. Then, the control device 6 controls the controlled object based on the provisional value instead of the measurement result of the one of the discharge temperature sensor 52 and the suction temperature sensor 53.
[0067] According to the above configuration, when one of the heat source temperature sensors, the discharge temperature sensor 52 or the suction temperature sensor 53, fails, the control device 6 controls the controlled object based on a hypothetical value instead of the measurement result of the heat source temperature sensor. Therefore, even when one of the heat source temperature sensors, the discharge temperature sensor 52 or the suction temperature sensor 53, fails, the heat pump device 100 can continue operation and suppress a decrease in user comfort. The temperature and pressure of the refrigerant on one of the discharge side and the suction side of the compressor 30 may be correlated. Furthermore, the temperature of the refrigerant on one of the discharge side and the suction side of the compressor 30 may be correlated with both or either the temperature and pressure of the refrigerant on the other side. Furthermore, the temperature of the refrigerant on one of the discharge side and the suction side of the compressor 30 may be correlated with the temperature of the temperature-controlled object. The control device 6 derives a provisional value based on the measurement results of at least one of a normal temperature sensor of the discharge temperature sensor 52 and the suction temperature sensor 53, the discharge pressure sensor 50, the suction pressure sensor 51, and the load temperature sensor 56, and is therefore able to accurately derive a provisional value of the temperature of the refrigerant on either the discharge side or the suction side of the compressor 30. Therefore, the control device 6 can cause the heat pump device 100 to perform emergency operation according to the state of the refrigerant in the refrigerant circuit 1 by control based on the provisional value.
[0068] The control device 6 in the first embodiment stores Moliere information indicating the relationship between the pressure and enthalpy of the refrigerant at each position in the refrigerant circuit 1. The control device 6 derives a provisional value based on the Moliere information. This allows the control device 6 to accurately obtain a provisional value of the temperature of the refrigerant on the discharge side or suction side of the compressor 30 in place of a faulty sensor. Therefore, the control device 6 can perform control according to the state of the refrigerant based on the provisional value.
[0069] In the first embodiment, when suction temperature sensor 53 fails, control device 6 derives the evaporation temperature of the refrigerant in heat source heat exchanger 32 or load heat exchanger 40, which function as an evaporator that evaporates the refrigerant, based on the measurement results from suction pressure sensor 51. Then, control device 6 derives a provisional value based on the evaporation temperature and the heat absorption temperature corresponding to the amount of heat absorbed by the refrigerant in heat source heat exchanger 32 or load heat exchanger 40, which function as an evaporator. Control device 6 controls the controlled object based on this provisional value instead of the measurement results from suction temperature sensor 53. This allows control device 6 to accurately obtain a provisional value of the refrigerant temperature on the suction side of compressor 30 instead of the failed sensor. Therefore, control device 6 can perform control according to the state of the refrigerant based on the provisional value.
[0070] The endothermic temperature in the first embodiment is set in advance or determined by the control device 6 based on the operating frequency of the compressor 30. This allows the control device 6 to quickly and easily obtain a tentative value.
[0071] In the first embodiment, when the discharge temperature sensor 52 fails, the control device 6 derives the condensing temperature of the refrigerant in the heat source heat exchanger 32 or the load heat exchanger 40, which functions as a condenser that condenses the refrigerant, based on the measurement results from the discharge pressure sensor 50. The control device 6 derives a provisional value based on the condensation temperature and the heat release temperature corresponding to the amount of heat release of the refrigerant in the heat source heat exchanger 32 or the load heat exchanger 40, which functions as a condenser. The control device 6 controls the controlled object based on this provisional value instead of the measurement results from the discharge temperature sensor 52. This allows the control device 6 to accurately obtain a provisional value of the refrigerant temperature on the discharge side of the compressor 30 instead of the failed sensor. Therefore, the control device 6 can perform control according to the state of the refrigerant based on the provisional value.
[0072] In the case where the discharge temperature sensor 52 fails, the control device 6 in the first embodiment derives a provisional value based on the measurement result by the load temperature sensor 56 and the heat release temperature corresponding to the amount of heat released by the refrigerant in the load heat exchanger 40. The control device 6 controls the controlled object based on the provisional value instead of the measurement result by the discharge temperature sensor 52. This allows the control device 6 to accurately obtain a provisional value of the temperature of the refrigerant on the discharge side of the compressor 30 in place of the failed sensor. Therefore, the control device 6 can perform control according to the state of the refrigerant based on the provisional value.
[0073] The heat release temperature in the first embodiment is set in advance or determined by the control device 6 based on the operating frequency of the compressor 30. This allows the control device 6 to quickly and easily obtain a tentative value.
[0074] When failure information indicating that either the discharge temperature sensor 52 or the intake temperature sensor 53 has failed is set, the control device 6 in the first embodiment controls the controlled object based on a hypothetical value instead of the measurement result indicated by the failure information from either the discharge temperature sensor 52 or the intake temperature sensor 53. This enables the control device 6 to control the controlled object, and the heat pump device 100 to operate.
[0075] Embodiment 2 The heat pump device 100 according to the second embodiment will be described below. In the second embodiment, the same components as those in the first embodiment are denoted by the same reference numerals. In the second embodiment, the same configurations as those in the first embodiment and the same functions as those in the first embodiment will not be described unless there are special circumstances.
[0076] FIG. 10 is a schematic diagram showing a configuration example of a heat pump apparatus 100 according to embodiment 2. The heat pump apparatus 100 according to embodiment 2 includes a plurality of heat source apparatuses 3 and one or more load apparatuses 4. The plurality of heat source apparatuses 3 are connected in parallel to the one or more load apparatuses 4. When the heat pump apparatus 100 includes a plurality of load apparatuses 4, the plurality of load apparatuses 4 are connected in parallel. Note that while FIG. 10 shows a configuration example of the heat pump apparatus 100 in which the plurality of load apparatuses 4 perform similar operations, the heat pump apparatus 100 according to embodiment 2 may also be configured such that some of the plurality of load apparatuses 4 perform cooling operation while the remaining perform heating operation.
[0077] In the heat pump device 100 according to the second embodiment, a control device 6 is provided for each of the plurality of heat source devices 3. The control devices 6 in each heat source device 3 communicate with each other by wire or wireless communication. Hereinafter, a heat source device 3 in which either the discharge temperature sensor 52 or the intake temperature sensor 53 is faulty may be referred to as a first heat source device, and the control device 6 of the first heat source device may be referred to as a first control device. Furthermore, a heat source device 3 in which neither the discharge temperature sensor 52 nor the intake temperature sensor 53 is faulty may be referred to as a second heat source device, and the control device 6 of the second heat source device may be referred to as a second control device.
[0078] When discharge temperature sensor 52 of the first heat source device is malfunctioning, the first control device uses the measurement result of discharge temperature sensor 52 of the second heat source device that satisfies a predetermined specific condition as a provisional value to replace the measurement result of discharge temperature sensor 52 of the first heat source device. Furthermore, when inlet temperature sensor 53 of the first heat source device is malfunctioning, the first control device uses the measurement result of inlet temperature sensor 53 of the second heat source device that satisfies a specific condition as a provisional value to replace the measurement result of inlet temperature sensor 53 of the first heat source device.
[0079] Here, the specific conditions include a first condition, a second condition, a third condition, a fourth condition, and a fifth condition. The first condition is that the second heat source device is in an operating state. The second condition is that the capacity of the first heat source device is equal to the capacity of the second heat source device. Note that the capacity of the first heat source device is equal to the capacity of the second heat source device when the difference between the capacity of the first heat source device and the capacity of the second heat source device is equal to or less than a predetermined first capacity difference, or when the ratio of the difference to the capacity of the first heat source device or the second heat source device is equal to or less than a first ratio. The first ratio is predetermined, for example, 0% to 10%.
[0080] The third condition is that the operating frequencies of the compressors 30 of the first heat source device and the second heat source device are equal. Note that the operating frequencies of the compressors 30 of the first heat source device and the second heat source device are equal means that the difference between the operating frequency of the compressor 30 of the first heat source device and the operating frequency of the compressor 30 of the second heat source device is equal to or less than a second ratio of the operating frequency of the compressor 30 of the first heat source device or the second heat source device. The second ratio is predetermined, and is, for example, 5% to 10%.
[0081] The fourth condition is that the pressures measured by the discharge pressure sensors 50 of the first and second heat source devices are equal. Note that the pressures measured by the discharge pressure sensors 50 of the first and second heat source devices are equal means that the differential pressure between the pressure measured by the discharge pressure sensor 50 of the first heat source device and the pressure measured by the discharge pressure sensor 50 of the second heat source device is equal to or less than a third percentage of the pressure measured by the discharge pressure sensor 50 of the first or second heat source device. The third percentage is predetermined, and is, for example, 5% to 10%.
[0082] The fifth condition is that the pressures measured by the suction pressure sensors 51 of the first and second heat source devices are equal. The phrase "the pressures measured by the suction pressure sensors 51 of the first and second heat source devices are equal" means that the differential pressure between the pressure measured by the suction pressure sensor 51 of the first heat source device and the pressure measured by the suction pressure sensor 51 of the second heat source device is equal to or less than a fourth ratio of the pressure measured by the suction pressure sensor 51 of the first or second heat source device. The fourth ratio is predetermined and is, for example, 5% to 10%. The first ratio, second ratio, third ratio, and fourth ratio may be equal to or different from one another.
[0083] Note that, because the temperature of the refrigerant on the suction side of the compressor 30 and the temperature of the refrigerant on the discharge side influence each other, in order to bring the virtual value closer to the actual value, it is desirable that the specific conditions further include the following sixth condition. The sixth condition is a condition that the temperature measured by the normal temperature sensor in the first heat source device is equal to the temperature measured by the normally corresponding sensor in the second heat source device. Note that the temperature measured by the normal temperature sensor is equal to the temperature measured by the normally corresponding sensor when the difference between the temperature measured by the normal temperature sensor and the temperature measured by the normally corresponding sensor is equal to or less than a fifth percentage of the temperature measured by the normal temperature sensor or the normally corresponding sensor. The fifth percentage is predetermined and is, for example, 5% to 10%. The fifth percentage may be equal to at least one of the first percentage, the second percentage, the third percentage, and the fourth percentage, or may be different from any of them. Here, the normally functioning sensor refers to the discharge temperature sensor 52 in the second heat source device if the non-faulty sensor in the first heat source device is the discharge temperature sensor 52, and refers to the intake temperature sensor 53 in the second heat source device if the non-faulty sensor in the first heat source device is the intake temperature sensor 53.
