[TECHNICAL FIELD]
[0001] The present invention relates to a heat medium circulation device for circulating
heat medium through a use-side terminal by a heat medium circuit having a gas-liquid
separating section.
[BACKGROUND TECHNIQUE]
[0002] Patent document 1 discloses an air conditioner which has a separating section for
separating refrigerant from heat medium flowing through a heat medium pipe, and which
discharges the refrigerant separated by the separating section to outside of air-conditioning
space.
[0003] According to the patent document 1, even if refrigerant flows into the heat medium
circuit, since the refrigerant is discharged to outside of the air-conditioning space,
it is possible to suppress the refrigerant from flowing into the heat medium pipe
which is provided in a room.
[PRIOR ART DOCUMENT]
[PATENT DOCUMENT]
[Patent Document 1]
[SUMMARY OF THE INVENTION]
[PROBLEM TO BE SOLVED BY THE INVENTION]
[0005] However, the patent document 1 does not assume that a gas-liquid separating section
is placed in a limited space such as an outdoor machine.
[0006] It is an object of the present invention to provide a heat medium circulation device
capable of placing a gas-liquid separating section and a pressure relief valve in
a limited space.
[0007] A heat medium circulation device described in claim 1 of the present invention including:
a refrigerant circuit 10 to which a compressor 11, a use-side heat exchanger 12, an
expansion device 13 and a heat source-side heat exchanger 14 are connected, and through
which refrigerant circulates; a heat medium circuit 20 which circulates heat medium
cooled or heated by the refrigerant discharged out from the compressor 11 in the use-side
heat exchanger 12 through a use-side terminal 1; a gas-liquid separating section 30
for separating gas in the heat medium circuit 20 from the heat medium; and a pressure
relief valve 40 for releasing the heat medium circuit 20 into atmosphere when pressure
in the heat medium circuit 20 becomes equal to or higher than predetermined pressure;
wherein the pressure relief valve 40 is connected to the gas-liquid separating section
30. According to claim 2 of the invention, in the heat medium circulation device described
in claim 1, the gas-liquid separating section 30 is placed in the heat medium circuit
20 located downstream of the use-side heat exchanger 12, the gas-liquid separating
section 30 includes a gas-liquid separation inflow port 32 through which the heat
medium flows into a cylindrical inner space 31, a gas-liquid separation outflow port
33 through which the heat medium flows out from the cylindrical inner space 31, and
a pressure relief valve connection port 34 to which the pressure relief valve 40 is
connected, and the pressure relief valve 40 and the pressure relief valve connection
port 34 are connected to each other through a pressure relief valve connecting pipe
42.
[0008] According to claim 3 of the invention, in the heat medium circulation device described
in claim 2, the gas-liquid separation inflow port 32 is provided in a bottom surface
of the gas-liquid separating section 30, and the gas-liquid separation outflow port
33 and the pressure relief valve connection port 34 are provided in a side surface
of the gas-liquid separating section 30, and the pressure relief valve connection
port 34 is located at a position higher than the gas-liquid separation outflow port
33.
[0009] According to claim 4 of the invention, in the heat medium circulation device described
in claim 1, the pressure relief valve 40 is located in a space above the use-side
heat exchanger 12.
[0010] According to claim 5 of the invention, in the heat medium circulation device described
in claim 2, the use-side heat exchanger 12 includes a heat medium first connection
port 22x in a lower portion of a side surface of the use-side heat exchanger 12, and
a heat medium second connection port 22y in an upper portion of the side surface of
the use-side heat exchanger 12, the heat medium is introduced into the use-side heat
exchanger 12 from the heat medium first connection port 22x, and the heat medium introduced
into the use-side heat exchanger 12 is discharged out from the heat medium second
connection port 22y, the heat medium second connection port 22y and the gas-liquid
separation inflow port 32 are connected to each other through a gas-liquid separation
inflow pipe 35, and the gas-liquid separation inflow port 32 is located at a position
higher than the heat medium second connection port 22y.
[0011] According to claim 6 of the invention, in the heat medium circulation device described
in claim 5, the gas-liquid separation inflow pipe 35 includes a gas-liquid separation
lateral inflow pipe portion 35a connected to the heat medium second connection port
22y and a gas-liquid separation vertical inflow pipe portion 35b connected to the
gas-liquid separation inflow port 32, the pressure relief valve connecting pipe 42
includes a lateral connection pipe portion 42a connected to the pressure relief valve
connection port 34, and a vertical connection pipe portion 42b connected to the pressure
relief valve 40, and the lateral connection pipe portion 42a is placed above the gas-liquid
separation lateral inflow pipe portion 35a.
