air conditioner

The air conditioner uses a refrigerant circuit and control device to balance heating and defrosting capacities, addressing comfort issues during defrosting by precisely controlling valve openings and estimating heating capacity.

JP2026042323AActive Publication Date: 2026-03-11GENERAL CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-08-27
Publication Date
2026-03-11

AI Technical Summary

Technical Problem

Existing air conditioners with heat storage heat exchangers face issues in maintaining comfort during defrosting operations when building load is low, leading to excessive heating capacity and discomfort due to inadequate control of heating capacity during defrosting.

Method used

An air conditioner with a refrigerant circuit and control device that includes a compressor, indoor and outdoor heat exchangers, a heat storage heat exchanger, multiple expansion valves, and switching valves, which estimates heating capacity and adjusts valve openings to balance indoor heating and defrosting capacities.

Benefits of technology

Maintains comfort during defrosting operations by precisely controlling heating capacity, preventing excessive room temperature fluctuations and shortening defrosting time.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide an air conditioner capable of maintaining comfort during defrosting and heating operation. [Solution] A refrigerant circuit C that circulates refrigerant is connected to an indoor heat exchanger 2, an outdoor heat exchanger 3, a heat storage heat exchanger 4, multiple expansion valves with adjustable opening, and switching valves 61, 62 that switch the flow path of the refrigerant circuit between heat storage heating operation in which the indoor heat exchanger and the heat storage heat exchanger function as condensers and the outdoor heat exchanger as an evaporator, and defrost heating operation in which the indoor heat exchanger and the outdoor heat exchanger function as condensers and the heat storage heat exchanger as an evaporator.The system is equipped with a heating capacity estimation means that estimates the heating capacity during defrost heating operation, and a control device 7 that controls the multiple expansion valves and switching valves.The multiple expansion valves include a first expansion valve 51 that is located upstream of the outdoor heat exchanger during defrost heating operation, and the control device controls the opening of the first expansion valve during defrost heating operation based on the heating capacity estimated by the heating capacity estimation means.
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Description

[Technical Field]

[0001] The present invention relates to an air conditioner. [Background technology]

[0002] In an air conditioner equipped with a heat storage heat exchanger that exchanges heat with a heat storage material by using the heat stored in the heat storage material as a heat source during defrosting operation, there is a technology that allows heating operation to continue even during defrosting operation (hereinafter also referred to as defrosting heating operation). In such an air conditioner, there is a technology that detects the room temperature, condensing temperature, outdoor heat exchanger temperature, and discharge temperature during defrosting heating operation and operates expansion valves located on the outlet side of the indoor heat exchanger and outdoor heat exchanger to suppress insufficient heating capacity and defrosting capacity and the occurrence of liquid backflow, in which liquid refrigerant returns from the heat storage heat exchanger to the compressor (for example, Patent Document 1). [Prior art documents] [Patent documents]

[0003] [Patent Document 1] International Publication No. 2014-061134 Summary of the Invention [Problem to be solved by the invention]

[0004] Incidentally, when the building load is low (for example, when the building volume is small and the outdoor temperature is high during heating operation, the energy required for air conditioning operation is low), the required heating capacity is low. Generally, during defrosting operation, control prioritizes removing frost from the outdoor heat exchanger, and heating capacity is not controlled as precisely as during normal heating operation. This can lead to the room temperature rising or falling too high or too low relative to the set temperature, resulting in reduced comfort. Therefore, when the building load is low, the heating capacity often becomes excessive during defrosting heating operation. The air conditioner of Patent Document 1 does not anticipate cases where the heating capacity is excessive. Therefore, if an attempt is made to reduce the heating capacity by reducing the opening of the expansion valve on the outlet side of the indoor heat exchanger, the condensation temperature of the indoor heat exchanger increases, potentially resulting in excessive heating capacity and reduced comfort. While it is possible to reduce the heating capacity by reducing the compressor rotation speed, this also reduces the defrosting capacity, lengthening the defrosting time and potentially reducing comfort.

[0005] Therefore, the present invention has been made to solve such problems, and has an object to provide an air conditioner that can maintain comfort during defrosting heating operation. [Means for solving the problem]

[0006] An air conditioner according to one aspect of the present invention has a refrigerant circuit that circulates the refrigerant, and is connected to: a compressor that compresses the refrigerant; an indoor heat exchanger that exchanges heat between the refrigerant and indoor air; an outdoor heat exchanger that exchanges heat between the refrigerant and outdoor air; a heat storage heat exchanger that exchanges heat between a heat storage material and the refrigerant; multiple expansion valves with adjustable openings; and a switching valve that switches the flow path of the refrigerant circuit between a heat storage heating operation in which the indoor heat exchanger and the heat storage heat exchanger function as condensers and the outdoor heat exchanger function as an evaporator, and a defrost heating operation in which the indoor heat exchanger and the outdoor heat exchanger function as condensers and the heat storage heat exchanger function as an evaporator; the air conditioner is equipped with: a heating capacity estimation means that estimates heating capacity during defrost heating operation; and a control device that controls the multiple expansion valves and the switching valves, the multiple expansion valves including a first expansion valve located upstream of the outdoor heat exchanger during defrost heating operation, and the control device controls the opening of the first expansion valve during defrost heating operation based on the heating capacity estimated by the heating capacity estimation means. [Effects of the Invention]

[0007] According to the air conditioner of the present invention, comfort can be maintained during defrosting heating operation. [Brief explanation of the drawings]

[0008] [Figure 1] 1 is a refrigerant circuit diagram of an air conditioner according to an embodiment of the present invention. [Figure 2] FIG. 2 is a diagram showing a specific configuration of an indoor heat exchanger that constitutes an air conditioner according to an embodiment of the present invention. [Figure 3] 1 is a refrigerant circuit diagram showing the flow of refrigerant when an air conditioner according to an embodiment of the present invention performs cooling operation. FIG. [Figure 4] 1 is a refrigerant circuit diagram showing the flow of refrigerant when an air conditioner according to an embodiment of the present invention performs heating operation. FIG. [Figure 5] 4 is a refrigerant circuit diagram showing the flow of refrigerant when the air conditioner of the embodiment according to the present invention performs heat storage heating operation. FIG. [Figure 6] 4 is a refrigerant circuit diagram showing the flow of refrigerant when the air conditioner of the embodiment according to the present invention performs a defrosting heating operation. FIG. [Figure 7]1 is a block diagram showing the internal configuration of a control device in an air conditioner according to an embodiment of the present invention. [Figure 8] 3 is a flowchart showing a flow of control of a defrosting heating operation in the first embodiment according to the present invention. [Figure 9] 5 is a flowchart showing a flow of estimating heating capacity in a defrosting heating operation in the first embodiment according to the present invention. [Figure 10] 6 is a flowchart showing a flow of control of a defrosting heating operation in a second embodiment according to the present invention. [Figure 11] 10 is a flowchart showing a flow of estimating heating capacity in a defrosting heating operation according to a second embodiment of the present invention. [Figure 12] 10 is a flowchart showing a flow of control of a defrosting heating operation in a third embodiment according to the present invention. [Figure 13] 10 is a flowchart showing a flow of estimating heating capacity in a defrosting heating operation according to a third embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0009] [First embodiment] The structure of an air conditioner S according to a first embodiment of the present invention will be described with reference to Figs. 1 and 2. Fig. 1 is a refrigerant circuit diagram of the air conditioner S. The air conditioner S includes a refrigerant circuit C that connects a compressor 1, an indoor heat exchanger 2, an outdoor heat exchanger 3, a heat storage heat exchanger 4, expansion valves 5 (51, 52, 53), and switching valves 6 (61, 62) and circulates the refrigerant. The air conditioner S also includes a control device 7 that controls the expansion valves 5 and the switching valves 6.