[0084] The processing up to the start of emergency operation by the first heat source device in the second embodiment is shown in Fig. 2, and corresponds to the above description regarding Fig. 2 with the heat pump device 100 replaced with the first heat source device and the control device 6 replaced with the first control device. The flow of the process of deriving temporary values and the control process based on the temporary values by the first control device in the second embodiment is shown in Fig. 3, and corresponds to the above description regarding Fig. 3 with the heat pump device 100 replaced with the first heat source device and the control device 6 replaced with the first control device.
[0085] FIG. 11 is a flowchart illustrating a process of deriving a provisional value by the first control device of the second embodiment. The process of FIG. 11 corresponds to the process of step S16 in the second embodiment. In step S71, the first control device determines whether or not there is a second heat source device that satisfies a specific condition. If there is no second heat source device that satisfies the specific condition (step S71: NO), the first control device performs an individual derivation process in step S72. The individual derivation process corresponds to the process shown in FIGS. 4 to 8, in which the control device 6 is replaced with the first control device. After the process of step S72, the first control device proceeds to step S17.
[0086] If there is a second heat source device that satisfies the specific condition (step S71: YES), in step S73 the first control device sets the value of the failure response sensor of the second heat source device that satisfies the specific condition as a provisional value to replace the measurement result of the failed sensor. Note that the failure response sensor refers to the discharge temperature sensor 52 of the second heat source device if the failed sensor of the first heat source device is the discharge temperature sensor 52, and refers to the inlet temperature sensor 53 of the second heat source device if the failed sensor of the first heat source device is the inlet temperature sensor 53. After processing step S73, the first control device proceeds to step S17.
[0087] FIG. 12 is a flowchart illustrating a process performed by the first control device in the second embodiment to determine whether or not there is a second heat source device that satisfies a specific condition. The process in FIG. 12 corresponds to the process in step S71 in FIG. 11. In step S81, the first control device determines whether or not there is a second heat source device that satisfies the first condition. If there is no second heat source device that satisfies the first condition (step S81: NO), the first control device proceeds to step S72. If there is a second heat source device that satisfies the first condition (step S81: YES), in step S82 the first control device determines whether or not there is a second heat source device that satisfies the second condition. Note that if there is a second heat source device that satisfies the first condition in step S81, the first control device extracts the second heat source device that satisfies the first condition. In step S82, the first control device determines whether or not there is a second heat source device that satisfies the second condition from among the one or more second heat source devices extracted in the process before step S82. If there is no second heat source device that satisfies the second condition (step S82: NO), the first control device proceeds to step S72.
[0088] If there is a second heat source device that satisfies the second condition (step S82: YES), in step S83 the first control device determines whether there is a second heat source device that satisfies the third condition. If there is a second heat source device that satisfies the second condition in step S82, the first control device extracts the second heat source device that satisfies the second condition. In step S83, the first control device determines whether there is a second heat source device that satisfies the third condition from among the one or more second heat source devices extracted in the processing before step S83. If there is no second heat source device that satisfies the third condition (step S83: NO), the first control device proceeds to step S72.
[0089] If there is a second heat source device that satisfies the third condition (step S83: YES), in step S84 the first control device determines whether there is a second heat source device that satisfies the fourth condition. If there is a second heat source device that satisfies the third condition in step S83, the first control device extracts the second heat source device that satisfies the third condition. In step S84, the first control device determines whether there is a second heat source device that satisfies the fourth condition from among the one or more second heat source devices extracted in the processing before step S84. If there is no second heat source device that satisfies the fourth condition (step S84: NO), the first control device proceeds to step S72.
[0090] If there is a second heat source device that satisfies the fourth condition (step S84: YES), in step S85 the first control device determines whether there is a second heat source device that satisfies the fifth condition. Note that if there is a second heat source device that satisfies the fourth condition in step S84, the first control device extracts the second heat source device that satisfies the fourth condition. In step S85, the first control device determines whether there is a second heat source device that satisfies the fifth condition from among the one or more second heat source devices extracted in the processing before step S85. If there is no second heat source device that satisfies the fifth condition (step S85: NO), the first control device proceeds to step S72.
[0091] If there is a second heat source device that satisfies the fifth condition (step S85: YES), in step S86 the first control device determines whether there is a second heat source device that satisfies the sixth condition. If there is a second heat source device that satisfies the fifth condition in step S85, the first control device extracts the second heat source device that satisfies the fifth condition. In step S86, the first control device determines whether there is a second heat source device that satisfies the sixth condition from one or more second heat source devices extracted in the processing before step S86. If there is no second heat source device that satisfies the sixth condition (step S86: NO), the first control device proceeds to step S72. If there is a second heat source device that satisfies the sixth condition (step S86: YES), the first control device determines that there is a second heat source device that satisfies the specific condition, and proceeds to step S73.
[0092] If the specific conditions do not include the sixth condition, the process of step S86 is omitted in Fig. 12. Then, if there is a second heat source device that satisfies the fifth condition in step S85, the first control device proceeds to step S73.
[0093] Here, in the example shown in Figure 12, the first control device performs the processes from step S81 to step S86 in order, but the first control device may perform the processes from step S81 to step S86 in an order different from that shown in Figure 12 and identify a second heat source device that satisfies the first condition to the sixth condition.
[0094] Fig. 13 is a block diagram illustrating an example of the hardware configuration of the control device 6 in embodiment 2. In addition to the configuration shown in Fig. 9, the control device 6 includes a first communication interface circuit 64 connected to a first bus 63. The first communication interface circuit 64 enables the control devices 6 of the multiple heat source devices 3 to communicate with each other.
[0095] In the second embodiment, an example has been described in which each heat source device 3 includes a control device 6, but the heat pump device 100 may have one control device 6 that controls the compressors 30 and heat-source fans 33, etc., in a plurality of heat source devices 3. In this case, the above description of the first control device can be read as the control device 6.
[0096] The effects of the heat pump apparatus 100 according to the second embodiment will be described below. The heat pump apparatus 100 according to the second embodiment has a plurality of heat source apparatuses 3 connected in parallel to the load apparatus 4. When the discharge temperature sensor 52 of a first heat source apparatus, which is one of the plurality of heat source apparatuses 3, fails, and a second heat source apparatus, which is one of the plurality of heat source apparatuses 3 and whose discharge temperature sensor 52 and intake temperature sensor 53 are not faulty, satisfies a predetermined specific condition, the control apparatus 6 sets the measurement result of the discharge temperature sensor 52 of the second heat source apparatus as a provisional value. The control apparatus 6 then controls the controlled objects, including the compressor 30 of the first heat source apparatus, based on the provisional value instead of the measurement result of the discharge temperature sensor 52 of the first heat source apparatus. This allows the first heat source apparatus to operate. Furthermore, the control apparatus 6 can easily and quickly obtain a provisional value as the temperature of the refrigerant on the discharge side of the compressor 30 of the first heat source apparatus by obtaining the measurement result of the discharge temperature sensor 52 of the second heat source apparatus. This reduces the amount of processing by the control apparatus 6.
[0097] The heat pump apparatus 100 according to the second embodiment includes a plurality of heat source apparatuses 3 connected in parallel to a load apparatus 4. When the intake temperature sensor 53 of a first heat source apparatus, which is one of the plurality of heat source apparatuses 3, fails, and a second heat source apparatus, which is one of the plurality of heat source apparatuses 3 and whose discharge temperature sensor 52 and intake temperature sensor 53 are not faulty, satisfies a predetermined specific condition, the control device 6 uses the measurement result of the intake temperature sensor 53 of the second heat source apparatus as a provisional value and controls the controlled objects, including the compressor 30 of the first heat source apparatus, based on the provisional value, instead of the measurement result of the intake temperature sensor 53 of the first heat source apparatus. This allows the first heat source apparatus to operate. Furthermore, by obtaining the measurement result of the intake temperature sensor 53 of the second heat source apparatus, the control device 6 can easily and quickly obtain a provisional value as the temperature of the refrigerant on the intake side of the compressor 30 of the first heat source apparatus. This reduces the amount of processing by the control device 6.
[0098] The specific conditions in the second embodiment include a condition that the second heat source device is operating, a condition that the capacities of the first and second heat source devices are equal, a condition that the operating frequencies of the compressors 30 of the first and second heat source devices are equal, a condition that the refrigerant pressures on the discharge sides of the compressors 30 of the first and second heat source devices are equal, and a condition that the refrigerant pressures on the suction sides of the compressors 30 of the first and second heat source devices are equal. Therefore, the physical quantity of the refrigerant in the first heat source device can be approximated to the physical quantity of the refrigerant in the second heat source device that satisfies the specific conditions. Therefore, the control device 6 can easily and quickly obtain a provisional value that replaces the measurement result of the fault sensor in the first heat source device with high accuracy.
[0099] The specific conditions in the second embodiment include a condition that the refrigerant temperatures on the discharge sides of the compressors 30 in the first and second heat source devices are equal when the discharge temperature sensor 52 of the first heat source device is not malfunctioning. The specific conditions also include a condition that the refrigerant temperatures on the suction sides of the compressors 30 in the first and second heat source devices are equal when the suction temperature sensor 53 of the first heat source device is not malfunctioning. The refrigerant temperatures on the discharge sides of the compressors 30 correlate with the refrigerant temperatures on the suction sides. Therefore, even if the discharge temperature sensor 52 of the first heat source device is malfunctioning, the refrigerant temperature on the discharge side of the compressor 30 of the first heat source device can be approximated by the measurement value of the discharge temperature sensor 52 of the second heat source device that satisfies the specific conditions. Furthermore, even if the suction temperature sensor 53 of the first heat source device is malfunctioning, the refrigerant temperature on the suction side of the compressor 30 of the first heat source device can be approximated by the measurement value of the suction temperature sensor 53 of the second heat source device that satisfies the specific conditions. Therefore, the control device 6 can accurately, quickly and easily obtain a provisional value of the temperature of the refrigerant on the discharge side or suction side of the compressor 30 of the first heat source device from the measurement results of the discharge temperature sensor 52 or suction temperature sensor 53 of the second heat source device that meets specific conditions.