[0012] According to claim 7 of the invention, in the heat medium circulation device described
in claim 6, the lateral connection pipe portion 42a is placed in parallel to the gas-liquid
separation lateral inflow pipe portion 35a.
[0013] According to the present invention, a space of a heat medium circuit can be saved
by connecting a pressure relief valve to a gas-liquid separating section.
[BRIEF DESCRIPTION OF THE DRAWINGS]
[0014]
Fig. 1 is a diagram showing a configuration of a heat medium circulation device according
to an embodiment of the present invention;
Fig. 2 is a perspective view showing essential portions of an outdoor unit of the
heat medium circulation device;
Figs. 3 are side views showing essential portions of the outdoor unit;
Figs. 4 are diagrams showing a configuration of a gas-liquid separating section used
in the embodiment;
Fig. 5 is a side view showing the gas-liquid separating section and a pressure relief
valve used in the embodiment; and
Fig. 6 is a perspective view showing a heat medium chamber of the outdoor unit.
[MODE FOR CARRYING OUT THE INVENTION]
[0015] In a heat medium circulation device of a first embodiment of the present invention,
a pressure relief valve is connected to a gas-liquid separating section. According
to this embodiment, a space of a heat medium circuit can be saved by connecting the
pressure relief valve to the gas-liquid separating section.
[0016] According to a second embodiment of the invention, in the heat medium circulation
device of the first embodiment, the gas-liquid separating section includes a gas-liquid
separation inflow port through which the heat medium flows into a cylindrical inner
space, a gas-liquid separation outflow port through which the heat medium flows out
from the cylindrical inner space, and a pressure relief valve connection port to which
the pressure relief valve is connected, and the pressure relief valve and the pressure
relief valve connection port are connected to each other through a pressure relief
valve connecting pipe. According to this embodiment, the pressure relief valve can
be connected to the gas-liquid separating section by connecting the pressure relief
valve and the pressure relief valve connection port to each other through the pressure
relief valve connecting pipe.
[0017] According to a third embodiment of the invention, in the heat medium circulation
device of the second embodiment, the gas-liquid separation inflow port is provided
in a bottom surface of the gas-liquid separating section, and the gas-liquid separation
outflow port and the pressure relief valve connection port are provided in a side
surface of the gas-liquid separating section, and the pressure relief valve connection
port is located at a position higher than the gas-liquid separation outflow port.
According to this embodiment, even when operation of the gas-liquid separating section
has a problem, it is possible to flow out the gas by the pressure relief valve, and
safety can be enhanced.
[0018] According to a fourth embodiment of the invention, in the heat medium circulation
device of the first embodiment, the pressure relief valve is located in a space above
the use-side heat exchanger. According to this embodiment, the space above the use-side
heat exchanger can effectively be utilized, and space of the heat medium circuit can
be saved.
[0019] According to a fifth embodiment of the invention, in the heat medium circulation
device of the second embodiment, the use-side heat exchanger includes a heat medium
first connection port in a lower portion of a side surface of the use-side heat exchanger,
and a heat medium second connection port in an upper portion of the side surface of
the use-side heat exchanger, the heat medium is introduced into the use-side heat
exchanger from the heat medium first connection port, and the heat medium introduced
into the use-side heat exchanger is discharged out from the heat medium second connection
port, the heat medium second connection port and the gas-liquid separation inflow
port are connected to each other through a gas-liquid separation inflow pipe, and
the gas-liquid separation inflow port is located at a position higher than the heat
medium second connection port. According to this embodiment, the gas-liquid separating
section can be placed above the use-side heat exchanger, and space of the heat medium
circuit can be saved.
[0020] According to a sixth embodiment of the invention, in the heat medium circulation
device of the fifth embodiment, the gas-liquid separation inflow pipe includes a gas-liquid
separation lateral inflow pipe portion connected to the heat medium second connection
port and a gas-liquid separation vertical inflow pipe portion connected to the gas-liquid
separation inflow port, the pressure relief valve connecting pipe includes a lateral
connection pipe portion connected to the pressure relief valve connection port, and
a vertical connection pipe portion connected to the pressure relief valve, and the
lateral connection pipe portion is placed above the gas-liquid separation lateral
inflow pipe portion. According to this embodiment, the gas-liquid separating section
and the pressure relief valve can be placed above the use-side heat exchanger, and
space of the heat medium circuit can be saved.
