Ventilation device and ventilation method
By directing indoor air flow and adjusting the refrigerant temperature in the ventilation device, the defrosting efficiency of the second heat exchanger is enhanced, addressing the inefficiencies in conventional systems and maintaining comfort.
Patent Information
- Application Number
- JP2025049093
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2025-03-24
- Publication Date
- 2025-06-05
- Estimated Expiration
- 2041-12-17
AI Technical Summary
Conventional ventilating air-conditioning systems face inefficiencies in defrosting the second heat exchanger, which can take time and affect comfort levels.
The proposed ventilation device includes a control unit that directs indoor air flow to the second heat exchanger and adjusts the refrigerant circuit to increase the temperature of the refrigerant, thereby enhancing defrosting efficiency.
This approach significantly improves the defrosting efficiency of the second heat exchanger, reducing the time required for defrosting and maintaining comfort levels.
Smart Images

Figure 2025085843000001_ABST
Abstract
Description
[Technical field]
[0001] The present disclosure relates to a ventilation device and a ventilation method. [Background technology]
[0002] Conventionally, there is known a ventilating air-conditioning system that ventilates the room with an exhaust fan and an intake fan, blows outdoor air that has exchanged heat with a refrigerant in a first heat exchanger into the room, and exhausts indoor air that has exchanged heat with a refrigerant in a second heat exchanger to the outside (see Patent Document 1). The ventilating air-conditioning system described in Patent Document 1 proposes a defrosting technique by switching the flow of refrigerant between the first heat exchanger and the second heat exchanger when defrosting. When defrosting, the heating operation is stopped once. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] JP 2009-250528 A Summary of the Invention [Problem to be solved by the invention]
[0004] In the ventilating air-conditioning system described in Patent Document 1, when operation is temporarily stopped for defrosting, defrosting can be achieved by switching operation to dissipate heat in the second heat exchanger, but this can take time.
[0005] The present disclosure aims to provide efficient defrosting. [Means for solving the problem]
[0006] The present disclosure relates to A compressor; A first heat exchanger that functions as a condenser or an evaporator; a first air flow path that supplies air taken in from outdoors to an indoor space after passing the air through the first heat exchanger; A second heat exchanger functioning as a condenser or an evaporator; a second air flow path that exhausts the air taken in from the indoor space to the outdoors after passing through the second heat exchanger; a refrigerant circuit in which the compressor, the first heat exchanger, and the second heat exchanger are connected by a refrigerant piping and a refrigerant flows inside; a control unit that outputs a predetermined command to an actuator that controls a state of the refrigerant in the refrigerant circuit so as to raise the temperature of the second heat exchanger and raise the temperature of the refrigerant flowing into the second heat exchanger by guiding an air flow in the indoor space to the second heat exchanger when it is determined that the second heat exchanger is in a frosted state; The present invention provides a ventilation device comprising:
[0007] According to this ventilation device, the defrosting efficiency of the second heat exchanger is improved by directing the air flow in the indoor space to the second heat exchanger and controlling the state of the refrigerant in the refrigerant circuit so as to increase the temperature of the refrigerant flowing into the second heat exchanger.
[0008] Regarding the above ventilation system, When it is determined that the second heat exchanger is in a frosted state, the predetermined command indicating that the compressor is to be stopped is output.
[0009] According to the ventilation device, by stopping the compressor, it is possible to increase the temperature of the refrigerant in the second heat exchanger, thereby improving the defrosting efficiency of the second heat exchanger.
[0010] Regarding the above ventilation system, The number of the second heat exchangers is plural, the refrigerant circuit further includes a first valve unit for adjusting an opening degree of a flow path connected to each of the second heat exchangers, When it is determined that a specific second heat exchanger among the plurality of second heat exchangers is in a frosted state, the control unit outputs the specific command to close the first valve unit corresponding to the specific second heat exchanger.
[0011] According to the ventilation device, by closing the first valve portion, it is possible to increase the temperature of the refrigerant in the predetermined second heat exchanger, thereby improving the defrosting efficiency of the second heat exchanger.
[0012] According to this ventilation device, by closing the first valve unit, it is possible to increase the temperature of the refrigerant in a specific second heat exchanger corresponding to the first valve unit, thereby improving the defrosting efficiency of the second heat exchanger.
[0013] Regarding the above ventilation system, When it is determined that the second heat exchangers are in a frosted state, the control unit outputs the specified command to close the first valve units corresponding to the second heat exchangers determined to be in a frosted state in a specified order.
[0014] According to the ventilation device, by closing the first valve portion in a predetermined sequence, simultaneous defrosting of the second heat exchanger can be suppressed, thereby suppressing a decrease in comfort.
[0015] Regarding the above ventilation system, the refrigerant circuit has a second valve portion provided between the first heat exchanger and the second heat exchanger and configured to adjust an opening degree of a flow path; When it is determined that the second heat exchanger is in a frosted state while the second heat exchanger is functioning as an evaporator, the control unit outputs the specified command to increase the opening degree of the second valve unit compared to before it was determined that the second heat exchanger was in a frosted state.
[0016] According to this ventilation device, by increasing the opening degree of the second valve section and closing the first valve section in a predetermined sequence, simultaneous defrosting of the second heat exchanger can be prevented, thereby preventing a decrease in comfort.
[0017] Regarding the above ventilation system, While the second heat exchanger functions as an evaporator, a third valve unit is further provided downstream of the second heat exchanger in the flow of the refrigerant in the refrigerant circuit, The control unit further outputs the specified command to reduce the opening degree of the third valve unit when it is determined that the second heat exchanger is in a frosted state while the second heat exchanger is functioning as an evaporator, compared to before it was determined that the second heat exchanger was in a frosted state.
[0018] According to the ventilation device, by reducing the opening degree of the third valve portion, the temperature of the refrigerant flowing through the upstream second heat exchanger is increased, thereby improving the defrosting efficiency of the second heat exchanger.
[0019] Regarding the above ventilation system, the refrigerant circuit has a bypass pipe that allows the refrigerant to flow from the compressor to the second heat exchanger without passing through the first heat exchanger while the second heat exchanger functions as an evaporator; When it is determined that the second heat exchanger is in a frosted state, the control unit outputs the specified command so that the refrigerant compressed by the compressor flows to the second heat exchanger via the bypass piping.
[0020] According to the ventilation device, by flowing the refrigerant through the second heat exchanger via the bypass piping, the temperature of the refrigerant flowing through the second heat exchanger is increased, thereby improving the defrosting efficiency of the second heat exchanger.
[0021] Regarding the above ventilation system, The control unit controls the air flow in the indoor space to the second heat exchanger by controlling a first guide mechanism that is switchable between guiding or not guiding air from the attic space adjacent to the upper part of the indoor space to the second heat exchanger, or by controlling a second guide mechanism that is switchable between guiding or not guiding air from the indoor space to the second heat exchanger.
[0022] According to the ventilation device, by flowing warm air through the second heat exchanger, the temperature of the refrigerant flowing through the second heat exchanger is increased, thereby improving the defrosting efficiency of the second heat exchanger.
[0023] Regarding the above ventilation system, The cooling system further includes a bypass guide mechanism that guides the air that has undergone heat exchange by the first heat exchanger to the second heat exchanger, When the control unit determines that the second heat exchanger is in a frosted state, or when the control unit determines that the temperature of the air whose heat has been exchanged by the first heat exchanger is greater than a predetermined temperature, the control unit controls the bypass guide mechanism to guide the air whose heat has been exchanged to the second heat exchanger.
[0024] According to this ventilation device, by flowing warm air through the second heat exchanger via the bypass guide mechanism, the temperature of the refrigerant flowing through the second heat exchanger is increased, thereby improving the defrosting efficiency of the second heat exchanger.
[0025] Regarding the above ventilation system, The number of the second heat exchangers is plural, The second air flow path is provided for each of the second heat exchangers to exhaust air taken in from the indoor space to the outdoors, The control unit adjusts the amount of air flowing through the second air flow path corresponding to the second heat exchanger based on a state of each of the plurality of second heat exchangers.
[0026] According to this ventilation device, by adjusting the volume of air flowing through each of the multiple second heat exchangers according to the status of each of the multiple second heat exchangers, it is possible to prevent the second heat exchangers from defrosting simultaneously, thereby preventing a decrease in comfort.
[0027] Regarding the above ventilation system, When it is determined that one of the plurality of second heat exchangers has a greater degree of frost than the other second heat exchangers, the control unit performs control to increase the first air volume of the second air flow path corresponding to one of the second heat exchangers compared to the second air volume of the second air flow path corresponding to the other second heat exchanger.
[0028] According to the ventilation device, the second heat exchanger is defrosted in accordance with the degree of frost on the second heat exchanger, so that a decrease in comfort can be suppressed.
[0029] Regarding the above ventilation system, According to the ventilation device, when the control unit performs control to increase the first air volume, the control unit performs control to decrease the second air volume compared to before the control to increase the first air volume was performed.
[0030] This ventilation device can prevent the indoor space from becoming negative pressure, thereby maintaining comfort.
[0031] Regarding the above ventilation system, When it is determined that the second heat exchanger is in a frosted state, the control unit outputs a signal to an air conditioner installed in the indoor space to increase the temperature set in the air conditioner.
[0032] According to the ventilation device, by increasing the temperature set in the air conditioner, the temperature of the refrigerant flowing through the second heat exchanger is increased, thereby improving the defrosting efficiency of the second heat exchanger.
[0033] Regarding the above ventilation system, a switching mechanism for switching whether the air flowing through the second air flow path is supplied from the indoor space or from the outdoor space, The control unit controls the switching mechanism to supply air from the higher of the temperatures detected in the indoor space and the outdoor space.
[0034] According to this ventilation device, by supplying air from the higher temperature and flowing the warm air into the second heat exchanger, the temperature of the refrigerant flowing through the second heat exchanger is increased, thereby improving the defrosting efficiency of the second heat exchanger.
[0035] Regarding the above ventilation system, When the control unit determines that the second heat exchanger is in a frosted state after receiving a signal from the air conditioner to perform a defrosting operation, the control unit refrains from outputting the specified command to an actuator that controls the state of the refrigerant in the refrigerant circuit.
[0036] According to the ventilation device, by suppressing defrosting of the second heat exchanger, simultaneous defrosting of the air conditioner and the ventilation device can be suppressed, and a decrease in comfort can be suppressed.
[0037] Regarding the above ventilation system, The control unit further performs control, when it receives a signal from the air conditioner to perform a defrosting operation, to increase the air volume supplied from the first air flow path to the indoor space compared to before it received a signal from the air conditioner to perform a defrosting operation, and performs control to increase the air volume exhausted from the second air flow path to the outdoors compared to before it received a signal from the air conditioner to perform a defrosting operation.
[0038] According to the ventilation device, by increasing the air volume, the heating capacity of the ventilation device can be improved instead of an air conditioner, and comfort can be maintained.
[0039] Regarding the above ventilation system, When it is determined that the second heat exchanger is in a frosted state, the control unit further transmits a signal to the air conditioner to instruct the air conditioner not to perform a defrosting operation.
[0040] According to this ventilation device, by suppressing defrosting of the air conditioner, simultaneous defrosting of the air conditioner and the ventilation device can be suppressed, and a decrease in comfort can be suppressed.
[0041] The present disclosure relates to A compressor; A first heat exchanger that functions as a condenser or an evaporator; a first air flow path that shows a flow path through which air taken in from outdoors can be discharged to an indoor space after passing through the first heat exchanger; A second heat exchanger functioning as a condenser or an evaporator; a second air flow path that shows a flow path through which the air taken in from the indoor space can be exhausted to the outdoors after passing through the second heat exchanger; a refrigerant circuit in which the compressor, the first heat exchanger, and the second heat exchanger are connected by a refrigerant piping and a refrigerant flows inside; The present invention provides a ventilation device comprising: a control unit that, when it is determined that the second heat exchanger is in a frosted state while the second heat exchanger is functioning as an evaporator, outputs a predetermined command to an actuator that controls the state of the refrigerant in the refrigerant circuit to increase the temperature of the refrigerant flowing into the second heat exchanger, to make the second heat exchanger function as a condenser and the first heat exchanger function as an evaporator.
[0042] According to the ventilation device, the second heat exchanger functions as a condenser, thereby improving the defrosting efficiency of the second heat exchanger.
[0043] Regarding the above ventilation system, When the control unit determines that the second heat exchanger is in a frosted state while the second heat exchanger is functioning as an evaporator, the control unit outputs the specified command and switches the flow of air in the first air flow path so as to exhaust air from the indoor space to the outdoors.
[0044] According to this ventilation device, by switching the air flow in the first air flow path so as to exhaust the air outdoors, the temperature of the refrigerant flowing through the refrigerant circuit increases, thereby improving the defrosting efficiency of the second heat exchanger.
[0045] Regarding the above ventilation system, The control unit further switches the flow of the second air flow path to supply air from the outdoors to the indoor space when it is determined that the second heat exchanger is in a frosted state while the second heat exchanger is functioning as an evaporator.
[0046] According to this ventilation device, by supplying air from the outdoors to the indoor space, it is possible to prevent the indoor space from becoming negative pressure, thereby suppressing a decrease in comfort.
[0047] Regarding the above ventilation system, a first casing that accommodates the first heat exchanger and at least a portion of the first air flow path; a second casing that accommodates the second heat exchanger and at least a portion of the second air flow path; The first casing and the second casing are separable.
[0048] According to the ventilation device, the first casing and the second casing are separable, which facilitates layout and reduces the burden of installation.
[0049] The present disclosure relates to a first air flow path for supplying air taken in from the indoor space to an indoor space after passing the air through the first heat exchanger; a second heat exchanger functioning as a condenser or an evaporator; a second air flow path for exhausting the air taken in from the indoor space to the outdoor space after passing the air through the second heat exchanger; and a refrigerant circuit in which the compressor, the first heat exchanger, and the second heat exchanger are connected by a refrigerant piping and a refrigerant flows therethrough, the ventilation method comprising the steps of: providing a plurality of ventilation devices in a predetermined space; The control unit: Acquire frost conditions of the second heat exchangers; generating a plurality of patterns for performing a defrosting operation on the plurality of second heat exchangers when it is determined that the plurality of second heat exchangers are in a frosted state while the plurality of second heat exchangers are functioning as evaporators; A state of the specified space is acquired, and defrosting control of the second heat exchanger is performed using any one of a plurality of generated patterns based on the frost state and the state of the specified space. Provide a method of ventilation.
[0050] According to this ventilation method, defrosting control can be performed in an appropriate pattern, thereby improving the defrosting efficiency of the second heat exchanger.