[0010] The compressor 1 compresses the refrigerant circulating through the refrigerant circuit C. The indoor heat exchanger 2 exchanges heat between the indoor air and the refrigerant. The outdoor heat exchanger 3 exchanges heat between the outdoor air and the refrigerant. Although a detailed description of the types of the compressor 1, indoor heat exchanger 2, and outdoor heat exchanger 3 will be omitted here, various types of equipment can be used.

[0011] The heat storage heat exchanger 4 is a heat exchanger in which heat is exchanged between a heat storage material and a refrigerant passing through the heat storage heat exchanger 4. The heat storage heat exchanger 4 is, for example, a fin-and-tube type heat exchanger. The heat storage heat exchanger 4 is placed in a heat storage container filled with a heat storage material. The heat storage material may be, for example, liquid or solid, as long as it can exchange heat with the refrigerant flowing inside the heat storage heat exchanger 4 and store heat.

[0012] The switching valve 6 switches the refrigerant circulation path in the refrigerant circuit C between, for example, a heat-storage heating operation in which the indoor heat exchanger 2 and the heat-storage heat exchanger 4 function as condensers and the outdoor heat exchanger 3 function as an evaporator, and a defrosting heating operation in which the indoor heat exchanger 2 and the outdoor heat exchanger 3 function as condensers and the heat-storage heat exchanger 4 function as an evaporator. The air conditioner S of this embodiment is provided with two switching valves 6 that switch the refrigerant flow based on instructions from a control device 7, which will be described later. That is, a first switching valve 61 is provided between the compressor 1 and the indoor heat exchanger 2. Furthermore, a second switching valve 62 is provided between the compressor 1 and the outdoor heat exchanger 3 or the heat-storage heat exchanger 4. The second switching valve 62 directs the refrigerant discharged from the compressor 1 to the outdoor heat exchanger 3 or the heat-storage heat exchanger 4.

[0013] The opening degree of the expansion valve 5 can be adjusted based on instructions from a control device 7, which will be described later, and multiple expansion valves are provided in the air conditioner S in this embodiment. Specifically, a first expansion valve 51, a second expansion valve 52, and a third expansion valve 53 are provided. The first expansion valve 51 is provided upstream of the outdoor heat exchanger 3 in the direction in which the refrigerant flows during defrosting heating operation.

[0014] The second expansion valve 52 is provided between the indoor heat exchanger 2 and the outdoor heat exchanger 3. That is, it is provided downstream of the indoor heat exchanger 2 in the direction in which the refrigerant flows during defrosting heating operation. Specifically, the second expansion valve 52 is provided in the refrigerant piping connecting the outdoor heat exchanger 3 and the indoor heat exchanger 2.

[0015] The third expansion valve 53 is provided between the heat storage heat exchanger 4 and the outdoor heat exchanger 3. That is, it is provided upstream of the heat storage heat exchanger 4 in the direction in which the refrigerant flows during defrost heating operation. Specifically, the third expansion valve 53 is provided in the refrigerant piping connecting the heat storage heat exchanger 4 and the refrigerant piping connecting the indoor heat exchanger 2 and the outdoor heat exchanger 3.

[0016] In the following description, the first expansion valve 51 to the third expansion valve 53 will be referred to as "expansion valve 5" when collectively describing them, and each individual expansion valve will be referred to by its respective name when describing them. Similarly, the first switching valve 61 and the second switching valve 62 will be referred to as "switching valve 6" when collectively describing them, and each individual switching valve will be referred to by its respective name when describing them.

[0017] The indoor heat exchanger 2 is provided with a refrigerant temperature sensor 22 that detects the temperature of the refrigerant in the indoor heat exchanger 2. Here, Fig. 2 shows the indoor heat exchanger 2 provided inside the indoor unit 10, which is further provided inside the indoor unit 10 with a room temperature sensor 21 that detects the room temperature and an indoor fan 11 that blows the air that has exchanged heat with the refrigerant in the indoor heat exchanger 2 into the room. In addition, a gas side refrigerant temperature sensor 23 is provided between the switching valve 61 and the indoor heat exchanger 2 to detect the temperature of the refrigerant flowing into the indoor heat exchanger 2 during defrost heating operation, and a liquid side refrigerant temperature sensor 24 is provided between the indoor heat exchanger 2 and the second expansion valve 52 to detect the temperature of the refrigerant flowing out of the indoor heat exchanger 2 during defrost heating operation.

[0018] Next, the refrigerant circuit C of the air conditioner S will be described. The refrigerant circuit C is made up of each device, such as the compressor 1 described above, and refrigerant piping that connects these devices and through which the refrigerant flows. Here, a first switching valve 61 is provided in the refrigerant piping that connects the compressor 1 and the indoor heat exchanger 2. In addition, a second switching valve 62 is provided in the refrigerant piping between the compressor 1 and the first switching valve 61, which allows the refrigerant discharged from the compressor 1 to flow to the outdoor heat exchanger 3 or the thermal storage heat exchanger 4.

[0019] Furthermore, in the air conditioner S according to the embodiment of the present invention, a bypass circuit B is provided between the first switching valve 61 and the second switching valve 62. The bypass circuit B is provided with a check valve or the like so that the refrigerant flows only in the direction of the arrow as shown in FIG.

[0020] The control device 7 controls the opening degrees of the plurality of expansion valves 5 to adjust the flow rate of the refrigerant circulating through the refrigerant circuit C. In addition, the control device 7 switches the flow of the refrigerant circulating through the refrigerant circuit C by switching the plurality of switching valves 6.