[0021] According to a seventh embodiment of the invention, in the heat medium circulation
device of the sixth embodiment, the lateral connection pipe portion is placed in parallel
to the gas-liquid separation lateral inflow pipe portion. According to this embodiment,
the use-side heat exchanger, the gas-liquid separating section and the pressure relief
valve can be placed in the limited space.
[Embodiment]
[0022] An embodiment of the present invention will be described below with reference to
the drawings.
[0023] Fig. 1 is a diagram showing a configuration of a heat medium circulation device according
to the embodiment.
[0024] The heat medium circulation device of the embodiment includes a refrigerant circuit
10 and a heat medium circuit 20.
[0025] The refrigerant circuit 10 is formed by connecting a compressor 11, a use-side heat
exchanger 12, an expansion device 13 and a heat source-side heat exchanger 14 to one
another through a refrigerant pipe, and refrigerant circulates through the refrigerant
circuit 10.
[0026] The heat medium circuit 20circulates heat medium heated by the refrigerant discharged
out from the compressor 11 in the use-side heat exchanger 12 through a use-side terminal
1.
[0027] The heat medium circuit 20 includes a gas-liquid separating section 30 which separates
gas in the heat medium circuit 20 from heat medium, and a transfer pump 21 for circulating
the heat medium.
[0028] The heat medium circuit 20 further includes a pressure relief valve 40. In this embodiment,
the pressure relief valve 40 is connected to the gas-liquid separating section 30.
A discharge device 50 which discharges gas separated by the gas-liquid separating
section 30 is connected to the gas-liquid separating section 30.
[0029] The transfer pump 21 is placed in an indoor unit 2.
[0030] It is preferable that the refrigerant circuit 10 includes a four-way valve 15 which
switches flow of refrigerant.
[0031] An air blower 16 is provided at a position opposed to the heat source-side heat exchanger
14.
[0032] Propane which is combustible refrigerant is used as refrigerant. Instead of the combustible
refrigerant, it is possible to use any of R1234yf, R1234ze and R32 which are slightly
flammable refrigerants.
[0033] Water or antifreeze liquid is used as the heat medium.
[0034] The gas-liquid separating section 30 and the pressure relief valve 40 are placed
in the heat medium circuit 20 located downstream of the use-side heat exchanger 12.
[0035] An outdoor unit 3 is divided into a heat medium chamber 3a (see Fig. 2), a machine
chamber 3b and an air blowing chamber 3c.
[0036] At least a portion of the use-side heat exchanger 12, the gas-liquid separating section
30, the pressure relief valve 40 and the discharge device 50 are placed in the heat
medium chamber 3a. The compressor 11, the expansion device 13 and the four-way valve
15 are placed in the machine chamber 3b. The heat source-side heat exchanger 14 and
the air blower 16 are placed in the air blowing chamber 3c.
[0037] It is possible to heat or cool the heat medium by switching the four-way valve 15.
[0038] When the heat medium is heated, refrigerant compressed by the compressor 11 flows
through the use-side heat exchanger 12, the expansion device 13 and the heat source-side
heat exchanger 14 in this order. The refrigerant is decompressed by the expansion
device 13, heat of the refrigerant is absorbed by the heat source-side heat exchanger
14, and the refrigerant is sucked into the compressor 11. By flowing the refrigerant
compressed by the compressor 11 into the use-side heat exchanger 12 in this manner,
the heat medium can be heated.
[0039] When the heat medium is cooled, refrigerant compressed by the compressor 11 flows
through the heat source-side heat exchanger 14, the expansion device 13 and the use-side
heat exchanger 12 in this order. The refrigerant is decompressed by the expansion
device 13, heat of the refrigerant is absorbed by the use-side heat exchanger 12 and
the refrigerant is sucked into the compressor 11. By flowing the refrigerant compressed
by the compressor 11 into the heat source-side heat exchanger 14 in this manner, the
heat medium can be cooled.
[0040] The heat medium which is cooled or heated by the use-side heat exchanger 12 is transferred
to the use-side terminal 1 by the transfer pump 21, and the heat medium whose heat
is absorbed or radiated by the use-side terminal 1 is returned to the use-side heat
exchanger 12.
[0041] Especially when a plate-type heat exchanger is used as the use-side heat exchanger
12, there is a possibility that refrigerant which flows through the refrigerant circuit
10 is mixed into the heat medium circuit 20 by damage of the use-side heat exchanger
12.