[0051] The present disclosure relates to a first air flow path for supplying air taken in from the indoor space to an indoor space after passing the air through the first heat exchanger; a second air flow path for exhausting the air taken in from the indoor space to the outdoor space after passing the air through the second heat exchanger; and a refrigerant circuit in which the compressor, the first heat exchanger, and the second heat exchanger are connected by a refrigerant piping and a refrigerant flows through the inside of the refrigerant circuit, the control unit controls a ventilator including a compressor, a first heat exchanger functioning as a condenser or an evaporator, a first air flow path for supplying air taken in from the indoor space to an indoor space after passing the air through the first heat exchanger, and a refrigerant circuit in which a refrigerant flows through the refrigerant circuit, and when the control unit determines that the second heat exchanger is in a frosted state, the control unit outputs a predetermined command to an actuator that controls a state of the refrigerant in the refrigerant circuit so as to raise the temperature of the second heat exchanger by directing the air flow of the indoor space to the second heat exchanger and raise the temperature of the refrigerant flowing into the second heat exchanger. Provide a method of ventilation.
[0052] According to this ventilation method, the defrosting efficiency of the second heat exchanger is improved by directing the air flow in the indoor space to the second heat exchanger and controlling the state of the refrigerant in the refrigerant circuit so as to increase the temperature of the refrigerant flowing into the second heat exchanger. [Brief description of the drawings]
[0053] [Figure 1] FIG. 1 is a diagram showing an example of the configuration of a ventilation device and an air conditioner according to the first embodiment. [Diagram 2] FIG. 2 is a diagram showing an example of the configuration of a ventilator, an air conditioner, and a host control device according to the second embodiment. [Diagram 3] FIG. 3 is a diagram showing a refrigerant circuit according to the second embodiment. [Figure 4] FIG. 4 is a sequence diagram showing a flow of processing performed among a host control device, a compressor unit, and an exhaust unit group when frost forms in each of the exhaust unit groups according to the modified example of the second embodiment. [Diagram 5] FIG. 5 is a diagram showing a refrigerant circuit according to a first modified example of the third embodiment. [Figure 6] FIG. 6 is a diagram showing a refrigerant circuit according to the fourth embodiment. [Figure 7] FIG. 7 is a diagram showing an example of the configuration of a ventilation device and an air conditioner according to the sixth embodiment. [Figure 8] FIG. 8 is a diagram showing an example of the configuration of a ventilation device and an air conditioner according to the seventh embodiment. [Figure 9] FIG. 9 is a diagram showing an example of the configuration of a ventilation device and an air conditioner according to the eighth embodiment. [Figure 10] FIG. 10 is a diagram illustrating an example of an arrangement of a group of devices including a host control device according to the tenth embodiment. [Figure 11] FIG. 11 is a flowchart showing a processing procedure performed by a higher-level control device according to the eleventh embodiment. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0054] Hereinafter, the present embodiment will be described with reference to the drawings. Note that the following embodiment is essentially a preferred example, and is not intended to limit the scope of the present disclosure, its application, or its uses.
[0055] (First embodiment) Fig. 1 is a diagram showing a configuration example of a ventilation device and an air conditioner according to embodiment 1. In the example shown in Fig. 1, a ventilation device 1 and an air conditioner 2 are provided to perform air conditioning of an indoor space.
[0056] In this embodiment, an example of an indoor space is described as having a living space R11 and an attic space R12, but the indoor space is not limited to the living space R11 and the attic space R12, and may be any space inside a building, and may include, for example, an underfloor space.
[0057] The living space R11 is, for example, a living room inside an office or a house. The attic space R12 is a space adjacent to and above the living space R11. Since the attic space R12 exists above the living space R11, warm air tends to accumulate therein.
[0058] The air conditioner 2 includes an outdoor unit 70 and two air conditioning indoor units 81, 82. Note that in this embodiment, the number of air conditioning indoor units is not limited to two, and may be one, or three or more.
[0059] The air conditioner 2 is a device that performs a vapor compression refrigeration cycle and cools and heats the living space R11. The air conditioner 2 according to this embodiment is a device that can both cool and heat the living space R11. However, this embodiment is not limited to an air conditioner that can both cool and heat, and may be, for example, a device that can only cool.
[0060] The outdoor unit 70 and the two air conditioning indoor units 81, 82 are connected by a communication pipe F5. The communication pipe F5 includes a liquid refrigerant communication pipe and a gas refrigerant communication pipe (not shown). This realizes a refrigerant circuit in which the refrigerant circulates between the outdoor unit 70 and the two air conditioning indoor units 81, 82. When the refrigerant circulates in the refrigerant circuit, a vapor compression refrigeration cycle is performed in the air conditioner 2.
[0061] The outdoor unit 70 is disposed outdoors. The outdoor unit 70 includes a heat exchanger, and discharges air that has exchanged heat with a refrigerant flowing through the heat exchanger to the outdoors.
[0062] The air conditioning indoor units 81, 82 are equipped with a heat exchanger, and blow out air that has exchanged heat with the refrigerant flowing through the heat exchanger into the living space R11. In this embodiment, the air conditioning indoor units 81, 82 are ceiling-mounted air conditioning indoor units that are installed on the ceiling of the living space R11. In particular, the air conditioning indoor units 81, 82 of this embodiment are ceiling-embedded air conditioning indoor units, and air that has exchanged heat is blown out from the ventilation openings 93A, 93B. In this embodiment, an example in which the ventilation openings 93A, 93B are provided on the ceiling will be described, but the positions at which the ventilation openings 93A, 93B are provided are not particularly limited. Note that the air conditioning indoor units 81, 82 are not limited to the ceiling-embedded type, and may be ceiling-suspended type. In addition, the air conditioning indoor units 81, 82 may be other than the ceiling-mounted type, such as a wall-mounted type or a floor-standing type.
[0063] The ventilation device 1 includes an exhaust unit 10, an air supply unit 20, a compressor unit 50, refrigerant circuits F1, F2, F3, and F4, an air supply flow path P1, and a return air flow path P2.
[0064] The ventilation device 1 is a device that supplies the outdoor air taken in to the living space R11 and exhausts the air taken in from the indoor space (including the living space R11) to the outdoors. In this way, the ventilation device 1 realizes replacement of the air in the living space R11.
[0065] Furthermore, the ventilation device 1 of this embodiment exchanges heat between the exhaust unit 10 and the air supply unit 20, thereby suppressing the temperature difference between the temperature of the air taken in from outdoors and the temperature of the living space R11.
[0066] The air supply flow path P1 (an example of a first air flow path) is a flow path for supplying air taken in from outdoors (outside air) to the living space R11 through the ventilation opening 92 after passing through the air supply unit 20 having the first heat exchanger 22. In this embodiment, an example in which the ventilation opening 92 is provided in the ceiling will be described, but the position at which the ventilation opening 92 is provided is not particularly limited.
[0067] The return air flow path P2 (an example of a second air flow path) is a flow path for exhausting air (return air) taken in from a ventilation opening 91 in the living space R11 to the outdoors after passing through an exhaust unit 10 having a second heat exchanger 12. In this embodiment, an example in which the ventilation opening 91 is provided on the ceiling will be described, but the position in which the ventilation opening 91 is provided is not particularly limited.
[0068] The refrigerant circuits F1, F2, F3, and F4 are circuits that connect the compressor unit 50, the first heat exchanger 22 of the air supply unit 20, and the second heat exchanger 12 of the exhaust unit 10 by refrigerant piping, and through which a refrigerant flows.
[0069] The control unit 52 of the compressor unit 50, the control unit 23 of the air supply unit 20, and the control unit 13 of the exhaust unit 10 are connected by a signal line S1 shown by a dotted line in Fig. 1. This enables information to be transmitted and received between the control unit 52 of the compressor unit 50, the control unit 23 of the air supply unit 20, and the control unit 13 of the exhaust unit 10.
[0070] The compressor unit 50 includes a drive motor 51 and a control unit 52, and performs control to circulate the refrigerant in the refrigerant circuits F1, F2, F3, and F4 by compressing the refrigerant in any one of the refrigerant circuits F1, F2, F3, and F4. For example, when the second heat exchanger 12 in the exhaust unit 10 functions as an evaporator, the compressor unit 50 compresses the refrigerant in the refrigerant circuit F2 to circulate the refrigerant in the refrigerant circuits F1, F2, F3, and F4.
[0071] The driving motor 51 is a motor for rotating (driving) a compressor for compressing a refrigerant.
[0072] The control unit 52 controls the configuration within the compressor unit 50. For example, the control unit 52 outputs a command to the drive motor 51 to rotate (drive) the compressor.
[0073] The air supply unit 20 includes a fan 21, a first heat exchanger 22, a control unit 23, and a temperature detection unit 24, and takes in outside air (OA) and supplies the air (SA) to the living space R11.
[0074] The fan 21 functions to supply (SA) the taken-in outside air (OA) to the living space R11.
[0075] The first heat exchanger 22 functions as a condenser or an evaporator.
[0076] The temperature detection unit 24 detects the outdoor air temperature, the surface temperature of the first heat exchanger 22, and the temperature of the refrigerant flowing through the first heat exchanger 22.
[0077] The control unit 23 controls the internal configuration of the air supply unit 20. The control unit 23 performs various controls according to the detection result by the temperature detection unit 14. For example, the control unit 23 adjusts the function of the first heat exchanger 22 as a condenser or an evaporator according to the detection result by the temperature detection unit 24.
[0078] The exhaust unit 10 includes a fan 11, a second heat exchanger 12, a control unit 13, and a temperature detection unit 14, and takes in return air (RA) from the living space R11 and exhausts the air (EA) to the outdoors.
[0079] The fan 11 functions to exhaust (EA) the return air (RA) taken in from the living space R11 to the outdoors.
[0080] The second heat exchanger 12 functions as a condenser or an evaporator.
[0081] The temperature detection unit 14 detects the outdoor air temperature, the surface temperature of the second heat exchanger 12, and the temperature of the refrigerant flowing through the second heat exchanger 12. Furthermore, the temperature detection unit 14 may detect the air temperature in the living space R11 and the air temperature in the attic space R12 via a sensor unit (not shown).
[0082] The control unit 13 controls the internal configuration of the exhaust unit 10. The control unit 13 performs various controls according to the detection result by the temperature detection unit 14. For example, the control unit 13 adjusts the function of the second heat exchanger 12 as a condenser or an evaporator according to the detection result of the temperature detection unit 14.
[0083] The process performed by the ventilation device 1 when the temperature is low will be described. When the temperature is low, the ventilation device 1 heats the outside air (OA) taken in from the outdoors in the air supply unit 20, and then supplies air (SA) to the living space R11, and cools the return air (RA) taken in from the living space R11 in the exhaust unit 10, and then exhausts the air (EA) to the outdoors. That is, the first heat exchanger 22 in the air supply unit 20 functions as a condenser, and the second heat exchanger 12 in the exhaust unit 10 functions as an evaporator. Since the second heat exchanger 12 functions as an evaporator, the temperature of the refrigerant flowing through the second heat exchanger 12 decreases, and the second heat exchanger 12 may frost. Therefore, in this embodiment, when it is determined that the second heat exchanger 12 has frosted, a defrosting operation is performed.
[0084] Specifically, the control unit 13 of the exhaust unit 10 judges whether or not a predetermined criterion indicating a state in which the second heat exchanger 12 is frosted is satisfied from the detection result by the temperature detection unit 14 while the second heat exchanger 12 is functioning as an evaporator. A possible predetermined criterion indicating a state in which the second heat exchanger 12 is frosted is that the temperature of the refrigerant passing through the second heat exchanger 12 continues to be a predetermined value (e.g., 0 degrees) or less for a certain period of time (e.g., 10 minutes). Note that this embodiment is not limited to a case in which the temperature of the refrigerant is used to judge the state in which the frost is formed, and the pressure of the refrigerant may be used for detection. In addition, a further method for judging the state of frosting may be used. For example, the control unit 13 may detect that the surface temperature of the second heat exchanger 12 continues to be a predetermined value (e.g., 0 degrees) or less for a certain period of time (e.g., 10 minutes). As another example, the control unit 13 may make a judgment based on the degree of agreement between the image data of the image taken by an imaging device and the image data in a normal state. It should be noted that, as long as it is possible to determine whether or not frost has formed on the second heat exchanger 12, a method other than the above method may be used.
[0085] When the control unit 13 of the exhaust unit 10 according to this embodiment determines that a predetermined criterion is met, the control unit 13 performs control to defrost the second heat exchanger 12. As the control to perform defrosting, the control unit 13 controls to increase the temperature of the second heat exchanger 12 by guiding the air flow in the living space R11 to the second heat exchanger 12. As a specific control, the control unit 13 maintains the rotation of the fan 11 of the exhaust unit 10. This allows the warm air in the living space R11 to flow to the second heat exchanger 12.
[0086] Furthermore, the control unit 13 of the exhaust unit 10 outputs a command (an example of a predetermined command) to the drive motor 51 (an example of an actuator) of the compressor unit 50 via the control unit 52 of the compressor unit 50 to stop the compressor in the compressor unit 50.
[0087] In this embodiment, the drive motor 51 stops the compressor based on the command, thereby stopping the circulation of the refrigerant in the refrigerant circuits F1, F2, F3, and F4.
[0088] As an example of control to defrost the second heat exchanger 12, the control unit 13 in this embodiment can stop the circulation of refrigerant in the refrigerant circuits F1, F2, F3, and F4, and then flow warm air from the living space R11 into the second heat exchanger 12, thereby raising the temperature of the refrigerant flowing through the second heat exchanger and performing defrosting.
[0089] In the conventional defrosting of the second heat exchanger, when the temperature of the outside air is low, the circulation of the refrigerant circuit tends to be switched to a reverse cycle and then defrosting operation is performed. In the defrosting operation switched to the reverse cycle, the air supplied to the indoor space is the evaporator side, so the temperature of the supply air is low, and it is common to stop the supply air. In this case, ventilation becomes insufficient. In addition, if it is desired to ensure the supply air, it is necessary to heat the supply air passage with an auxiliary heater, etc., but this heating causes a problem of low thermal efficiency.
[0090] Therefore, in this embodiment, the circulation of the refrigerant circuits F1, F2, F3, and F4 is stopped, and the warm air (heat) in the living space R11 is used to defrost the second heat exchanger 12, thereby enabling defrosting with high thermal efficiency.
[0091] Second Embodiment In the above-described embodiment, an example in which one exhaust unit is provided has been described. However, the number of exhaust units to be defrosted is not limited to one, and multiple exhaust units may be provided. Therefore, in the second embodiment, a configuration in which multiple exhaust units are provided and each of the exhaust units can be defrosted will be described.
