TECHNICAL FIELD
[0001] The present disclosure relates to an outdoor unit.
BACKGROUND ART
[0002] A refrigerant leaking from a refrigerant circuit is typically reserved at a low level,
and a sensor configured to detect refrigerant leakage is accordingly disposed in a
lower portion of a case as disclosed in Patent Literature 1 (
Japanese Laid-Open Patent Publication No. 2020-180770).
SUMMARY OF THE INVENTION
<Technical Problem>
[0003] The sensor disposed in the lower portion of the case may get wet with water to have
trouble.
<Solution to Problem>
[0004] An outdoor unit according to a first aspect is an outdoor unit of a heat pump cycle
apparatus. The outdoor unit includes a bottom frame, a plate-shaped member, a compressor,
a first heat exchanger, a refrigerant circuit, and a sensor. The plate-shaped member
is disposed above the bottom frame to be spaced apart from the bottom frame. The compressor
is mounted on the plate-shaped member to be supported by the bottom frame with the
plate-shaped member being interposed therebetween. The compressor compresses a refrigerant.
The first heat exchanger causes heat exchange between the refrigerant and air. The
refrigerant circuit connects, by means of a pipe, the compressor and the first heat
exchanger. The sensor detects the refrigerant to find leakage of the refrigerant.
The sensor is disposed on the plate-shaped member.
[0005] In the outdoor unit according to the first aspect, the sensor configured to detect
refrigerant leakage is provided on the plate-shaped member disposed to be spaced apart
from the bottom frame. The sensor is thus less likely to get wet with water. The outdoor
unit can accordingly have less risk of sensor trouble by getting wet with water.
[0006] An outdoor unit according to a second aspect is the outdoor unit according to the
first aspect, in which the plate-shaped member supports the sensor.
[0007] An outdoor unit according to a third aspect is the outdoor unit according to the
first or second aspect, in which a height position of an upper surface of the plate-shaped
member or a height position of a refrigerant detector in the sensor is within a height
range of 300 mm from a height position of an upper surface of the bottom frame.
[0008] The outdoor unit according to the third aspect is thus configured so as to be able
to achieve accurate detection of refrigerant leakage.
[0009] An outdoor unit according to a fourth aspect is the outdoor unit according to any
one of the first to third aspects, in which the refrigerant circuit further connects
a second heat exchanger by means of the pipe. The second heat exchanger causes heat
exchange between the refrigerant and a heating medium. The outdoor unit further includes
a heating medium circuit, a gas-liquid separator, and a degassing valve. The heating
medium circuit has a flow of the heating medium that exchanges heat with the refrigerant
in the second heat exchanger. The gas-liquid separator is connected to the heating
medium circuit. The degassing valve is attached to the gas-liquid separator. The degassing
valve degasses the gas-liquid separator. The sensor is disposed in a space below the
gas-liquid separator.
[0010] In the outdoor unit according to the fourth aspect, the sensor is disposed in the
space below the gas-liquid separator, where a leaking refrigerant is highly possibly
reserved. The outdoor unit can thus achieve accurate detection of refrigerant leakage.
[0011] An outdoor unit according to a fifth aspect is the outdoor unit according to the
fourth aspect, and further includes a fan. The fan supplies air that exchanges heat
with the refrigerant. When the sensor detects leakage of the refrigerant, the outdoor
unit drives the fan.
[0012] The outdoor unit according to the fifth aspect is thus configured so as to enable
agitation of a reserved refrigerant.
[0013] An outdoor unit according to a sixth aspect is the outdoor unit according to any
one of the first to fifth aspects, in which the refrigerant is categorized as having
flammability in class 2 or higher flammability in class 3 by ISO 817.
[0014] An outdoor unit according to a seventh aspect is the outdoor unit according to the
fifth aspect, in which a fan chamber and a machine chamber are partitioned by a partitioning
member. The fan chamber accommodates the fan. The machine chamber accommodates the
compressor and the second heat exchanger. The sensor is disposed near the second heat
exchanger in the machine chamber.