[0100] In the second embodiment, the heat exchange target is outside air. Each of the multiple heat source devices 3 further includes a heat-source blower 33 that circulates the heat exchange target through the heat-source heat exchanger 32. The controlled object further includes the heat-source blower 33. The specific conditions further include a condition that the operating frequencies of the heat-source blowers 33 of the first and second heat source devices are equal. This allows the physical quantity of the refrigerant in the first heat source device to more closely approximate the physical quantity of the refrigerant in the second heat source device that satisfies the specific condition. Therefore, the control device 6 can accurately, quickly, and easily obtain a provisional value of the temperature of the refrigerant on the discharge side or suction side of the compressor 30 of the first heat source device based on the measurement results of the failure response sensor of the second heat source device that satisfies the specific condition.
[0101] Embodiment 3 A heat pump system 200 according to the third embodiment will be described below. In the third embodiment, the same components as those in the first and second embodiments are denoted by the same reference numerals. In the third embodiment, the same configurations as those in the first and second embodiments and the same functions as those in the first and second embodiments will not be described unless there are special circumstances.
[0102] Fig. 14 is a schematic diagram showing a configuration example of a heat pump system 200 according to embodiment 3. The heat pump system 200 according to embodiment 3 has a plurality of heat pump devices 100 and a management system 7. Each heat pump device 100 according to embodiment 3 is similar to that of embodiment 1, and includes one heat source device 3 and one load device 4. Note that embodiment 3 also takes as an example a case where the heat pump device 100 is an air conditioner.
[0103] All of the multiple heat pump devices 100 may simultaneously perform the same operation. That is, each of the multiple heat pump devices 100 may simultaneously perform cooling operation or heating operation. Alternatively, some of the multiple heat pump devices 100 may simultaneously perform cooling operation while the rest perform heating operation.
[0104] The management system 7 may be, for example, a cloud server or a collection of multiple computers with distributed functions. In the third embodiment, the management system 7 communicates via wire with multiple control devices 6 in multiple heat pump devices 100. However, the management system 7 may also communicate wirelessly with all or some of the multiple control devices 6. The management system 7 periodically acquires device information from each control device 6, including information indicating the operating state of each heat pump device 100 and measurement results from the sensors. The information indicating the operating state includes the operating frequency of the compressor 30, the operating frequency of the heat-source blower 33, the operating frequency of the load blower 41, and the opening degree of the expansion device 42. The device information may also include information indicating whether the heat pump device 100 is operating. The device information may be periodically transmitted from the control device 6 to the management system 7 only when the heat pump device 100 is operating. Alternatively, the device information may be periodically transmitted from the control device 6 to the management system 7 regardless of whether the heat pump device 100 is operating. Note that when the target of temperature adjustment is not air, such as when the heat pump device 100 is not an air conditioner, the information indicating the operating state does not include the operating frequency of the load fan 41. Furthermore, when the target of heat exchange is not air, the information indicating the operating state does not include the operating frequency of the heat source fan 33.
[0105] When the heat source temperature sensor in each heat pump unit 100 fails, the management system 7 uses the measurement result of the heat source temperature sensor in a heat pump unit 100 that satisfies specific conditions and has a heat source temperature sensor that is not faulty as a provisional value to replace the measurement result of the faulty heat source temperature sensor. Hereinafter, a heat pump unit 100 in which both or one of the discharge temperature sensor 52 and the inlet temperature sensor 53 is faulty may also be referred to as a first heat pump unit. A heat pump unit 100 in which neither the discharge temperature sensor 52 nor the inlet temperature sensor 53 is faulty may also be referred to as a second heat pump unit.
[0106] That is, if the discharge temperature sensor 52 of the first heat pump unit is malfunctioning, the management system 7 uses the measurement result of the discharge temperature sensor 52 of the second heat pump unit as a provisional value in place of the measurement result of the discharge temperature sensor 52 of the first heat pump unit. Then, the management system 7 causes the control device 6 of the first heat pump unit to execute control based on the provisional value. If the inlet temperature sensor 53 of the first heat pump unit is malfunctioning, the management system 7 uses the measurement result of the inlet temperature sensor 53 of the second heat pump unit as a provisional value in place of the measurement result of the inlet temperature sensor 53 of the first heat pump unit. Then, the management system 7 causes the control device 6 of the first heat pump unit to execute control based on the provisional value.
[0107] The first control device in the third embodiment is the control device 6 provided in the first heat pump device. The second control device in the third embodiment is the control device 6 provided in the second heat pump device. The failure response sensor in the third embodiment is the discharge temperature sensor 52 of the second heat pump device when the faulty sensor in the first heat pump device is the discharge temperature sensor 52, and is the intake temperature sensor 53 of the second heat pump device when the faulty sensor in the first heat pump device is the intake temperature sensor 53. The normal response sensor in the third embodiment is the discharge temperature sensor 52 of the second heat pump device when the normal temperature sensor in the first heat pump device is the discharge temperature sensor 52, and is the intake temperature sensor 53 of the second heat pump device when the normal temperature sensor in the first heat pump device is the intake temperature sensor 53.
[0108] The specific conditions of the third embodiment include the following first, second, third, fourth, and fifth conditions. The first condition of the third embodiment is that the second heat pump device is in operation. The second condition of the third embodiment is that the capacity of the first heat pump device is equal to the capacity of the second heat pump device. Furthermore, the capacity of the first heat pump device is equal to the capacity of the second heat pump device when the difference between the capacity of the first heat pump device and the capacity of the second heat pump device is equal to or less than the first capacity difference, or when the ratio of the difference to the capacity of the first heat pump device or the second heat pump device is equal to or less than the first ratio.
[0109] The third condition of the third embodiment is that the operating frequencies of the compressors 30 of the first heat pump unit and the second heat pump unit are equal. Furthermore, the operating frequencies of the compressors 30 of the first heat pump unit and the second heat pump unit are equal means that the difference between the operating frequency of the compressor 30 of the first heat pump unit and the operating frequency of the compressor 30 of the second heat pump unit is equal to or less than the second ratio of the operating frequency of the compressor 30 of the first heat pump unit or the second heat pump unit.
[0110] The fourth condition in the third embodiment is that the pressures measured by the discharge pressure sensors 50 of the first and second heat pump devices are equal. Note that the pressures measured by the discharge pressure sensors 50 of the first and second heat pump devices are equal means that the differential pressure between the pressure measured by the discharge pressure sensor 50 of the first heat pump device and the pressure measured by the discharge pressure sensor 50 of the second heat pump device is equal to or less than the third percentage of the pressure measured by the discharge pressure sensor 50 of the first or second heat pump device.
[0111] The fifth condition in the third embodiment is that the pressures measured by the suction pressure sensors 51 of the first and second heat pump units are equal. Furthermore, the phrase "the pressures measured by the suction pressure sensors 51 of the first and second heat pump units are equal" means that the differential pressure between the pressure measured by the suction pressure sensor 51 of the first heat pump unit and the pressure measured by the suction pressure sensor 51 of the second heat pump unit is equal to or less than the fourth percentage of the pressure measured by the suction pressure sensor 51 of the first or second heat pump unit.
[0112] The specific conditions of the third embodiment may further include the following sixth condition. The sixth condition of the third embodiment is a condition that the temperature measured by the normal temperature sensor in the first heat pump unit is equal to the temperature measured by the normally compatible sensor in the second heat pump unit. The temperature measured by the normal temperature sensor is equal to the temperature measured by the normally compatible sensor if the difference between the temperature measured by the normal temperature sensor and the temperature measured by the normally compatible sensor is equal to or less than the fifth percentage of the temperature measured by the normal temperature sensor or the normally compatible sensor.
[0113] The specific conditions of the third embodiment further include the following seventh condition: The seventh condition is that the operation mode of the first heat pump unit and the operation mode of the second heat pump unit are the same.
[0114] The heat pump device 100 according to the third embodiment may include the following eighth condition instead of the first condition: The eighth condition is that the model name of the first heat pump device and the model name of the second heat pump device are the same.
[0115] The specific conditions of the third embodiment may include the following ninth condition. The ninth condition is a condition that the difference between the temperature of the heat exchange target flowing into the heat source heat exchanger 32 of the first heat pump unit and the temperature of the heat exchange target flowing into the heat source heat exchanger 32 of the second heat pump unit is equal to or less than a predetermined first temperature difference. The first temperature difference is, for example, 1°C to 3°C. Note that when the specific conditions include the ninth condition, each heat pump unit 100 is equipped with a heat source target temperature sensor (not shown) that measures the temperature of the heat exchange target flowing into the heat source heat exchanger 32.
[0116] The specific conditions of the third embodiment may include the following tenth condition when each heat pump unit 100 includes a heat-source fan 33. The tenth condition is a condition that the operating frequency of the heat-source fan 33 of the first heat pump unit is equal to the operating frequency of the heat-source fan 33 of the second heat pump unit. The operating frequency of the heat-source fan 33 of the first heat pump unit is equal to the operating frequency of the heat-source fan 33 of the second heat pump unit when the difference between the operating frequency of the heat-source fan 33 of the first heat pump unit and the operating frequency of the heat-source fan 33 of the second heat pump unit is equal to or less than a sixth percentage of the operating frequency of the heat-source fan 33 of the first heat pump unit or the second heat pump unit. The sixth percentage is predetermined and is, for example, 5% to 10%.
[0117] The process up to the start of emergency operation by the first heat pump unit in the third embodiment is shown in FIG. 2, and corresponds to the above description regarding FIG. 2, with the control unit 6 replaced with the first control unit.
[0118] 15 is a flowchart showing the flow of the process of deriving a provisional value and the control process based on the provisional value in the third embodiment. In step S91, the management system 7 determines whether the first heat pump device is in operation. The management system 7 determines whether the first heat pump device is in operation based on the device information from the first control device. If the first heat pump device is in a stopped state (step S91: NO), the management system 7 ends the process of deriving a provisional value.