[0021] Before explaining the functions of each part of the control device 7, the operating modes of the air conditioner S will be explained in order using the circuit diagrams of the air conditioner S shown in Figures 3 to 6. In these circuit diagrams, the refrigerant circulation paths through which the refrigerant actually flows are shown by solid lines. On the other hand, the refrigerant circulation paths and bypass circuit B that constitute the refrigerant circuit C but through which no refrigerant flows are shown by dashed lines. The direction of the refrigerant circulating within the refrigerant circuit C is also shown by arrows.

[0022] 3 is a refrigerant circuit diagram showing the flow of refrigerant when the air conditioner S of the first embodiment performs cooling operation. During cooling operation, the indoor heat exchanger 2 functions as an evaporator, and the outdoor heat exchanger 3 functions as a condenser.

[0023] The refrigerant compressed by the compressor 1 and discharged in a high-temperature, high-pressure state flows into the outdoor heat exchanger 3 via the first expansion valve 51 and the second switching valve 62, as shown by the arrows in Fig. 3. At this time, the first expansion valve 51 is fully open. The refrigerant discharged from the compressor 1 also flows through the first switching valve 61, but also passes through the bypass circuit B and flows into the outdoor heat exchanger 3 from the second switching valve 62.

[0024] The refrigerant that has flowed into the outdoor heat exchanger 3 is cooled by outdoor air that is supplied by the rotation of an outdoor fan (not shown), and dissipates heat into the outdoor air, causing a part or all of the refrigerant to condense.

[0025] The refrigerant that has thus released heat to the outside air flows out of the outdoor heat exchanger 3 and passes through the second expansion valve 52, where it is decompressed to become a low-temperature, low-pressure refrigerant. The low-temperature, low-pressure refrigerant then flows into the indoor heat exchanger 2, where it exchanges heat with the indoor air.

[0026] Through heat exchange by the indoor heat exchanger 2, the refrigerant absorbs heat from the indoor air and evaporates, and the indoor air drawn into the indoor heat exchanger 2 is cooled and supplied into the room by the indoor fan 11 to cool the room. The refrigerant that has absorbed heat through heat exchange then flows into the compressor 1 via the first switching valve 61.

[0027] During cooling operation, the second expansion valve 52, through which the refrigerant condensed in the outdoor heat exchanger 3 passes, is controlled to have an opening degree that corresponds to the air conditioning capacity required of the air conditioner S. On the other hand, the third expansion valve 53 is controlled to be fully closed, and is controlled so that the refrigerant that has flowed out of the outdoor heat exchanger 3 does not flow into the thermal storage heat exchanger 4.

[0028] Next, Fig. 4 is a refrigerant circuit diagram showing the flow of refrigerant when the air conditioner S of the first embodiment is performing heating operation. As shown in Fig. 4, the refrigerant discharged from the compressor 1 flows into the indoor heat exchanger 2 via the first switching valve 61. Meanwhile, because the first expansion valve 51 is controlled to be fully closed, the refrigerant does not flow to the outdoor heat exchanger 3 via the second switching valve 62, as in the cooling operation described above. In the indoor heat exchanger 2, heat is exchanged between the refrigerant and the air flowing into the indoor unit, and the air heated by absorbing heat from the refrigerant is supplied to the indoor space, heating the room. Therefore, the indoor heat exchanger 2 functions as a condenser.

[0029] The refrigerant flowing out of the indoor heat exchanger 2 is reduced in pressure by passing through the second expansion valve 52, becoming a low-temperature, low-pressure refrigerant, which then flows into the outdoor heat exchanger 3. The outdoor heat exchanger 3 functions as an evaporator, and heat is exchanged between the refrigerant and the outdoor air. The refrigerant flowing out of the outdoor heat exchanger 3 flows into the compressor 1 via the second switching valve 62.

[0030] In the air conditioner S according to the present invention, when the above-described normal cooling operation or heating operation is performed, the thermal storage heat exchanger 4 does not function as a condenser or an evaporator.

[0031] Next, FIG. 5 is a refrigerant circuit diagram showing the flow of refrigerant when the air conditioner S of the first embodiment performs heat storage heating operation. In heat storage heating operation, the first expansion valve 51 is opened during heating operation to allow a portion of the refrigerant discharged from the compressor 1 to flow into the heat storage heat exchanger 4, thereby storing heat in the heat storage heat exchanger 4. As shown in FIG. 5 , the refrigerant discharged from the compressor 1 flows into the indoor heat exchanger 2 via the first switching valve 61. The indoor heat exchanger 2 then exchanges heat between the refrigerant and the air flowing into the indoor unit, absorbing heat from the refrigerant and supplying the heated air indoors. Therefore, the indoor heat exchanger 2 functions as a condenser. The refrigerant flowing out of the indoor heat exchanger 2 flows into the outdoor heat exchanger 3 via the second expansion valve 52. The outdoor heat exchanger 3 functions as an evaporator, where heat is exchanged between the refrigerant and the outdoor air. The refrigerant flowing out of the outdoor heat exchanger 3 flows into the compressor 1 via the second switching valve 62.

[0032] In the heat storage heating operation, the refrigerant discharged from the compressor 1 branches before reaching the first switching valve 61 and also flows into the heat storage heat exchanger 4 via the first expansion valve 51 and the second switching valve 62. The refrigerant that flows into the heat storage heat exchanger 4 exchanges heat with a heat storage material, so that the heat of the refrigerant is stored in the heat storage material. The refrigerant that flows out of the heat storage heat exchanger 4 flows into the outdoor heat exchanger 3 via the third expansion valve 53.

[0033] Next, Fig. 6 is a refrigerant circuit diagram showing the flow of refrigerant when the air conditioner S of the first embodiment performs defrosting heating operation. The defrosting heating operation is an operation in which the first expansion valve 51 is opened during heating operation to allow a portion of the refrigerant discharged from the compressor 1 to flow into the outdoor heat exchanger 3, thereby melting frost that has adhered to the outdoor heat exchanger 3. As shown in Fig. 6, the refrigerant discharged from the compressor 1 flows into the indoor heat exchanger 2 via the first switching valve 61. Since the heating operation is performed here, the indoor heat exchanger 2 functions as a condenser, and heat is exchanged between the refrigerant and the air flowing into the indoor unit in the indoor heat exchanger 2, and the heated air is supplied to the indoor space by absorbing heat from the refrigerant.

[0034] The refrigerant discharged from the compressor 1 branches before reaching the first switching valve 61 and flows into the outdoor heat exchanger 3 via the first expansion valve 51 and the second switching valve 62. At this time, the opening degree of the first expansion valve 51 is adjusted based on the control described later.

