WO2017094147A1 - 空調機 - Google Patents
空調機 Download PDFInfo
- Publication number
- WO2017094147A1 WO2017094147A1 PCT/JP2015/083917 JP2015083917W WO2017094147A1 WO 2017094147 A1 WO2017094147 A1 WO 2017094147A1 JP 2015083917 W JP2015083917 W JP 2015083917W WO 2017094147 A1 WO2017094147 A1 WO 2017094147A1
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- WO
- WIPO (PCT)
- Prior art keywords
- refrigerant
- temperature
- expansion valve
- air conditioner
- condenser
- Prior art date
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Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B41/00—Fluid-circulation arrangements
- F25B41/30—Expansion means; Dispositions thereof
- F25B41/31—Expansion valves
- F25B41/33—Expansion valves with the valve member being actuated by the fluid pressure, e.g. by the pressure of the refrigerant
- F25B41/335—Expansion valves with the valve member being actuated by the fluid pressure, e.g. by the pressure of the refrigerant via diaphragms
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B49/00—Arrangement or mounting of control or safety devices
- F25B49/02—Arrangement or mounting of control or safety devices for compression type machines, plants or systems
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B2341/00—Details of ejectors not being used as compression device; Details of flow restrictors or expansion valves
- F25B2341/06—Details of flow restrictors or expansion valves
- F25B2341/062—Capillary expansion valves
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B2341/00—Details of ejectors not being used as compression device; Details of flow restrictors or expansion valves
- F25B2341/06—Details of flow restrictors or expansion valves
- F25B2341/063—Feed forward expansion valves
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B2600/00—Control issues
- F25B2600/25—Control of valves
- F25B2600/2513—Expansion valves
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B2700/00—Sensing or detecting of parameters; Sensors therefor
- F25B2700/21—Temperatures
- F25B2700/2116—Temperatures of a condenser
- F25B2700/21162—Temperatures of a condenser of the refrigerant at the inlet of the condenser
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B41/00—Fluid-circulation arrangements
- F25B41/30—Expansion means; Dispositions thereof
- F25B41/39—Dispositions with two or more expansion means arranged in series, i.e. multi-stage expansion, on a refrigerant line leading to the same evaporator
Definitions
- the present invention relates to an air conditioner, and more particularly to an air conditioner in which the valve opening of an expansion valve is increased or decreased.
- the required cooling capacity in the cooling operation of the air conditioner increases, so it is required to increase the flow rate of refrigerant circulating through the air conditioner.
- the required cooling capacity in the cooling operation of the air conditioner decreases, so that it is required to reduce the flow rate of the refrigerant circulating in the air conditioner. That is, in the cooling operation of the air conditioner, it is required to appropriately adjust the refrigerant flow rate circulating through the air conditioner in accordance with the outside air temperature.
- Patent Document 1 discloses a subcooling control device for a refrigerator as an expansion valve capable of adjusting a valve opening degree as a conventional technique.
- the refrigerant temperature at the outlet of the condenser is detected as a thermal change by a temperature sensing cylinder attached to the outlet pipe.
- This thermal change is converted into a change in pressure of the heated medium enclosed in the temperature sensitive cylinder. Due to the pressure change, the diaphragm is displaced, so that the valve body connected to the diaphragm is displaced.
- the gap between the valve body and the valve seat is adjusted by the displacement of the valve body. As a result, the throttle amount of the valve is adjusted.
- the throttle amount of the valve is adjusted so as to keep the degree of supercooling constant. Therefore, the throttle amount of the valve increases when the refrigerant temperature at the outlet of the condenser is high, and the throttle amount of the valve decreases when the refrigerant temperature at the outlet of the condenser is low. Since the outside air temperature and the condensation temperature are proportional, the subcooling control device for a refrigerator cannot increase the refrigerant flow rate when the outside air temperature is high, and can also decrease the refrigerant flow rate when the outside air temperature is low. Can not.
- the present invention has been made in view of the above problems, and an object of the present invention is to increase the amount of refrigerant circulating in the air conditioner when the outside air temperature is high and to circulate the air conditioner when the outside air temperature is low. It is to provide an air conditioner capable of reducing the amount.
- the air conditioner of the present invention includes a compressor, a condenser, an expansion valve, an evaporator, and a temperature detector.
- the compressor compresses the refrigerant.
- the condenser condenses the refrigerant compressed by the compressor.
- the expansion valve depressurizes the refrigerant condensed by the condenser.