[0042] If refrigerant which leaks into the heat medium circuit 20 is separated from liquid
phase heat medium by the gas-liquid separating section 30 in this manner, the refrigerant
can be discharged out from the discharge device 50.
[0043] In the outdoor unit 3, the gas-liquid separating section 30 is plated in the heat
medium circuit 20 which is located downstream of the use-side heat exchanger 12. Therefore,
it is possible to suppress a case where refrigerant which leaks into the heat medium
circuit 20 is guided into the use-side terminal 1.
[0044] When the indoor unit 2 is located downstream of the use-side heat exchanger 12 and
upstream of the use-side terminal 1, the gas-liquid separating section 30 should be
placed upstream of the indoor unit 2, but it is preferable that the gas-liquid separating
section 30 is placed in the outdoor unit 3 as in this embodiment.
[0045] The gas-liquid separating section 30 can separate the leaked refrigerant and in addition,
the gas-liquid separating section 30 can separate air existing in the heat medium
circuit 20. Especially, when heat medium is charged into the heat medium circuit 20
at the time of installation of the heat medium circulation device, the gas-liquid
separating section 30 is utilized for removing air from the heat medium circuit 20.
[0046] Although the transfer pump 21 is placed in the indoor unit 2 in this embodiment,
the transfer pump 21 may be placed in the outdoor unit 3. When the transfer pump 21
is placed in the outdoor unit 3, it is preferable that the transfer pump 21 is placed
in the heat medium chamber 3a.
[0047] Fig. 2 is a perspective view showing essential portions of the outdoor unit of the
heat medium circulation device.
[0048] In the outdoor unit 3, a wall surface material 60 is placed between a bottom surface
material outer periphery 3d and a top surface material outer periphery 3e. The wall
surface material 60 includes a first wall surface material 61 and a second wall surface
material 62 which is adjacent to the first wall surface material 61.
[0049] The heat medium chamber 3a and the machine chamber 3b are divided by a first partition
plate 71. The first partition plate 71 is provided with an opening, and the heat medium
chamber 3a and the machine chamber 3b keep air permeability. The machine chamber 3b
and the air blowing chamber 3c are divided by a second partition plate 72, thereby
dividing the outdoor unit 3 into the heat medium chamber 3a, the machine chamber 3b
and the air blowing chamber 3c. The first partition plate 71 prevents heat medium
which leaks out from the pressure relief valve 40 from scattering to the compressor
11 placed in the machine chamber 3b.
[0050] One side 71x (see Figs. 3) of the first partition plate 71 abuts against the first
wall surface material 61, and the other side 71y of the first partition plate 71 abuts
against the second wall surface material 62.
[0051] The heat medium chamber 3a is formed by a space which is surrounded by the first
partition plate 71, the first wall surface material 61 and the second wall surface
material 62.
[0052] By utilizing the first wall surface material 61 and the second wall surface material
62 which are adjacent to each other, the heat medium chamber 3a is formed at a corner
portion of the outdoor unit 3. According to this, even when heat medium leaks out,
the heat medium chamber 3a can be formed at a position where the heat medium does
not exert an influence on the compressor 11, the expansion device 13 and the heat
source-side heat exchanger 14.
[0053] Therefore, since the heat medium chamber 3a where the use-side heat exchanger 12,
the gas-liquid separating section 30 and the pressure relief valve 40 are placed is
separated from the machine chamber 3b and the air blowing chamber 3c, even if heat
medium leaks out, the heat medium does not exert an influence on the compressor 11,
the expansion device 13 and the heat source-side heat exchanger 14.
[0054] An opening 80 is formed in the first wall surface material 61.
[0055] Figs. 3 are side views showing essential portions of the outdoor unit.
[0056] The first wall surface material 61 is provided with the opening 80 at a position
corresponding to an operating lever 41 of the pressure relief valve 40. The opening
80 is provided at a position corresponding to the heat medium chamber 3a which is
divided from the machine chamber 3b by the first partition plate 71. The opening 80
formed in the first wall surface material 61 is located in the heat medium chamber
3a, and the opening 80 does not open from the machine chamber 3b. Since the opening
80 does not open from the machine chamber 3b, even when heat medium leaks out, it
is possible to prevent the heat medium from entering into the machine chamber 3b from
the heat medium chamber 3a.
[0057] The pressure relief valve 40 is placed at a position opposed to the opening 80. When
pressure in the heat medium circuit 20 becomes equal to or higher than predetermined
pressure, the pressure relief valve 40 releases heat medium to atmosphere so that
the pressure in the heat medium circuit 20 does not become abnormal pressure which
is equal to or higher than the predetermined pressure.