[0092] 2 is a diagram showing an example of the configuration of a ventilation device, an air conditioner, and a higher-level control device according to the second embodiment. In this embodiment, a higher-level control device provided above the air conditioner and the ventilation device performs control. Note that the same reference numerals are assigned to the same configurations as those in the above-mentioned embodiment, and the description thereof will be omitted.
[0093] In the example shown in FIG. 2, a host controller 100 is provided to coordinate between the ventilation device 1B and the air conditioner 2B.
[0094] The air conditioner 2B includes an outdoor unit 170 and two air conditioning indoor units 81, 82. Note that in this embodiment, the number of air conditioning indoor units is not limited to two, and may be one, or three or more.
[0095] The outdoor unit 170 includes a control unit 171 together with a heat exchanger (not shown).
[0096] The control unit 171 performs overall control of the air conditioner 2B. The control unit 171 also transmits and receives information to and from the upper control device 100. The control unit 171 then performs various controls in response to control signals from the upper control device 100.
[0097] The ventilation device 1B includes a first exhaust unit 110A, a second exhaust unit 110B, a first air supply unit 120A, a second air supply unit 120B, a compressor unit 150, refrigerant circuits F101, F102, F103, F104, a first air supply path P101, a second air supply path P102, a first exhaust path P103, and a second exhaust path P104.
[0098] The first air supply flow path P101 passes air taken in from the outdoors through a first air supply unit 120A having a first heat exchanger 22, and then supplies the air to the living space R11 through the ventilation opening 92A.
[0099] The second air supply flow path P102 passes air taken in from the outdoors through a second air supply unit 120B having a first heat exchanger 22, and then supplies the air to the living space R11 through the ventilation opening 92B.
[0100] The first exhaust flow path P103 passes air (return air) taken in from the ventilation opening 91A in the indoor space through a first exhaust unit 110A having a second heat exchanger 12, and then exhausts the air to the outdoors.
[0101] The second exhaust flow path P104 passes air (return air) taken in from the ventilation opening 91B in the indoor space through a second exhaust unit 110B having a second heat exchanger 12, and then exhausts the air to the outdoors.
[0102] The refrigerant circuits F101, F102, F103, and F104 are circuits that connect the compressor unit 150, the first heat exchanger 22 of the first air supply unit 120A and the second air supply unit 120B, and the second heat exchanger 12 of the first exhaust unit 110A and the second exhaust unit 110B by refrigerant piping, and allow refrigerant to flow therethrough.
[0103] The control unit 152 of the compressor unit 150, the control unit 123 of the first air supply unit 120A, the control unit 123 of the second air supply unit 120B, the control unit 113A of the first exhaust unit 110A, and the control unit 113B of the second exhaust unit 110B are connected by a signal line S101 shown by a dotted line. This enables information to be transmitted and received between the control unit 152, the two control units 123, the control unit 113A, and the control unit 113B.
[0104] The control unit 152 of the compressor unit 150 transmits the status of the ventilator 1B received from the two control units 123, the control unit 113A, and the control unit 113B to the host control device 100. This enables the host control device 100 to realize control according to the status of the ventilator 1B.
[0105] The first air supply unit 120A includes a fan 21, a first heat exchanger 22, a control unit 123, and a temperature detection unit 24, and takes in outside air (OA) and supplies the air (SA) to the living space R11 through the ventilation opening 92A.
[0106] The second air supply unit 120B includes a fan 21, a first heat exchanger 22, a control unit 123, and a temperature detection unit 24, and takes in outside air (OA) and supplies the air (SA) to the living space R11 through the ventilation opening 92B.
[0107] The control unit 123 controls the configuration within each air supply unit. Furthermore, the control unit 123 transmits the detection results by the temperature detection unit 24 and the like within each air supply unit to the control unit 152 of the compressor unit 150. The control unit 152 of the compressor unit 150 recognizes the current situation from the detection results, and transmits the recognition result to the host control device 100. This allows the host control device 100 to recognize the situations of the first air supply unit 120A and the second air supply unit 120B.
[0108] The first exhaust unit 110A includes a fan 11, a second heat exchanger 12, a control unit 113A, and a temperature detection unit 14, and takes in return air (RA) from a ventilation opening 91A of the living space R11 and exhausts the air (EA) to the outdoors.
[0109] The second exhaust unit 110B includes a fan 11, a second heat exchanger 12, a control unit 113B, and a temperature detection unit 14, and takes in return air (RA) from a ventilation opening 91B of the living space R11 and exhausts the air (EA) to the outdoors.
[0110] The control unit 113A and the control unit 113B control the configuration in each exhaust unit. Furthermore, the control unit 113A and the control unit 113B transmit the detection results by the temperature detection unit 14 and the like in each exhaust unit to the control unit 152 of the compressor unit 150. The control unit 152 of the compressor unit 150 recognizes the current situation from the detection results, and transmits the recognition result to the host control device 100. This allows the host control device 100 to recognize the situations of the first exhaust unit 110A and the second exhaust unit 110B.
[0111] The host control device 100 performs various controls to coordinate the operation of the ventilator 1B and the operation of the air conditioner 2B.
[0112] The host controller 100 receives information on the status of the air conditioner 2B from the control unit 171 of the outdoor unit 170, and receives information on the status of the ventilator 1B from the control unit 152 of the compressor unit 150. Then, the host controller 100 performs various controls according to the status of the air conditioner 2B and the status of the ventilator 1B.
[0113] Furthermore, when the host control device 100 recognizes that the second heat exchanger 12 of either the first exhaust unit 110A or the second exhaust unit 110B is frosted, it performs control to stop the circulation of the refrigerant to the frosted second heat exchanger 12. In this embodiment, the circulation of the refrigerant can be stopped for each second heat exchanger 12. Next, the refrigerant circuit will be described.
[0114] Fig. 3 is a diagram showing a refrigerant circuit according to the second embodiment. In the example shown in Fig. 3, the flow of the refrigerant when the second heat exchanger 12 of the exhaust units 110A and 110B functions as an evaporator is shown. Note that the same reference numerals are assigned to the same configurations as those in the above-mentioned embodiment, and the description thereof is omitted.
[0115] In the example shown in FIG. 3, air supply units 120A and 120B, exhaust units 110A and 110B, and a compressor unit 150 are provided.
[0116] The air supply units 120A and 120B each include a fan 21, a first heat exchanger 22, a control unit 123, a temperature detection unit 24, a drive motor 25, and an electric valve 26.
[0117] The driving motor 25 controls the air volume of the fan 21 under the control of the control unit 123 .
[0118] The motor-operated valve 26 functions as an expansion valve that adjusts the opening of a flow path through which the refrigerant flows in order to reduce the pressure of the refrigerant, and switches whether or not to reduce the pressure based on the control of the control unit 123. The motor-operated valve 26 reduces the pressure when the first heat exchanger 22 functions as an evaporator, and does not reduce the pressure when the first heat exchanger 22 functions as a condenser. As shown in Fig. 3, the motor-operated valve (expansion valve) 26 is provided in the flow path connected to each first heat exchanger 22.
[0119] The exhaust unit 110A includes a fan 11, a second heat exchanger 12, a control unit 113A, a temperature detection unit 14, a drive motor 15, and an electric valve 16.
[0120] The exhaust unit 110B includes a fan 11, a second heat exchanger 12, a control unit 113B, a temperature detection unit 14, a drive motor 15, and an electric valve 16.
[0121] The driving motor 15 controls the air volume of the fan 11 under the control of the control unit 113A or the control unit 113B.
[0122] The motor-operated valve 16 functions as an expansion valve that adjusts the opening of a flow path through which the refrigerant flows in order to reduce the pressure of the refrigerant, and switches whether or not to reduce the pressure based on the control of the control unit 113A or the control unit 113B. The motor-operated valve 16 reduces the pressure when the second heat exchanger 12 functions as an evaporator, and does not reduce the pressure when the second heat exchanger 12 functions as a condenser. As shown in Fig. 3, the motor-operated valve (expansion valve) 16 is provided in the flow path connected to the second heat exchanger 12 for each second heat exchanger.
[0123] The compressor unit 150 includes a drive motor 51, a control unit 152, a compressor 53, a four-way valve 54, an electric valve 55, and a bypass electric valve 56.
[0124] The compressor 53 compresses the refrigerant flowing through the refrigerant circuit.
[0125] The driving motor 51 is an actuator that drives the compressor 53. The driving motor 51 according to this embodiment drives the compressor 53 at a rotation speed controlled by the control unit 152.
[0126] The control unit 152 controls the internal configuration of the compressor unit 150. For example, the control unit 152 controls the drive motor 51 and the four-way valve 54 described below.
[0127] The four-way valve 54 functions as a valve that switches the destination of the refrigerant compressed by the compressor 53 from the refrigerant circuit F101 and the refrigerant circuit F104. For example, when the second heat exchanger 12 is caused to function as an evaporator based on the control of the control unit 152, the four-way valve 54 is switched so as to cause the refrigerant compressed by the compressor 53 to flow into the refrigerant circuit F101.
[0128] The motor-operated valve 55 functions as a valve that controls the opening and closing of the refrigerant circuit in accordance with control from the control unit 152. When the second heat exchanger 12 functions as an evaporator, the motor-operated valve 55 is in a closed state in which the refrigerant does not flow.
[0129] The control units 113A and 113B output the detection result of the temperature detection unit 14 to the control unit 152 of the compressor unit 150.
[0130] Then, the control unit 152 of the compressor unit 150 judges whether or not a predetermined criterion indicating that the second heat exchanger 12 is frosted is satisfied based on the input detection result. Note that the predetermined criterion is the same as that in the first embodiment, and therefore a description thereof will be omitted.
[0131] When the control units 113A and 113B of the exhaust units 110A and 110B according to the present embodiment determine that a predetermined standard is satisfied, they notify the host control device 100 that the second heat exchangers 12 of the exhaust units 110A and 110B have formed frost. This allows the host control device 100 to recognize that the second heat exchangers 12 have formed frost.
[0132] Then, the upper control device 100 outputs a control signal (an example of a predetermined command) to the exhaust unit (first exhaust unit 110A or second exhaust unit 110B) that includes the frosted second heat exchanger 12 to defrost the second heat exchanger 12, causing the electric valve 16 located upstream of the second heat exchanger 12 to close.
[0133] Then, the control unit (control unit 113A or control unit 113B) of the exhaust unit (first exhaust unit 110A or second exhaust unit 110B) receives a control signal for closing the motor-operated valve 16 from the upper control device 100 via the compressor unit 150. In this case, the control unit (control unit 113A or control unit 113B) of the exhaust unit (first exhaust unit 110A or second exhaust unit 110B) performs control to close the motor-operated valve 16 by outputting a signal for closing the motor-operated valve 16 to an actuator (not shown) (an example of an actuator for controlling the state of the refrigerant in the refrigerant circuit) that adjusts the opening degree of the motor-operated valve 16.
[0134] When the motor-operated valve 16 is closed, the inflow of the refrigerant into the second heat exchanger 12 located downstream of the motor-operated valve 16 is suppressed. The rotation control of the fan 11 is maintained as in the above-described embodiment.
[0135] In other words, in this embodiment, when there are multiple second heat exchangers 12, as an example of control for defrosting a frosted second heat exchanger 12, the electric valve 16 upstream of the frosted second heat exchanger 12 is closed to stop the flow of refrigerant into the second heat exchanger 12, and then warm air from the living space R11 is allowed to flow into the second heat exchanger 12, thereby raising the temperature of the refrigerant flowing through the second heat exchanger and performing defrosting.
[0136] In this embodiment, by using the warm air (heat) in the living space R11 for defrosting the second heat exchanger 12, defrosting can be performed with high thermal efficiency.
[0137] (Modification 1 of the second embodiment) In the above-described embodiment, an example has been described in which, when frost forms on the second heat exchanger 12, the motor-operated valve 16 corresponding to the second heat exchanger 12 is controlled to the closed state. However, when frost forms on a plurality of second heat exchangers 12, controlling the plurality of motor-operated valves 16 to the closed state reduces the air conditioning capacity of the ventilator 1B. Therefore, in this modified example, an example will be described in which, when frost forms on a plurality of second heat exchangers 12, control is performed so that defrosting is not performed on the plurality of second heat exchangers 12 simultaneously.
[0138] FIG. 4 is a sequence diagram showing the flow of processing performed between the upper control device 100, the compressor unit 150, and the exhaust unit groups 110A and 110B when frost forms in each of the exhaust unit groups according to variant example 1 of the second embodiment.
[0139] First, the control unit 113A of the first exhaust unit 110A obtains the temperature of the refrigerant in the second heat exchanger 12 from the temperature detection unit 14 (S1401).
[0140] Then, the control unit 113A notifies the control unit 152 of the compressor unit 150 of the detected refrigerant temperature (1402).
[0141] Moreover, the control unit 113B of the second exhaust unit 110B acquires the temperature of the refrigerant in the second heat exchanger 12 from the temperature detection unit 14 (S1411).
[0142] Then, the control unit 113B notifies the control unit 152 of the compressor unit 150 of the detected refrigerant temperature (1412).
[0143] The control unit 152 of the compressor unit 150 judges whether or not the second heat exchangers 12 of the first exhaust unit 110A and the second exhaust unit 110B satisfy a predetermined criterion indicating that frost has formed, based on the detected refrigerant temperatures received from the control unit 113A of the first exhaust unit 110A and the control unit 113B of the second exhaust unit 110B (S1421). In the example shown in Fig. 4, it is judged that the predetermined criterion is satisfied for each of the second heat exchangers 12 of the first exhaust unit 110A and the second exhaust unit 110B. Note that the predetermined criterion is the same as in the above-mentioned embodiment, and a description thereof will be omitted.
[0144] The control unit 152 of the compressor unit 150 notifies the host control device 100 of the determination result indicating that frost has formed (S1422).
[0145] The upper control device 100 determines the order of performing the control to prevent frost formation for the first exhaust unit 110A and the second exhaust unit 110B based on the received judgment result (S1431). Any method may be used to determine the order. For example, the unit with a higher probability of frost formation may be controlled to perform frost prevention first, or the order may be determined according to a priority order previously assigned to the first exhaust unit 110A and the second exhaust unit 110B. The example shown in FIG. 4 is an example in which it is determined that the first exhaust unit 110A and the second exhaust unit 110B are defrosted in that order.
[0146] The host controller 100 transmits a signal instructing to close the motor-operated valve 16 of the first exhaust unit 110A to the control unit 152 of the compressor unit 150 (S1432).
[0147] Then, the control unit 152 of the compressor unit 150 transmits a signal indicating an instruction to control the motor-operated valve 16 to close, to the control unit 113A of the first exhaust unit 110A (S1423).
[0148] As a result, the control unit 113A of the first exhaust unit 110A performs control to close the motor-operated valve 16 (S1403), thereby suppressing the inflow of the refrigerant into the second heat exchanger 12 of the first exhaust unit 110A.