- the evaporator evaporates the refrigerant decompressed by the expansion valve.
- the temperature detector is attached to the condenser and detects the temperature of the refrigerant in the condenser.
- the expansion valve can adjust the flow rate of the refrigerant passing through the expansion valve by adjusting the valve opening degree of the expansion valve. When the temperature of the refrigerant detected by the temperature detector rises, the valve opening of the expansion valve increases. When the temperature of the refrigerant detected by the temperature detector decreases, the valve opening of the expansion valve decreases.
- the temperature detection unit detects the temperature of the refrigerant in the condenser. And if the temperature of the refrigerant
- the temperature of the refrigerant in the condenser is proportional to the outside air temperature. Therefore, when the outside air temperature is high, the temperature of the refrigerant detected by the temperature detection unit increases, and when the outside air temperature is low, the temperature of the refrigerant detected by the temperature detection unit decreases.
- the valve opening degree of the expansion valve can be increased, and when the outside air temperature is low, the valve opening degree of the expansion valve can be reduced. Accordingly, the amount of refrigerant circulating through the air conditioner can be increased when the outside air temperature is high, and the flow rate of refrigerant circulating through the air conditioner can be decreased when the outside air temperature is low.
- FIG. 1 is a structural diagram of a refrigeration cycle of an air conditioner according to Embodiment 1 of the present invention.
- the structure of the air conditioner 10 in Embodiment 1 of this invention is demonstrated.
- the air conditioner 10 of the present embodiment includes a compressor 1, a condenser 2, an expansion valve 3, an evaporator 4, a condenser blower 5, an evaporator blower 6, a temperature detection unit 7, and a pipe 8. And pipes PI1 to PI4.
- the compressor 1, the condenser 2, the expansion valve 3, the condenser blower 5, the temperature detection unit 7, and the pipe 8 are accommodated in the outdoor unit 11.
- the evaporator 4 and the evaporator fan 6 are accommodated in the indoor unit 12.
- Compressor 1, condenser 2, expansion valve 3, and evaporator 4 communicate with each other via pipes PI1 to PI4 to constitute a refrigeration cycle.
- the compressor 1 and the condenser 2 are connected to each other by a pipe PI1.
- the condenser 2 and the expansion valve 3 are connected to each other by a pipe PI2.
- the expansion valve 3 and the evaporator 4 are connected to each other by a pipe PI3.
- the evaporator 4 and the compressor 1 are connected to each other by a pipe PI4.
- the refrigeration cycle is configured such that the refrigerant circulates in the order of the compressor 1, the pipe PI1, the condenser 2, the pipe PI2, the expansion valve 3, the pipe PI3, the evaporator 4, and the pipe PI4.
- R410a, R32, R1234yf, or the like can be used as the refrigerant.
- the compressor 1 is configured to compress the refrigerant.
- the compressor 1 is configured to compress and discharge the sucked refrigerant.
- the compressor 1 has a variable capacity.
- the compressor 1 of the present embodiment is configured to be able to variably control the rotational speed. Specifically, the compressor 1 adjusts the rotation speed of the compressor 1 by changing the drive frequency based on an instruction from a control device (not shown). Thereby, the capacity
- the capacity of the compressor 1 is an amount for sending out refrigerant per unit time. That is, the compressor 1 can perform high capacity operation and low capacity operation. In the high capacity operation, the operation is performed by increasing the flow rate of the refrigerant circulating in the refrigerant circuit by increasing the drive frequency of the compressor 1. In the low capacity operation, the operation is performed by reducing the flow rate of the refrigerant circulating in the refrigerant circuit by lowering the driving frequency of the compressor 1.
- the condenser 2 is configured to condense the refrigerant compressed by the compressor 1.
- the condenser 2 is an air heat exchanger composed of pipes and fins.
- the expansion valve 3 is configured to depressurize the refrigerant condensed by the condenser 2.
- the expansion valve 3 is configured such that the flow rate of the refrigerant passing through the expansion valve 3 can be adjusted by adjusting the valve opening degree of the expansion valve 3.
- the flow rate of the refrigerant passing through the expansion valve 3 is a flow rate per unit time.
- the evaporator 4 is configured to evaporate the refrigerant decompressed by the expansion valve 3.
- the evaporator 4 is an air heat exchanger composed of pipes and fins.
- the condenser blower 5 is configured to adjust the amount of heat exchange between the outdoor air and the refrigerant in the condenser 2.
- the condenser blower 5 includes a fan 5a and a motor 5b.