[0035] The high-temperature refrigerant from the compressor 1 flows into the outdoor heat exchanger 3, thereby performing a defrosting heating operation to melt frost adhering to the outdoor heat exchanger 3. The refrigerant flowing out of the indoor heat exchanger 2 flows into the heat-storage heat exchanger 4 via the second expansion valve 52 and the third expansion valve 53. The refrigerant flowing out of the outdoor heat exchanger 3 flows into the heat-storage heat exchanger 4 via the third expansion valve 53. In the heat-storage heat exchanger 4, heat exchange occurs between the flowing refrigerant and a heat storage material, and the refrigerant absorbs heat stored in the heat storage material and evaporates. The refrigerant flowing out of the heat-storage heat exchanger 4 flows into the compressor 1 via the second switching valve 62. The aperture of the second expansion valve 52 is set so that the refrigerant flowing out of the indoor heat exchanger 2, which functions as a condenser, is in a subcooled state. This makes it possible to simultaneously adjust the heating capacity of the indoor heat exchanger 2 and the defrosting capacity of the outdoor heat exchanger 3 during defrost heating operation by simply controlling the opening degree of the first expansion valve 51, without the need for complex control.

[0036] 7 is a block diagram showing the functions of each unit of the control device 7 of the first embodiment. The control device 7 includes a temperature detection unit 71, a storage unit 72, a determination unit 73, and a switching control unit 74.

[0037] The temperature detection unit 71 acquires the room temperature detected by the room temperature sensor 21 provided in the indoor unit 10. The temperature detection unit 71 acquires the refrigerant temperature detected by the refrigerant temperature sensor 22 provided in the indoor heat exchanger 2. The refrigerant temperature detected by the refrigerant temperature sensor 22 during defrost heating operation is the condensation temperature of the indoor heat exchanger 2, which functions as a condenser. The temperature detection unit 71 also acquires the refrigerant temperature detected by the gas side refrigerant temperature sensor 23. The temperature detected by the gas side refrigerant temperature sensor 23 during defrost heating operation is the temperature of the refrigerant flowing into the indoor heat exchanger 2. The temperature detection unit 71 also acquires the refrigerant temperature detected by the liquid side refrigerant temperature sensor 24. The temperature detected by the liquid side refrigerant temperature sensor 24 during defrost heating operation is the temperature of the refrigerant flowing out of the indoor heat exchanger 2.

[0038] The storage unit 72 is configured with, for example, a semiconductor or a magnetic disk, and in a first embodiment described later, stores the amount of refrigerant circulating during defrost heating operation based on changes in the rotation speed of the compressor 1. That is, the amount of refrigerant circulating can be calculated by multiplying the rotation speed of the compressor 1 by the displacement volume by the suction density, and therefore the storage unit 72 stores, in a memory table, the amount of refrigerant circulating corresponding to the rotation speed of the compressor 1 during defrost heating operation. In a first embodiment described later, the storage unit 72 stores a heating capacity at the start of the defrosting heating operation, which is calculated by multiplying the refrigerant circulation amount at the start of the defrosting heating operation by the enthalpy difference at the inlet and outlet of the indoor heat exchanger 2 at the start of the defrosting heating operation. This heating capacity at the start of the defrosting heating operation is the initial value of the heating capacity in the first embodiment described later.

[0039] The memory unit 72 also stores the opening degrees of the first expansion valve 51 and the second expansion valve 52, which are determined according to the required capacity. The opening degree of the first expansion valve 51 is the opening degree required for the defrosting heating operation, and the opening degree of the second expansion valve 52 is the opening degree at which the refrigerant flowing out from the indoor heat exchanger 2, which functions as a condenser in the defrosting heating operation, is in a supercooled state.

[0040] The determination unit 73 estimates the heating capacity during defrost heating operation. In a specific process in a first embodiment described later, the determination unit 73 calculates the enthalpy difference between the inlet and outlet of the indoor heat exchanger 2 based on the temperature of the refrigerant flowing into the indoor heat exchanger 2 (gas-side refrigerant temperature) and the temperature of the refrigerant flowing out of the indoor heat exchanger 2 (liquid-side refrigerant temperature) during defrost heating operation. Next, the determination unit 73 obtains the refrigerant circulation volume corresponding to the rotation speed of the compressor 1 currently being driven from a storage table of the rotation speed of the compressor 1 and the refrigerant circulation volume stored in the storage unit 72. Next, the heating capacity is calculated by multiplying the enthalpy difference between the inlet and outlet of the indoor heat exchanger 2 by the refrigerant circulation volume corresponding to the rotation speed of the compressor 1 currently being driven. This heating capacity is the estimated heating capacity value in the first embodiment described later.

[0041] In addition, in the first embodiment described later, the judgment unit 73 compares the initial heating capacity value stored in the memory unit 72 with the estimated heating capacity value, and based on the comparison result, judges whether the indoor heating capacity is excessive, whether the indoor heating capacity is insufficient, or whether the indoor heating capacity is appropriate.

[0042] The switching control unit 74 controls the opening degrees of the first expansion valve 51 and the second expansion valve 52 in accordance with the determination result received from the determination unit 73, and performs switching control of the first switching valve 61 and the second switching valve 62. [Control of defrosting and heating operation in the first embodiment]

[0043] Next, the flow of control of the defrosting heating operation in the first embodiment will be described with reference to the flowcharts shown in FIGS. The control of the defrosting heating operation in the first embodiment is characterized in that the heating capacity is estimated based on the enthalpy difference between the inlet and outlet of the indoor heat exchanger 2.

[0044] First, the defrosting heating operation is started (ST1) in the air conditioner S. At that time, the switching control unit 74 controls the first expansion valve 51 and the second expansion valve 52 to predetermined opening degrees so as to form the refrigerant circuit shown in Fig. 6, and performs switching control of the first switching valve 61 and the second switching valve 61, thereby executing the defrosting heating operation.

[0045] Next, the determination unit 73 estimates the heating capacity during the defrosting heating operation (ST2).

[0046] In the specific process of estimating the heating capacity during the defrost heating operation, as shown in FIG. 9 , the temperature detection unit 71 acquires the temperature of the refrigerant flowing into the indoor heat exchanger 2 during the defrost heating operation (gas-side refrigerant temperature) and the temperature of the refrigerant flowing out of the indoor heat exchanger 2 (liquid-side refrigerant temperature) (ST11). Next, the determination unit 73 calculates the enthalpy difference between the inlet and outlet of the indoor heat exchanger 2 based on the acquired gas-side refrigerant temperature and liquid-side refrigerant temperature (ST12). Next, the determination unit 73 acquires the refrigerant circulation volume corresponding to the rotation speed of the compressor 1 currently being driven from a storage table of the rotation speed of the compressor 1 and the refrigerant circulation volume stored in the storage unit 72 (ST13). Next, the determination unit 73 calculates the estimated heating capacity by multiplying the enthalpy difference between the inlet and outlet of the indoor heat exchanger 2 by the refrigerant circulation volume corresponding to the rotation speed of the compressor 1 currently being driven.