[0149] After a predetermined time (e.g., an appropriate time for the second heat exchanger 12 of the first exhaust unit 110A to complete defrosting) has elapsed, the upper control device 100 sends a signal indicating opening control of the electric valve 16 of the first exhaust unit 110A to the control unit 152 of the compressor unit 150 (S1433).
[0150] Then, the control unit 152 of the compressor unit 150 transmits a signal indicating an instruction to control the opening of the motor-operated valve 16 to the control unit 113A of the first exhaust unit 110A (S1424).
[0151] As a result, the control unit 113A of the first exhaust unit 110A performs control to open the motor-operated valve 16 (S1404), thereby restarting the flow of the refrigerant into the second heat exchanger 12 of the first exhaust unit 110A.
[0152] The host controller 100 transmits a signal indicating an instruction to control the motor-operated valve 16 of the second exhaust unit 110B to the control unit 152 of the compressor unit 150 (S1434).
[0153] Then, the control unit 152 of the compressor unit 150 transmits a signal indicating an instruction to control the motor-operated valve 16 to close, to the control unit 113B of the second exhaust unit 110B (S1425).
[0154] As a result, the control unit 113B of the second exhaust unit 110B performs control to close the motor-operated valve 16 (S1413), thereby suppressing the inflow of the refrigerant into the second heat exchanger 12 of the second exhaust unit 110B.
[0155] In this way, when the upper control device 100 determines that a plurality of second heat exchangers 12 are in a frosted state, it sends a signal to close a plurality of electric valves 16 corresponding to the plurality of second heat exchangers determined to be in a frosted state in a predetermined order.
[0156] Therefore, when the control unit 152 and the upper control device 100 of the compressor unit 150 in this embodiment determine that a predetermined standard is met while the multiple second heat exchangers 12 are functioning as evaporators, they can suppress the inflow of refrigerant into any one of the multiple second heat exchangers 12 and maintain the inflow of warm air from the living space R11 by the fan 11, thereby defrosting the second heat exchanger 12.
[0157] Furthermore, in this embodiment, by performing defrosting for each of the multiple exhaust units in a predetermined order, simultaneous defrosting is prevented from occurring in the second heat exchangers 12 of the multiple exhaust units, thereby further preventing a decrease in room temperature in the living space R11.
[0158] (Third embodiment) Further, other methods may be used to defrost the second heat exchanger 12. Therefore, in the third embodiment, another aspect of adjusting the opening degree of the motor-operated valve 16 inside the exhaust unit 310 will be described. Note that the configurations of the host control device 100, the air conditioner 2B, and the ventilator 1B according to the third embodiment are the same as those of the second embodiment, and description thereof will be omitted.
[0159] As shown in FIG. 4, when the second heat exchanger 12 functions as an evaporator, the motor-operated valve 16 (an example of a second valve unit) is provided between the first heat exchanger 22 and the second heat exchanger 12.
[0160] When the second heat exchanger 12 functions as an evaporator, the motor-operated valve 16 functions as a valve unit that reduces the pressure of the high-pressure liquid refrigerant flowing out of the first heat exchanger 22 in order to make it easier to evaporate, according to the control of the control unit 313. The smaller the opening of the motor-operated valve 16, the more the pressure is reduced, and therefore the temperature of the refrigerant decreases. In other words, the larger the opening of the motor-operated valve 16, the higher the temperature of the refrigerant.
[0161] While the second heat exchanger 12 is functioning as an evaporator, the host control device 100 recognizes that the second heat exchanger 12 is frosted from the determination result from the control unit 152 of the compressor unit 150. Note that the determination by the control unit 152 of the compressor unit 150 is the same as in the above-described embodiment and modified example, and therefore a description thereof will be omitted.
[0162] Then, the upper control device 100 outputs a control signal to an exhaust unit (e.g., the first exhaust unit 110A or the second exhaust unit 110B) including the second heat exchanger 12 that has been determined to have frost, to increase the opening degree of the electric valve 16 compared to before it was determined that frost had formed.
[0163] Then, when the control unit 113A of the first exhaust unit 110A or the control unit 113B of the second exhaust unit 110B receives the control signal, it outputs a control signal (an example of a predetermined command) to an actuator (not shown) (an example of an actuator that controls the state of the refrigerant in the refrigerant circuit) that adjusts the opening of the electric valve 16, thereby increasing the opening of the electric valve 16 compared to before it was determined that frost had formed.
[0164] This increases the temperature of the refrigerant flowing through the second heat exchanger 12. Furthermore, warm air is caused to flow from the living space R11 into the second heat exchanger 12 by the fan 11. This allows the second heat exchanger 12 to be defrosted.
[0165] (Modification 1 of the third embodiment) The second heat exchanger 12 may be defrosted using a method other than that of the above-described embodiment. In the first modified example of the third embodiment, an example in which the pressure of the refrigerant is adjusted by a motor-operated valve provided downstream of the exhaust unit will be described.
[0166] The configuration of the first modified example of the third embodiment has the same configuration as that of the second embodiment described above, except for the refrigerant circuit.
[0167] Fig. 5 is a diagram showing a refrigerant circuit according to Modification 1 of the third embodiment. In the example shown in Fig. 5, the flow of the refrigerant when the second heat exchanger 12 of the exhaust units 110A and 110B functions as an evaporator is shown. Note that the same reference numerals are assigned to the same configurations as those in the above-mentioned embodiment, and the description thereof will be omitted.
[0168] In the example shown in FIG. 5, when the second heat exchanger 12 of the exhaust units 110A, 110B functions as an evaporator, motor-operated valves 161, 162 (an example of a third valve section) are provided downstream of the second heat exchanger 12 of each of the exhaust units 110A, 110B.
[0169] The motor-operated valves 161 and 162 are provided downstream of the refrigerant flowing through the second heat exchanger 12, and have a mechanism capable of adjusting the flow rate of the refrigerant.
[0170] The control unit 152 of the compressor unit 150 according to this modification determines whether or not a predetermined criterion indicating frost formation in the second heat exchanger 12 is satisfied based on the temperature of the refrigerant flowing through the second heat exchanger 12 while the second heat exchanger 12 is functioning as an evaporator. The predetermined criterion is the same as in the above-described embodiment, and therefore a description thereof will be omitted. The control unit 152 of the compressor unit 150 notifies the upper control device 100 of the determination result.
[0171] In this modification, when the upper control device 100 recognizes that there is a second heat exchanger 12 that satisfies a predetermined criterion, the upper control device 100 outputs a control signal (a predetermined command) to the control unit (control unit 113A or control unit 113B) of the exhaust unit (for example, the first exhaust unit 110A or the second exhaust unit 110B) including the second heat exchanger 12 to reduce the opening of the motor-operated valve (the motor-operated valve 161 or the motor-operated valve 162) compared to before the predetermined criterion was satisfied. As a result, the control unit (control unit 113A or control unit 113B) outputs a control signal (an example of a predetermined command) to an actuator (an example of an actuator that controls the state of the refrigerant in the refrigerant circuit) that adjusts the opening of the motor-operated valve (the motor-operated valve 161 or the motor-operated valve 162), thereby reducing the opening of the motor-operated valve (the motor-operated valve 161 or the motor-operated valve 162).
[0172] In this manner, in this modification, in addition to the motor-operated valve 16 provided on the upstream side of the second heat exchanger 12, a motor-operated valve for adjusting the flow rate of the refrigerant is provided on the downstream side of the second heat exchanger 12.
[0173] By reducing the opening of the motor-operated valve (motor-operated valve 161 or motor-operated valve 162), the pressure of the refrigerant flowing through the second heat exchanger 12 located upstream of the motor-operated valve (motor-operated valve 161 or motor-operated valve 162) can be increased. This makes it possible to increase the evaporation temperature of the refrigerant flowing through the second heat exchanger 12. In addition, the fan 11 continuously flows warm air from the living space R11 into the second heat exchanger 12. Therefore, defrosting of the second heat exchanger 12 can be achieved.
[0174] (Fourth embodiment) The second heat exchanger 12 may be defrosted using a method other than those of the above-described embodiments. In the fourth embodiment, an example in which a bypass flow path (an example of bypass piping) is provided in the refrigerant circuit will be described. In the fourth embodiment, one exhaust unit 110B is reduced from the third embodiment, and two air supply units 120A, 120B and one exhaust unit 110A are provided. The other configurations are the same as those of the third embodiment, and description thereof will be omitted.
[0175] Fig. 6 is a diagram showing a refrigerant circuit according to a fourth embodiment. In the example shown in Fig. 6, the flow of the refrigerant when the second heat exchanger 12 of the exhaust unit 110A functions as an evaporator is shown. Note that the same reference numerals are assigned to the same configurations as those in the above-mentioned embodiment, and the description is omitted.
[0176] In the example shown in FIG. 6, air supply units 120A and 120B, an exhaust unit 110A, and a compressor unit 150 are provided.
[0177] The air supply units 120A and 120B each include a fan 21, a first heat exchanger 22, a control unit 23, a temperature detection unit 24, a drive motor 25, and an electric valve 26.
[0178] The exhaust unit 110A includes a fan 11, a second heat exchanger 12, a control unit 113A, a temperature detection unit 14, a drive motor 15, and an electric valve 16.
[0179] In this modified example, while the second heat exchanger 12 is functioning as an evaporator, the control unit 113A of the exhaust unit 110A outputs the detection result of the temperature detection unit 14 (the temperature of the refrigerant flowing through the second heat exchanger 12) to the control unit 152 of the compressor unit 150.
[0180] The control unit 152 of the compressor unit 150 judges whether or not a predetermined criterion indicating frost formation in the second heat exchanger 12 is satisfied based on the input temperature of the refrigerant flowing through the second heat exchanger 12. Note that the predetermined criterion is the same as in the above-mentioned embodiment, so a description thereof will be omitted. The control unit 152 of the compressor unit 150 notifies the upper control device 100 of the judgment result.
[0181] In this modified example, when the upper control device 100 recognizes that there is a second heat exchanger 12 that meets a predetermined standard, it outputs a control signal to the control unit 152 of the compressor unit 150 to flow refrigerant into the bypass flow path F106 as defrosting control of the second heat exchanger 12.
[0182] The compressor unit 150 includes a drive motor 51 , a control unit 152 , a compressor 53 , a four-way valve 54 , an electric valve 55 , and a bypass electric valve 156 .
[0183] The control unit 152 controls the internal configuration of the compressor unit 150. For example, the control unit 152 controls the drive motor 51 and the four-way valve 54 described below.
[0184] In this embodiment, when the second heat exchanger 12 functions as an evaporator, a bypass flow path F106 is provided for flowing the refrigerant compressed by the compressor 53 directly to the second heat exchanger 12 in order to increase the temperature of the refrigerant flowing through the second heat exchanger 12.
[0185] The bypass flow path F106 is provided as a refrigerant flow path that bypasses between the compressor 53 and the four-way valve 54, and the refrigerant circuit F103. In other words, the bypass flow path F106 functions as a pipe that flows the refrigerant to the second heat exchanger 12 without passing through the first heat exchanger 22 while the second heat exchanger 12 functions as an evaporator.
[0186] The bypass motor-operated valve 156 functions as a valve for switching whether or not the refrigerant flows through the bypass flow path F106 under the control of the control unit 152.
[0187] Specifically, when the host control device 100 determines that the second heat exchanger 12 is frosted, it outputs a control signal to the control unit 152 of the compressor unit 150 to cause the refrigerant to flow through the bypass flow path F106.
[0188] When the control unit 152 of the compressor unit 150 receives a control signal from the higher-level control device 100 to flow refrigerant through the bypass flow path F106, it controls the bypass motor-operated valve 156 to an open state by outputting a control signal (an example of a predetermined command) to an actuator (not shown) (an example of an actuator that controls the state of the refrigerant in the refrigerant circuit) that controls the opening degree of the bypass motor-operated valve 156.
[0189] When the bypass motor-operated valve 156 is in an open state, the refrigerant that has been compressed by the compressor 53 to become a high-temperature, high-pressure gas flows into the refrigerant circuit F103 via the bypass flow path F106. By passing through the bypass flow path F106, a portion of the refrigerant that has become a high-temperature, high-pressure gas flows through the refrigerant circuit F103 without passing through the first heat exchanger 22. This causes the temperature of the refrigerant flowing through the refrigerant circuit F103 to rise. Therefore, the refrigerant with the increased temperature flows through the second heat exchanger 12.
[0190] That is, in this modification, when a predetermined standard is satisfied, a part of the refrigerant that has become a high-temperature, high-pressure gas by the compressor 53 is controlled to flow through the bypass passage F106 to the second heat exchanger 12. In conjunction with this control, the fan 11 causes warm air in the living space R11 to flow into the second heat exchanger 12. This makes it possible to defrost the second heat exchanger 12.
[0191] (Modification 1 of the fourth embodiment) The second heat exchanger 12 may be defrosted using a method other than the above-described embodiments and modifications. In Modification 1 of the fourth embodiment, an example in which a heater is provided in the refrigerant circuit will be described. Modification 1 of the fourth embodiment is an example in which, compared to the fourth embodiment, the bypass flow path F106 and the bypass motor-operated valve 56 are deleted, and instead a heater is provided on the refrigerant circuit (for example, the refrigerant circuit F103). Note that other configurations are similar to those of the fourth embodiment, and therefore description thereof will be omitted.
[0192] In this modified example, while the second heat exchanger 12 is functioning as an evaporator, the control unit 113A of the exhaust unit 110A outputs the detection result of the temperature detection unit 14 (the temperature of the refrigerant flowing through the second heat exchanger 12) to the control unit 152 of the compressor unit 150.
[0193] The control unit 152 of the compressor unit 150 judges whether or not a predetermined criterion indicating frost formation in the second heat exchanger 12 is satisfied based on the input temperature of the refrigerant flowing through the second heat exchanger 12. Note that the predetermined criterion is the same as in the above-mentioned embodiment, so a description thereof will be omitted. The control unit 152 of the compressor unit 150 notifies the upper control device 100 of the judgment result.
[0194] In this modified example, when the upper control device 100 recognizes that there is a second heat exchanger 12 that meets a predetermined standard, it instructs the control unit 152 of the compressor unit 150 to start heating the refrigerant circuit using the heater as defrosting control for the second heat exchanger 12.
[0195] When the control unit 152 of the compressor unit 150 receives an instruction to start heating from the upper control device 100, the control unit 152 starts heating of the heater.
[0196] This increases the temperature of the refrigerant flowing through the refrigerant circuit F103. Therefore, the refrigerant with the increased temperature flows into the second heat exchanger 12. Along with this control, the fan 11 causes the warm air in the living space R11 to flow into the second heat exchanger 12. This allows the second heat exchanger 12 to be defrosted.