- the motor 5b may be configured to rotate the fan 5a with a variable number of rotations.
- the motor 5b may be configured to rotate the fan 5a at a constant rotation speed.
- the evaporator blower 6 is configured to adjust the amount of heat exchange between the indoor air and the refrigerant in the evaporator 4.
- the evaporator blower 6 includes a fan 6a and a motor 6b.
- the motor 6b may be configured to rotate the fan 6a in a variable number of rotations.
- the motor 6b may be configured to rotate the fan 6a at a constant rotation speed.
- the temperature detector 7 is attached to the condenser 2.
- the temperature detection unit 7 is configured to detect the temperature of the refrigerant in the condenser 2.
- the temperature detector 7 is connected to the expansion valve 3 via a pipe 8. When the temperature of the refrigerant detected by the temperature detector 7 increases, the valve opening of the expansion valve 3 increases. When the temperature of the refrigerant detected by the temperature detector 7 decreases, the valve opening of the expansion valve 3 decreases.
- the temperature detector 7 detects the temperature of the refrigerant in a state before the refrigerant is condensed and liquefied in the condenser 2.
- the temperature detector 7 is provided at a location where the condenser 2 can detect the condensation temperature of the refrigerant. Therefore, the temperature detector 7 may be provided at the inlet portion of the condenser 2 or at an intermediate portion between the inlet and the outlet of the condenser 2.
- the expansion valve 3 is a temperature type expansion valve.
- the expansion valve 3, which is a temperature type expansion valve, is configured such that the valve opening degree is adjusted according to the temperature change of the refrigerant in the condenser 2.
- the temperature detection unit 7 is a temperature sensitive cylinder. A refrigerant having properties similar to those of the refrigerant used in the refrigerant cycle is sealed in the temperature detector 7 which is a temperature sensitive cylinder.
- the expansion valve 3 includes a case 31, a diaphragm 32, a valve body 33, a valve seat 34, and a spring 35.
- a diaphragm 32 is attached to the inside of the case 31 so as to partition the inside of the case 31.
- the case 31 has a first chamber S1 and a second chamber S2 partitioned by a diaphragm 32.
- the tube 8 is inserted in the first chamber S1.
- the first chamber S ⁇ b> 1 is configured to allow the refrigerant enclosed in the temperature detection unit 7, which is a temperature sensitive cylinder, to enter and exit via the pipe 8. That is, the refrigerant sealed in the temperature detector 7 which is a temperature sensitive cylinder enters and exits the first chamber S1 through the pipe 8 as indicated by a double arrow A1 in FIG.
- the second chamber S2 has an inflow portion 31a and an outflow portion 31b.
- the inflow portion 31a is connected to the pipe PI2.
- the outflow part 31b is connected to the pipe PI3.
- the second chamber S2 is configured such that the refrigerant flowing through the refrigeration cycle flows from the pipe PI2 through the inflow portion 31a into the second chamber S2, and flows out through the outflow portion 31b to the pipe PI3. That is, as indicated by an arrow A2 in FIG. 2, the refrigerant flowing through the refrigeration cycle flows into the second chamber S2 from the inflow portion 31a and out of the outflow portion 31b.
- the pressure in the first chamber S1 is the pressure of the refrigerant sealed in the temperature detector 7 which is a temperature sensitive cylinder.
- the pressure in the second chamber S2 becomes the pressure of the refrigerant flowing through the refrigeration cycle.
- the diaphragm 32 is configured to be deformable by a differential pressure between the pressure in the first chamber S1 and the pressure in the second chamber S2.
- the valve element 33 has a first end E1, a second end E2, a shaft portion 33a, and a tapered portion 33b.
- the first end E1 is connected to the diaphragm 32.
- the second end E2 is connected to the spring 35.
- a shaft portion 33 a and a taper portion 33 b extend in the axial direction of the valve body 33.
- the axial direction of the valve body 33 is a direction in which the first end E1 and the second end E2 face each other as indicated by an arrow A3 in FIG.
- the shaft portion 33a has a first end E1.
- the tapered portion 33b has a second end E2.
- the shaft portion 33a is connected to the taper portion 33b on the opposite side of the first end E1 in the axial direction A3.
- the tapered portion 33b is configured such that the cross-sectional area continuously increases from the shaft portion 33a toward the second end E2.
- the valve body 33 is configured to move in the axial direction A ⁇ b> 3 by the deformation of the diaphragm 32.