[0047] Next, returning to FIG. 8, the determination unit 73 compares the heating capacity initial value at the start of the defrosting heating operation stored in the storage unit 72 with the calculated heating capacity estimated value (ST3 in FIG. 8).

[0048] If the heating capacity estimate is greater than the initial heating capacity (YES in ST4) as a result of the determination unit 73 comparing the estimated heating capacity with the initial heating capacity (ST4), the determination unit 73 determines that the room temperature has risen due to excessive heating capacity, reducing indoor comfort, calculates the difference between the estimated heating capacity and the initial heating capacity, and calculates an opening control amount according to this difference.The switching control unit 74 then controls the first expansion valve 51 to increase its opening by the opening control amount (ST5).

[0049] On the other hand, if the initial heating capacity value is greater than the estimated heating capacity value or equal to the estimated heating capacity value (NO in ST4), it is determined whether the initial heating capacity value and the estimated heating capacity value are equal (ST6).

[0050] If the determination unit 73 determines that the initial heating capacity value and the estimated heating capacity value are equal (YES in ST6), the switching control unit 74 performs control to maintain the opening of the first expansion valve 51 (ST7). On the other hand, if the determination unit 73 determines that the initial heating capacity value and the estimated heating capacity value are not equal (NO in ST6), this corresponds to the case where the estimated heating capacity value is smaller than the initial heating capacity value. In this case, it is determined that the room heating capacity is insufficient, causing the room temperature to drop and indoor comfort to decrease, and the switching control unit 74 calculates the difference between the initial heating capacity value, the estimated heating capacity value, and the initial heating capacity value, and calculates an opening control amount corresponding to this difference. Then, the switching control unit 74 performs control to reduce the opening of the first expansion valve 51 by the opening control amount (ST8).

[0051] Then, while the defrosting heating operation is being performed, the determination unit 73 determines whether the frost on the outdoor heat exchanger 3 has melted and it is OK to end the defrosting heating operation, based on a preset end condition (ST9). If the determination unit 73 determines that the frost on the outdoor heat exchanger 3 has not melted and the defrosting heating operation cannot be ended yet (NO in ST9), the defrosting heating operation that is currently being performed continues (proceeding to ST2). On the other hand, if the determination result indicates that the defrosting heating operation can be ended (YES in ST9), the defrosting heating operation is ended (ST10).

[0052] Next, the effects of the defrosting heating operation of the first embodiment will be described.

[0053] During defrost heating operation, the control prioritizes removing frost from the outdoor heat exchanger 3, so the heating capacity is not as precisely controlled relative to the set temperature as in normal heat storage heating operation. This means that the room temperature is more likely to rise too high or fall too low, reducing comfort. For this reason, when the outdoor temperature is high and the building volume is small, resulting in a low building load, the heating capacity during defrost heating operation may become excessive.

[0054] Therefore, the control device 7 of this embodiment calculates an estimated heating capacity based on the enthalpy difference between the inlet and outlet of the indoor heat exchanger 2 and the amount of refrigerant circulating during defrost heating operation, and compares this estimated heating capacity with a preset initial heating capacity value, and if it determines that the estimated heating capacity is excessive, it increases the opening of the first expansion valve 51, and if it determines that the estimated heating capacity is insufficient, it decreases the opening of the first expansion valve 51.

[0055] Therefore, by controlling the opening of the first expansion valve 51 to be larger when it is determined that the estimated heating capacity is excessive, part of the refrigerant flowing through the indoor heat exchanger 2 flows to the outdoor heat exchanger 3, reducing the indoor heating capacity and the room temperature, so that a decrease in indoor comfort can be suppressed even when the building load is small. Also, by having part of the refrigerant flowing through the indoor heat exchanger 2 flow to the outdoor heat exchanger 3, the defrosting time can be shortened.

[0056] In addition, if it is determined that the estimated heating capacity is insufficient, the opening of the first expansion valve 51 is controlled to be reduced, so that the refrigerant flowing through the outdoor heat exchanger 3 flows to the indoor heat exchanger 2, increasing the indoor heating capacity and raising the room temperature, thereby suppressing a decrease in indoor comfort.

[0057] In addition, by controlling the opening degree of the first expansion valve 51 based on the enthalpy difference between the inlet and outlet of the indoor heat exchanger 2, it is possible to simultaneously adjust and control the heating capacity of the indoor heat exchanger 2 and the defrosting capacity of the outdoor heat exchanger 3 during defrost heating operation.

[0058] Furthermore, the second expansion valve 52, which is located downstream of the refrigerant of the indoor heat exchanger 2, is fixed at an opening degree such that the refrigerant flowing out from the indoor heat exchanger 2, which functions as a condenser during defrost heating operation, is in a supercooled state. Therefore, no complex control is required, and the heating capacity of the indoor heat exchanger 2 and the defrosting capacity of the outdoor heat exchanger 3 during defrost heating operation can be adjusted simultaneously by simply controlling the opening degree of the first expansion valve 51. [Control of defrosting and heating operation in the second embodiment]

[0059] Next, the flow of control of the defrosting heating operation in the second embodiment according to the present invention will be described with reference to the flowcharts shown in FIGS. The control of the defrosting heating operation in the second embodiment is characterized by estimating the heating capacity based on the room temperature.

[0060] The control device 7 of the second embodiment has the same configuration as the control device 7 of the first embodiment, in terms of the temperature detection unit 71 and the switching control unit 74.