[0058] The pressure relief valve 40 includes the operating lever 41. By manually operating
the operating lever 41, heat medium can be released to atmosphere from the heat medium
circuit 20.
[0059] The operating lever 41 of the pressure relief valve 40 can be operated from the opening
80, and when heat medium is charged into the heat medium circuit 20 or when heat medium
is discharged out from the heat medium circuit 20, the pressure relief valve 40 can
be utilized.
[0060] Although it is not illustrated in the drawings, when it is unnecessary to operate
the operating lever 41, the opening 80 is closed by a lid. Upper and lower portions
of the opening 80 includes fastening holes. By mounting fastening tools 81 in the
fastening holes, the lid is mounted on the first wall surface material 61.
[0061] Figs. 4 are diagrams showing a configuration of the gas-liquid separating section
used in the embodiment, wherein Fig. 4(a) is a perspective view of a partially cut-away
gas-liquid separating section, and Fig. 4(b) is a diagram showing a configuration
of a gas-liquid separation inflow port and a gas-liquid separation outflow port of
the gas-liquid separating section.
[0062] The gas-liquid separating section 30 includes the gas-liquid separation inflow port
32 through which heat medium flows into a cylindrical inner space 31, the gas-liquid
separation outflow port 33 through which heat medium flows out from the cylindrical
inner space 31, and a pressure relief valve connection port 34 to which the pressure
relief valve 40 is connected.
[0063] The gas-liquid separation inflow port 32 is provided on a bottom surface of the gas-liquid
separating section 30, and the gas-liquid separation outflow port 33 and the pressure
relief valve connection port 34 are provided on a side surface of the gas-liquid separating
section 30.
[0064] By flowing the heat medium from the bottom surface of the gas-liquid separating section
30 and flowing out the heat medium from the side surface of the gas-liquid separating
section 30 in this manner, a high gas-liquid separation ratio can be expected.
[0065] The heat medium flows in from the gas-liquid separation inflow port 32 and flows
out from the gas-liquid separation outflow port 33. The gas-liquid separation inflow
port 32 is eccentric from a virtual axis 31x of the cylindrical inner space 31 at
a position separated from the gas-liquid separation outflow port 33. Therefore, time
during which heat medium stays in the cylindrical inner space 31 can be increased,
and the high gas-liquid separation ratio can be expected.
[0066] A bottle diameter 31R of the cylindrical inner space 31 is two times or more of an
entrance diameter 32R of the gas-liquid separation inflow port 32. Therefore, it is
possible to reduce the flow speed of heat medium which flows in from the gas-liquid
separation inflow port 32, and the high gas-liquid separation ratio can be expected.
[0067] An exit diameter 33R of the gas-liquid separation outflow port 33 is equal to or
greater than the entrance diameter 32R. Therefore, the flow speed of the heat medium
which flows out from the gas-liquid separation outflow port 33 can be made smaller
than the flow speed of the heat medium which flows in from the gas-liquid separation
inflow port 32, and the high gas-liquid separation ratio can be expected.
[0068] The discharge device 50 is provided therein with a float 51, and gas separated by
the gas-liquid separating section 30 moves to an upper portion of the float 51. When
gas does not exist in the discharge device 50, the float 51 is located at an upper
end of the discharge device 50.
[0069] Fig. 5 is a side view showing the gas-liquid separating section and the pressure
relief valve used in the embodiment.
[0070] The gas-liquid separation outflow port 33 is located at a position of a height 33h
which is equal to or smaller than a half of a bottle height 31h of the cylindrical
inner space 31. It is further preferable that the height 33h of the gas-liquid separation
outflow port 33 is equal to or smaller than 1/3 of the bottle height 31h of the cylindrical
inner space 31. Therefore, since a space where gas stays can be formed at a height
34h which is higher than the height 33h of the gas-liquid separation outflow port
33 of the cylindrical inner space 31, the high gas-liquid separation ratio can be
expected. Here, the height 33h of the gas-liquid separation outflow port 33 is a height
from a bottom surface of the cylindrical inner space 31 to a center of the exit diameter
33R of the gas-liquid separation outflow port 33.
[0071] The pressure relief valve connection port 34 is located at the height 34h which is
higher than the height 33h of the gas-liquid separation outflow port 33. Therefore,
even when operation of the gas-liquid separating section 30 has a problem, it is possible
to flow out the gas by the pressure relief valve 40, and safety can be enhanced.