[0015] The outdoor unit according to the seventh aspect is thus configured so as to be able
to achieve accurate detection of a refrigerant leaking in the second heat exchanger.
[0016] An outdoor unit according to an eighth aspect is the outdoor unit according to any
one of the first to seventh aspects, in which the plate-shaped member is supported
by the bottom frame with an elastic member being interposed therebetween.
[0017] The outdoor unit according to the eighth aspect is thus configured so as to be able
to have less risk of sensor trouble due to vibration.
BRIEF DESCRIPTION OF THE DRAWINGS
[0018]
FIG. 1 is a schematic configuration diagram of a heat pump cycle apparatus.
FIG. 2 is a perspective view of an outdoor unit with part of constituent components
of the outdoor unit being detached therefrom.
FIG. 3 is a side view of the outdoor unit with part of the constituent components
of the outdoor unit being detached therefrom.
DESCRIPTION OF EMBODIMENTS
(1) Entire configuration
[0019] FIG. 1 is a schematic configuration diagram of a heat pump cycle apparatus 100. As
depicted in FIG. 1, the heat pump cycle apparatus 100 is configured to cool or heat
a heating medium flowing in a heating medium circuit 30 with use of a refrigerant
circulating in a refrigerant circuit 10, and condition air, supply hot water, heat
a floor, or the like with use of the heating medium cooled or heated by the refrigerant.
The heating medium flowing in the heating medium circuit 30 is water (hereinafter,
the heating medium circuit 30 may be called a water circuit 30) in the present embodiment.
Water flowing in the water circuit 30 should not be limited to pure water, but may
alternatively be brine or the like. Examples of the brine include an aqueous solution
of calcium chloride, an aqueous solution of ethylene glycol, and an aqueous solution
of propylene glycol. The following description exemplifies a case where the heat pump
cycle apparatus 100 functions as an air conditioner configured to execute cooling
operation and heating operation in the present embodiment.
[0020] The heat pump cycle apparatus 100 principally includes an outdoor unit 90 and a utilization
facility 34.
(2) Detailed configurations
(2-1) Outdoor unit
[0021] The outdoor unit 90 is disposed in an outdoor space such as on a roof of a building
or around the building. FIG. 2 is a perspective view of the outdoor unit 90 with part
of constituent components of the outdoor unit 90 being detached therefrom. FIG. 3
is a side view of the outdoor unit 90 with part of the constituent components of the
outdoor unit 90 being detached therefrom. As depicted in FIG. 1 to FIG. 3, the outdoor
unit 90 includes a case 91, a partitioning member 92, a bottom frame 93, and a plate-shaped
member 94. The case 91 constitutes an outer contour of the outdoor unit 90. The partitioning
member 92 partitions the interior of the case 91 into a fan chamber R1 and a machine
chamber R2. Specifically as depicted in FIG. 2, the case 91 includes a left side of
the partitioning member 92 serving as the fan chamber R1 and a right side of the partitioning
member 92 serving as the machine chamber R2. The bottom frame 93 constitutes a lower
surface of the case 91. The plate-shaped member 94 is disposed above the bottom frame
93 in the machine chamber R2 to be spaced apart from the bottom frame 93. The plate-shaped
member 94 is supported by the bottom frame 93 with an elastic member 95 such as rubber
or plastic being interposed therebetween.
[0022] The outdoor unit 90 principally includes the refrigerant circuit 10, part of the
water circuit 30 (including a gas-liquid separator 40 connected to the water circuit
30), a fan 60, a refrigerant sensor 70, and a controller 80, which are accommodated
in the case 91.
(2-1-1) Refrigerant circuit
[0023] The refrigerant circuit 10 achieves a vapor compression refrigeration cycle. The
vapor compression refrigeration cycle includes repeating steps of compressing a gas
refrigerant having low temperature and low pressure to have high temperature and high
pressure in the refrigeration cycle, causing the refrigerant to radiate heat at a
radiator (condenser), causing the refrigerant to expand at an expansion mechanism
to have low temperature and low pressure, causing the refrigerant to absorb heat at
an evaporator, and compressing again the gas refrigerant having low temperature and
low pressure and having absorbed heat at the evaporator.