[0061] A first threshold temperature and a second threshold temperature are stored in the memory unit 72 of the control device 7 of the second embodiment. The first threshold temperature is a temperature that is, for example, 2°C higher than the room temperature (24°C) set for the defrosting heating operation, and the second threshold temperature is a temperature that is, for example, 2°C lower than the room temperature (24°C) set for the defrosting heating operation. In addition, the memory unit 72 of the control device 7 of the second embodiment stores an estimated heating capacity value for the first threshold temperature estimated from the first threshold temperature and an estimated heating capacity value for the second threshold temperature estimated from the second threshold temperature. Furthermore, the memory unit 72 of the control device 7 of the second embodiment stores the opening degrees of the first expansion valve 51 and the second expansion valve 52 determined according to the required capacity. The opening degree of the first expansion valve 51 is the opening degree required for the defrosting heating operation, and the opening degree of the second expansion valve 52 is the opening degree at which the refrigerant flowing out from the indoor heat exchanger 2 functioning as a condenser in the defrosting heating operation is in a supercooled state. The memory unit 72 of the control device 7 of the second embodiment also stores an opening degree of the second expansion valve 52 at which the refrigerant flowing out of the indoor heat exchanger 2 functioning as a condenser in the defrost heating operation is in a subcooled state. The memory unit 72 of the control device 7 of the second embodiment also stores data on estimated heating capacity values ​​corresponding to changes in the indoor temperature.

[0062] 10, in the control of the defrosting heating operation in the second embodiment, first, the defrosting heating operation is started in the air conditioner S (ST21). At that time, when the switching control unit 74 controls the first expansion valve 51 and the second expansion valve 52 to a predetermined opening degree, the refrigerant discharged from the compressor 1 flows into the indoor heat exchanger 2 via the first switching valve 61, and high-temperature refrigerant from the compressor 1 flows into the outdoor heat exchanger 3, thereby executing the defrosting operation that melts the frost adhering to the outdoor heat exchanger 3.

[0063] Next, the determination unit 73 estimates the heating capacity during the defrosting heating operation (ST22).

[0064] 11, the specific process for estimating the heating capacity during defrosting heating operation is as follows: the temperature detection unit 71 acquires the current room temperature detected by the room temperature sensor 21 provided in the indoor unit 10 (ST41). Next, the determination unit 73 acquires a heating capacity estimate value corresponding to the current room temperature from data of heating capacity estimate values ​​corresponding to changes in the room temperature stored in the memory unit 72 (ST42).

[0065] Next, returning to FIG. 10, the determination unit 73 compares the current room temperature with the first threshold temperature (ST23 in FIG. 10).

[0066] If the determination unit 73 compares the current room temperature with the first threshold temperature (ST24) and finds that the current room temperature is equal to or higher than the first threshold temperature (YES in ST24), it determines that the room heating capacity is excessive, causing the room temperature to rise and reducing indoor comfort, calculates the difference between the heating capacity estimate and the heating capacity estimate for the first threshold temperature, and calculates an opening control amount according to this difference.The switching control unit 74 then controls the opening of the first expansion valve 51 to be increased by the opening control amount (ST25).

[0067] On the other hand, if the current room temperature is lower than the first threshold temperature (NO in ST24), The determination unit 73 compares the current room temperature with the second threshold temperature (ST26).

[0068] If the determination unit 73 compares the current room temperature with the second threshold temperature (ST27), and the current room temperature is equal to or lower than the second threshold temperature (YES in ST27), it determines that the room heating capacity is insufficient, causing the room temperature to drop and reducing indoor comfort, calculates the difference between the estimated heating capacity and the estimated heating capacity at the second threshold temperature, and calculates an opening control amount according to this difference.The switching control unit 74 then performs control to reduce the opening of the first expansion valve 51 by the opening control amount (ST28).If the current room temperature is higher than the second threshold temperature (NO in ST27), the switching control unit 74 performs control to maintain the opening of the first expansion valve 51 (ST29).

[0069] Then, while the defrosting heating operation is being performed, the determination unit 73 determines whether the frost on the outdoor heat exchanger 3 has melted and it is OK to end the defrosting heating operation, based on a preset end condition (ST30). If the determination unit 73 determines that the frost on the outdoor heat exchanger 3 has not melted sufficiently and the defrosting heating operation cannot be ended yet (NO in ST30), the defrosting heating operation that is currently being performed continues (proceeding to ST22). On the other hand, if the determination result indicates that the defrosting heating operation can be ended (YES in ST30), the defrosting heating operation is ended (ST31).

[0070] The effects of the defrosting heating operation of the second embodiment will be described.

[0071] When the control device 7 of the second embodiment determines that the room temperature during defrosting heating operation is equal to or higher than the first threshold temperature, it determines that the estimated heating capacity is excessive and controls the opening of the first expansion valve 51 to be larger, and when it determines that the room temperature during defrosting heating operation is equal to or lower than the second threshold temperature, it determines that the estimated heating capacity is insufficient and controls the opening of the first expansion valve 51 to be smaller.

[0072] Therefore, by controlling the first expansion valve 51 to be larger when it is determined that the estimated heating capacity is excessive, part of the refrigerant flowing through the indoor heat exchanger 2 flows to the outdoor heat exchanger 3, reducing the indoor heating capacity and the room temperature, so that a decrease in indoor comfort can be suppressed even when the building load is small. Also, by having part of the refrigerant flowing through the indoor heat exchanger 2 flow to the outdoor heat exchanger 3, the defrosting time can be shortened.

[0073] In addition, when it is determined that the estimated heating capacity is insufficient, the first expansion valve 51 is controlled to be smaller, so that the refrigerant flowing through the outdoor heat exchanger 3 flows to the indoor heat exchanger 2, increasing the indoor heating capacity and raising the room temperature, thereby suppressing a decrease in indoor comfort.

[0074] In addition, the second embodiment controls the opening degree of the first expansion valve 51 based on the room temperature during defrosting heating operation, thereby making it possible to simultaneously adjust and control the heating capacity of the indoor heat exchanger 2 and the defrosting capacity of the outdoor heat exchanger 3 during defrosting heating operation.

[0075] Furthermore, the second expansion valve 52, which is located downstream of the refrigerant of the indoor heat exchanger 2, is set to a fixed opening value so that the refrigerant flowing out from the indoor heat exchanger 2, which functions as a condenser during defrost heating operation, is in a supercooled state.Therefore, no complex control is required, and the heating capacity of the indoor heat exchanger 2 and the defrosting capacity of the outdoor heat exchanger 3 during defrost heating operation can be adjusted simultaneously by simply controlling the opening of the first expansion valve 51. [Control of defrosting and heating operation in the third embodiment]

[0076] Next, the flow of control of the defrosting heating operation in the third embodiment according to the present invention will be described with reference to the flowcharts shown in FIGS. The control of the defrosting heating operation in the third embodiment is characterized in that the heating capacity is estimated based on the condensation temperature of the indoor heat exchanger 2.

[0077] The memory unit 72 of the control device 7 of the third embodiment stores the condensation temperature of the indoor heat exchanger 2, which functions as a condenser during defrosting heating operation, at the start of defrosting heating operation, and the initial heating capacity value of the defrosting heating operation based on this condensation temperature. In addition, the memory unit 72 of the control device 7 of the third embodiment stores the opening degrees of the first expansion valve 51 and the second expansion valve 52 determined according to the required capacity, as in the first and second embodiments.