[0119] If the first heat pump device is in an operating state (step S91: YES), in step S92 the first control device sets a limit on the value of the control parameter of the control target. The first control device may set a limit on the value of the control parameter based on an instruction from the management system 7. Here, the processing of step S92 may be omitted. In this case, the first control device and the management system 7 proceed to step S93 when it is determined in step S91 that the heat pump device 100 is in an operating state.
[0120] In step S93, the first control device determines whether control based on provisional values instead of the measurement results of the failed sensor is permitted. That is, the first control device determines whether emergency operation mode is set and information indicating a failed sensor is set. If control based on provisional values is not permitted in step S93 (step S93: NO), the first control device transmits error information to the management system 7 in step S94. At this time, the first control device may notify the user of the error via the remote controller of the first heat pump device. After processing step S94, the heat pump system 200 ends processing.
[0121] If control based on the provisional value is permitted (step S93: YES), in step S95 the first control device transmits permission information indicating that control based on the provisional value is permitted to the management system 7, and the management system 7 receives the permission information.
[0122] The permission setting for control based on the provisional value may be performed by the management system 7. That is, the management system 7 may acquire information indicating the state of the sensor group of each heat pump unit 100 from each control device 6 at any time, and instruct the first control device to perform emergency operation when a failure occurs in either or both of the discharge temperature sensor 52 and the inlet temperature sensor 53 of any heat pump unit 100. In this case, the processes of steps S93 to S95 may be omitted.
[0123] In step S96, the first control device determines whether a temporary value has been set by a service technician or the like. If a temporary value has been set (step S96: YES), in step S97 the first control device transmits temporary value set information indicating that a temporary value has been set to the management system 7, and the management system 7 receives the temporary value set information. After processing in step S97, the first control device proceeds to step S103. If a temporary value has not been set (step S96: NO), in step S98 the first control device transmits temporary value not set information indicating that a temporary value has not been set to the management system 7, and the management system 7 receives the temporary value not set information. Note that the control device 6 may not accept temporary value setting from a service technician, in which case the processing in steps S96 to S98 may be omitted.
[0124] In step S99, the management system 7 determines whether or not there is a second heat pump device that satisfies the specific condition. If there is no second heat pump device that satisfies the specific condition (step S99: NO), in step S100, the management system 7 sends an instruction to the first control device to perform an individual derivation process. Then, the first control device executes the process shown in any of FIGS. 3 to 8 to derive a provisional value. After the process of step S100, the heat pump system 200 proceeds to step S103.
[0125] If there is a second heat pump device that satisfies the specific condition (step S99: YES), in step S101, the management system 7 sets the measurement result of the corresponding faulty sensor of the second heat pump device that satisfies the specific condition as a provisional value. In step S102, the management system 7 transmits the obtained provisional value to the first control device, and the first control device receives the provisional value. In step S103, the first control device derives a value of a control parameter based on the measurement result of the normal sensor and the provisional value. In step S104, the first control device controls the controlled object based on the obtained value of the control parameter. After processing in step S104, the heat pump system 200 returns to processing in step S91 after a predetermined period of time has elapsed.
[0126] FIG. 16 is a flowchart illustrating a process performed by the management system 7 in the third embodiment to determine whether or not a second heat pump device satisfies a specific condition. The process shown in FIG. 16 corresponds to the process of step S99 in the third embodiment. FIG. 16 illustrates an example in which the specific conditions include the first to seventh conditions. In step S111, the management system 7 determines whether or not a second heat pump device satisfies the first condition. If no second heat pump device satisfies the first condition (step S111: NO), the management system 7 proceeds to step S100. If a second heat pump device satisfies the first condition (step S111: YES), the management system 7 determines in step S112 whether or not a second heat pump device satisfies the second condition. If a second heat pump device satisfies the first condition in step S111, the management system 7 extracts the second heat pump device that satisfies the first condition. In step S112, the management system 7 determines whether there is a second heat pump device that satisfies the second condition from among the one or more second heat pump devices extracted in the processing before step S112. If there is no second heat pump device that satisfies the second condition (step S112: NO), the management system 7 proceeds to step S100.
[0127] If there is a second heat pump device that satisfies the second condition (step S112: YES), in step S113 the management system 7 determines whether there is a second heat pump device that satisfies the seventh condition. If there is a second heat pump device that satisfies the second condition in step S112, the management system 7 extracts the second heat pump device that satisfies the second condition. In step S113, the management system 7 determines whether there is a second heat pump device that satisfies the seventh condition from among the one or more second heat pump devices extracted in the processing before step S113. If there is no second heat pump device that satisfies the seventh condition (step S113: NO), the management system 7 proceeds to step S100.
[0128] If there is a second heat source device that satisfies the seventh condition (step S113: YES), in step S114 the management system 7 determines whether there is a second heat pump device that satisfies the third condition. If there is a second heat pump device that satisfies the seventh condition in step S113, the management system 7 extracts the second heat pump device that satisfies the seventh condition. In step S114, the management system 7 determines whether there is a second heat pump device that satisfies the third condition from among the one or more second heat pump devices extracted in the processing before step S114. If there is no second heat pump device that satisfies the third condition (step S114: NO), the management system 7 proceeds to step S100.
[0129] If there is a second heat pump device that satisfies the third condition (step S114: YES), in step S115 the management system 7 determines whether there is a second heat pump device that satisfies the fourth condition. If there is a second heat pump device that satisfies the third condition in step S114, the management system 7 extracts the second heat pump device that satisfies the third condition. In step S115, the management system 7 determines whether there is a second heat pump device that satisfies the fourth condition from among the one or more second heat pump devices extracted in the processing before step S115. If there is no second heat pump device that satisfies the fourth condition (step S115: NO), the management system 7 proceeds to step S100.
[0130] If there is a second heat pump device that satisfies the fourth condition (step S115: YES), in step S116 the management system 7 determines whether there is a second heat pump device that satisfies the fifth condition. If there is a second heat pump device that satisfies the fourth condition in step S115, the management system 7 extracts the second heat pump device that satisfies the fourth condition. In step S116, the management system 7 determines whether there is a second heat pump device that satisfies the fifth condition from among the one or more second heat pump devices extracted in the processing before step S116. If there is no second heat pump device that satisfies the fifth condition (step S116: NO), the management system 7 proceeds to step S100.
[0131] If a second heat pump device satisfies the fifth condition (step S116: YES), in step S117, the management system 7 determines whether a second heat pump device satisfies the sixth condition. If a second heat pump device satisfies the fifth condition in step S116, the management system 7 extracts the second heat pump device that satisfies the fifth condition. In step S117, the management system 7 determines whether a second heat pump device satisfies the sixth condition from among the one or more second heat pump devices extracted in the processing before step S117. If a second heat pump device satisfies the sixth condition (step S117: NO), the management system 7 proceeds to step S100. If a second heat pump device satisfies the sixth condition (step S117: YES), the management system 7 determines that a second heat pump device satisfies the specific condition and proceeds to step S101.
[0132] If the specific conditions do not include the sixth condition, the process of step SS117 is omitted in Fig. 16. Then, if there is a second heat pump device that satisfies the fifth condition in step S116, the management system 7 proceeds to step S101.
[0133] Here, in the example shown in FIG. 16, the management system 7 performs the processes from step S111 to step S117 in order, but the management system 7 may perform the processes from step S111 to step S117 in an order different from that shown in FIG. 16 to identify the second heat pump device that satisfies the first to seventh conditions.
[0134] FIG. 17 is a block diagram illustrating a hardware configuration of a management system 7 according to the third embodiment. The hardware configuration of a control device 6 according to the third embodiment is shown in FIG. 13 , similarly to the second embodiment. The management system 7 can be configured with a second processor 70, a second memory 71, and a second communication interface circuit 72. The second processor 70, the second memory 71, and the second communication interface circuit 72 are connected to each other via a second bus 73. The second processor 70 can be, for example, a CPU or an MPU. The second memory 71 can be, for example, a ROM or a RAM. The function of the management system 7 to derive temporary values can be realized by the second processor 70 reading and executing various programs, such as an emergency operation program, stored in the second memory 71. The function of the management system 7 to communicate with each control device 6 can be realized by the second communication interface circuit 72.
[0135] When the functions are distributed, the management system 7 can be configured with a plurality of second processors 70, a plurality of second memories 71, a plurality of second communication interface circuits 72, and a plurality of second buses 73. Each second processor 70, each second memory 71, and each second communication interface circuit 72 is connected to each second bus 73.
[0136] The functions of the management system 7 may be obtained by a combination of software and hardware as described above, or may be obtained by dedicated hardware. For example, all or part of the management system 7 may be configured by hardware such as a CPLD or FPGA.
[0137] The effects of the heat pump system 200 according to the third embodiment will be described below. The heat pump system 200 according to the third embodiment includes a management system 7 and a plurality of heat pump devices 100. The heat pump device 100 cools or heats a temperature-adjusted object using a refrigerant circulating through a refrigerant circuit 1. The management system 7 is for managing the plurality of heat pump devices 100. The heat pump device 100 includes a compressor 30, a heat-source heat exchanger 32, a throttling device 42, a load heat exchanger 40, a sensor group, and a control device 6. The compressor 30 compresses the refrigerant. The heat-source heat exchanger 32 exchanges heat between the refrigerant and the heat exchange object. The throttling device 42 decompresses and expands the refrigerant. The load heat exchanger 40 exchanges heat between the refrigerant and the temperature-adjusted object. The sensor group measures physical quantities of the refrigerant circulating through the refrigerant circuit 1. The control device 6 controls the controlled object, including the compressor 30, based on the measurement results from the sensor group. The compressor 30, the heat-source heat exchanger 32, the throttling device 42, and the load heat exchanger 40 are included in the refrigerant circuit 1. The sensor group includes a heat-source temperature sensor that measures the temperature of the refrigerant on the discharge side or the suction side of the compressor 30. When the heat-source temperature sensor of a first heat pump device, which is one of the heat pump devices 100, fails and a second heat pump device, which is one of the heat pump devices 100 whose heat-source temperature sensor is not faulty, satisfies a predetermined specific condition, the management system 7 uses the measurement result of the heat-source temperature sensor of the second heat pump device as a provisional value in place of the measurement result of the heat-source temperature sensor of the first heat pump device. The management system 7 then instructs the control device 6 of the first heat pump device to control the control target of the first heat pump device based on the provisional value instead of the measurement result of the heat-source temperature sensor of the first heat pump device.