[0024] As depicted in FIG. 1, the refrigerant circuit 10 principally includes a compressor
12, a flow path switching mechanism 14, a first heat exchanger 16, an expansion mechanism
18, and a second heat exchanger 20. The refrigerant circuit 10 connects, by means
of a pipe P, the compressor 12, the flow path switching mechanism 14, the first heat
exchanger 16, the expansion mechanism 18, and the second heat exchanger 20.
[0025] Described herein is the refrigerant circuit 10 having a merely exemplary configuration.
For example, the refrigerant circuit 10 may further include a receiver configured
to reserve a refrigerant, a device configured to subcool a refrigerant, or the like.
Exemplarily described herein is a case where the heat pump cycle apparatus 100 functions
as an air conditioner configured to execute cooling operation and heating operation,
and the heat pump cycle apparatus 100 accordingly includes the flow path switching
mechanism 14. In another case where the heat pump cycle apparatus 100 functions as
an air conditioner configured to execute only cooling operation or only heating operation,
the heat pump cycle apparatus 100 may not include the flow path switching mechanism
14.
[0026] The refrigerant according to the present embodiment is categorized as having flammability
in class 2 or higher flammability in class 3 by ISO 817. Examples of the refrigerant
herein include R290 (propane) having higher flammability and a lower flammability
limit (LFL) of 3.5% or less. The refrigerant should not be limited to these in terms
of its type.
(2-1-1-1) Pipes
[0027] As depicted in FIG. 1, the pipe P of the refrigerant circuit 10 includes a suction
pipe P1, a discharge pipe P2, a first gas pipe P3, a liquid pipe P4, and a second
gas pipe P5.
[0028] The suction pipe P1 connects a suction port of the compressor 12 and the flow path
switching mechanism 14. The suction pipe P1 is provided with an accumulator (not depicted).
The discharge pipe P2 connects a discharge port of the compressor 12 and the flow
path switching mechanism 14. The first gas pipe P3 connects the flow path switching
mechanism 14 and a gas side of the first heat exchanger 16. The liquid pipe P4 connects
a liquid side of the first heat exchanger 16 and the second heat exchanger 20. The
liquid pipe P4 is provided with the expansion mechanism 18. The second gas pipe P5
connects the second heat exchanger 20 and the flow path switching mechanism 14.
(2-1-1-2) Compressor
[0029] The compressor 12 sucks a low-pressure refrigerant in the refrigeration cycle via
the suction pipe P1, causes a compression mechanism (not depicted) to compress the
refrigerant, and discharges a high-pressure refrigerant obtained by compression in
the refrigeration cycle via the discharge pipe P2. The compressor 12 is exemplarily
of a scroll type. The compressor 12 should not be limited in type to the scroll type,
but may alternatively be of a screw type, a rotary type, or the like. The compressor
12 exemplary has variable capacity, or may alternatively have a constant capacity.
[0030] As depicted in FIG. 2 and FIG. 3, the compressor 12 is disposed in the machine chamber
R2. The compressor 12 is mounted on the plate-shaped member 94 to be supported by
the bottom frame 93 with the plate-shaped member 94 being interposed therebetween.
(2-1-1-3) Flow path switching mechanism
[0031] The flow path switching mechanism 14 is configured to switch a refrigerant flow direction
in the refrigerant circuit 10 in accordance with an operating mode of the heat pump
cycle apparatus 100. The heat pump cycle apparatus 100 has operating modes including
a mode of cooling water in the water circuit 30 with use of a refrigerant (hereinafter,
called a cooling mode), and a mode of heating the water in the water circuit 30 (hereinafter,
called a heating mode).
[0032] The flow path switching mechanism 14 according to the present embodiment is configured
as a four-way switching valve. The flow path switching mechanism 14 should not be
limited to the four-way switching valve, but may alternatively combine a plurality
of electromagnetic valves and pipes so as to switch the refrigerant flow direction
as follows.