- a gap is provided between the tapered portion 33 b of the valve body 33 and the valve seat 34.
- the expansion valve 3 is configured such that the size of the gap between the taper portion 33b and the valve seat 34 continuously changes as the valve element 33 moves in the axial direction A3 due to the deformation of the diaphragm 32. . That is, the expansion valve 3 is configured such that the throttle amount of the expansion valve 3 changes in proportion to the amount of movement of the valve body 33 in the axial direction A3.
- the expansion valve 3 is configured such that when the valve element 33 moves to the first end E1 side in the axial direction A3, the gap between the tapered portion 33b and the valve seat 34 becomes small. That is, the expansion valve 3 is configured such that when the valve element 33 moves toward the first end E1 in the axial direction A3, the throttle amount of the expansion valve 3 increases.
- the expansion valve 3 is configured such that when the valve element 33 moves to the second end E2 side in the axial direction A3, the gap between the tapered portion 33b and the valve seat 34 becomes large. That is, the expansion valve 3 is configured such that when the valve element 33 moves to the second end E2 side in the axial direction A3, the throttle amount of the expansion valve 3 becomes small.
- the valve seat 34 is attached to the inside of the case 31.
- the valve seat 34 is disposed between the inflow portion 31a and the outflow portion 31b in the flow path from the inflow portion 31a to the outflow portion 31b.
- the valve seat 34 is disposed outside the tapered portion 33 b of the valve body 33.
- the spring 35 is connected to the second end E ⁇ b> 2 of the valve element 33 and the bottom of the case 31.
- the spring 35 is configured to urge the valve body 33 by an elastic force.
- the refrigerant flowing into the compressor 1 is compressed by the compressor 1 to become a high-temperature high-pressure gas refrigerant.
- the high-temperature high-pressure gas refrigerant discharged from the compressor 1 flows into the condenser 2 that is a radiator through the pipe PI1.
- the refrigerant flowing into the condenser 2 exchanges heat with air in the condenser 2.
- the refrigerant is condensed by heat dissipation into the air, and the air is heated by the refrigerant.
- the high-pressure liquid refrigerant condensed in the condenser 2 flows into the expansion valve 3 through the pipe PI2.
- the refrigerant flowing into the expansion valve 3 is decompressed by the expansion valve 3 and becomes a low-pressure gas-liquid two-phase refrigerant.
- the refrigerant depressurized by the expansion valve 3 flows into the evaporator 4 through the pipe PI3.
- the refrigerant that has flowed into the evaporator 4 exchanges heat with air in the evaporator 4. Specifically, in the evaporator 4, air is cooled by a refrigerant, and the refrigerant becomes a low-pressure gas refrigerant.
- the refrigerant that has been depressurized in the evaporator 4 to become low-pressure gas flows into the compressor 1 through the pipe PI4.
- the refrigerant that has flowed into the compressor 1 is compressed again and pressurized, and then discharged from the compressor 1.
- the diaphragm 32 has a difference between the pressure in the first chamber S1 of the case 31 (internal pressure of the temperature detecting unit 7 as a temperature sensing cylinder) A4 and the pressure in the second chamber S2 (pressure of the refrigerant condensed in the condenser 2) A5. Deforms due to pressure.
- the pressure in the first chamber S1 of the case 31 becomes higher than the pressure in the second chamber S2.
- the diaphragm 32 is deformed so as to be convex toward the second chamber S2. Due to the deformation of the diaphragm 32, the valve element 33 moves to the second end E2 side in the axial direction A3. For this reason, the clearance gap between the taper part 33b and the valve seat 34 becomes large. That is, the throttle amount of the expansion valve 3 is reduced. Thereby, the amount of refrigerant flowing through the expansion valve 3 increases.
- the pressure in the first chamber S1 of the case 31 becomes lower than the pressure in the second chamber S2.
- the diaphragm 32 is deformed so as to be convex toward the first chamber S1. Due to the deformation of the diaphragm 32, the valve element 33 moves toward the first end E1 in the axial direction A3. For this reason, the clearance gap between the taper part 33b and the valve seat 34 becomes small. That is, the throttle amount of the expansion valve 3 is increased. Thereby, the refrigerant
- the amount of movement of the valve body 33 in the axial direction A3 includes the pressure of the refrigerant sealed in the temperature detection unit 7 flowing into the first chamber S1, and the pressure of the refrigerant in the refrigeration cycle flowing into the second chamber S2. It is determined by the urging force A6 of the spring 35 connected to the valve element 33.
