AIR-CONDITIONING APPARATUS
20200408459 ยท 2020-12-31
Inventors
Cpc classification
F24F11/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2200/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2500/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2313/0294
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B13/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F19/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F11/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D21/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D2700/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F19/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F25D21/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F11/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An air-conditioning apparatus includes a heat exchanger, a fan, and a controller. The heat exchanger causes heat exchange to be performed between a medium that transfers heat, and air. The fan sends air to the heat exchanger. The controller determines whether clogging due to foreign matter has occurred in the heat exchanger, based on a command voltage varying in accordance with the rotation speed of a fan motor that drives the fan.
Claims
1. An air-conditioning apparatus comprising: a heat exchanger configured to cause heat exchange to be performed between a medium and air, the medium being a medium to transfer heat; a fan configured to send the air to the heat exchanger; and a controller configured to determine whether clogging due to foreign matter has occurred in the heat exchanger, based on a command voltage varying in accordance with a rotation speed of a fan motor that drives the fan, wherein, in response to determining that the command voltage sent to the fan motor is equal to or greater than a set clogging determination threshold for a set time after start of operation of the air-conditioning apparatus, the controller determines that the clogging due to foreign matter has occurred.
2. (canceled)
3. An air-conditioning apparatus comprising: a heat exchanger configured to cause heat exchange to be performed between a medium and air, the medium being a medium to transfer heat; a fan configured to send the air to the heat exchanger; and a controller configured to determine whether clogging due to foreign matter has occurred in the heat exchanger, based on a command voltage varying in accordance with a rotation speed of a fan motor that drives the fan, wherein, in response to determining that a rate of increase of the command voltage during execution of operation of the air-conditioning apparatus is equal to or greater than a set increase rate determination threshold, and that an increased state of the command voltage after the increase stops continues for a set duration, the controller determines that the clogging due to foreign matter has occurred.
4. An air-conditioning apparatus comprising; a heat exchanger configured to cause heat exchange to be performed between a medium and air, the medium being a medium to transfer heat; a fan configured to send the air to the heat exchanger; and a controller configured to determine whether clogging due to foreign matter has occurred in the heat exchanger, based on a command voltage varying in accordance with a rotation speed of a fan motor that drives the fan; wherein the controller determines whether the clogging due to foreign matter has occurred based on a comparison between the command voltage sent during execution of operation of the air-conditioning apparatus and the clogging threshold being set based on a rate of increase of the command voltage associated with frosting.
5. The air-conditioning apparatus of claim 1, comprising a display device configured to display information based on a signal, wherein, in response to determining that the clogging due to foreign matter has occurred, the controller transmits the signal to the display device to display an indication that the clogging due to foreign matter has occurred.
6. The air-conditioning apparatus of claim 1, wherein the controller further determines, based on the command voltage, whether frosting has occurred.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0010]
[0011]
[0012]
[0013]
[0014]
[0015]
[0016]
DETAILED DESCRIPTION
Embodiment 1
[0017]
[0018] The indoor unit 200 according to Embodiment 1 includes an indoor heat exchanger 5 and an indoor fan 7. The indoor heat exchanger 5 causes heat exchange to be performed between the indoor air, which is air in an air-conditioned space, and refrigerant. For example, it functions as a condenser during the heating operation to condense and liquefy the refrigerant. Also, during the cooling operation and the defrosting operation, it functions as an evaporator to evaporate and vaporize the refrigerant. The indoor fan 7 allows the air in the room to pass through the indoor heat exchanger 5, and supplies the air that has passed through the indoor heat exchanger 5 into the room.
[0019] Further, the indoor unit 200 has an indoor control device 11 and a remote control 12 as control-related devices. The indoor control device 11 controls devices such as the indoor fan 7 of the indoor unit 200. Here, in Embodiment 1, the indoor control device 11 relays communication between the outdoor control device 10 and the remote control 12. The remote control 12 has an input device (not shown), and sends a signal including instructions, settings, etc. input by the user to the indoor control device 11. Further, the remote control 12 includes the display device 12A to perform, for example, display of information based on the signal sent from the outdoor control device 10. In Embodiment 1, the indoor control device 11 and the remote control 12 have different configurations, but the indoor control device 11 and the remote control 12 may be integrated such that the remote control 12 has the device control function of the indoor control device 11.