[0033] In the cooling mode, the flow path switching mechanism 14 switches the refrigerant
flow direction in the refrigerant circuit 10 such that the refrigerant discharged
from the compressor 12 is sent to the first heat exchanger 16. Specifically, in the
cooling mode, the flow path switching mechanism 14 allows the suction pipe P1 and
the second gas pipe P5 to communicate with each other, and allows the discharge pipe
P2 and the first gas pipe P3 to communicate with each other (see solid lines in the
flow path switching mechanism 14 in FIG. 1).
[0034] In the heating mode, the flow path switching mechanism 14 switches the refrigerant
flow direction in the refrigerant circuit 10 such that the refrigerant discharged
from the compressor 12 is sent to the second heat exchanger 20. Specifically, in the
heating mode, the flow path switching mechanism 14 allows the suction pipe P1 and
the first gas pipe P3 to communicate with each other, and allows the discharge pipe
P2 and the second gas pipe P5 to communicate with each other (see broken lines in
the flow path switching mechanism 14 in FIG. 1).
(2-1-1-4) First heat exchanger
[0035] The first heat exchanger 16 causes heat exchange between air around the outdoor unit
90 and the refrigerant flowing in the first heat exchanger 16. The first heat exchanger
16 according to the present embodiment is a fin-and-tube heat exchanger of a cross-fin
type. The first heat exchanger 16 may not necessarily be configured to cause heat
exchange between air and a refrigerant, but may alternatively be configured to cause
heat exchange between the refrigerant flowing in the first heat exchanger 16 and fluid
(e.g. cooling water or warm water) sent to the first heat exchanger 16. The first
heat exchanger 16 in this case is exemplarily configured as a plate heat exchanger.
[0036] The first heat exchanger 16 functions as a radiator (condenser) for a refrigerant
when the heat pump cycle apparatus 100 is in the cooling mode as its operating mode.
The first heat exchanger 16 functions as a heat absorber (evaporator) for a refrigerant
when the heat pump cycle apparatus 100 is in a heating mode as its operating mode.
(2-1-1-5) Expansion mechanism
[0037] The expansion mechanism 18 is configured to expand the refrigerant flowing in the
liquid pipe P4 to adjust pressure and a flow rate of the refrigerant. The expansion
mechanism 18 according to the present embodiment is configured as an electronic expansion
valve having an adjustable opening degree.
[0038] The expansion mechanism 18 should not be limited to the electronic expansion valve.
Alternatively, the expansion mechanism 18 may be a temperature automatic expansion
valve including a temperature sensitive cylinder, or may be a capillary tube.
(2-1-1-6) Second heat exchanger
[0039] The second heat exchanger 20 causes heat exchange between the refrigerant flowing
in the refrigerant circuit 10 and water flowing in the water circuit 30. The second
heat exchanger 20 according to the present embodiment is configured as a plate heat
exchanger. The second heat exchanger 20 should not be limited to the plate heat exchanger
in terms of its type, but may be appropriately selected from heat exchangers of types
applicable to heat exchange between a refrigerant and water. As depicted in FIG. 2
and FIG. 3, the second heat exchanger 20 is disposed in the machine chamber R2.
[0040] The second heat exchanger 20 is connected with the liquid pipe P4 and the second
gas pipe P5 of the refrigerant circuit 10. The second heat exchanger 20 is connected
with a first pipe W1 and a second pipe W2 of the water circuit 30.
[0041] When the heat pump cycle apparatus 100 is in the cooling mode, the refrigerant flows
from the liquid pipe P4 into the second heat exchanger 20 and flows out to the second
gas pipe P5. When the heat pump cycle apparatus 100 is in the heating mode, the refrigerant
flows from the second gas pipe P5 into the second heat exchanger 20 and flows out
to the liquid pipe P4.