[0197] (Modification 2 of the fourth embodiment) The second heat exchanger 12 may be defrosted using a method other than the above-described embodiment and modified examples. In modified example 2 of the fourth embodiment, an example in which the pressure of the refrigerant flowing through the refrigerant circuit is increased will be described. Modified example 2 of the fourth embodiment is, for example, an example having the same configuration as the second embodiment. Note that other configurations are the same as those of the fourth embodiment, and description thereof will be omitted.
[0198] In this modified example, while the second heat exchanger 12 is functioning as an evaporator, the control unit 113A of the exhaust unit 110A outputs the detection result of the temperature detection unit 14 (the temperature of the refrigerant flowing through the second heat exchanger 12) to the control unit 152 of the compressor unit 150.
[0199] The control unit 152 of the compressor unit 150 judges whether or not a predetermined criterion indicating frost formation in the second heat exchanger 12 is satisfied based on the input temperature of the refrigerant flowing through the second heat exchanger 12. Note that the predetermined criterion is the same as in the above-mentioned embodiment, so a description thereof will be omitted. The control unit 152 of the compressor unit 150 notifies the upper control device 100 of the judgment result.
[0200] In this modified example, when the upper control device 100 recognizes that there is a second heat exchanger 12 that meets a predetermined standard, it instructs the control unit 152 of the compressor unit 150 to increase the compressor pressure as defrosting control for the second heat exchanger 12.
[0201] When the control unit 152 of the compressor unit 150 receives an instruction to increase the pressure from the upper control device 100, it outputs a control signal to the drive motor 51 to increase the pressure compared to before it was determined that frost had formed, thereby performing control to increase the pressure of the refrigerant flowing through the refrigerant circuit.
[0202] As a result, the pressure of the refrigerant flowing through the refrigerant circuit F103 increases, and the temperature of the refrigerant also increases. The refrigerant with increased temperature flows into the second heat exchanger 12, and the warm air in the living space R11 is caused by the fan 11 to flow into the second heat exchanger 12. Therefore, defrosting of the second heat exchanger 12 can be achieved.
[0203] Fifth embodiment The second heat exchanger 12 may be defrosted using a method other than those of the above-mentioned embodiment. In the fifth embodiment, an example in which the flow of the refrigerant circuit is a reverse cycle will be described. The fifth embodiment is similar to the third embodiment, and therefore the description will be omitted.
[0204] In this embodiment, while the second heat exchanger 12 is functioning as an evaporator, the control unit 113A of the exhaust unit 110A outputs the detection result of the temperature detection unit 14 (the temperature of the refrigerant flowing through the second heat exchanger 12) to the control unit 152 of the compressor unit 150.
[0205] The control unit 152 of the compressor unit 150 judges whether or not a predetermined criterion indicating frost formation in the second heat exchanger 12 is satisfied based on the input temperature of the refrigerant flowing through the second heat exchanger 12. Note that the predetermined criterion is the same as in the above-mentioned embodiment, so a description thereof will be omitted. The control unit 152 of the compressor unit 150 notifies the upper control device 100 of the judgment result.
[0206] In this embodiment, when the upper control device 100 recognizes that there is a second heat exchanger 12 that meets a predetermined standard, it instructs the control unit 152 of the compressor unit 150 to reverse the flow of the refrigerant as defrost control for the second heat exchanger 12.
[0207] When the control unit 152 of the compressor unit 150 receives an instruction from the upper control device 100 to make the refrigerant flow a reverse cycle, it outputs a control signal (an example of a predetermined command) to an actuator (not shown) (an example of an actuator that controls the state of the refrigerant in the refrigerant circuit) that drives a four-way valve 54 provided in the refrigerant circuit as shown in Fig. 3 to switch the flow of the four-way valve 54. As a result, the refrigerant compressed from the compressor is switched to flow to the exhaust units 110A and 110B. At that time, the openings of the motor-operated valves 16 and 26 are also adjusted.
[0208] The second heat exchanger 12 of the exhaust units 110A, 110B receives the compressed refrigerant and functions as a condenser, while the first heat exchanger 22 of the air supply units 120A, 120B functions as an evaporator.
[0209] The above-mentioned control causes the refrigerant flowing through the refrigerant circuit to go through a reverse cycle, and the second heat exchanger 12 functions as a condenser, thereby increasing the temperature of the refrigerant flowing through the second heat exchanger 12. In addition, the fan 11 causes warm air in the living space R11 to flow into the second heat exchanger 12. This makes it possible to defrost the second heat exchanger 12.
[0210] (Modification 1 of the fifth embodiment) In the fifth embodiment, the flow of the refrigerant circuit is reverse cycled, but the air flow is not switched. Therefore, in the first modification of the fifth embodiment, an example in which the refrigerant circuit is reverse cycled and the air flow is switched will be described. The first modification of the fifth embodiment has the same configuration as the fifth embodiment.
[0211] In this modified example, when the upper control device 100 recognizes, by a procedure similar to that of the fifth embodiment, the existence of a second heat exchanger 12 that meets a predetermined standard, it instructs the control unit 152 of the compressor unit 150 to reverse the flow of refrigerant, and outputs a control signal to the control units 123 of the air supply units 120A, 120B to switch the air flow by the fan 21 so as to exhaust air from the living space R11 to the outdoors via the first air supply path P101 and the second air supply path P102.
[0212] In this modification, the above-described air flow switching control allows warm air to flow into the first heat exchanger 22 functioning as an evaporator, thereby increasing the temperature of the refrigerant flowing through the refrigerant circuit. By increasing the temperature of the refrigerant flowing through the first heat exchanger 22 functioning as an evaporator, the temperature of the refrigerant flowing through the second heat exchanger 12 can also be increased. Therefore, the temperature of the refrigerant flowing through the second heat exchanger 12 can be further increased, improving the defrosting efficiency.
[0213] (Modification 2 of the fifth embodiment) In the first modification of the fifth embodiment, an example of switching the air flow on the air supply units 120A and 120B side has been described. However, in the first modification of the fifth embodiment, the air flow on the exhaust units 110A and 110B side is maintained in the same control as before frost formation. Therefore, in the second modification of the fifth embodiment, an example of switching the air flow on the exhaust units 110A and 110B side will be described. Note that the second modification of the fifth embodiment has the same configuration as the fifth embodiment.
[0214] In this modification, when the host control device 100 recognizes the presence of the second heat exchanger 12 that satisfies a predetermined standard by a procedure similar to that of the fifth embodiment, it instructs the control unit 152 of the compressor unit 150 to reverse the refrigerant flow, and outputs a control signal to the control units 123 of the air supply units 120A and 120B to switch the air flow by the fan 21 so that the air is exhausted from the living space R11 to the outdoors through the first air supply path P101 and the second air supply path P102. Then, the host control device 100 outputs a control signal to the control unit 113A of the exhaust unit 110A and the control unit 113B of the exhaust unit 110B to switch the air flow by the fan 11 so that the air is supplied from the outdoors to the living space R11 through the first air exhaust path P103 and the second air exhaust path P104.
[0215] In this modified example, by controlling the switching of the air flow as described above, warm air is caused to flow into the first heat exchanger 22 functioning as an evaporator, and supply air from outdoors flows into the second heat exchanger 12 functioning as a condenser.
[0216] In other words, in this modified example, the refrigerant cycle and the air supply / exhaust are all switched, so that ventilation can be continued while heat exchange is being performed, and the comfort of the living space R11 can be maintained while defrosting the second heat exchanger 12.
[0217] Sixth embodiment The second heat exchanger 12 may be defrosted using a method other than those in the above-described embodiment. In the sixth embodiment, an example in which the flow of air to the exhaust unit is adjusted will be described.
[0218] Fig. 7 is a diagram showing a configuration example of a ventilation device and an air conditioner according to a sixth embodiment. In the example shown in Fig. 7, a ventilation device 1C and an air conditioner 2 are provided to perform air conditioning of an indoor space. The ventilation device 1C has an exhaust unit 210 and an air supply unit 20 that perform control different from the above-mentioned embodiment. Note that the same reference numerals are assigned to configurations similar to those of the above-mentioned embodiment, and description thereof will be omitted.
[0219] The return air flow path P202 (an example of a second air flow path) is a flow path for exhausting air (return air) taken in through the ventilation opening 91 in the living space R11 to the outdoors after passing it through an exhaust unit 10 having a second heat exchanger 12.
[0220] The return air flow path P202 according to this embodiment is branched into two air intake paths so that air can be taken in from a plurality of rooms. These are referred to as a first return air branch path P202A (an example of a second air flow path) and a second return air branch path P202B (an example of a third air flow path).
[0221] The first return air branch channel (an example of a second air flow path) P202A is an air flow path provided to exhaust air taken in from the living space R11 to the outdoors after passing through an exhaust unit 10 having a second heat exchanger 12. The first return air branch channel P202A takes in air from a ventilation opening 91 provided in the ceiling of the living space R11.
[0222] The second return air branch passage (an example of a third air flow passage) P202B is an air flow passage provided for exhausting the air taken in from the ceiling space R12 to the outdoors after passing through the exhaust unit 10 having the second heat exchanger 12. The second return air branch passage P202B according to the present embodiment will be described as an example in which the ceiling space R12 is used as a room that is a destination of air different from the first return air branch passage P202A. However, the destination of air is not limited to the ceiling space R12, and may be an underfloor space. In this way, the destination of air taken in by the second return air branch passage P202B may be any room in the indoor space that is different from the living space R11.
[0223] Further, an opening / closing damper 240 is provided at the tip of the second return air branch passage P202B. The opening / closing damper 240 is normally in a closed state. The opening / closing damper 240 (an example of a first guide mechanism) can adjust the amount of air taken in from the ceiling space R12 by control from the control unit 13 provided in the exhaust unit 10 via a signal line S202.
[0224] The exhaust unit 210 includes a control unit 213 that performs processing different from that in the above-described embodiment.
[0225] The control unit 213 controls the internal configuration of the exhaust unit 210. The control unit 213 performs various controls according to the detection result by the temperature detection unit 14. For example, the control unit 213 adjusts the function of the second heat exchanger 12 as a condenser or an evaporator according to the detection result of the temperature detection unit 14.
[0226] Furthermore, the control unit 213 according to this embodiment can adjust the amount of air taken in from the ceiling space R12 by controlling the open / close damper 240 based on the detection result of the temperature detection unit 14.
[0227] In this embodiment, while the second heat exchanger 12 functions as an evaporator, the control unit 213 of the exhaust unit 210 judges whether or not the second heat exchanger 12 satisfies a predetermined standard for frost formation based on the detection result by the temperature detection unit 14. Note that the predetermined standard is the same as in the above-mentioned embodiment, and therefore a description thereof will be omitted.
[0228] The control unit 213 of the exhaust unit 210 according to this embodiment detects the temperature of the air in the ceiling space R12 when it is determined that a predetermined criterion is met. Then, when it is determined that the temperature of the air in the ceiling space R12 is higher than the temperature of the air in the living space R11, the control unit 213 performs control to open the open / close damper 240 as defrost control of the second heat exchanger 12 so that the air present in the ceiling space R12 is guided to the second heat exchanger 12 through the second return air branch P202B. That is, since the ceiling space R12 is located above the living space R11, warm air is collected therein. Therefore, when it is determined that the second heat exchanger 12 is frosted, the control unit 213 performs control to open the open / close damper 240. By this control, the air obtained by mixing the warm air present in the ceiling space R12 and the air present in the living space R11 is guided to the second heat exchanger 12.
[0229] As an example of control for increasing the temperature of the refrigerant flowing through the second heat exchanger 12, the control unit 13 according to this embodiment controls the warm air in the attic space R12 to flow to the second heat exchanger 12. This makes it possible to defrost the second heat exchanger 12. Note that the output of a command to an actuator that controls the state of the refrigerant in the refrigerant circuit so as to increase the temperature of the refrigerant flowing into the second heat exchanger 12 may be any of the methods described in the above-mentioned embodiments, and description thereof will be omitted.
[0230] (Modification 1 of the sixth embodiment) In the above-described embodiment, an example has been described in which the open / close damper 240 is used to mix the warm air in the attic space R12 with the air in the living space R11 and control the air to flow to the second heat exchanger 12. However, the sixth embodiment is not limited to the method of mixing the warm air in the attic space R12 with the air in the living space R11. In a first modified example of the sixth embodiment, an example will be described in which only the warm air in the attic space R12 is controlled to flow to the second heat exchanger 12.
[0231] In this modification, similarly to the above-described embodiment, the return air flow path P202 branches into a first return air branch path P202A (an example of a second air flow path) and a second return air branch path P202B (an example of a third air flow path).
[0232] In the above-described embodiment, the second return air branch passage P202B is provided with an open / close damper 240, but in this modification, the first return air branch passage P202A is also provided with an open / close damper (an example of a second guide mechanism). In other respects, the sixth embodiment is the same as the sixth embodiment.
[0233] The open / close damper provided in the first return air branch P202A is normally in an open state. This allows the return air (RA) from the living space R11 to be taken in. The open / close damper provided in the first return air branch P202A can adjust the amount of air taken in from the living space R11 by control from the control unit 313 provided in the exhaust unit 310 via a signal line (not shown).
[0234] When the control unit 213 of the exhaust unit 210 according to this modification determines that the second heat exchanger 12 meets a predetermined standard for frost formation, it detects the temperature of the air in the attic space R12. When the control unit 213 determines that the temperature of the air in the attic space R12 is higher than the temperature of the air in the living space R11, the control unit 213 performs control to open the open / close damper 240 and also performs control to close the open / close damper provided in the first return air branch passage P202A.
[0235] This prevents the intake of return air (RA) from the living space R11, and causes the warm air present in the attic space R12 to flow into the second heat exchanger 12. Therefore, the defrosting efficiency of the second heat exchanger 12 can be improved.
[0236] Seventh embodiment The flow of air to the exhaust unit may be adjusted using a method other than that of the sixth embodiment described above. Therefore, in the seventh embodiment, another aspect of adjusting the flow of air to the exhaust unit will be described.
[0237] Fig. 8 is a diagram showing a configuration example of a ventilation device and an air conditioner according to a seventh embodiment. In the example shown in Fig. 8, a ventilation device 1D and an air conditioner 2 are provided to condition an indoor space. The ventilation device 1D has an exhaust unit 310 that performs control differently from the above-mentioned embodiment. Note that the same reference numerals are assigned to configurations similar to those of the above-mentioned embodiment, and description thereof will be omitted.
[0238] The first return air flow path P301 (an example of a second air flow path) is a flow path for exhausting air (return air) taken in through the ventilation opening 91 in the living space R11 to the outdoors after passing it through an exhaust unit 10 having a second heat exchanger 12.