- the throttle amount required for the temperature type expansion valve can be expressed by a flow coefficient (Cv value).
- This Cv is expressed by the following equation (1) using the refrigerant circulation flow rate Gr, the condensation pressure P1, the evaporation pressure P2, and the refrigerant density ⁇ l at the inlet of the expansion valve.
- the refrigerant flow rate and the Cv value are in a proportional relationship. Therefore, as shown in FIG. 6, the refrigerant flow rate and the Cv value (necessary Cv value) are in a proportional relationship.
- the flow coefficient of the expansion valve 3 increases when the temperature of the refrigerant detected by the temperature detector 7 increases, and expands when the temperature of the refrigerant detected by the temperature detector 7 decreases.
- the flow coefficient of the valve 3 decreases.
- the temperature detector 7 detects the temperature of the refrigerant in the condenser 2.
- the valve opening of the expansion valve 3 increases.
- the valve opening of the expansion valve 3 decreases.
- the temperature of the refrigerant in the condenser 2 is proportional to the outside air temperature. Therefore, when the outside air temperature is high, the temperature of the refrigerant detected by the temperature detecting unit 7 becomes high, and when the outside air temperature is low, the temperature of the refrigerant detected by the temperature detecting unit 7 becomes low.
- the valve opening degree of the expansion valve 3 can be increased when the outside air temperature is high, and the valve opening degree of the expansion valve 3 can be decreased when the outside air temperature is low.
- the amount of refrigerant circulating through the air conditioner 10 can be increased, and when the outside air temperature is low, the refrigerant flow rate circulating through the air conditioner 10 can be reduced. Therefore, in the cooling operation of the air conditioner 10, the refrigerant flow rate circulating through the air conditioner 10 can be appropriately adjusted according to the outside air temperature.
- the throttle amount of the expansion valve 3 can be changed according to the temperature of the refrigerant in the condenser 2. For this reason, an increase in the refrigerant discharge temperature of the compressor 1 can be suppressed as compared with a case where a capillary with a fixed throttle amount is used as the expansion valve. Therefore, failure of the compressor 1 due to an increase in the refrigerant discharge temperature of the compressor 1 can be suppressed.
- the throttle amount of the expansion valve 3 can be changed according to the temperature of the refrigerant in the condenser 2. Therefore, the refrigerant at the outlet of the evaporator 4 is in a state close to saturated gas by adjusting the superheat degree determined by the difference between the refrigerant temperature at the outlet of the evaporator 4 and the refrigerant temperature inside the evaporator 4 to about 1K to 5K. Can be controlled. Therefore, the refrigerant sucked into the compressor 1 can be controlled in a state close to saturated gas. For this reason, the performance of the compressor 1 can be improved compared with the case where a capillary with a fixed throttle amount is used as the expansion valve.
- the throttle amount of the expansion valve 3 can be changed according to the temperature of the refrigerant in the condenser 2. For this reason, the degree of supercooling at the outlet of the condenser 2 can be ensured. Therefore, it is possible to reduce noise generated when the gas phase flows into the inlet of the expansion valve 3.
- the throttle amount of the expansion valve 3 can be changed according to the temperature of the refrigerant in the condenser 2. For this reason, the high pressure of the condenser 2 can be controlled. Therefore, in order to control the high pressure of the condenser 2, it is not necessary to make the rotation speed of the fan 5a of the condenser blower 5 variable. Therefore, a constant speed machine with a constant rotation speed of the fan 5a can be used as the condenser blower 5.
- the temperature detector 7 when a refrigerant having a high discharge temperature (for example, R410a, R32, R1234yf, etc.) is used, when the temperature detector 7 is attached to the outlet of the evaporator 4, the degree of superheat is kept constant, so The temperature cannot be lowered under conditions where the discharge temperature becomes high.
- the temperature detection unit 7 is attached to the condenser 2, and the refrigerant sucked into the compressor 1 can be operated in a gas-liquid two phase. Therefore, the discharge temperature can be lowered. As a result, failure of the compressor 1 can be prevented even when a refrigerant having a high discharge temperature is used.
- the expansion valve 3 is a temperature type expansion valve
- the temperature detection unit 7 is a temperature sensitive cylinder.