[0042] Regardless of whether the heat pump cycle apparatus 100 is in the cooling mode or
in the heating mode, water flows from the first pipe W1 into the second heat exchanger
20 and flows out of the second pipe W2. When the heat pump cycle apparatus 100 is
in the cooling mode, water flowing from the first pipe W1 is cooled by the refrigerant
flowing into the second heat exchanger 20, and flows out to the second pipe W2. When
the heat pump cycle apparatus 100 is in the heating mode, water flowing from the first
pipe W1 is heated by the refrigerant flowing into the second heat exchanger 20, and
flows out to the second pipe W2.
(2-1-2) Water circuit
[0043] The water circuit 30 has a flow of water that exchanges heat with the refrigerant
in the second heat exchanger 20. As depicted in FIG. 1, the water circuit 30 principally
includes a pump 32, the second heat exchanger 20, the gas-liquid separator 40, and
the utilization facility 34. The water circuit 30 connects, by means of a pipe W,
the pump 32, the second heat exchanger 20, the gas-liquid separator 40, and the utilization
facility 34.
[0044] The pipe W of the water circuit 30 includes the first pipe W1 and the second pipe
W2. The first pipe W1 connects the utilization facility 34 and the second heat exchanger
20, to allow water to flow from the utilization facility 34 to the second heat exchanger
20. The second pipe W2 connects the utilization facility 34 and the second heat exchanger
20, to allow water to flow from the second heat exchanger 20 to the utilization facility
34.
[0045] The first pipe W1 is connected with the pump 32. Examples of the pump 32 include
a constant speed volute pump, and may alternatively include a variable flow pump.
The pump 32 should not be limited to the volute pump, but may be of an appropriately
selected type. The pump 32 according to the present embodiment is disposed on the
first pipe W1 upstream of the second heat exchanger 20 in a water flow direction.
However, the pump 32 should not be limitedly disposed in this manner, but may alternatively
be disposed downstream of the second heat exchanger 20 in the water flow direction,
in other words, on the second pipe W2.
[0046] The second pipe W2 is connected with the gas-liquid separator 40. The gas-liquid
separator 40 should not be limitedly disposed on the second pipe W2, but may alternatively
be disposed on the first pipe W1. In view of inhibiting the refrigerant from being
sent to the utilization facility 34, the gas-liquid separator 40 is preferably connected
to the second pipe W2.
(2-1-2-1) Gas-liquid separator
[0047] The gas-liquid separator 40 is configured to separate gas from inflow water, and
exhaust the separated gas to outside.
[0048] Typically, the water circuit 30 has a water flow and does not have any gas flow.
But upon installation of the heat pump cycle apparatus 100, air existing in the pipe
W may mix with water flowing in the pipe W. Also after installation of the heat pump
cycle apparatus 100, air may enter the water circuit 30, or water may partially evaporate
to generate vapor in the water circuit 30. The water circuit 30 is thus preferably
provided with a mechanism configured to exhaust such gas from the water circuit 30.
Relatively a large amount of air typically exists in the pipe W only upon installation
of the heat pump cycle apparatus 100. Air entering the water circuit 30 or vapor generated
in the water circuit 30 after installation of the heat pump cycle apparatus 100 does
not have a large amount. Such air or vapor is handleable only by a degassing valve
provided on the pipe W. However, a large amount of gas (refrigerant gas) may collectively
flow into water if any partition wall between a refrigerant flow path and a water
flow path is damaged in the second heat exchanger 20 due to freezing or the like and
the refrigerant flows from the refrigerant circuit 10 into the water circuit 30 (if
the refrigerant leaks). The heat pump cycle apparatus 100 thus includes the gas-liquid
separator 40 so as to easily trap the refrigerant in a case where a relatively large
amount of gas flows into the water circuit 30.
[0049] As depicted in FIG. 3, the gas-liquid separator 40 is attached near an outlet for
water having exchanged heat with the refrigerant in the second heat exchanger 20.
The gas-liquid separator 40 is provided with an inflow port 42 allowing water to flow
thereinto from the water circuit 30, and an outflow port 44 allowing water to flow
out to the water circuit 30. The inflow port 42 is provided in a side wall of the
gas-liquid separator 40, at a position near a top of the gas-liquid separator 40.
The outflow port 44 is provided in the side wall of the gas-liquid separator 40, at
a position near a bottom of the gas-liquid separator 40.