[0020] On the other hand, the outdoor unit 100 has a compressor 3, a four-way valve 4, an electronic expansion valve 6, an outdoor heat exchanger 1 and an outdoor fan 2. The compressor 3 compresses the suctioned refrigerant and discharges the compressed refrigerant. Although not particularly limited, as for the compressor 3 of Embodiment 1, the capacity thereof (amount of refrigerant discharged per unit time) can be changed by arbitrarily changing an operating frequency by, for example, an inverter circuit. The four-way valve 4 is, for example, a valve that switches the flow of the refrigerant between the cooling operation and the heating operation. Further, the electronic expansion valve 6 such as a throttle device adjusts the opening degree based on an instruction from an outdoor control device 10 described later to decompress and expand the refrigerant. The outdoor heat exchanger 1 causes heat exchange to be performed between the refrigerant and air (outdoor air). For example, during the heating operation, it functions as an evaporator to evaporate and vaporize the refrigerant. Further, it functions as a condenser during the cooling operation and the defrosting operation to condense and liquefy the refrigerant. The outdoor fan 2 allows the outdoor air to pass through the outdoor heat exchanger 1 to promote heat exchange in the outdoor heat exchanger 1. A fan motor 2A of the outdoor fan 2 is driven at a rotation speed based on a command voltage sent from an outdoor control device 10 described later to adjust the air volume. The outdoor control device 10 controls devices inside the outdoor unit 100. The outdoor control device 10 will be described later.
[0021] Here, the operation of the air-conditioning apparatus will be explained. First, the flow of refrigerant during the heating operation in the air-conditioning apparatus will be explained. Refrigerant in the high-pressure, high-temperature gaseous state discharged from the compressor 3 flows into the indoor heat exchanger 5 through the four-way valve 4. In the indoor heat exchanger 5, by condensing through heat exchange with the indoor air supplied by the indoor fan 7, the refrigerant is turned to be refrigerant in the high-pressure liquid state, and flows out from the indoor heat exchanger 5. The refrigerant in the high-pressure liquid state flowing out of the indoor heat exchanger 5 flows into the electronic expansion valve 6, and is turned to be refrigerant in the low-pressure two-phase gas-liquid state. The refrigerant in the low-pressure two-phase gas-liquid state flowing out from the electronic expansion valve 6 flows into the outdoor heat exchanger 1, is turned to be the refrigerant in the low-pressure gaseous state by evaporating through heat exchange with the outside air supplied by the outdoor fan 2, and then flows out from the outdoor heat exchanger 1. The refrigerant in the low-pressure gaseous state flowing out from the outdoor heat exchanger 1 is suctioned into the compressor 3 through the four-way valve 4.
[0022] Next, the flow of refrigerant at the time of cooling operation in the air-conditioning apparatus will be described. The refrigerant in the high-pressure, high-temperature gaseous state discharged from the compressor 3 flows into the outdoor heat exchanger 1 via the four-way valve 4. Then, by condensing through heat exchange with the outside air supplied by the outdoor fan 2, the refrigerant is turned to be refrigerant in the high-pressure liquid state, and then flows out from the outdoor heat exchanger 1. The refrigerant in the high-pressure liquid state flowing out of the outdoor heat exchanger 1 flows into the electronic expansion valve 6, and is turned to be refrigerant in the low-pressure two-phase gas-liquid state. The refrigerant in the low-pressure two-phase gas-liquid state flowing out of the electronic expansion valve 6 flows into the indoor heat exchanger 5. The refrigerant is then turned to be refrigerant in the low-pressure gas state by evaporating through heat exchange with the indoor air supplied by the indoor fan 7, and flows out from the indoor heat exchanger 5. The refrigerant in the low-pressure gaseous state flowing out of the indoor heat exchanger 5 is suctioned to the compressor 3 through the four-way valve 4.