- a temperature type expansion valve can be used as the expansion valve 3
- a temperature sensitive cylinder can be used as the temperature detection unit 7. Therefore, the size and cost of the air conditioner 10 can be reduced as compared with the case where an electronic expansion valve is used. That is, when an electronic expansion valve is used, an electronic board for driving the electronic expansion valve is required, and thus it is necessary to secure a space for installing the electronic board. For this reason, the size of the air conditioner 10 becomes large. Further, since an actuator for driving the electronic expansion valve is required, the cost of the air conditioner 10 increases.
- a temperature type expansion valve can be used as the expansion valve 3 and a temperature sensing cylinder can be used as the temperature detection unit 7. Therefore, an electronic type expansion valve is used. Compared to the case, the size and cost of the air conditioner 10 can be reduced.
- the compressor 1 can variably control the rotation speed. For this reason, the cooling capacity can be changed by variably controlling the rotation speed of the compressor 1. Therefore, the amount of refrigerant circulating through the air conditioner 10 can be increased when the outside air temperature is high and the amount of refrigerant circulating in the air conditioner 10 can be increased when the outside air temperature is high while the rotation speed of the compressor 1 is variably controlled. The flow rate of the refrigerant circulating through the air conditioner 10 can be reduced.
- the flow coefficient of the expansion valve 3 increases when the temperature of the refrigerant detected by the temperature detector 7 increases, and the expansion valve when the temperature of the refrigerant detected by the temperature detector 7 decreases.
- the flow coefficient of 3 decreases. For this reason, the expansion valve 3 can be adjusted by the change of the flow coefficient.
- the temperature detection unit 7 detects the temperature of the refrigerant in a state before the refrigerant is condensed and liquefied in the condenser 2. For this reason, the temperature of the refrigerant proportional to the outside air temperature can be accurately detected. Therefore, the flow rate of the refrigerant circulating through the air conditioner 10 can be adjusted accurately according to the outside air temperature.
- the configuration of the expansion valve 3 in the second embodiment of the present invention is different from that in the first embodiment.
- the expansion valve 3 in which the refrigerant temperature and the flow coefficient (Cv value) detected by the temperature detector 7 are linear is used.
- the expansion valve 3 of the second embodiment is configured so that the flow coefficient (Cv value) changes stepwise when the valve element 33 moves to a predetermined position.
- the valve element 33 includes a shaft portion 33a and a tubular portion 33c.
- the tubular portion 33c has a peripheral wall, an internal space surrounded by the peripheral wall, and a first hole H1 and a second hole H2 provided in the peripheral wall.
- the second hole H2 has an opening area smaller than that of the first hole H1.
- the first hole H1 and the second hole H2 communicate with the internal space.
- the valve seat 34 is inserted from the second end E2 into the internal space of the tubular portion 33c.
- the valve seat 34 extends in the axial direction A3.
- the expansion valve 3 is configured such that the refrigerant flows from the inflow portion 31a to the outflow portion 31b through either the first hole H1 or the second hole H2.
- the spring 35 has a first spring 35a and a second spring 35b. The first spring 35 a and the second spring 35 b are connected to the second end E ⁇ b> 2 of the valve element 33 and the bottom of the valve seat 34.
- the expansion valve 3 has a first flow path F1 and a second flow path F2.
- the first flow path F1 is a flow path from the inflow portion 31a to the outflow portion 31b through the first hole H1.
- the first flow path F1 has a large refrigerant flow rate and a large flow coefficient (Cv value).
- the second flow path F2 is a flow path from the inflow portion 31a to the outflow portion 31b through the second hole H2.
- the second flow path F2 has a smaller flow rate than the first flow path F1.
- the second flow path F2 has a small refrigerant flow rate and a small flow coefficient (Cv value).
- the expansion valve 3 is switched to the first flow path F1 when the temperature of the refrigerant detected by the temperature detection unit 7 rises, and the temperature of the refrigerant detected by the temperature detection unit 7 is changed. If it falls, it will switch to the 2nd flow path F2. Specifically, as shown in FIG. 7, the first flow path F1 and the second flow path F2 are switched at a predetermined temperature A (for example, an outside air temperature of 35 ° C. based on the ISO standard).
- a predetermined temperature A for example, an outside air temperature of 35 ° C. based on the ISO standard.