[0050] The gas-liquid separator 40 is provided with a degassing valve 54 configured to discharge,
from the gas-liquid separator 40, gas flowing into the gas-liquid separator 40. The
degassing valve 54 has a degassing port 54a allowing gas discharged from the gas-liquid
separator 40 to flow out. The degassing valve 54 according to the present embodiment
is attached to the top of the gas-liquid separator 40, and the degassing port 54a
of the degassing valve 54 is disposed in the machine chamber R2. The degassing valve
54 should not be limited in terms of its structure, but exemplarily includes, as principal
configurations, a body, and a float-shaped valve body accommodated in the body. In
a case where the body is filled with liquid, the valve body is pushed upward by the
liquid to close the degassing port 54a provided in an upper portion of the body, in
order to inhibit the liquid from flowing out of the degassing port 54a. In another
case where gas flows into the valve body to lower a liquid level, the valve body descends
to keep the degassing port 54a opened, so as to allow gas to flow out of the degassing
port 54a. In other words, when the second heat exchanger 20 has refrigerant leakage,
most of a leaking refrigerant flows out of the degassing port 54a of the degassing
valve 54.
[0051] Furthermore, the gas-liquid separator 40 is provided with a pressure relief valve
56 configured to release water in the gas-liquid separator 40 to outside when the
water circuit 30 has high pressure exceeding a predetermined pressure value. The pressure
relief valve 56 according to the present embodiment is attached to the top of the
gas-liquid separator 40.
(2-1-3) Fan
[0052] The fan 60 supplies the first heat exchanger 16 with air that exchanges heat with
the refrigerant. As depicted in FIG. 2 and FIG. 3, the fan 60 is disposed in the fan
chamber R1. The fan 60 according to the present embodiment is configured as a propeller
fan.
(2-1-4) Refrigerant sensor
[0053] The refrigerant sensor 70 detects the refrigerant to find refrigerant leakage. As
depicted in FIG. 2 and FIG. 3, the refrigerant sensor 70 is disposed on the plate-shaped
member 94 in the machine chamber R2. The plate-shaped member 94 supports the refrigerant
sensor 70. The refrigerant sensor 70 is thus less likely to get wet with water.
[0054] Furthermore, the refrigerant sensor 70 is disposed in a space below the gas-liquid
separator 40. The refrigerant sensor 70 can thus accurately detect a refrigerant leaking
in the second heat exchanger 20 and flowing out of the gas-liquid separator 40.
[0055] Furthermore, the refrigerant sensor 70 is disposed near the first heat exchanger
16. The refrigerant sensor 70 can thus detect a refrigerant leaking in the first heat
exchanger 16, that is, a refrigerant leaking from a brazed portion or the like of
a refrigerant pipe in the first heat exchanger 16.
[0056] Moreover, the refrigerant sensor 70 is disposed near the second heat exchanger 20
in the machine chamber R2. FIG. 2 and FIG. 3 depict the refrigerant sensor 70 disposed
near the rear of the second heat exchanger 20. A region near the rear of the second
heat exchanger 20 is far from the fan chamber R1 accommodating the fan 60. Accordingly,
a refrigerant leaking in the second heat exchanger 20 and flowing out to the region
near the rear of the second heat exchanger 20 is relatively less likely to be agitated
by the fan 60. The refrigerant sensor 70 can thus accurately detect the refrigerant
leaking in the second heat exchanger 20 (including a refrigerant leaking from the
second heat exchanger 20 not by way of the gas-liquid separator 40).
[0057] Furthermore, a height position of an upper surface of the plate-shaped member 94
or a height position of a refrigerant detector in the refrigerant sensor 70 is within
a height range of 300 mm from a height position of an upper surface of the bottom
frame 93. The refrigerant sensor 70 can thus accurately detect refrigerant leakage.
(2-1-5) Controller
[0058] The controller 80 includes a CPU (not depicted), a memory such as a ROM or a RAM,
various electric components, and electronic components.