[0138] According to the above configuration, the management system 7 uses the measurement result of the heat source temperature sensor of the second heat pump unit that satisfies a specific condition as a provisional value to replace the measurement result of the heat source temperature sensor of the first heat pump unit. The management system 7 then instructs the control device 6 of the first heat pump unit to control the first heat pump unit based on the provisional value instead of the measurement result of the heat source temperature sensor of the first heat pump unit. Therefore, each heat pump unit 100 in the heat pump system 200 can continue to operate even if the heat source temperature sensor fails.
[0139] The sensor group in the third embodiment includes a discharge pressure sensor 50 and a suction pressure sensor 51. The discharge pressure sensor 50 measures the pressure of the refrigerant on the discharge side of the compressor 30. The suction pressure sensor 51 measures the pressure of the refrigerant on the suction side of the compressor 30. The specific conditions in the third embodiment include a condition that the second heat pump unit is operating, a condition that the capacities of the first heat pump unit and the second heat pump unit are equal, a condition that the operation modes of the first heat pump unit and the second heat pump unit are equal, a condition that the operating frequencies of the compressors 30 of the first heat pump unit and the second heat pump unit are equal, a condition that the pressures of the refrigerant on the discharge side of the compressors 30 of the first heat pump unit and the second heat pump unit are equal, and a condition that the pressures of the refrigerant on the suction side of the compressors 30 of the first heat pump unit and the second heat pump unit are equal. Therefore, the state of the refrigerant in the first heat pump unit can be similar to the state of the refrigerant in the second heat pump unit that satisfies the specific conditions. That is, the physical quantity of the refrigerant in the first heat pump unit can be approximated to the physical quantity of the refrigerant in the second heat pump unit that satisfies certain conditions. Therefore, the management system 7 can easily, quickly, and accurately obtain a provisional value of the refrigerant temperature on the discharge side or suction side of the compressor 30 of the first heat pump unit from the measurement results of the heat source temperature sensor of the second heat pump unit. Furthermore, the management system 7 instructs the control device 6 of the first heat pump unit to perform control based on the provisional value, allowing the first heat pump unit to operate.
[0140] The sensor group in the third embodiment includes a discharge temperature sensor 52 and an inlet temperature sensor 53. The heat source temperature sensor is the discharge temperature sensor 52 or the inlet temperature sensor 53. The discharge temperature sensor 52 measures the temperature of the refrigerant on the discharge side of the compressor 30. The inlet temperature sensor 53 measures the temperature of the refrigerant on the suction side of the compressor 30. The specific conditions include a condition that, if the discharge temperature sensor 52 of the first heat pump unit is not malfunctioning, the refrigerant temperatures on the discharge sides of the compressors 30 in the first heat pump unit and the second heat pump unit are equal. The specific conditions include a condition that, if the inlet temperature sensor 53 of the first heat pump unit is not malfunctioning, the refrigerant temperatures on the suction sides of the compressors 30 in the first heat pump unit and the second heat pump unit are equal. The refrigerant temperatures on the discharge side and the suction side of the compressors 30 are correlated. Therefore, even if the discharge temperature sensor 52 of the first heat pump unit is malfunctioning, the temperature of the refrigerant on the discharge side of the compressor 30 of the first heat pump unit can be approximated by the measurement value of the discharge temperature sensor 52 of the second heat pump unit that satisfies specific conditions. Also, even if the suction temperature sensor 53 of the first heat pump unit is malfunctioning, the temperature of the refrigerant on the suction side of the compressor 30 of the first heat pump unit can be approximated by the measurement value of the suction temperature sensor 53 of the second heat pump unit that satisfies specific conditions. Therefore, the management system 7 can accurately, quickly, and easily obtain a provisional value of the refrigerant temperature on the discharge side or suction side of the compressor 30 of the first heat pump unit from the measurement result of the discharge temperature sensor 52 or suction temperature sensor 53 of the second heat pump unit that satisfies specific conditions.
[0141] In the third embodiment, the heat exchange target is outside air. Each of the heat pump units 100 further includes a heat-source blower 33 that circulates the heat exchange target through the heat-source heat exchanger 32. The controlled object further includes the heat-source blower 33. The specific conditions further include a condition that the operating frequencies of the heat-source blowers 33 of the first and second heat pump units are equal. As a result, the state of the refrigerant in the second heat pump unit that satisfies the specific conditions becomes similar to the state of the refrigerant in the first heat pump unit, and the physical quantity of the refrigerant in the first heat pump unit can be approximated to the physical quantity of the refrigerant in the second heat pump unit that satisfies the specific conditions. Therefore, the management system 7 can accurately obtain a provisional value of the temperature of the refrigerant on the discharge side or suction side of the compressor 30 of the first heat pump unit.
[0142] Embodiment 4 A heat pump system 200 according to the fourth embodiment will be described below. In the fourth embodiment, the same components as those in the first to third embodiments are denoted by the same reference numerals. In the fourth embodiment, the same configurations as those in the first to third embodiments and the same functions as those in the first to third embodiments will not be described unless there are special circumstances.
[0143] A heat pump system 200 according to the fourth embodiment is illustrated in Fig. 14, similar to the third embodiment. The hardware configuration of the control device 6 according to the fourth embodiment is illustrated in Fig. 13, similar to the second and third embodiments. The hardware configuration of the management system 7 according to the fourth embodiment is illustrated in Fig. 17, similar to the third embodiment.
[0144] The specific conditions in the fourth embodiment are the specific conditions in the third embodiment minus the first condition. In the fourth embodiment, the management system 7 accumulates and stores the device information acquired from each heat pump device 100. Hereinafter, the collection of accumulated device information may be referred to as a device database. In the fourth embodiment, even if the first heat pump device is currently malfunctioning, it is considered to be included in the second heat pump device when it was not malfunctioning.
[0145] The process up to the start of emergency operation by the first heat pump unit in the fourth embodiment is shown in FIG. 2, and corresponds to the above description regarding FIG. 2, with the control unit 6 replaced with the first control unit.
[0146] The flow of the process of deriving a provisional value by the heat pump system 200 in the fourth embodiment and the control process based on the provisional value are shown in FIG. 15, similarly to the third embodiment. However, in the fourth embodiment, the process in step S99 in FIG. 15 is a process of determining whether or not device information of a second heat pump device that satisfies a specific condition is present in the device database. If there is no device information of a second heat pump device that satisfies the specific condition (step S99: NO), in step S100 the management system 7 sends an instruction to the first control device to perform individual derivation processing. On the other hand, if there is device information of a second heat pump device that satisfies the specific condition (step S99: YES), in step S101 the management system 7 sets the measurement result of the corresponding failure sensor, included in the device information of the second heat pump device that satisfies the specific condition, as the provisional value.
[0147] Fig. 18 is a flowchart showing a first example of the process of determining whether or not there is device information of a second heat pump device that satisfies specific conditions, performed by the management system 7 in embodiment 4. The process in Fig. 18 corresponds to the process of step S99 in embodiment 4. The example shown in Fig. 18 takes as an example a case where the specific conditions include the third to fifth conditions, the seventh condition, and the ninth to tenth conditions.
[0148] In step S121, the management system 7 determines whether the equipment database contains device information for a second heat pump unit that satisfies the seventh condition. If there is no device information for a second heat pump unit that satisfies the seventh condition (step S121: NO), the heat pump system 200 proceeds to step S100. If there is device information for a second heat pump unit that satisfies the seventh condition (step S121: YES), the management system 7 proceeds to step S122 and determines whether there is device information for a second heat pump unit that satisfies the third condition. If there is device information for a second heat pump unit that satisfies the seventh condition in step S121, the management system 7 extracts the device information for the second heat pump unit that satisfies the seventh condition. In step S122, the management system 7 determines whether there is device information for a second heat pump unit that satisfies the third condition from the device information extracted in the processing prior to step S122. If there is no device information for a second heat pump unit that satisfies the third condition (step S122: NO), the heat pump system 200 proceeds to step S100.
[0149] If there is device information of a second heat pump unit that satisfies the third condition (step S122: YES), in step S123 the management system 7 determines whether there is device information of a second heat pump unit that satisfies the tenth condition. If there is device information of a second heat pump unit that satisfies the third condition in step S122, the management system 7 extracts the device information of the second heat pump unit that satisfies the third condition. In step S123, the management system 7 determines whether there is device information of a second heat pump unit that satisfies the tenth condition from the device information extracted in the processing before step S123. If there is no operating data of a second heat pump unit that satisfies the tenth condition (step S123: NO), the heat pump system 200 proceeds to step S100.
[0150] If there is operating data of a second heat pump unit that satisfies the tenth condition (step S123: YES), in step S124 the management system 7 determines whether there is device information of a second heat pump unit that satisfies the ninth condition. If there is device information of a second heat pump unit that satisfies the tenth condition in step S123, the management system 7 extracts the device information of the second heat pump unit that satisfies the tenth condition. In step S124, the management system 7 determines whether there is device information of a second heat pump unit that satisfies the ninth condition from the device information extracted in the processing before step S124. If there is no device information of a second heat pump unit that satisfies the ninth condition (step S124: NO), the heat pump system 200 proceeds to step S100.
[0151] If there is device information of a second heat pump unit that satisfies the ninth condition (step S124: YES), in step S125 the management system 7 determines whether there is operating data of a normal heat pump unit that satisfies the fourth condition. If there is device information of a second heat pump unit that satisfies the ninth condition in step S124, the management system 7 extracts the device information of the second heat pump unit that satisfies the ninth condition. In step S125, the management system 7 determines whether there is device information of a second heat pump unit that satisfies the fourth condition from the device information extracted in the processing before step S125. If there is no device information of a normal heat pump unit that satisfies the fourth condition (step S125: NO), the heat pump system 200 proceeds to step S100.
[0152] If there is device information of a second heat pump unit that satisfies the fourth condition (step S125: YES), in step S126 the management system 7 determines whether there is device information of a second heat pump unit that satisfies the fifth condition. If there is device information of a second heat pump unit that satisfies the fourth condition in step S125, the management system 7 extracts the device information of the second heat pump unit that satisfies the fourth condition. In step S126, the management system 7 determines whether there is device information of a second heat pump unit that satisfies the fifth condition from the device information extracted in the processing before step S126. If there is no device information of a second heat pump unit that satisfies the fifth condition (step S126: NO), the heat pump system 200 proceeds to step S100.