[0078] Furthermore, the storage unit 72 of the third embodiment stores data on estimated heating capacity values ​​corresponding to the condensation temperature of the indoor heat exchanger 2 that functions as a condenser during defrosting heating operation.

[0079] The determination unit 73 of the third embodiment estimates the heating capacity during defrost heating operation. In this specific process, a heating capacity estimate value corresponding to the refrigerant temperature (condensing temperature) detected by the refrigerant temperature sensor 22 is obtained from the heating capacity estimate value data stored in the memory unit 72.

[0080] Determination unit 73 also compares whether the temperature difference between the current room temperature and the room temperature a predetermined time ago (for example, one minute ago) is within a predetermined temperature range (for example, 2°C). Determination unit 73 also compares the current refrigerant temperature with the refrigerant temperature (condensing temperature) at the start of defrosting heating operation.

[0081] 12, in the control of the defrosting heating operation in the third embodiment, first, the defrosting heating operation is started in the air conditioner S (ST51). At that time, when the switching control unit 74 controls the first expansion valve 51 and the second expansion valve 52 to a predetermined opening degree, the refrigerant discharged from the compressor 1 flows into the indoor heat exchanger 2 via the first switching valve 61, and high-temperature refrigerant from the compressor 1 flows into the outdoor heat exchanger 3, thereby executing the defrosting operation that melts the frost adhering to the outdoor heat exchanger 3.

[0082] Next, the determination unit 73 estimates the heating capacity during the defrosting heating operation (ST52).

[0083] 13, in the specific process of estimating the heating capacity during the defrosting heating operation, the temperature detection unit 71 acquires the current condensing temperature detected by the refrigerant temperature sensor 22 (ST71). Next, the determination unit 73 acquires the heating capacity estimated value corresponding to the current condensing temperature from the heating capacity estimated value data stored in the memory unit 72 (ST72).

[0084] Next, returning to FIG. 12, the determination unit 73 calculates the temperature difference between the current room temperature and the room temperature a predetermined time ago (ST53).

[0085] Next, the determination unit 73 compares the temperature difference between the room temperature and a predetermined temperature range (e.g., 2°C), and if the temperature difference between the room temperature and the room temperature is equal to or less than the predetermined temperature range (YES in ST54), it compares the current condensing temperature with the condensing temperature at the start of the defrosting heating operation (ST55). If the current condensing temperature is higher than the condensing temperature at the start of the defrosting heating operation (YES in ST56), the determination unit 73 determines that the room heating capacity is excessive, causing the room temperature to rise and reducing indoor comfort, calculates the difference between the estimated heating capacity and the initial heating capacity, and calculates an opening control amount corresponding to this difference. Then, the switching control unit 74 performs control to increase the opening of the first expansion valve 51 by the opening control amount (ST57).

[0086] If the current condensing temperature is equal to or lower than the condensing temperature at the start of the defrosting heating operation (NO in ST56) and is lower than the condensing temperature at the start of the defrosting heating operation (YES in ST58), the determination unit 73 determines that the room heating capacity is insufficient, causing the room temperature to drop and reducing indoor comfort, calculates the difference between the estimated heating capacity and the initial heating capacity value, and calculates an opening control amount corresponding to this difference.The switching control unit 74 then performs control to reduce the opening of the first expansion valve 51 by the opening control amount (ST59).Note that if the current condensing temperature and the condensing temperature at the start of the defrosting heating operation are equal (NO in ST58), the switching control unit 74 performs control to maintain the opening of the first expansion valve 51 (ST60).

[0087] Then, while the defrosting heating operation is being performed, the determination unit 73 determines whether the frost on the outdoor heat exchanger 3 has melted and it is OK to end the defrosting heating operation, based on a preset end condition (ST61). If the determination unit 73 determines that the frost on the outdoor heat exchanger 3 has not melted sufficiently and the defrosting heating operation cannot be ended yet (NO in ST61), the defrosting heating operation that is currently being performed continues (proceeding to ST52). On the other hand, if the determination result indicates that the defrosting heating operation can be ended (YES in ST61), the defrosting heating operation is ended (ST62).

[0088] The effects of the defrosting heating operation of the third embodiment will be described.

[0089] Assume that the current room temperature during defrosting heating operation is 24°C, and the room temperature a predetermined time ago was 23°C. There is not much difference in temperature between the current room temperature and the room temperature a predetermined time ago. However, if the current condensing temperature of indoor heat exchanger 2 is higher than the condensing temperature at the start of defrosting heating operation, it is determined that the estimated heating capacity is excessive, and control is performed to increase the opening of first expansion valve 51. On the other hand, if the current condensing temperature of indoor heat exchanger 2 is lower than the condensing temperature at the start of defrosting heating operation, it is determined that the estimated heating capacity is insufficient, and control is performed to decrease the opening of first expansion valve 51.

[0090] Therefore, in the third embodiment, by monitoring the change in the condensation temperature of the indoor heat exchanger 2, even if the temperature change in the room temperature is small, the excess or deficiency of heating capacity can be estimated from the condensation capacity, thereby preventing the room temperature from rising too high or dropping too low, thereby preventing a decrease in indoor comfort.

[0091] Also, as in the first and second embodiments, by controlling the aperture of the first expansion valve 51 based on the room temperature during defrosting heating operation, it is possible to simultaneously control and adjust the heating capacity of the indoor heat exchanger 2 and the defrosting capacity of the outdoor heat exchanger 3 during defrosting heating operation. Furthermore, the second expansion valve 52, which is arranged downstream of the refrigerant from the indoor heat exchanger 2, is set to a fixed aperture value such that the refrigerant flowing out from the indoor heat exchanger 2, which functions as a condenser during defrosting heating operation, is in a subcooled state. Therefore, complex control is not required, and the heating capacity of the indoor heat exchanger 2 and the defrosting capacity of the outdoor heat exchanger 3 during defrosting heating operation can be simultaneously adjusted by simply controlling the aperture of the first expansion valve 51.

[0092] [Heating capacity estimation means of the fourth embodiment]

[0093] In the first to third embodiments, the estimated heating capacity value is calculated based on the enthalpy difference between the inlet and outlet of the indoor heat exchanger 2 and the amount of refrigerant circulating during defrosting heating operation, the estimated heating capacity value is calculated based on the room temperature detected by the room temperature sensor 21, or the estimated heating capacity value is calculated based on the condensing temperature of the indoor heat exchanger 2 and the room temperature.