[0059] As depicted in FIG. 1, the controller 80 is electrically connected to the compressor
12, the flow path switching mechanism 14, the expansion mechanism 18, the pump 32,
and the refrigerant sensor 70. When the CPU executes a program stored in the memory,
the controller 80 controls behavior of various configurations in the heat pump cycle
apparatus 100, such as the compressor 12, the flow path switching mechanism 14, the
expansion mechanism 18, the pump 32, and the refrigerant sensor 70, in order to cause
the heat pump cycle apparatus 100 to execute desired behavior.
[0060] In an exemplary case where the refrigerant sensor 70 detects refrigerant leakage,
the controller 80 drives the fan 60. This leads to agitation of a reserved refrigerant.
(2-2) Utilization facility
[0061] The utilization facility 34 is configured to utilize water cooled or heated in the
second heat exchanger 20. Examples of the utilization facility 34 according to the
present embodiment include an air handling unit or a fan coil unit configured to cause
heat exchange between air and water cooled or heated in the second heat exchanger
20, to condition air. The utilization facility in the heat pump cycle apparatus should
not be limited, in terms of its type, to the air handling unit or the fan coil unit,
but may be appropriately selected for its purpose of use. In an exemplary case where
the heat pump cycle apparatus is used in a plant or the like, the utilization facility
34 may be a manufacturing facility configured to cool or heat a manufacturing apparatus
or a product with use of water cooled or heated in the second heat exchanger 20. In
another case where the heat pump cycle apparatus is a water heater, the utilization
facility 34 may be a tank configured to reserve water cooled or heated in the second
heat exchanger 20. Water reserved in the tank serving as the utilization facility
34 is sent to a device or the like utilizing water with use of a pump (not depicted)
or the like.
[0062] FIG. 1 depicts only one utilization facility 34, but the heat pump cycle apparatus
100 may alternatively include a plurality of utilization facilities. In this case,
water cooled or heated in the second heat exchanger 20 is sent to the plurality of
utilization facilities. When the heat pump cycle apparatus 100 includes the plurality
of utilization facilities, the utilization facilities may be of an identical type,
or may include a plurality of types of facilities.
(3) Characteristics
[0063] (3-1)
A refrigerant leaking from a refrigerant circuit is typically reserved at a low level,
and a sensor configured to detect refrigerant leakage is thus conventionally disposed
in a lower portion of a case. However, the sensor disposed in the lower portion of
the case may get wet with water to have trouble.
[0064] The outdoor unit 90 according to the present embodiment corresponds to the outdoor
unit 90 of the heat pump cycle apparatus 100. The outdoor unit 90 includes the bottom
frame 93, the plate-shaped member 94, the compressor 12, the first heat exchanger
16, the refrigerant circuit 10, and the refrigerant sensor 70. The plate-shaped member
94 is disposed above the bottom frame 93 to be spaced apart from the bottom frame
93. The compressor 12 is mounted on the plate-shaped member 94 to be supported by
the bottom frame 93 with the plate-shaped member 94 being interposed therebetween.
The compressor 12 compresses a refrigerant. The first heat exchanger 16 causes heat
exchange between the refrigerant and air. The refrigerant circuit 10 connects, by
means of the pipe P, the compressor 12 and the first heat exchanger 16. The refrigerant
sensor 70 detects the refrigerant to find refrigerant leakage. The refrigerant sensor
70 is disposed on the plate-shaped member 94.
[0065] In the outdoor unit 90 according to the present embodiment, the refrigerant sensor
70 configured to detect refrigerant leakage is provided on the plate-shaped member
94 disposed to be spaced apart from the bottom frame 93. The refrigerant sensor 70
is thus less likely to get wet with water. The outdoor unit 90 can accordingly have
less risk of the refrigerant sensor 70 trouble by getting wet with water.
[0066] (3-2)
In the outdoor unit 90 according to the present embodiment, the plate-shaped member
94 supports the refrigerant sensor 70.