[0153] If there is device information of a second heat pump device that satisfies the fifth condition (step S126: YES), the management system 7 determines that there is a second heat pump device that satisfies the specific condition, and proceeds to step S101.
[0154] In the example shown in FIG. 18, the management system 7 performs the processes from step S121 to step S126 in order, but the management system 7 may perform the processes from step S121 to step S126 in a different order to determine whether or not there is device information for a second heat pump device that satisfies specific conditions.
[0155] Although Fig. 18 shows an example in which the second and eighth conditions are omitted from the specific conditions, the specific conditions may include either the second or eighth condition. When the specific conditions include either the second or eighth condition, the process shown in Fig. 18 includes a process for determining whether or not there is device information for a second heat pump device that satisfies either the second or eighth condition. Note that the process for determining whether or not there is device information for a second heat pump device that satisfies either the second or eighth condition is performed using device information extracted in a process prior to this determination process.
[0156] Although Fig. 18 shows an example in which the sixth condition is omitted from the specific conditions, the sixth condition may be included in the specific conditions. In this case, the process shown in Fig. 18 includes a process for determining whether or not there is device information of a second heat pump device that satisfies the sixth condition. Note that the process for determining whether or not there is device information of a second heat pump device that satisfies the sixth condition is performed using device information extracted in a process prior to this determination process.
[0157] Fig. 19 is a flowchart showing a second example of the process of determining whether or not there is device information of a second heat pump device that satisfies specific conditions, performed by the management system 7 in embodiment 4. The process in Fig. 19, like the processes shown in Figs. 16 and 18, corresponds to the process of step S99 in embodiment 3. Note that Fig. 19 shows an example in which the specific conditions include the third to tenth conditions.
[0158] In step S131, the management system 7 determines whether the device database contains device information for a second heat pump unit that satisfies the eighth condition. If there is no device information for a second heat pump unit that satisfies the eighth condition (step S131: NO), the heat pump system 200 proceeds to step S100. If there is device information for a second heat pump unit that satisfies the eighth condition (step S131: YES), the management system 7 determines in step S132 whether there is operating data for a normal heat pump unit that satisfies the seventh condition. If there is device information for a second heat pump unit that satisfies the eighth condition in step S131, the management system 7 extracts the device information for the second heat pump unit that satisfies the eighth condition. In step S132, the management system 7 determines whether there is device information for a second heat pump unit that satisfies the seventh condition from the device information extracted in the processing prior to step S132. If there is no device information for a second heat pump unit that satisfies the seventh condition (step S132: NO), the heat pump system 200 proceeds to step S100.
[0159] If there is operating data of a second heat pump unit that satisfies the seventh condition (step S132: YES), in step S133 the management system 7 determines whether there is operating data of a normal heat pump unit that satisfies the third condition. If there is device information of a second heat pump unit that satisfies the seventh condition in step S132, the management system 7 extracts the device information of the second heat pump unit that satisfies the seventh condition. In step S133, the management system 7 determines whether there is device information of a second heat pump unit that satisfies the third condition from the device information extracted in the processing before step S133. If there is no device information of a normal heat pump unit that satisfies the third condition (step S133: NO), the heat pump system 200 proceeds to step S100.
[0160] If there is device information of a second heat pump unit that satisfies the third condition (step S133: YES), in step S134 the management system 7 determines whether there is device information of a second heat pump unit that satisfies the tenth condition. If there is device information of a second heat pump unit that satisfies the third condition in step S133, the management system 7 extracts the device information of the second heat pump unit that satisfies the third condition. In step S134, the management system 7 determines whether there is device information of a second heat pump unit that satisfies the tenth condition from the device information extracted in the processing before step S134. If there is no device information of a second heat pump unit that satisfies the tenth condition (step S134: NO), the heat pump system 200 proceeds to step S100.
[0161] If there is device information of a second heat pump unit that satisfies the tenth condition (step S134: YES), in step S135 the management system 7 determines whether there is device information of a second heat pump unit that satisfies the ninth condition. If there is device information of a second heat pump unit that satisfies the tenth condition in step S134, the management system 7 extracts the device information of the second heat pump unit that satisfies the tenth condition. In step S135, the management system 7 determines whether there is device information of a second heat pump unit that satisfies the ninth condition from the device information extracted in the processing before step S135. If there is no device information of a second heat pump unit that satisfies the ninth condition (step S135: NO), the heat pump system 200 proceeds to step S100.
[0162] If there is device information of a second heat pump unit that satisfies the ninth condition (step S135: YES), in step S136 the management system 7 determines whether there is device information of a second heat pump unit that satisfies the fourth condition. If there is device information of a second heat pump unit that satisfies the ninth condition in step S135, the management system 7 extracts the device information of the second heat pump unit that satisfies the ninth condition. In step S136, the management system 7 determines whether there is device information of a second heat pump unit that satisfies the fourth condition from the device information extracted in the processing before step S136. If there is no device information of a second heat pump unit that satisfies the fourth condition (step S136: NO), the heat pump system 200 proceeds to step S100.
[0163] If there is device information of a second heat pump unit that satisfies the fourth condition (step S136: YES), in step S137 the management system 7 determines whether there is device information of a second heat pump unit that satisfies the fifth condition. Note that if there is device information of a second heat pump unit that satisfies the fourth condition in step S136, the management system 7 extracts the device information of the second heat pump unit that satisfies the fourth condition. In step S137, the management system 7 determines whether there is device information of a second heat pump unit that satisfies the fifth condition from the device information extracted in the processing before step S137. If there is no device information of a second heat pump unit that satisfies the fifth condition (step S137: NO), the heat pump system 200 proceeds to step S100.
[0164] If there is device information of a second heat pump unit that satisfies the fifth condition (step S137: YES), in step S138 the management system 7 determines whether there is device information of a second heat pump unit that satisfies the sixth condition. If there is device information of a second heat pump unit that satisfies the fifth condition in step S137, the management system 7 extracts the device information of the second heat pump unit that satisfies the fifth condition. In step S138, the management system 7 determines whether there is device information of a second heat pump unit that satisfies the sixth condition from the device information extracted in the processing before step S138. If there is no device information of a second heat pump unit that satisfies the sixth condition (step S138: NO), the heat pump system 200 proceeds to step S100.
[0165] If there is device information of a second heat pump unit that satisfies the sixth condition (step S138: YES), the management system 7 determines that there is device information of a second heat pump unit that satisfies the specific condition, and proceeds to step S101.
[0166] If the specific conditions do not include the sixth condition, the process of step S138 is omitted in Fig. 19. Then, if the management system 7 determines in step S137 that there is device information of a second heat pump device that satisfies the fifth condition, it proceeds to step S101.
[0167] 19 shows an example in which the specific conditions include the eighth condition, but the specific conditions may include the second condition instead of the eighth condition. In this case, the process of step S131 is a process in which the management system 7 determines whether or not there is device information in the device database for a second heat pump device that satisfies the second condition instead of the eighth condition.
[0168] In the example shown in FIG. 19, the management system 7 performs the processes from step S131 to step S138 in order, but the management system 7 may perform the processes from step S131 to step S138 in a different order.
[0169] The effects of the heat pump system 200 according to the fourth embodiment will be described below. The heat pump system 200 according to the fourth embodiment includes a management system 7 and a plurality of heat pump devices 100. The heat pump device 100 cools or heats a temperature-adjusted object using a refrigerant circulating through a refrigerant circuit 1. The management system 7 is for managing the plurality of heat pump devices 100. The heat pump device 100 includes a compressor 30, a heat-source heat exchanger 32, a throttling device 42, a load heat exchanger 40, a sensor group, and a control device 6. The compressor 30 compresses the refrigerant. The heat-source heat exchanger 32 exchanges heat between the refrigerant and the heat exchange object. The throttling device 42 decompresses and expands the refrigerant. The load heat exchanger 40 exchanges heat between the refrigerant and the temperature-adjusted object. The sensor group measures physical quantities of the refrigerant circulating through the refrigerant circuit 1. The control device 6 controls the controlled object, including the compressor 30, based on the measurement results from the sensor group. The compressor 30, the heat-source heat exchanger 32, the expansion device 42, and the load heat exchanger 40 are included in the refrigerant circuit 1. The sensor group includes a heat-source temperature sensor that measures the temperature of the refrigerant on the discharge side or the suction side of the compressor 30. The management system 7 periodically acquires, from each of the heat pump devices 100, device information including information indicating the operating state of each of the heat pump devices 100 and measurement results from the sensor group of each of the heat pump devices 100. The management system 7 then stores an device database that accumulates the acquired device information. When a heat-source temperature sensor of a first heat pump device (a heat pump device 100) among the multiple heat pump devices 100 fails, the management system 7 uses the measurement result of the heat-source temperature sensor indicated in the device information of a second heat pump device (a heat pump device 100 among the multiple heat pump devices 100 whose heat-source temperature sensor is not faulty and that satisfies a predetermined specific condition) as a provisional value in place of the measurement result of the heat-source temperature sensor of the first heat pump device. The management system 7 instructs the control device 6 of the first heat pump device to control the control target in the first heat pump device based on the provisional value instead of the measurement result by the heat source temperature sensor in the first heat pump device.
[0170] According to the above configuration, the management system 7 uses the measurement result of the heat source temperature sensor indicated in the device information from the second heat pump device that satisfies specific conditions as a provisional value to replace the measurement result of the heat source temperature sensor of the first heat pump device.The management system 7 then instructs the control device 6 of the first heat pump device to control the first heat pump device based on the provisional value instead of the measurement result of the heat source temperature sensor of the first heat pump device.Therefore, each heat pump device 100 in the heat pump system 200 can continue to operate even if the heat source temperature sensor fails.