- the expansion valve 3 is switched to the first flow path F1 when the temperature of the refrigerant detected by the temperature detection unit 7 rises, and the temperature of the refrigerant detected by the temperature detection unit 7 is changed. If it falls, it will switch to the 2nd flow path F2. For this reason, the 1st flow path F1 and the 2nd flow path F2 can be switched based on the temperature of the refrigerant
- the flow coefficient (Cv value) can be increased when, for example, the discharge temperature becomes the outside air temperature or the condensation temperature exceeding the upper limit temperature of the compressor 1. Therefore, it is possible to operate the refrigerant in a gas-liquid two-phase state at the inlet of the compressor 1. For this reason, since discharge temperature reduces, it is possible to drive
- valve element 33 is easier to process than a normal valve element, so the cost of the expansion valve 3 can be reduced. Therefore, the cost of the air conditioner 10 can also be reduced.
- a normal air conditioner is provided with a mechanism that can change the rotation speed of the fan of the condenser blower in order to control the condensation temperature.
- a DC fan is mounted.
- the operation which raises the rotation speed of the fan of the fan for condensers, and reduces condensation temperature is performed.
- the discharge temperature has risen, it is possible to perform an operation with an increased flow coefficient (Cv value), so that the refrigerant at the inlet of the compressor 1 is gas-liquid two-phase. In this state, the discharge temperature decreases. For this reason, it is possible to supplement the protection operation of the condenser blower 5 with the expansion valve 3. Therefore, the air conditioner 10 of this Embodiment is useful when the rotation speed of the fan 5a of the condenser blower 5 is constant.
- valve body 33 and the valve seat 34 are not limited to the above configuration, and may be configured so as to change the flow coefficient (Cv value) by changing the flow path.
- a modified example of the present embodiment will be described with reference to FIGS. 11 and 12.
- the valve body 33 has a third hole H3 and a fourth hole H4.
- the third hole H3 is provided in the upper part of the valve body 33.
- the third hole H3 is configured such that the refrigerant can always flow therethrough. When the refrigerant flows only through the third hole H3, the refrigerant flow rate becomes small and the flow coefficient (Cv value) becomes small.
- the fourth hole H4 is provided in the side portion of the valve body 33.
- the fourth hole H4 is configured such that the refrigerant flows when the valve body 33 is lowered.
- the refrigerant flow rate increases and the flow coefficient (Cv value) increases.
- air conditioner 10 according to the third embodiment of the present invention is different from air conditioner 10 according to the first embodiment in that it includes capillary 9.
- the air conditioner 10 of the present embodiment further includes a capillary 9.
- the capillary 9 is connected to the expansion valve 3 and the evaporator 4. For this reason, the refrigerant can be condensed by the capillary 9.