[0239] A first opening / closing damper 341 (an example of a switching mechanism) is provided at the tip of the first return air flow path P301. The first opening / closing damper 341 is normally in an open state. The first opening / closing damper 341 can adjust the amount of air taken in from the living space R11 by control from a control unit 313 provided in the exhaust unit 310 via a signal line S302.
[0240] The second return air flow path P302 is a flow path for passing air taken in from outdoors (return air) through an exhaust unit 10 having a second heat exchanger 12, and then exhausting the air to the outdoors.
[0241] Further, a second opening / closing damper 342 (an example of a switching mechanism) is provided on the second return air flow path P302 (an example of a second air flow path). The second opening / closing damper 342 is normally in a closed state. The second opening / closing damper 342 can adjust the amount of air taken in from outdoors by control from a control unit 313 provided in the exhaust unit 310 via a signal line S202.
[0242] The first opening / closing damper 341 and the second opening / closing damper 342 function as a mechanism for switching whether the air flowing to the second heat exchanger 12 is supplied from the living space R11 or from the outdoors.
[0243] The exhaust unit 310 includes a control unit 313 that performs processing different from that in the above-described embodiment.
[0244] The control unit 313 controls the internal configuration of the exhaust unit 310. The control unit 313 performs various controls according to the detection result by the temperature detection unit 14. For example, the control unit 313 adjusts the function of the second heat exchanger 12 as a condenser or an evaporator according to the detection result of the temperature detection unit 14.
[0245] Furthermore, the control unit 313 in this embodiment changes the intake destination of the air flowing into the second heat exchanger 12 by controlling the first opening / closing damper 341 and the second opening / closing damper 342 based on the detection result of the temperature detection unit 14.
[0246] In this embodiment, while the second heat exchanger 12 functions as an evaporator, the control unit 313 of the exhaust unit 310 judges whether or not the second heat exchanger 12 satisfies a predetermined standard for frost formation based on the detection result by the temperature detection unit 14. Note that the predetermined standard is the same as in the above-mentioned embodiment, and therefore a description thereof will be omitted.
[0247] When it is determined that a predetermined criterion is satisfied, the control unit 313 of the exhaust unit 310 according to this embodiment detects the temperatures of the living space R11 and the outdoor air. When the temperature of the air in the living space R11 is higher than the outdoor air, the first opening / closing damper 341 and the second opening / closing damper 342 are not controlled.
[0248] Then, when it is determined that the outdoor air temperature is higher than the air temperature in the living space R11, the control unit 313 performs control to open the second opening / closing damper 342 as defrost control for the second heat exchanger 12 so that the air present outdoors passes through the second return air flow path P302 and is guided to the second heat exchanger 12. Furthermore, the control unit 313 performs control to close the first opening / closing damper 341 in order to prevent the air from the living space R11 from flowing into the second heat exchanger 12 through the first return air flow path P301.
[0249] In other words, when frost forms on the second heat exchanger 12 while the second heat exchanger 12 is functioning as an evaporator, the control unit 313 controls the first opening / closing damper 341 and the second opening / closing damper 342 to supply air from the higher of the temperatures detected in the living space R11 and the outdoors.
[0250] When it is possible to take in warm air from outdoors, the control unit 313 controls the first opening / closing damper 341 and the second opening / closing damper 342 so as to take in air from outdoors.
[0251] In this embodiment, for example, when the control unit 313 compares the air temperature TA around the intake port of the first heat exchanger 22, the air temperature TB in the living space R11, and the air temperature TC around the exhaust port of the second heat exchanger 12, if it determines that the air temperature TC > air temperature TB > air temperature TA >, the above-mentioned processing is performed.
[0252] Examples of when the air temperature TC will be higher than the air temperature TB and the air temperature TA include when the outlet of the second heat exchanger 12 is on the south side of the building and the surrounding air is warmed by sunlight or the like, when the inlet of the first heat exchanger 22 is on the north side of the building and the surrounding air is cold in the shade, when there is unmelted snow remaining near the inlet of the first heat exchanger 22 in early spring and the surrounding air is cold, and when the duct between the second heat exchanger 12 and the outlet is installed long into the attic space R12, the heat from the attic space R12 may warm the air passing through the duct.
[0253] In such a situation, the control unit 313 controls the outdoor warm air to flow to the second heat exchanger 12. This makes it possible to defrost the second heat exchanger 12. Note that the output of a command to an actuator that controls the state of the refrigerant in the refrigerant circuit so as to increase the temperature of the refrigerant flowing into the second heat exchanger 12 may be any of the methods described in the above-mentioned embodiments, and a description thereof will be omitted.
[0254] In this embodiment, the air with the higher temperature detected from the living space R11 or the outdoors is flowed into the second heat exchanger 12, thereby further increasing the temperature of the second heat exchanger 12 and improving the defrosting efficiency.
[0255] Eighth embodiment The flow of air to the exhaust unit may be adjusted using a method other than those of the above-mentioned embodiments. Therefore, in the eighth embodiment, a method of providing a bypass flow path between the air supply unit and the exhaust unit to allow air to flow directly will be described.
[0256] Fig. 9 is a diagram showing a configuration example of a ventilation device and an air conditioner according to an eighth embodiment. In the example shown in Fig. 9, a ventilation device 1E and an air conditioner 2 are provided to air condition an indoor space. In the third embodiment, the same components as those in the above-mentioned embodiments are assigned the same reference numerals, and the description thereof will be omitted.
[0257] 9, a bypass flow path P402 is provided between the air supply unit 20 and the exhaust unit 410. The bypass flow path P402 is made up of a first bypass partial flow path P402A on the air supply unit 20 side of the air supply flow path P401, a third bypass partial flow path P402C on the exhaust unit 10 side of the return air flow path P403, and a second bypass partial flow path P402B connecting the first bypass partial flow path P402A and the third bypass partial flow path P402C.
[0258] An open / close damper 440 (an example of a bypass guide mechanism) is provided on the second bypass partial flow path P4102B. The open / close damper 440 is usually in a closed state. The open / close damper 440 can guide the air heated by the air supply unit 20 directly to the exhaust unit 410 by control from a control unit 413 provided in the exhaust unit 410 via a signal line S401.
[0259] The air supply unit 20 takes in the outside air (OA), and then normally supplies the air (SA) to the living space R11 via the first bypass partial flow path P402A and the air supply flow path P401.
[0260] The exhaust unit 410 is equipped with a fan 11, a second heat exchanger 12, a control unit 413, and a temperature detection unit 14, and takes in return air (RA) from the living space R11 via the return air flow path P403 and the third bypass partial flow path P402C, and exhausts the air (EA) to the outdoors.
[0261] The control unit 413 of the exhaust unit 410 according to this modification detects whether a predetermined criterion indicating frost formation on the second heat exchanger 12 is satisfied while the second heat exchanger 12 functions as an evaporator. Note that the predetermined criterion is the same as in the above-described embodiment, and therefore a description thereof will be omitted.
[0262] When the control unit 13 determines that the predetermined standard is satisfied, it further determines whether the temperature of the air after passing through the first heat exchanger 22 is higher than a predetermined temperature (which may be a preset standard value or the temperature of the air in the living space R11). The predetermined temperature is determined according to the embodiment. Then, when the control unit 13 determines that the temperature of the air after passing through the first heat exchanger 22 is higher than the predetermined temperature, it performs control to open the opening / closing damper 440.
[0263] In this manner, when it is determined that the second heat exchanger 12 is in a frosted state, the control unit 413 according to this modification performs control to open the open / close damper 440 when it is determined that the temperature of the air in which heat has been exchanged by the first heat exchanger 22 is higher than a predetermined temperature. This allows the air heated in the exhaust unit 410 to flow directly to the second heat exchanger 12 through the bypass flow path P402, thereby improving the defrosting efficiency of the second heat exchanger 12. Note that the output of a command to an actuator that controls the state of the refrigerant in the refrigerant circuit so as to increase the temperature of the refrigerant flowing into the second heat exchanger 12 may be any of the methods described in the above-mentioned embodiment, and the description thereof will be omitted.
[0264] Ninth embodiment The air flow to the exhaust unit may be adjusted using a method other than those in the above-described embodiments. Therefore, in the ninth embodiment, a case in which the exhaust unit is linked to the air conditioner 2 will be described.
[0265] As in the second embodiment, this embodiment includes a ventilation device 1B, an air conditioner 2B, and a host control device 100. This embodiment has the same configuration as the second embodiment, as shown in FIG.
[0266] The control unit 113A and the control unit 113B control the configuration in each exhaust unit. Furthermore, the control unit 113A and the control unit 113B transmit the detection results of the temperature detection unit 14 and the like in each exhaust unit to the control unit 152 of the compressor unit 150.
[0267] The control unit 152 of the compressor unit 150 determines, based on the detection result, whether or not a predetermined standard indicating a state in which the second heat exchangers 12 of the exhaust units 110A and 110B are frosted is met.
[0268] The control unit 152 of the compressor unit 150 transmits the determination result, that is, the recognition result, to the host controller 100. In this way, the host controller 100 can recognize the conditions of the first exhaust unit 110A and the second exhaust unit 110B.
[0269] The host control device 100 performs various controls to coordinate the operation of the ventilator 1B and the operation of the air conditioner 2B.
[0270] For example, when the upper control device 100 recognizes that the second heat exchanger 12 of at least one of the first exhaust unit 110A and the second exhaust unit 110B is in a frosted state, it outputs a control signal to the air conditioner 2B installed in the living space R11 to increase the temperature currently set in the air conditioner 2B.
[0271] The air conditioner 2B increases the heating capacity in accordance with the control signal. This increases the temperature of the air in the living space R11. This increases the temperature of the air flowing into the second heat exchanger 12. This increases the defrosting efficiency of the second heat exchanger 12.
[0272] In addition, when there are multiple air conditioning indoor units, the upper control device 100 may select an air conditioning indoor unit whose heating capacity is to be improved according to the arrangement of the air conditioning indoor units. In the example shown in FIG. 2, when the second heat exchanger 12 of the exhaust unit 110A is frosted, the upper control device 100 may improve the heating capacity of the air conditioning indoor unit 81 provided near the ventilation opening 91A of the exhaust unit 110A, and when the second heat exchanger 12 of the exhaust unit 110B is frosted, the upper control device 100 may improve the heating capacity of the air conditioning indoor unit 82 provided near the ventilation opening 91B of the exhaust unit 110B. Note that the output of a command to an actuator that controls the state of the refrigerant in the refrigerant circuit so as to increase the temperature of the refrigerant flowing into the second heat exchanger 12 may be any of the methods described in the above-mentioned embodiment, and the description thereof will be omitted.
[0273] In other words, when control is performed to increase the temperature of the refrigerant in the refrigerant circuit shown in the above-described embodiment, even if the temperature adjustment capability of the ventilation device 1B is reduced, the heating capability of the air conditioner 2B can be improved to maintain the comfort of the living space R11.
[0274] (Tenth embodiment) Methods other than those described in the above embodiment may be used to adjust the air flow to the exhaust unit.
[0275] As in the second embodiment, this embodiment includes a ventilation device 1B, an air conditioner 2B, and a host control device 100. This embodiment has the same configuration as the second embodiment, as shown in FIG.
[0276] As in the above-described embodiment, the host controller 100 can recognize the states of the first exhaust unit 110A and the second exhaust unit 110B from the determination result from the control unit 152 of the compressor unit 150.
[0277] When the upper control device 100 recognizes that the second heat exchanger 12 of at least one of the first exhaust unit 110A and the second exhaust unit 110B has frost, it outputs a control signal to the exhaust unit including the frosted second heat exchanger 12 (e.g., the first exhaust unit 110A or the second exhaust unit 110B) to increase the airflow rate of the fan 11.
[0278] Thus, in this embodiment, the upper control device 100 controls the fan 11 corresponding to the second heat exchanger 12 based on the status of each of the multiple second heat exchangers 12, thereby adjusting the volume of air flowing through the second heat exchanger 12.
[0279] This increases the amount of air flowing into the frosted second heat exchanger 12, thereby achieving defrosting of the second heat exchanger 12. In other words, in this embodiment, the air volume on the exhaust heat recovery machine side is increased to increase the efficiency of heat exchange, and defrosting is achieved by suppressing a decrease in the temperature of the refrigerant flowing through the second heat exchanger 12.
[0280] In this embodiment, even if there are multiple second heat exchangers 12, the volume of air flowing into the second heat exchangers 12 can be adjusted according to the status of each second heat exchanger 12, thereby achieving defrosting according to the degree of frost on the second heat exchangers 12 while maintaining the comfort of the indoor space.
[0281] (Modification 1 of the 10th embodiment) In this modification, an example will be described in which, when frost forms on a plurality of second heat exchangers 12, control is made different depending on the degree of frost on the plurality of second heat exchangers 12. Note that the modification 1 of the tenth embodiment has a similar configuration to the tenth embodiment.
[0282] When the host control device 100 according to this modification recognizes that frost has formed in the multiple second heat exchangers 12, it acquires the frost level of each of the multiple second heat exchangers 12. The frost level is a value that indicates the degree of frosting of the second heat exchanger 12 based on, for example, a determination result by the control unit 152 of the compressor unit 150, and is set according to the time since frost formation and the current temperature of the refrigerant.
[0283] Then, when the upper control device 100 determines that one of the multiple second heat exchangers 12 has a higher frost level (degree of frost) than the other second heat exchangers 12, it performs control to increase the air volume (an example of a first air volume) of the fan 11 corresponding to one second heat exchanger 12 compared to the air volume (an example of a second air volume) of the fan 11 corresponding to the other second heat exchanger 12.
[0284] Furthermore, when controlling to increase the airflow rate of the fan 11 corresponding to one of the second heat exchangers 12, the host control device 100 may control to decrease the airflow rate of the fan 11 corresponding to the other second heat exchanger 12, compared to before the control to increase the airflow rate. This maintains the total amount of air discharged, making it possible to prevent the living space R11 from becoming negative pressure.
[0285] Then, after defrosting of one of the second heat exchangers 12 is completed, the upper control device 100 controls the fan 11 corresponding to the other second heat exchanger 12 to increase the airflow, and also controls the fan 11 corresponding to the one of the second heat exchangers 12 to decrease the airflow.
[0286] In this embodiment, since the second heat exchangers 12 with a greater degree of frost can be preferentially defrosted among the plurality of second heat exchangers 12, it is possible to improve the defrosting efficiency.
[0287] (Modification 2 of the 10th embodiment) In the second modification, the amount of air taken in from the outdoors by the air supply unit group is increased when the amount of air exhausted from the exhaust unit group is increased. The second modification of the tenth embodiment has the same configuration as the tenth embodiment.