[0067] (3-3)
In the outdoor unit 90 according to the present embodiment, the height position of
the upper surface of the plate-shaped member 94 or the height position of the refrigerant
detector in the refrigerant sensor 70 is within the height range of 300 mm from the
height position of the upper surface of the bottom frame 93. The outdoor unit 90 can
thus achieve accurate detection of refrigerant leakage.
[0068] (3-4)
In the outdoor unit 90 according to the present embodiment, the refrigerant circuit
10 further connects the second heat exchanger 20 by means of the pipe P. The second
heat exchanger 20 causes heat exchange between a refrigerant and water. The outdoor
unit 90 further includes the water circuit 30, the gas-liquid separator 40, and the
degassing valve 54. The water circuit 30 has a flow of water that exchanges heat with
the refrigerant in the second heat exchanger 20. The gas-liquid separator 40 is connected
to the water circuit 30. The degassing valve 54 is attached to the gas-liquid separator
40. The degassing valve 54 degasses the gas-liquid separator 40. The refrigerant sensor
70 is disposed in the space below the gas-liquid separator 40.
[0069] In the outdoor unit 90 according to the present embodiment, the refrigerant sensor
70 is disposed in the space below the gas-liquid separator 40, where a leaking refrigerant
is highly possibly reserved. The outdoor unit 90 can thus achieve accurate detection
of refrigerant leakage.
[0070] (3-5)
The outdoor unit 90 according to the present embodiment further includes the fan 60.
The fan 60 supplies air that exchanges heat with the refrigerant. When the refrigerant
sensor 70 detects refrigerant leakage, the outdoor unit 90 drives the fan 60. The
outdoor unit 90 can thus agitate a reserved refrigerant.
[0071] (3-6)
In the outdoor unit 90 according to the present embodiment, the refrigerant is categorized
as having flammability in class 2 or higher flammability in class 3 by ISO 817.
[0072] (3-7)
In the outdoor unit 90 according to the present embodiment, the partitioning member
92 partitions the fan chamber R1 and the machine chamber R2. The fan chamber R1 accommodates
the fan 60. The machine chamber R2 accommodates the compressor 12 and the second heat
exchanger 20. The refrigerant sensor 70 is disposed near the second heat exchanger
20 in the machine chamber R2. The outdoor unit 90 can thus achieve accurate detection
of a refrigerant leaking in the second heat exchanger 20.
[0073] (3-8)
In the outdoor unit 90 according to the present embodiment, the plate-shaped member
94 is supported by the bottom frame 93 with the elastic member 95 being interposed
therebetween. The outdoor unit 90 can thus have less risk of the refrigerant sensor
70 trouble due to vibration.
(4) Modification examples
(4-1) Modification example 1A
[0074] As depicted in FIG. 2 and FIG. 3, the refrigerant sensor 70 according to the present
embodiment is disposed near the rear of the second heat exchanger 20. But the refrigerant
sensor 70 may alternatively be positioned (below the second heat exchanger 20) to
be partially or entirely hidden by the second heat exchanger 20 when the second heat
exchanger 20 is viewed from above.
(4-2) Modification example 1B
[0075] The degassing valve 54 according to the present embodiment is attached to the top
of the gas-liquid separator 40. But the degassing valve 54 may alternatively be attached
to the side wall of the gas-liquid separator 40. Furthermore, the gas-liquid separator
40 may be provided with a plurality of degassing valves. For example, the degassing
valve may be attached to each of the top and the side wall of the gas-liquid separator
40.
[0076] (4-3)
The embodiment of the present disclosure has been described above. Various modifications
to modes and details should be available without departing from the object and the
scope of the present disclosure recited in the claims.
REFERENCE SIGNS LIST
[0077]
10: refrigerant circuit
12: compressor
16: first heat exchanger
20: second heat exchanger
30: water circuit (heating medium circuit)
40: gas-liquid separator
54: degassing valve
60: fan
70: refrigerant sensor (sensor)
90: outdoor unit
92: partitioning member
93: bottom frame
94: plate-shaped member
95: elastic member
100: heat pump cycle apparatus
P: pipe
R1: fan chamber
R2: machine chamber
CITATION LIST
PATENT LITERATURE