- the capillary 9 Since the capillary 9 is disposed after the expansion valve 3, even if the expansion valve 3 fails, the capillary 9 can ensure a minimum amount of restriction. For example, although the required flow coefficient (Cv value) is small, if the expansion valve 3 fails and is fixed where the flow coefficient (Cv value) is large, more refrigerant flow flows. The refrigerant is in a gas-liquid two-phase state at the inlet of the compressor 1. In the present embodiment, since the capillary 9 is provided after the expansion valve 3, it is possible to operate in a state where the capillary 9 is throttled at a minimum. Therefore, even when the expansion valve 3 fails, the safety of the compressor 1 can be ensured.
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Abstract
Description
(実施の形態1)
図1は、本発明の実施の形態1における空調機の冷凍サイクルの構造図である。まずは、図1を参照して、本発明の実施の形態1における空調機10の構成について説明する。
図1を参照して、圧縮機1に流入した冷媒は圧縮機1により圧縮されて高温高圧ガス冷媒となる。圧縮機1から吐出された高温高圧ガス冷媒は、配管PI1を通って放熱器である凝縮器2に流入する。凝縮器2に流入した冷媒は、凝縮器2において空気と熱交換する。具体的には、凝縮器2において、冷媒は空気中への放熱によって凝縮し、空気は冷媒によって加熱される。凝縮器2で凝縮された高圧液冷媒は、配管PI2を通って膨張弁3に流入する。
冷凍サイクルに必要とされる冷却能力は、外気温度によって決まる。これは、外気温度が高くなると、外気温度の上昇に比例して室内空気温度が上昇するため、より多くの冷却能力が必要となるからである。したがって、図4に示すように、外気温度と冷却能力(冷房負荷=必要能力)とは比例関係となる。外気温度の上昇と凝縮温度の上昇とは比例関係にあるので、図4の横軸を凝縮温度とすることができる。この点については、図5および図6も同様である。
本実施の形態の空調機10によれば、温度検知部7は凝縮器2内の冷媒の温度を検出する。そして、温度検知部7で検出された冷媒の温度が上昇すると膨張弁3の弁開度が増加し、温度検知部7で検出された冷媒の温度が低下すると膨張弁3の弁開度が減少する。凝縮器2内の冷媒の温度は外気温度に比例する。したがって、外気温度が高いと温度検知部7で検知された冷媒の温度が高くなり、外気温度が低いと温度検知部7で検知された冷媒の温度が低くなる。このため、外気温度が高いときに膨張弁3の弁開度を増加させることができ、外気温度が低いときに膨張弁3の弁開度を減少させることができる。これにより、外気温度が高いときに空調機10を循環する冷媒量を増大させることができ、外気温度が低いときに空調機10を循環する冷媒流量を減少させることができる。よって、空調機10の冷房運転において、外気温度にあわせて空調機10を循環する冷媒流量を適切に調整することができる。
以下、特に説明しない限り、実施の形態1と同一の構成には同一の符号を付し、説明を繰り返さない。
図13を参照して、本発明の実施の形態3の空調機10は、上記の実施の形態1の空調機10に比べて、キャピラリ9を有している点で異なっている。
Claims (7)
- 冷媒を圧縮する圧縮機と、
前記圧縮機により圧縮された前記冷媒を凝縮する凝縮器と、
前記凝縮器により凝縮された前記冷媒を減圧する膨張弁と、
前記膨張弁により減圧された前記冷媒を蒸発させる蒸発器と、
前記凝縮器に取り付けられ、かつ前記凝縮器内の前記冷媒の温度を検出する温度検知部とを備え、
前記膨張弁は、前記膨張弁の弁開度を調整することにより、前記膨張弁を通る冷媒の流量を調整可能であり、
前記温度検知部で検出された前記冷媒の温度が上昇すると前記膨張弁の弁開度が増加し、前記温度検知部で検出された前記冷媒の温度が低下すると前記膨張弁の弁開度が減少する、空調機。 - 前記膨張弁は、温度式膨張弁であり、
前記温度検知部は、感温筒である、請求項1に記載の空調機。 - 前記圧縮機は、回転数を可変に制御可能である、請求項1または2に記載の空調機。
- 前記温度検知部で検出された前記冷媒の温度が上昇すると前記膨張弁の流量係数は増加し、前記温度検知部で検出された前記冷媒の温度が低下すると前記膨張弁の流量係数は減少する、請求項1~3のいずれか1項に記載の空調機。
- 前記膨張弁は、第1流路と、前記第1流路よりも小さな流量を有する第2流路とを含み、
前記膨張弁は、前記温度検知部で検出された前記冷媒の温度が上昇すると前記第1流路に切り替えられ、前記温度検知部で検出された前記冷媒の温度が低下すると前記第2流路に切り替えられる、請求項1~4のいずれか1項に記載の空調機。 - キャピラリをさらに備え、
前記キャピラリは、前記膨張弁と前記蒸発器とに接続されている、請求項1~5のいずれか1項に記載の空調機。 - 前記温度検知部は、前記凝縮器内において前記冷媒が凝縮されて液化する前の状態の前記冷媒の温度を検出する、請求項1~6のいずれか1項に記載の空調機。
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AU2015416486A AU2015416486B2 (en) | 2015-12-02 | 2015-12-02 | Air conditioner |
PCT/JP2015/083917 WO2017094147A1 (ja) | 2015-12-02 | 2015-12-02 | 空調機 |
KR1020187013991A KR102170528B1 (ko) | 2015-12-02 | 2015-12-02 | 공조기 |
US15/774,614 US10731904B2 (en) | 2015-12-02 | 2015-12-02 | Air conditioner |
JP2017549352A JP6342084B2 (ja) | 2015-12-02 | 2015-12-02 | 空調機 |
CN201580085152.9A CN108369045B (zh) | 2015-12-02 | 2015-12-02 | 空调机 |
EP15909777.3A EP3385645B1 (en) | 2015-12-02 | 2015-12-02 | Air conditioner |
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JP6467011B2 (ja) * | 2017-09-25 | 2019-02-06 | 三菱電機株式会社 | 空調機 |
CN109611607B (zh) * | 2018-12-18 | 2020-02-14 | 深圳创维空调科技有限公司 | 三通分流器及空调系统 |
JP7150135B2 (ja) * | 2019-02-28 | 2022-10-07 | 三菱電機株式会社 | 冷凍サイクル装置 |
KR20200145489A (ko) | 2019-06-21 | 2020-12-30 | 하지훈 | 가감압공조기 |
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