[0023]
[0024] The outdoor control unit 10 includes a microcomputer. The microcomputer includes, for example, a control processing unit such as a CPU (Central Processing Unit). The control processing unit implements the respective functions of the device control unit 10A, the determination unit 10B and the calculation unit 10C. Further, the outdoor control unit also has, for example, a volatile storage device (not shown) such as a random access memory (RAM) for temporarily storing data and a non-volatile auxiliary storage device (not shown) such as a hard disk and a flash memory for long-term storage of data. These storage devices implement the function of the storage unit 10E. For example, the storage device includes data in which the processing procedure performed by the control processing unit is programmed. The control processing unit executes a process based on the data of the program to thereby implement a calculation, a determination, or other processes performed by various units of the outdoor control device 10. However, this is not restrictive, and each unit may be implemented as a dedicated device (hardware).
[0025] The device control unit 10A of the outdoor control unit 10 of Embodiment 1, in the heating operation described above, in accordance with the current rotation speed of fan motor 2A in the outdoor fan 2 of the outdoor unit 100, performs a process of changing the command voltage. To be more specific, the device control unit 10A changes the command voltage so that the current rotation speed of the fan motor 2A becomes the target rotation speed set based on evaporating temperature or the like in the outdoor heat exchanger 1, and controls the rotation speed of the fan motor 2A. Here, the greater the command voltage, the larger the rotation speed of the fan motor 2A.
[0026]
[0027]
[0028] The device control unit 10A determines the target rotation speed of the fan motor 2A (step S11). Next, the device control unit 10A sets the command voltage so that the actual rotation speed of the fan motor 2A becomes the target rotation speed, rotates the fan motor 2A, and performs control (step S12).
[0029] The determination unit 10B determines whether or not the command voltage set by the device control unit 10A is equal to or greater than the clogging determination threshold value (step S13). The determination unit 10B, when the command voltage is determined not to be equal to or greater than the clogging determination threshold value, the process ends as clogging does not occur.
[0030] On the other hand, when it is determined that the command voltage is equal to or greater than the clogging determination threshold value, the determination unit 10B determines whether or not the clogging determination threshold value continues to be equal to or greater than the clogging determination threshold value continues for a set time t (step S14). If the determination unit 10B determines that such a state has not continued for the set time t, the process returns to step S13, and the determination is performed.
[0031] When the determination unit 10B determines that the clogging determination threshold is continued to be equal to or greater than the threshold set time t, the communication unit 10D transmits a signal indicating that clogging due to foreign matter has occurred to the remote control 12 (step S15). Based on the signal transmitted to the remote control 12, the remote control 12 displays, on the display device 12A of the remote control 12, characters, symbols, graphics, or other information indicating occurrence of clogging due to foreign matter, thus informing that clogging due to foreign matter has occurred.
[0032] As described above, with the outdoor unit 100 according to Embodiment 1, when it is determined that the command voltage is equal to or greater than the clogging determination threshold value during the set time t after the operation of the air-conditioning apparatus is started, clogging due to foreign matter is determined to have occurred. Therefore, it is possible to quickly deal with clogging due to foreign matter of the outdoor heat exchanger 1. The display device 12A of the remote control 12 displays the fact that clogging due to foreign matter has occurred, so that the clogging can be notified more quickly. Here, the determination unit 10B may continue the determination process based on the command voltage even after the set time t has elapsed, and may perform the determination process regarding frosting.
Embodiment 2
[0033] In Embodiment 1 described above, whether clogging due to foreign matter has occurred is determined at the start of operation of the air-conditioning apparatus. With the air-conditioning apparatus according to Embodiment 2, whether clogging has occurred is determined during operation of the air-conditioning apparatus.
[0034]
[0035] Therefore, in the air-conditioning apparatus of Embodiment 2, based on the increase rate of the command voltage for the fan motor 2A during operation, it is determined whether clogging due to foreign matter has occurred.