[0288] As in the tenth embodiment, the control unit 152 of the compressor unit 150 in this modified example determines, based on the temperature of the received outside air, whether or not a predetermined criterion indicating that the second heat exchangers 12 of the first exhaust unit 110A and the second exhaust unit 110B are frosted is satisfied.
[0289] When the control unit 152 of the compressor unit 150 determines that at least one of the first exhaust unit 110A and the second exhaust unit 110B meets a predetermined standard, the host control device 100 issues an instruction to increase the air volume of the exhaust unit. The method of issuing the instruction is the same as that of the tenth embodiment, and therefore the explanation thereof will be omitted.
[0290] The host control device 100 according to this modification, instead of issuing an instruction to decrease the air volume as shown in the modification 1 of the tenth embodiment, issues an instruction to increase the amount of air (air volume) supplied to one or more of the first air supply unit 120A and the second air supply unit 120B. The instruction to increase is issued from the host control device 100 to the control unit 423 of the first air supply unit 120A and the second air supply unit 120B via the control unit 152 of the compressor unit 150.
[0291] The target for instructing to increase the amount of air (airflow) supplied may be either one of the first air supply unit 120A and the second air supply unit 120B, or both of the first air supply unit 120A and the second air supply unit 120B. However, the upper control device 100 adjusts the amount of air discharged from the first exhaust unit 110A and the second exhaust unit 110B to be the same as the amount of air taken in by the first air supply unit 120A and the second air supply unit 120B.
[0292] In this way, when the host control device 100 according to this modification controls the fan 11 associated with any one of the multiple second heat exchangers 12 included in the exhaust unit group to increase the amount of air flowing through the second heat exchanger 12, the host control device 100 controls the fan 21 included in the air supply unit group to increase the amount of air flowing through the first heat exchanger 22 based on the increased amount of air, compared to before the predetermined standard was satisfied. As a result, in this modification, the amount of air taken in and the amount of air exhausted are approximately the same, so that it is possible to prevent the living space R11 from becoming negative pressure.
[0293] (Eleventh embodiment) The cooperation between the air conditioner and the ventilation device is not limited to the above-mentioned control. Therefore, in the eleventh embodiment, a case where the air conditioner starts a defrosting operation will be described. The configuration of the eleventh embodiment is assumed to have the same configuration as the second embodiment.
[0294] The host controller 100 receives information on the status of the air conditioner 2B from the control unit 171 of the outdoor unit 170, and receives information on the status of the ventilator 1B from the control unit 152 of the compressor unit 150. Then, the host controller 100 performs various controls according to the status of the air conditioner 2B and the status of the ventilator 1B.
[0295] For example, when the upper control device 100 recognizes that the air conditioner 2B is performing a defrosting operation based on information received from the control unit 171 of the outdoor unit 170, it performs control to improve the heating capacity of the ventilator 1B.
[0296] That is, when the air conditioner 2B performs a defrosting operation, the air conditioner 2B does not function as a heater, and therefore the temperature in the living space R11 may drop. On the other hand, if the supply air temperatures of the first air supply unit 120A and the second air supply unit 120B are increased to compensate for the drop in the function of the air conditioner 2B when the air conditioner 2B performs a defrosting operation, the temperature of the refrigerant flowing through the second heat exchanger 12 of the first exhaust unit 110A and the second exhaust unit 110B connected by the refrigerant circuits F101, F102, F103, and F104 drops. In this case, the possibility of frosting on the second heat exchanger 12 of the first exhaust unit 110A and the second exhaust unit 110B increases.
[0297] Therefore, when the upper control device 100 receives a signal from the air conditioner 2B that a defrosting operation is being performed, it controls the air supply units 120A, 120B to increase the volume of air supplied from the first air supply path P101 and the second air supply path P102 to the living space R11 compared to before the signal from the air conditioner 2B that a defrosting operation is being performed is received, and it controls the exhaust units 110A, 110B to increase the volume of air exhausted from the first exhaust path P103 and the second exhaust path P104 to the outdoors compared to before the signal from the air conditioner 2B that a defrosting operation is being performed is received.
[0298] In this embodiment, when the air conditioner 2B is performing defrosting operation, the upper control device 100 does not increase the supply air temperature of the ventilation device 1B, but increases the supply and exhaust air volume of the ventilation device 1B, thereby improving the heating capacity and suppressing a decrease in temperature in the living space R11.
[0299] (Eleventh embodiment) In the above-described embodiment, an example has been described in which the host control device 100 controls one compressor unit 150. However, the number of compressor units controlled by the host control device 100 is not limited to one. Therefore, in the seventh embodiment, an example will be described in which the host control device 100 controls a plurality of ventilators and a plurality of air conditioners.
[0300] Fig. 10 is a diagram illustrating an example of the arrangement of a device group including a host control device 500 according to the tenth embodiment. The example shown in Fig. 10 includes at least living spaces R501, R502, and R503, restrooms R511 and R512, and a pipe shaft R521.
[0301] Restrooms R511 and R512 are provided with ventilation openings 595A and 595B, respectively.
[0302] The air conditioner 2F also includes three outdoor units 571, 572, and 573. The outdoor unit 571 is connected to four air conditioning indoor units 581, 582, 583, and 584 by connecting piping (not shown). The outdoor unit 572 is connected to two air conditioning indoor units 585 and 586 by connecting piping (not shown). The outdoor unit 573 is connected to two air conditioning indoor units 587 and 588 by connecting piping (not shown).
[0303] Furthermore, the three outdoor units 571-573 are connected to the host controller 500 via signal lines. This allows the three outdoor units 571-573 to perform air conditioning control in accordance with the control of the host controller 500.
[0304] The first ventilation device 1F_1 is a ventilation device provided in the living space R501, and includes a first compressor unit 550A, a first air supply unit 520A, and a first exhaust unit 510A.
[0305] The first air supply unit 520A supplies air (SA) from a ventilation port 592A. The first exhaust unit 510A returns air (RA) from a ventilation port 591A. The first compressor unit 550A, the first air supply unit 520A, and the first exhaust unit 510A are connected by a communication pipe F501. The communication pipe F501 includes a plurality of refrigerant communication pipes. This allows the refrigerant to circulate between the first compressor unit 550A, the first air supply unit 520A, and the first exhaust unit 510A.
[0306] Moreover, the first compressor unit 550A, the first air supply unit 520A, and the first exhaust unit 510A are connected by a signal line (not shown). This allows information to be transmitted and received between the units. Moreover, the configurations within the first compressor unit 550A, the first air supply unit 520A, and the first exhaust unit 510A are similar to those of the compressor unit 150, the first air supply unit 120A, and the first exhaust unit 110A shown in FIG. 2, and therefore description thereof will be omitted.
[0307] The second ventilation device 1F_2 is a ventilation device provided in the living space R502, and includes a second compressor unit 550B, a second air supply unit 520B, and a second exhaust unit 510B.
[0308] The second air supply unit 520B supplies air (SA) from a ventilation port 592B. The second exhaust unit 510B returns air (RA) from a ventilation port 591B. The second compressor unit 550B, the second air supply unit 520B, and the second exhaust unit 510B are connected by a communication pipe F502. The communication pipe F502 includes a plurality of refrigerant communication pipes. This allows the refrigerant to circulate between the second compressor unit 550B, the second air supply unit 520B, and the second exhaust unit 510B.
[0309] Further, the second compressor unit 550B, the second air supply unit 520B, and the second exhaust unit 510B are connected to each other by a signal line (not shown). This allows information to be transmitted and received between the units. Further, the internal configurations of the second compressor unit 550B, the second air supply unit 520B, and the second exhaust unit 510B are similar to those of the compressor unit 150, the first air supply unit 120A, and the first exhaust unit 110A shown in FIG. 2, and therefore description thereof will be omitted.
[0310] The third ventilation device 1F_3 is a ventilation device provided in the living space R503, and includes a third compressor unit 550C, a third air supply unit 520C, and a third exhaust unit 510C.
[0311] The third air supply unit 520C supplies air (SA) from a ventilation port 592C. The third exhaust unit 510C returns air (RA) from a ventilation port 591C. The third compressor unit 550C, the third air supply unit 520C, and the third exhaust unit 510C are connected by a communication pipe F503. The communication pipe F503 includes a plurality of refrigerant communication pipes. This allows the refrigerant to circulate between the third compressor unit 550C, the third air supply unit 520C, and the third exhaust unit 510C.
[0312] The third compressor unit 550C, the third air supply unit 520C, and the third exhaust unit 510C are connected by signal lines (not shown). This allows information to be sent and received between the units. The internal configurations of the third compressor unit 550C, the third air supply unit 520C, and the third exhaust unit 510C are similar to those of the compressor unit 150, the first air supply unit 120A, and the first exhaust unit 110A shown in FIG. 2, and therefore will not be described.
[0313] As described above, in this embodiment, the compressor unit, the air supply unit, the exhaust unit, and the communication pipe are provided in a plurality of combinations. The first compressor unit 550A, the second compressor unit 550B, and the third compressor unit 550C are disposed in the pipe shaft R521.
[0314] The host controller 500 is connected to the first compressor unit 550A, the second compressor unit 550B, and the third compressor unit 550C by signal lines. This allows the host controller 500 to recognize the state of each of the first ventilation device 1F_1 to the third ventilation device 1F_3, and to control each of the devices.
[0315] With the above-mentioned configuration, while the second heat exchanger 12 of each of the first exhaust unit 510A to the third exhaust unit 510C is functioning as an evaporator, the control unit (not shown) of the first compressor unit 550A to the third compressor unit 550C receives the temperature of the refrigerant flowing through the second heat exchanger 12 from each of the first exhaust unit 510A to the third exhaust unit 510C.
[0316] The control units of the first compressor unit 550A to the third compressor unit 550C according to this embodiment determine whether or not a predetermined criterion indicating frost formation in the second heat exchanger 12 is satisfied based on the temperature of the refrigerant in the second heat exchanger 12 while the second heat exchanger 12 is functioning as an evaporator. Note that the predetermined criterion is the same as in the above-described embodiment, and therefore a description thereof will be omitted.
[0317] When it is determined that the predetermined standard is satisfied, the host controller 500 increases the room temperature of the air conditioner 2F corresponding to the area (same zone) in which the exhaust unit including the frosted second heat exchanger 12 is provided.
[0318] For example, when it is determined that frost has formed on the second heat exchanger 12 of the exhaust unit 510C, the set temperature of the air conditioner 2F installed in the same living space R503 is increased. In particular, by increasing the set temperature of the air conditioning indoor unit 582 installed near the ventilation opening 591C of the exhaust unit 510C, it is possible to increase the defrosting efficiency of the second heat exchanger 12 of the exhaust unit 510C.
[0319] Furthermore, the capacity of the ventilation device can be reduced by the amount of increase in the capacity of the air conditioner 2F. In other words, the temperature of the refrigerant passing through the exhaust unit of the ventilation device can be increased, so that rapid defrosting of the heat exchanger can be achieved. The method of increasing the temperature of the refrigerant passing through the exhaust unit of the ventilation device is the same as in the above-mentioned embodiment, and therefore the explanation thereof will be omitted.
[0320] Furthermore, the host control device 500 may use any of the methods described in the above embodiments to output a command to an actuator that controls the state of the refrigerant in the refrigerant circuit so as to increase the temperature of the refrigerant flowing into the second heat exchanger 12 of the exhaust unit 510C. For example, as shown in the fifth embodiment, the temperature of the refrigerant flowing into the second heat exchanger 12 may be increased by controlling the flow of the refrigerant circuit including the second heat exchanger 12 of the exhaust unit 510C to a reverse cycle. Furthermore, the flow of the refrigerant circuit including the second heat exchanger 12 of the exhaust unit 510C may be controlled to increase the temperature of the refrigerant flowing into the second heat exchanger 12 while maintaining the forward cycle.
[0321] For example, in the upper control device 100 according to the present embodiment, as the defrosting of the second heat exchanger 12 of the exhaust unit 510C of the ventilation device 1F_3, a control may be performed to increase the amount of air exhausted from the exhaust unit 510C compared to before the defrosting operation of the air conditioner 2F is started. At that time, the upper control device 500 may perform a control to decrease the amount of air exhausted from the exhaust unit 510A of the ventilation device 1F_1, which is in a different system from the ventilation device 1F_3, and the amount of air exhausted from the exhaust unit 510B of the ventilation device 1F_2. The control to increase the amount of air and the control to decrease the amount of air are the same as those in the above-mentioned embodiment, and the description thereof will be omitted. By this control, the defrosting of the second heat exchanger 12 of the exhaust unit 510C is realized, and the amount of air exhausted is maintained, thereby suppressing the living space R501, R502, and R503 from becoming negative pressure.
[0322] In this embodiment, by increasing the temperature of the living space, the temperature of the air flowing through the second heat exchanger 12 is increased, thereby increasing the defrosting efficiency.
[0323] In this embodiment, when defrosting operation is performed on the ventilation devices 1F_1-1F_3, comfort can be maintained by improving the heating capacity of the air conditioners installed in the same area as the ventilation devices 1F_1-1F_3, thereby compensating for the decrease in the heating capacity of the ventilation devices.
[0324] (Modification 1 of the 11th embodiment) In the first modification of the eleventh embodiment, a case where the air conditioner 2F starts a defrosting operation will be described. In the above-described embodiment, an example was described in which, when it is determined that the second heat exchanger 12 is in a frosted state, a predetermined command is output to an actuator that controls the state of the refrigerant in the refrigerant circuit. In contrast, in the modification of this embodiment, even when it is determined that the second heat exchanger 12 is in a frosted state, the output of the predetermined command is suppressed if a predetermined condition is satisfied.
[0325] After receiving a signal from the air conditioner 2F to perform defrosting operation, the upper control device 500 receives the determination results that the second heat exchanger 12 is in a frosted state from the control units of the first compressor unit 550A to the third compressor unit 550C.
[0326] In this case, while the air conditioner 2F is performing defrosting operation, the upper control device 500 refrains from outputting a specified command to the actuator that controls the state of the refrigerant in the refrigerant circuit in order to raise the temperature of the refrigerant flowing through the frosted second heat exchanger 12.
[0327] Furthermore, while the air conditioner 2F is performing a defrosting operation, the host controller 500 may perform control to increase the air volume of the fan 11 corresponding to the second heat exchanger 12 on which frost has formed.
[0328] (Modification 2 of the eleventh embodiment) As a further modified example, the upper control device 500 may send a command to a compressor unit (e.g., compressor unit 550C) to reduce the flow rate of refrigerant to the second heat exchanger 12 determined to have a possibility of frosting while the air conditioner 2F is performing a defrosting operation. This makes it possible to suppress the progression of frosting. In other words, by suppressing the progression of frosting in the second heat exchanger 12, it is possible to suppress a defrosting operation being performed simultaneously with the air conditioner 2F currently performing a defrosting operation.