[0094] 2, the heating capacity during defrosting heating operation may be estimated based on the air volume sent out from the indoor fan 11, which sends into the room the air that has exchanged heat with the refrigerant in the indoor heat exchanger 2. That is, the estimated heating capacity during defrosting heating operation can be calculated based on the air volume of the indoor fan 11 and the temperature difference between the room temperature detected by the room temperature sensor 21 provided in the indoor unit 10 and the refrigerant temperature detected by the refrigerant temperature sensor 22.

[0095] When a heating capacity estimate is calculated based on the air volume blown out from the indoor fan 11 and used to control the defrosting heating operation in the first to third embodiments, more precise and quicker control of the defrosting heating operation can be achieved than when a heating capacity estimate is calculated based only on the room temperature or the refrigerant temperature flowing through the indoor heat exchanger 2.

[0096] It should be noted that the present invention is not limited to the above-described embodiment, but is merely an example of the present invention. In the implementation stage, the components can be modified and embodied without departing from the spirit of the invention, and various changes and improvements can be made to the above-described embodiment. Furthermore, various inventions can be created by appropriately combining multiple components disclosed in the above-described embodiment.

[0097] For example, some components may be deleted from all of the components shown in the embodiments. Furthermore, components from different embodiments may be combined as appropriate, and such modified or improved forms may also be included in the present invention. Such embodiments and their modifications are included in the scope and spirit of the inventions, and are also included in the scope of the inventions and their equivalents as defined in the claims. [Explanation of symbols]

[0098] S Air Conditioner 1 Compressor 2 Indoor heat exchanger 3 Outdoor heat exchanger 4 Regenerative heat exchanger 5 Expansion valve 10 Indoor unit 11 Indoor fan 51 First expansion valve 52 Second expansion valve 53 Third expansion valve 6. Switching valve 61 First switching valve 62 Second switching valve 21 Room temperature sensor 22 Refrigerant temperature sensor 23 Gas side refrigerant temperature sensor 24 Liquid side refrigerant temperature sensor B Bypass circuit C Refrigerant circuit

Claims

1. The refrigerant circuit that circulates the refrigerant a compressor that compresses the refrigerant; an indoor heat exchanger that exchanges heat between indoor air and the refrigerant; an outdoor heat exchanger that exchanges heat between outdoor air and the refrigerant; a heat storage heat exchanger that exchanges heat between a heat storage material and the refrigerant; a plurality of expansion valves whose opening degrees are adjustable; a switching valve that switches a flow path of the refrigerant circuit between a heat storage heating operation in which the indoor heat exchanger and the heat storage heat exchanger function as condensers and the outdoor heat exchanger function as an evaporator, and a defrosting heating operation in which the indoor heat exchanger and the outdoor heat exchanger function as condensers and the heat storage heat exchanger function as an evaporator, and a heating capacity estimation means for estimating a heating capacity during the defrosting heating operation; a control device that controls the plurality of expansion valves and the switching valve, the plurality of expansion valves include a first expansion valve provided upstream of the outdoor heat exchanger during the defrosting heating operation, The air conditioner, characterized in that the control device controls the opening degree of the first expansion valve based on the heating capacity estimated by the heating capacity estimation means during the defrosting heating operation.

2. 2. The air conditioner according to claim 1, wherein the control device increases the opening of the first expansion valve when it determines that the heating capacity estimated by the heating capacity estimating means is excessive.

3. 2. The air conditioner according to claim 1, wherein the control device reduces the opening of the first expansion valve when it determines that the heating capacity estimated by the heating capacity estimating means is insufficient.

4. an enthalpy difference calculation means for calculating an enthalpy difference based on the inlet side enthalpy of the indoor heat exchanger and the outlet side enthalpy of the indoor heat exchanger; 2. The air conditioner according to claim 1, wherein the heating capacity estimating means estimates the heating capacity based on the enthalpy difference calculated by the enthalpy difference calculating means.

5. Equipped with a room temperature sensor that detects the room temperature, 2. The air conditioner according to claim 1, wherein the heating capacity estimating means estimates the heating capacity based on the room temperature detected by the room temperature sensor.

6. The air conditioner of claim 5, characterized in that when the room temperature detected by the room temperature sensor becomes equal to or higher than a predetermined first threshold, the control device determines that the heating capacity estimated by the heating capacity estimation means is excessive, and when it determines that the heating capacity is excessive, increases the opening degree of the first expansion valve.

7. The air conditioner described in claim 5, characterized in that when the indoor temperature detected by the room temperature sensor falls below a predetermined second threshold, the control device determines that the heating capacity estimated by the heating capacity estimation means is insufficient, and when it determines that the heating capacity is insufficient, it reduces the opening of the first expansion valve.

8. a room temperature sensor for detecting the room temperature; an indoor heat exchanger temperature sensor for detecting the temperature of the indoor heat exchanger; 2. The air conditioner according to claim 1, wherein the heating capacity estimating means estimates the heating capacity based on the temperature of the indoor heat exchanger detected by the indoor heat exchanger temperature sensor.

9. The air conditioner according to claim 8, characterized in that the control device determines that the heating capacity estimated by the heating capacity estimation means is excessive when the temperature difference between the current indoor temperature detected by the room temperature sensor and the indoor temperature a predetermined time ago is within a predetermined range and the temperature of the indoor heat exchanger detected by the indoor heat exchanger temperature sensor is higher than the temperature at the start of the defrosting heating operation, and when it determines that the heating capacity is excessive, it increases the opening of the first expansion valve.

10. The air conditioner according to claim 8, characterized in that the control device determines that the heating capacity estimated by the heating capacity estimation means is insufficient when the temperature difference between the current indoor temperature detected by the room temperature sensor and the indoor temperature a predetermined time ago is within a predetermined range and the temperature of the indoor heat exchanger detected by the indoor heat exchanger temperature sensor is lower than the temperature at the start of the defrosting heating operation, and when it determines that the heating capacity is insufficient, reduces the opening of the first expansion valve.

11. an air volume calculation means for calculating an air volume sent out from an indoor fan that sends the air that has exchanged heat with the refrigerant in the indoor heat exchanger into the room; The air conditioner according to claim 8, characterized in that the heating capacity estimation means estimates the heating capacity based on the temperature difference between the room temperature detected by the room temperature sensor and the temperature of the indoor heat exchanger detected by the indoor heat exchanger temperature sensor and the air volume calculated by the air volume calculation means.

12. The air conditioner according to any one of claims 1 to 11, characterized in that the plurality of expansion valves include a second expansion valve that is provided downstream of the indoor heat exchanger during the defrosting heating operation and whose opening degree is set to a fixed value during the defrosting heating operation.

Citation Information

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