[0036]
[0037] The determination unit 10B determines, during the operation of the air-conditioning apparatus, whether the command voltage is increased (step S21). When the determination unit 10B determines that the command voltage is not increased, the determination unit 10B continues the determination in step S21. When the determination unit 10B determines that the command voltage is increased, the determination unit 10B determines whether the command voltage has stopped increasing (step S22). The determination unit 10B continues the determination until the command voltage stops increasing.
[0038] When the determination unit 10B determines that the command voltage has stopped increasing, the calculation unit 10C calculates the increase rate al of the command voltage in its increase period (step S23). The determination unit 10B determines whether or not the increase rate al calculated by the calculation unit 10C is equal to or greater than a preset increase rate determination threshold A (step S24). If the determination unit 10B determines that the rate of increase al is not equal to or greater than the rate of increase determination threshold A, the process returns to step S21.
[0039] On the other hand, when the determination unit 10B determines that the rate of increase al is equal to or greater than the increase rate determination threshold A, the determination unit 10B determines whether or not the state of increased command voltage after the stop of the increase continues for a preset set duration T or longer in step S25. When the determination unit 10B determines that the state of increased command voltage has continued for the set duration T or longer, the communication unit 10D transmits, to the remote control 12, a signal indicating that clogging due to foreign matter has occurred (step S26). Based on the signal transmitted to the remote control 12, the remote control 12 displays information on the display device 12A of the remote control 12 to inform that clogging due to foreign matter has occurred. If the determination unit 10B determines that the state of increased command voltage has not continued for the set duration T or more, the determination unit 10B returns to step S21.
[0040] As described above, according to the air-conditioning apparatus of Embodiment 2, during operation, the outdoor control device 10 determines whether clogging has occurred based on the rate of increase a of the command voltage and the set duration T for which the state of increased command voltage continues after the increase stops. Then, the display device 12A of the remote control 12 displays information indicating that clogging due to foreign matter has occurred. As a result, it is possible to determine occurrence of clogging due to foreign matter even during the operation of air-conditioning apparatus, whereby clogging of the outdoor heat exchanger 1 can be coped with at an early stage.
Embodiment 3
[0041] In Embodiment 1, the determination was made at the beginning of the operation of the air-conditioning apparatus. Further, in Embodiment 2, the determination was made based on the rate of increase of the command voltage during the operation of the air-conditioning apparatus. In Embodiment 3, the determination threshold value is set for determining whether clogging due to foreign matter has occurred or not based on the command voltage during the operation of the air-conditioning apparatus.
[0042]
[Math.1]
Clogging threshold Vo=(maximum rate of increase max of command voltage due to frosting)(difference in operating time (1K)t2 between normal and clogging conditions)(1)
[0043] The determination unit 10B of the outdoor control device 10 determines, based on the clogging threshold Vo, whether clogging due to foreign matter has occurred by comparing with the command voltage of the fan motor 2A during the operation of the air-conditioning apparatus.
[0044] As described above, in the air-conditioning apparatus of Embodiment 3, during operation, based on the command voltage sent to the fan motor 2A of the outdoor fan 2, the determination unit 10B of the outdoor control device 10 can more accurately determine occurrence of clogging due to foreign matter. Clogging can also be predicted by making the threshold condition strict by using the decrease ratio K.
Embodiment 4
[0045] In Embodiments 1 to 3 described above, determination was made on occurrence of clogging due to foreign matter of the outdoor heat exchanger 1 in the outdoor unit 100, but it is not restrictive. A determination of whether clogging due to foreign matter has occurred can be made also for the indoor heat exchanger 5 of the indoor unit 200 based on the air flow rate of the indoor fan 7 or other information.
[0046] In Embodiments 1 to 3, the air-conditioning apparatus has been described on the assumption that it includes a refrigeration circuit for circulating refrigerant, but it is not restrictive. For example, the above-described determination can be applied to clogging due to foreign matter in a heat exchanger that causes heat exchange to be performed between a medium other than refrigerant and is capable of transferring heat.