[0171] The sensor group in the fourth embodiment includes a discharge pressure sensor 50 and a suction pressure sensor 51. The discharge pressure sensor 50 measures the pressure of the refrigerant on the discharge side of the compressor 30. The suction pressure sensor 51 measures the pressure of the refrigerant on the suction side of the compressor 30. The specific conditions include a condition that the capacities of the first heat pump unit and the second heat pump unit are equal, a condition that the operation modes of the first heat pump unit and the second heat pump unit are equal, a condition that the operation frequencies of the compressors 30 of the first heat pump unit and the second heat pump unit are equal, a condition that the pressures of the refrigerant on the discharge side of the compressors 30 of the first heat pump unit and the second heat pump unit are equal, and a condition that the pressures of the refrigerant on the suction side of the compressors 30 of the first heat pump unit and the second heat pump unit are equal. Therefore, the state of the refrigerant in the first heat pump unit can be close to the state of the refrigerant in the second heat pump unit that satisfies the specific conditions. That is, the physical quantity of the refrigerant in the first heat pump unit can be approximated to the physical quantity of the refrigerant in the second heat pump unit that satisfies certain conditions. Therefore, the management system 7 can easily, quickly, and accurately obtain a provisional value for the temperature of the refrigerant on the discharge side or suction side of the compressor 30 in the first heat pump unit from the measurement results of the heat source temperature sensor indicated in the unit information from the second heat pump unit that satisfies certain conditions. Furthermore, the management system 7 instructs the control device 6 of the first heat pump unit to perform control based on the provisional value, enabling the first heat pump unit to operate.
[0172] The sensor group in the fourth embodiment includes a discharge pressure sensor 50 and a suction pressure sensor 51. The discharge pressure sensor 50 measures the pressure of the refrigerant on the discharge side of the compressor 30. The suction pressure sensor 51 measures the pressure of the refrigerant on the suction side of the compressor 30. The device database includes the model names of the multiple heat pump devices 100. The specific conditions include a condition that the model names of the first heat pump device and the second heat pump device are the same, a condition that the operation modes of the first heat pump device and the second heat pump device are the same, a condition that the operation frequencies of the compressors 30 of the first heat pump device and the second heat pump device are the same, a condition that the refrigerant pressures on the discharge sides of the compressors 30 of the first heat pump device and the second heat pump device are the same, and a condition that the refrigerant pressures on the suction sides of the compressors 30 of the first heat pump device and the second heat pump device are the same. Therefore, the state of the refrigerant in the first heat pump device can be similar to the state of the refrigerant in a second heat pump device that satisfies the specific conditions. That is, the physical quantity of the refrigerant in the first heat pump unit can be approximated to the physical quantity of the refrigerant in the second heat pump unit that satisfies certain conditions. Therefore, the management system 7 can easily, quickly, and accurately obtain a provisional value for the temperature of the refrigerant on the discharge side or suction side of the compressor 30 in the first heat pump unit from the measurement results of the heat source temperature sensor indicated in the unit information from the second heat pump unit that satisfies certain conditions. Furthermore, the management system 7 instructs the control device 6 of the first heat pump unit to perform control based on the provisional value, enabling the first heat pump unit to operate.
[0173] The sensor group in the fourth embodiment includes a heat source object temperature sensor that measures the temperature of the heat exchange object flowing into the heat source heat exchanger 32. The specific condition includes a condition that the temperatures of the heat exchange objects flowing into the heat source heat exchangers 32 of the first and second heat pump devices are equal. This limits the device information from the second heat pump device that satisfies the specific condition, allowing the management system 7 to reduce the amount of processing required when searching the device database for that device information. Furthermore, because the temperatures of the heat exchange objects flowing into the heat source heat exchangers 32 of the first and second heat pump devices are equal, the physical quantity of the refrigerant in the first heat pump device can approximate the physical quantity of the refrigerant in the second heat pump device that satisfies the specific condition. Therefore, the management system 7 can easily, quickly, and accurately obtain a provisional value for the temperature of the refrigerant on the discharge side or suction side of the compressor 30 of the first heat pump device from the measurement results of the heat source temperature sensor indicated by the device information from the second heat pump device that satisfies the specific condition. Furthermore, the management system 7 instructs the control device 6 of the first heat pump unit to perform control based on the provisional value, so that the first heat pump unit can operate.
[0174] The heat pump unit 100 illustrated in the first to fourth embodiments adjusts the temperature of a temperature-adjustable object by exchanging heat between a refrigerant and the object. However, the heat pump unit 100 may adjust the temperature of a temperature-adjustable object by exchanging heat between a heat medium, such as water or brine, and the object. In this case, the load heat exchanger 40 in FIGS. 1, 10, and 14 is replaced with a heat medium heat exchanger, such as a plate heat exchanger, that exchanges heat between the heat medium and the refrigerant. The heat medium heat exchanger is connected to a circulation device, such as a pump, and the load heat exchanger 40 by heat medium piping to form a heat medium circuit. In this case, the expansion device 42 and the heat medium heat exchanger may be disposed within a housing that forms the outer shell of the heat source unit 3.
[0175] Although the embodiments have been described above, the contents of the present disclosure are not limited to the embodiments and include conceivable equivalents. Furthermore, the configurations described in the first to fourth embodiments and their modifications can be combined with each other as long as the functions and operations are not impaired. [Explanation of symbols]
[0176] 1 Refrigerant circuit, 2 Refrigerant piping, 3 Heat source device, 4 Load device, 6 Control device, 7 Management system, 30 Compressor, 31 Flow switching device, 32 Heat source heat exchanger, 33 Heat source blower, 33A Heat source fan motor, 33B Heat source fan, 34 Accumulator, 40 Load heat exchanger, 41 Load blower, 41A Load fan motor, 41B Load fan, 42 Throttle device, 50 Discharge pressure sensor, 51 Intake pressure sensor, 52 Discharge temperature sensor, 53 Intake temperature sensor, 54 First load temperature sensor, 55 Second load temperature sensor, 56 Load target temperature sensor, 60 First processor, 61 First memory, 62 Input / output interface circuit, 63 First bus, 64 First communication interface circuit, 70 Second processor, 71 Second memory, 72 Second communication interface circuit, 73 Second bus, 100 Heat pump device, 200 Heat pump system.
Claims
1. A heat pump device that cools or heats a temperature-control target by using a refrigerant circulating in a refrigerant circuit, a load device including a load heat exchanger that exchanges heat between the temperature adjustment target and the refrigerant; a heat source device that adjusts the temperature of the refrigerant circulating in the load heat exchanger; a throttle device that reduces the pressure of the refrigerant to expand it; a group of sensors that measure physical quantities of the refrigerant flowing through the refrigerant circuit; and The heat source device is a compressor that compresses the refrigerant; a heat source heat exchanger that exchanges heat between the refrigerant and a heat exchange target; Equipped with the compressor, the heat source heat exchanger, the expansion device, and the load heat exchanger are included in the refrigerant circuit, The sensor group includes: a discharge pressure sensor that measures the pressure of the refrigerant on the discharge side of the compressor; a suction pressure sensor that measures the pressure of the refrigerant on the suction side of the compressor; a discharge temperature sensor that measures the temperature of the refrigerant on the discharge side of the compressor; an intake temperature sensor that measures the temperature of the refrigerant on the intake side of the compressor; a load object temperature sensor that measures the temperature of the temperature control object flowing into the load heat exchanger; Including, the discharge pressure sensor, the suction pressure sensor, the discharge temperature sensor, and the suction temperature sensor are provided in the heat source device, the load temperature sensor is provided in the load device, The heat pump device further comprises: a control device that controls a control target including the compressor based on the measurement results of the group of sensors; The control device When one of the discharge temperature sensor and the suction temperature sensor fails, the maximum operating frequency of the compressor is reduced below the maximum operating frequency during operation when the discharge temperature sensor and the suction temperature sensor are not faulty, a provisional value is derived based on measurement results from at least one of the other of the discharge temperature sensor and the suction temperature sensor, the discharge pressure sensor, the suction pressure sensor, and the load object temperature sensor, and the controlled object is controlled based on the provisional value instead of the measurement result from one of the discharge temperature sensor and the suction temperature sensor.
2. The control device storing Moliere information indicating the relationship between the pressure and enthalpy of the refrigerant at each position in the refrigerant circuit; The heat pump apparatus according to claim 1 , wherein the provisional value is derived based on the Moliere information.
3. The control device 2. The heat pump device according to claim 1, wherein, when the suction temperature sensor fails, an evaporation temperature of the refrigerant in the heat source heat exchanger or the load heat exchanger functioning as an evaporator that evaporates the refrigerant is derived based on the measurement result by the suction pressure sensor, and the provisional value is derived based on the evaporation temperature and the heat absorption temperature corresponding to the heat absorption amount of the refrigerant in the heat source heat exchanger or the load heat exchanger functioning as the evaporator, and the controlled object is controlled based on the provisional value instead of the measurement result by the suction temperature sensor.
4. The heat pump device according to claim 3 , wherein the heat absorption temperature is preset or determined by the control device based on an operating frequency of the compressor.
5. The control device 5. A heat pump device according to claim 1, wherein, when the discharge temperature sensor fails, the condensation temperature of the refrigerant in the heat source heat exchanger or the load heat exchanger functioning as a condenser for condensing the refrigerant is derived based on the measurement results by the discharge pressure sensor, the provisional value is derived based on the heat dissipation temperature corresponding to the amount of heat dissipation of the refrigerant in the heat source heat exchanger or the load heat exchanger functioning as the condenser and the condensation temperature, and the controlled object is controlled based on the provisional value instead of the measurement results by the discharge temperature sensor.
6. The control device A heat pump device as described in any one of claims 1, 3 and 4, wherein, when the discharge temperature sensor fails, the provisional value is derived based on the measurement result by the load object temperature sensor and the heat dissipation temperature corresponding to the heat dissipation amount of the refrigerant in the load heat exchanger, and the controlled object is controlled based on the provisional value instead of the measurement result by the discharge temperature sensor.
7. The heat pump device according to claim 5 , wherein the heat release temperature is preset or determined by the control device based on an operating frequency of the compressor.
8. The heat pump device according to claim 6 , wherein the heat release temperature is preset or determined by the control device based on an operating frequency of the compressor.