[0329] This makes it possible to prevent the heating capacity of the first heat exchanger 22 of the air supply unit (for example, air supply unit 520C) from being stopped, so that a minimum level of comfort can be maintained.
[0330] A possible criterion for determining the possibility of frost formation is, for example, when the surface temperature of the second heat exchanger 12 and the temperature of the indoor air in the living space (for example, living space R505) are measured, and the surface temperature of the second heat exchanger 12 is lower than the dew point temperature of the air and is equal to or lower than 0° C. Note that the indoor air temperature may be, for example, a temperature measured by a sensor provided near the ventilation opening.
[0331] Furthermore, the upper control device 500 may monitor the frost conditions of the second heat exchangers 12 of the multiple exhaust units and the frost conditions of the multiple air conditioners 2F, and perform defrosting operation sequentially on the equipment determined to be prone to frost, thereby shortening the time during which multiple equipment is in defrosting operation at the same time, or suppressing multiple equipment from being in defrosting operation at the same time.
[0332] (Modification 3 of the tenth embodiment) The upper control device 500 of the third variant of the tenth embodiment, similarly to the first variant of the eleventh embodiment, receives a signal from the air conditioner 2F to perform a defrosting operation, and then receives a determination result from the control units of the first compressor unit 550A to the third compressor unit 550C that the second heat exchanger 12 is in a frosted state.
[0333] In this case, while the air conditioner 2F is performing defrosting operation, the upper control device 500 refrains from outputting a specified command to the actuator that controls the state of the refrigerant in the refrigerant circuit in order to raise the temperature of the refrigerant flowing through the frosted second heat exchanger 12.
[0334] Furthermore, when the upper control device 500 receives a signal from the air conditioner 2F to perform a defrosting operation, it controls the air supply unit (e.g., air supply unit 520C) to increase the air volume supplied from the air supply path to the living space (e.g., living space R503) compared to before the air conditioner 2F performed the defrosting operation, and it controls the exhaust unit (e.g., exhaust unit 510C) to increase the air volume exhausted from the second air flow path to the outdoors compared to before the air conditioner 2F performed the defrosting operation.
[0335] In this modification, the total amount of intake air and exhaust air is maintained, so that the living space can be prevented from becoming negative pressure. Also, by increasing the air volume of the ventilation device, the decrease in heating capacity can be prevented.
[0336] (Modification 4 of the 10th embodiment) Furthermore, control may be performed to suppress simultaneous defrosting of the air conditioner 2F and the ventilation device.
[0337] When it is determined that the second heat exchanger 12 of the exhaust unit is in a frosted state, the host control device 500 of this modification starts defrosting control of the second heat exchanger 12. As the defrosting method, any method shown in the above-described embodiment may be used.
[0338] Furthermore, when the defrosting control of the second heat exchanger 12 is started, the host controller 500 transmits a control signal to the air conditioner 2F instructing the air conditioner 2F not to perform a defrosting operation.
[0339] In this modified example, it is possible to prevent the air conditioner 2F and the ventilation device from performing the defrosting operation at the same time. By preventing simultaneous defrosting, it is possible to prevent a decrease in the air conditioning capacity.
[0340] (Eleventh embodiment) Furthermore, in a case where multiple ventilation devices are provided, if frost forms on the second heat exchangers 12 of the multiple ventilation devices, the defrosting control may be made different depending on the degree of frost on the second heat exchangers 12 of the multiple ventilation devices.
[0341] In this embodiment, an example will be described in which the host controller 500 controls four ventilators. Note that the host controller 500 may control any number of air conditioners 2F.
[0342] 11 is a flowchart showing a processing procedure performed by the upper control device 500 according to this embodiment. In this embodiment, an example in which the upper control device 500 performs the processing will be described, but the processing is not limited to the upper control device 500, and the processing may be performed on a centralized management server or cloud provided in a remote location.
[0343] The upper controller 500 acquires the detection result by the temperature detector 14 from each of the plurality of ventilation devices (S2201).
[0344] The upper control device 500 identifies the number of exhaust units (of the second heat exchangers 12) having the frosted second heat exchangers 12 based on the detection result (S2202). For example, it may be determined that four exhaust units are frosted.
[0345] Then, the upper control device 500 judges whether the detection result of the exhaust unit having frost is equal to or lower than the first judgment logic (S2203). The first judgment logic may be, for example, whether the evaporation temperature t of the refrigerant flowing through the second heat exchanger 12 of the exhaust unit is smaller than a predetermined value x1, or whether the pressure p of the refrigerant flowing through the second heat exchanger 12 of the exhaust unit is smaller than a predetermined value y1. In addition, a further judgment method may be used as the judgment logic. For example, it may be judged whether the surface temperature t2 of the second heat exchanger 12 is smaller than a predetermined value z1. As another example, the imaging means may capture an image of the surface of the second heat exchanger 12, calculate the degree of agreement between the captured image data and image data in a normal state, and judge whether the difference is greater than w%.
[0346] When the host controller 500 determines that the detection result is equal to or lower than the first determination logic (S2203: Yes), it determines that the frost level for the exhaust unit is 1 (S2204).
[0347] On the other hand, when the host control device 500 determines that the detection result is greater than the first judgment logic (S2203: No), it determines whether the detection result of the frosted exhaust unit is equal to or less than the second judgment logic (S2205). The second judgment logic may be, for example, whether the evaporation temperature t of the refrigerant flowing through the second heat exchanger 12 of the exhaust unit is smaller than a predetermined value x2, or whether the pressure p of the refrigerant flowing through the second heat exchanger 12 of the exhaust unit is smaller than a predetermined value y2. Note that the predetermined value x1<predetermined value x2 and the predetermined value y1<predetermined value y2.
[0348] When the host controller 500 determines that the detection result is equal to or lower than the second determination logic (S2205: Yes), it determines that the frost level for the exhaust unit is 2 (S2206).
[0349] On the other hand, when the host controller 500 determines that the detection result is greater than the first determination logic (S2205: No), it determines that the frost level for the exhaust unit is 3 (S2207).
[0350] Thereafter, the host controller 500 judges whether or not the frost levels have been set for all exhaust units with frost (S2208). If it is judged that the frost levels have not been set for all exhaust units (S2208: No), the host controller 500 performs the process from S2203.
[0351] On the other hand, when the upper control device 500 determines that the frosting level has been set for all exhaust units with frost (S2208: Yes), it calculates the time required for the frosting operation for each exhaust unit (S2209). Note that the calculation method for the time required for the frosting operation may be any method, regardless of whether it is a well-known method. Note that the time required for the frosting operation may be set in advance for each frosting level.
[0352] Furthermore, the upper control device 500 calculates an index of the required comfort in the habitable space based on the current situation of the habitable space (S2210). The current situation of the habitable space is, for example, the detection result of a sensor installed near the ventilation opening of the habitable space. The required comfort index is an index of the comfort required in the current habitable space. The comfort index is determined according to, for example, the required value of the temperature blown out from the ventilation opening, the air volume required for ventilation, and the number of people currently present in the habitable space. The higher the comfort index, the more it is necessary to maintain the comfort of the habitable space.
[0353] The host controller 500 determines whether the calculated index of the required comfort is greater than a reference value k (S2211).
[0354] When the host control device 500 determines that the calculated index of required comfort is greater than the reference value k (S2211: Yes), it sets the multiple exhaust units to perform defrosting operation in sequence (S2212). That is, the host control device 500 sets the defrosting operation in sequence to suppress simultaneous defrosting operation and maintain the comfort of the living space by setting the defrosting operation in sequence. The order of defrosting is set according to the frost level. For example, when there is one exhaust unit with frost level 1, two exhaust units with frost level 2, and one exhaust unit with frost level 3, the order of defrosting is set to the exhaust unit with frost level 1, one of the exhaust units with frost level 2, the other exhaust unit with frost level 2, and the exhaust unit with frost level 3.
[0355] On the other hand, when the host control device 500 judges that the calculated index of required comfort is equal to or less than the reference value k (S2211: No), it sets the multiple exhaust units to perform simultaneous defrosting operation (S2213). That is, the host control device 500 terminates the defrosting operation early by setting the simultaneous defrosting operation. Note that the defrosting operation is not performed simultaneously for all exhaust units. The order of performing the defrosting operation may be set according to the defrosting level. For example, when there is one exhaust unit with frost level 1, two exhaust units with frost level 2, and one exhaust unit with frost level 3, the defrosting operation is performed simultaneously for the exhaust unit with frost level 1 and the exhaust unit with frost level 3, and then the defrosting operation is performed simultaneously for the two exhaust units with frost level 2. This setting makes it possible to balance the load related to the living space and the termination of the defrosting operation.
[0356] Then, the host controller 500 outputs a defrosting operation instruction for each exhaust unit according to the setting (S2214).
[0357] In this manner, the upper control device 500 according to this embodiment acquires the frosting state of the second heat exchangers 12, and when it is determined that the second heat exchangers 12 are in a frosted state while the second heat exchangers 12 are functioning as evaporators, generates multiple patterns for performing defrosting operation of the second heat exchangers 12, and performs defrosting control using one of the multiple generated patterns based on the frosting states of the second heat exchangers and the current condition of the living space.
[0358] In the present embodiment, the defrosting operation is performed in order from the exhaust unit with the lowest frost level. At that time, if comfort is required, comfort can be maintained by controlling the defrosting operation of multiple exhaust units not to be performed simultaneously.
[0359] Furthermore, when comfort is not important, the temperature control of multiple ventilation devices is stopped at the same time, and defrosting operation is performed simultaneously in the exhaust units of the multiple ventilation devices. This reduces comfort because the temperature control is stopped, but the defrosting operation can be performed in a short period of time.
[0360] In the above-described embodiment and modified examples, an example has been described in which the air supply unit is a casing (an example of a first casing) that houses the first heat exchanger 22 and at least a portion of the air flow path (an example of a first air flow path), and the exhaust unit is a casing (an example of a second casing) that houses the second heat exchanger 12 and at least a portion of the air flow path (an example of a second air flow path), and the casings are separate from each other.
[0361] This allows the exhaust unit and the air supply unit to be disposed at positions separate from each other, which allows greater freedom in placement of the ventilation device capable of recovering heat compared to the prior art.
[0362] However, the above-mentioned embodiment and modified example are not limited to the example in which the casings of the air supply unit and the exhaust unit are separate, and the air supply unit and the exhaust unit may be integrated. In other words, when the first heat exchanger 22 and the second heat exchanger 12 are connected by a refrigerant circuit and a fan 21 corresponding to the first heat exchanger 22 and a fan corresponding to the second heat exchanger 12 are provided, the air volume adjustment and the refrigerant temperature adjustment as shown in the above-mentioned embodiment and modified example can be applied. In this way, the method shown in the above-mentioned embodiment and modified example may be applied to the case in which the air supply unit and the exhaust unit are integrated.
[0363] The above-described embodiment and modified examples are examples of defrosting methods. The defrosting methods described in the above-described embodiment and modified examples are not limited to use only the defrosting methods, and may be used in combination with one or more defrosting methods described in other embodiment and modified examples.
[0364] Although the embodiment has been described above, it will be understood that various changes in form and details are possible without departing from the spirit and scope of the claims. Various modifications and improvements, such as combinations and substitutions with part or all of other embodiments, are possible. [Explanation of symbols]
[0365] 1, 1B, 1C, 1D, 1E, 1F_1, 1F_2, 1F_3 Ventilation equipment 2, 2B, 2F air conditioner 10, 110A, 110B, 210, 310, 510A, 510B, 510C Exhaust Unit 11 Fan 12 Second heat exchanger 13, 113A, 113B, 213, 313, 413 Control section 14 Temperature detection section 15 Drive motor 16 Motor-operated valve 20, 120A, 120B, 220A, 220B, 520A, 520B, 520C Air Supply Unit 21 Fan 22 1st heat exchanger 23, 123, 423 Control section 24 Temperature detection section 25 Drive motor 26 Motor-operated valve 240, 440 Opening and closing damper 341 First opening and closing damper 342 Second opening / closing damper 50, 150, 550A, 550B, 550C Compressor Unit 51 Drive motor 52, 152 Control section 53 Compressor 54 Four-way valve 55 Motor-operated valve 156 Bypass motor valve 70, 170, 571, 572, 573 outdoor unit 71, 171 Control section 81, 82, 581, 582, 583, 584, 585, 586, 587, 588 Air conditioning indoor units 100, 500 Upper control device 161, 162 Motor-operated valve F1, F2, F3, F4, F101, F102, F103, F104 Refrigerant circuit F106 Bypass flow path F5, F501, F502, F503 connecting pipes P1 Air supply passage P2 Return air flow path P101 First air supply channel P102 Second air supply path P103 First exhaust passage P104 Second exhaust passage P202 Return air flow path P202A 1st return air branch P202B 2nd return air branch P402 Bypass flow path P403 Return air flow path
Claims
1. A compressor; a first heat exchanger functioning as a condenser or an evaporator; a first air flow path showing a flow path through which air taken in from outdoors can be discharged to an indoor space after passing through the first heat exchanger; A second heat exchanger that functions as a condenser or an evaporator; a second air flow path showing a flow path through which the air taken in from the indoor space can be exhausted to the outdoors after passing through the second heat exchanger; a refrigerant circuit in which the compressor, the first heat exchanger, and the second heat exchanger are connected by a refrigerant piping and a refrigerant flows inside; a control unit that outputs a predetermined command to an actuator that controls a state of the refrigerant in the refrigerant circuit so as to increase a temperature of the refrigerant flowing into the second heat exchanger when it is determined that the second heat exchanger is in a frosted state while the second heat exchanger is functioning as an evaporator, so as to make the second heat exchanger function as a condenser and the first heat exchanger function as an evaporator, and that switches the flow of air in the first air flow path so as to exhaust air from the indoor space to the outdoors; A ventilation device comprising:
2. The control unit further switches a flow of the second air flow path so as to supply air from the outdoor space to the indoor space when it is determined that the second heat exchanger is in a frosted state while the second heat exchanger is functioning as an evaporator.
2. The ventilation device of claim 1.
3. a first air flow path showing a flow path through which air taken in from the indoor space can be discharged to an indoor space after passing through the first heat exchanger; a second heat exchanger functioning as a condenser or an evaporator; a second air flow path showing a flow path through which air taken in from the indoor space can be discharged to the outdoors after passing through the second heat exchanger; and a refrigerant circuit in which the compressor, the first heat exchanger, and the second heat exchanger are connected by refrigerant piping and through which a refrigerant flows. A control unit controls a ventilation device including: a compressor; a first heat exchanger functioning as a condenser or an evaporator; Ventilation methods.
Citation Information
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