9. The heat pump device is a plurality of the heat source devices connected in parallel to the load device; The control device A heat pump device as described in any one of claims 1 to 4, wherein if the discharge temperature sensor of a first heat source device, which is one of the plurality of heat source devices, fails, and if a second heat source device, which is one of the plurality of heat source devices and whose discharge temperature sensor and inlet temperature sensor are not faulty, satisfies a predetermined specific condition, the measurement result by the discharge temperature sensor of the second heat source device is used as the provisional value, and the controlled object including the compressor in the first heat source device is controlled based on the provisional value instead of the measurement result by the discharge temperature sensor of the first heat source device.
10. The heat pump device is a plurality of the heat source devices connected in parallel to the load device; The control device A heat pump device according to any one of claims 1 to 4, wherein if the intake temperature sensor of a first heat source device, which is one of the plurality of heat source devices, fails, and if a second heat source device, which is one of the plurality of heat source devices and whose discharge temperature sensor and intake temperature sensor are not faulty, satisfies a predetermined specific condition, the measurement result by the intake temperature sensor of the second heat source device is used as the provisional value, and the controlled object including the compressor in the first heat source device is controlled based on the provisional value instead of the measurement result by the intake temperature sensor of the first heat source device.
11. The specific conditions are: A condition that the second heat source device is operating; a condition that the first heat source device and the second heat source device have equal capacities; a condition that the operating frequencies of the compressors of the first heat source device and the second heat source device are equal; a condition that the pressure of the refrigerant on the discharge side of the compressor in each of the first heat source device and the second heat source device is equal; a condition that the pressure of the refrigerant on the suction side of the compressor in each of the first heat source device and the second heat source device is equal; The heat pump apparatus of claim 9 .
12. The specific conditions are: A condition that the second heat source device is operating; a condition that the first heat source device and the second heat source device have equal capacities; a condition that the operating frequencies of the compressors of the first heat source device and the second heat source device are equal; a condition that the pressure of the refrigerant on the discharge side of the compressor in each of the first heat source device and the second heat source device is equal; a condition that the pressure of the refrigerant on the suction side of the compressor in each of the first heat source device and the second heat source device is equal; The heat pump apparatus of claim 10, comprising:
13. The specific conditions are: a condition that, when the discharge temperature sensor of the first heat source device is not malfunctioning, the temperatures of the refrigerant on the discharge sides of the compressors in the first heat source device and the second heat source device are equal; The heat pump device according to claim 11, further comprising a condition that, when the suction temperature sensor of the first heat source device is not faulty, the temperature of the refrigerant on the suction side of the compressor in each of the first heat source device and the second heat source device is equal.
14. The specific conditions are: a condition that, when the discharge temperature sensor of the first heat source device is not malfunctioning, the temperatures of the refrigerant on the discharge sides of the compressors in the first heat source device and the second heat source device are equal; The heat pump device according to claim 12, further comprising a condition that, when the suction temperature sensor of the first heat source device is not faulty, the temperature of the refrigerant on the suction side of the compressor in each of the first heat source device and the second heat source device is equal.
15. The control device A heat pump device as described in any one of claims 1 to 4, wherein when failure information indicating that either the discharge temperature sensor or the inlet temperature sensor has failed is set, the controlled object is controlled based on the provisional value instead of the measurement result of either the discharge temperature sensor or the inlet temperature sensor indicated by the failure information.
16. A heat pump system having a plurality of heat pump devices that cool or heat a temperature control target by a refrigerant circulating through a refrigerant circuit, and a management system for managing the plurality of heat pump devices, The heat pump device is a compressor that compresses the refrigerant; a heat source heat exchanger that exchanges heat between the refrigerant and a heat exchange target; a throttle device that reduces the pressure of the refrigerant to expand it; a load heat exchanger that exchanges heat between the refrigerant and the temperature-control target; a group of sensors that measure physical quantities of the refrigerant flowing through the refrigerant circuit; a control device that controls a control target including the compressor based on the measurement results of the group of sensors; Equipped with the compressor, the heat source heat exchanger, the expansion device, and the load heat exchanger are included in the refrigerant circuit, The sensor group includes: a heat source temperature sensor that measures the temperature of the refrigerant on the discharge side or the suction side of the compressor; The management system includes: a heat pump system in which, when the heat source temperature sensor of a first heat pump device, which is one of the plurality of heat pump devices, fails, and a second heat pump device, which is one of the plurality of heat pump devices and whose heat source temperature sensor is not faulty, satisfies a predetermined specific condition, the maximum operating frequency of the compressor is reduced below the maximum operating frequency when the heat source temperature sensor of the first heat pump device is operating without failure, the measurement result by the heat source temperature sensor of the second heat pump device is used as a provisional value in place of the measurement result of the heat source temperature sensor of the first heat pump device, and the control device of the first heat pump device is instructed to control the controlled object in the first heat pump device based on the provisional value, instead of the measurement result by the heat source temperature sensor in the first heat pump device.
17. The sensor group includes: a discharge pressure sensor that measures the pressure of the refrigerant on the discharge side of the compressor; a suction pressure sensor that measures the pressure of the refrigerant on the suction side of the compressor; Including, The specific conditions are: a condition that the second heat pump device is operating; a condition that the first heat pump device and the second heat pump device have equal capacities; a condition that the operation modes of the first heat pump device and the second heat pump device are the same; a condition that the operating frequencies of the compressors of the first heat pump device and the second heat pump device are equal; a condition that the pressure of the refrigerant on the discharge side of the compressor in each of the first heat pump device and the second heat pump device is equal; a condition that the pressure of the refrigerant on the suction side of the compressor in each of the first heat pump device and the second heat pump device is equal; The heat pump system of claim 16, comprising:
18. A heat pump system having a plurality of heat pump devices that cool or heat a temperature control target by a refrigerant circulating through a refrigerant circuit, and a management system for managing the plurality of heat pump devices, The heat pump device is a compressor that compresses the refrigerant; a heat source heat exchanger that exchanges heat between the refrigerant and a heat exchange target; a throttle device that reduces the pressure of the refrigerant to expand it; a load heat exchanger that exchanges heat between the refrigerant and the temperature-control target; a group of sensors that measure physical quantities of the refrigerant flowing through the refrigerant circuit; a control device that controls a control target including the compressor based on the measurement results of the group of sensors; Equipped with the compressor, the heat source heat exchanger, the expansion device, and the load heat exchanger are included in the refrigerant circuit, The sensor group includes: a heat source temperature sensor that measures the temperature of the refrigerant on the discharge side or the suction side of the compressor; The management system includes: periodically acquiring device information from each of the plurality of heat pump devices, the device information including information indicating the operating state of each of the plurality of heat pump devices and measurement results by the group of sensors of each of the plurality of heat pump devices, and storing an device database that accumulates the acquired device information; When the heat source temperature sensor of a first heat pump device, which is one of the heat pump devices among the plurality of heat pump devices, fails, the maximum operating frequency of the compressor is reduced below the maximum operating frequency during operation when the heat source temperature sensor of the first heat pump device is not faulty, and a measurement result by the heat source temperature sensor indicated in the device information from a second heat pump device, which is a heat pump device among the plurality of heat pump devices and whose heat source temperature sensor is not faulty, and which satisfies a predetermined specific condition, is used as a provisional value in place of the measurement result by the heat source temperature sensor of the first heat pump device, A heat pump system in which the control device of the first heat pump device is instructed to control the control object in the first heat pump device based on the provisional value instead of the measurement result by the heat source temperature sensor in the first heat pump device.
19. The sensor group includes: a discharge pressure sensor that measures the pressure of the refrigerant on the discharge side of the compressor; a suction pressure sensor that measures the pressure of the refrigerant on the suction side of the compressor; Including, The specific conditions are: a condition that the first heat pump device and the second heat pump device have equal capacities; a condition that the operation modes of the first heat pump device and the second heat pump device are the same; a condition that the operating frequencies of the compressors of the first heat pump device and the second heat pump device are equal; a condition that the pressure of the refrigerant on the discharge side of the compressor of each of the first heat pump device and the second heat pump device is equal; a condition that the pressure of the refrigerant on the suction side of the compressor of each of the first heat pump device and the second heat pump device is equal; 20. The heat pump system of claim 18, comprising:
20. The sensor group includes: a discharge pressure sensor that measures the pressure of the refrigerant on the discharge side of the compressor; a suction pressure sensor that measures the pressure of the refrigerant on the suction side of the compressor; Including, the device database includes a model name of each of the plurality of heat pump devices; The specific conditions are: A condition that the model names of the first heat pump device and the second heat pump device are the same; a condition that the operation modes of the first heat pump device and the second heat pump device are the same; a condition that the operating frequencies of the compressors of the first heat pump device and the second heat pump device are equal; a condition that the pressure of the refrigerant on the discharge side of the compressor of each of the first heat pump device and the second heat pump device is equal; a condition that the pressure of the refrigerant on the suction side of the compressor of each of the first heat pump device and the second heat pump device is equal; 20. The heat pump system of claim 18, comprising:
21. The sensor group includes: a heat source object temperature sensor that measures the temperature of the heat exchange object flowing into the heat source heat exchanger; The specific conditions are: The heat pump system according to any one of claims 18 to 20, including a condition that the temperatures of the heat exchange targets flowing into the heat source heat exchangers of the first heat pump device and the second heat pump device are equal.
22. The sensor group includes: a discharge temperature sensor that measures the temperature of the refrigerant on the discharge side of the compressor; an intake temperature sensor that measures the temperature of the refrigerant on the intake side of the compressor; Including, The heat source temperature sensor is the discharge temperature sensor or the suction temperature sensor, The specific conditions are: a condition that, when the discharge temperature sensor of the first heat pump device is not malfunctioning, the temperatures of the refrigerant on the discharge sides of the compressors in the first heat pump device and the second heat pump device are equal; 21. The heat pump system of claim 17, further comprising a condition that, when the suction temperature sensor of the first heat pump device is not faulty, the temperatures of the refrigerant on the suction side of the compressor in each of the first heat pump device and the second heat pump device are equal.
23. The heat exchange target is outside air, Each of the plurality of heat pump devices The heat exchanger further includes a heat source blower that circulates the heat exchange target through the heat source heat exchanger. The control object is The heat source blower further includes: The specific conditions are:
21. The heat pump system according to claim 17, further comprising a condition that the operating frequencies of the heat source blowers of the first heat pump device and the second heat pump device are equal.
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