[0072] The pressure relief valve 40 and the pressure relief valve connection port 34 are
connected to each other through a pressure relief valve connection pipe 42.
[0073] The pressure relief valve connection pipe 42 includes a lateral connection pipe portion
42a connected to the pressure relief valve connection port 34, and a vertical connection
pipe portion 42b connected to the pressure relief valve 40. The pressure relief valve
40 may be connected directly to the gas-liquid separating section 30 without through
the pressure relief valve connection pipe 42.
[0074] Gas introduced into the discharge device 50 is discharged out from a discharge port
52. If gas is discharged out from the discharge port 52, the float 51 (see Fig. 4(a))
is located at the upper end of the discharge device 50, thereby closing the discharge
port 52.
[0075] Fig. 6 is a perspective view showing the heat medium chamber of the outdoor unit.
[0076] A height 12h of the use-side heat exchanger 12 is greater than its width 12w and
depth 12b.
[0077] A lower portion of a side surface of the use-side heat exchanger 12 includes a heat
medium first connection port 22x, and an upper portion of the side surface of the
use-side heat exchanger 12 includes a heat medium second connection port 22y.
[0078] The lower portion of the side surface of the use-side heat exchanger 12 includes
a refrigerant first connection port 17x, and the upper portion of the side surface
of the use-side heat exchanger 12 includes a refrigerant second connection port 17y.
[0079] The heat medium is introduced into the use-side heat exchanger 12 from the heat medium
first connection port 22x, and the heat medium introduced into the use-side heat exchanger
12 is discharged out from the heat medium second connection port 22y.
[0080] When the heat medium is heated, refrigerant compressed by the compressor 11 is introduced
into the use-side heat exchanger 12 from the refrigerant second connection port 17y,
and the refrigerant introduced into the use-side heat exchanger 12 is discharged out
from the refrigerant first connection port 17x.
[0081] The heat medium second connection port 22y and the gas-liquid separation inflow port
32 are connected to each other through a gas-liquid separation inflow pipe 35.
[0082] The gas-liquid separation inflow pipe 35 includes a gas-liquid separation lateral
inflow pipe portion 35a connected to the heat medium second connection port 22y, and
a gas-liquid separation vertical inflow pipe portion 35b connected to the gas-liquid
separation inflow port 32.
[0083] The gas-liquid separation inflow port 32 is located at a position higher than the
heat medium second connection port 22y.
[0084] The bottom surface of the gas-liquid separating section 30 is provided with the gas-liquid
separation inflow port 32, and the gas-liquid separation inflow port 32 is located
at the position higher than the heat medium second connection port 22y in this manner.
According to this, the gas-liquid separating section 30 which is required to be placed
at a high position among the heat medium circuit 20 is easily be placed, the gas-liquid
separating section 30 can be plated above the use-side heat exchanger 12, and a space
of the heat medium circuit 20 can be saved.
[0085] The gas-liquid separating section 30 is placed at the position higher than the use-side
heat exchanger 12 and the pressure relief valve 40 is placed on the side of the gas-liquid
separating section 30. Especially according to this configuration, the gas-liquid
separating section 30 and the pressure relief valve 40 are placed above the use-side
heat exchanger 12, and a space of the heat medium chamber 3a can be saved.
[0086] Further, since the gas-liquid separation inflow pipe 35 includes the gas-liquid separation
lateral inflow pipe portion 35a and the gas-liquid separation vertical inflow pipe
portion 35b, a flowing direction of heat medium discharged out from the use-side heat
exchanger 12 is changed until the heat medium flows into the gas-liquid separating
section 30. Therefore, the high gas-liquid separation ratio can be expected.
[0087] Further, by connecting the pressure relief valve 40 to the gas-liquid separating
section 30, a space of the heat medium circuit 20 can be saved.
[0088] The pressure relief valve 40 is located at the position higher than the use-side
heat exchanger 12 and the pressure relief valve 40 is placed in the upper space of
the use-side heat exchanger 12. Especially according to this configuration, the upper
space of the use-side heat exchanger 12 can effectively be utilized, and the space
of the heat medium circuit 20 can be saved.
[0089] Further, the lateral connection pipe portion 42a connected to the pressure relief
valve connection port 34 is placed above the gas-liquid separation lateral inflow
pipe portion 35a. According to this configuration, the gas-liquid separating section
30 and the pressure relief valve 40 can be placed above the use-side heat exchanger
12, and the space of the heat medium circuit 20 can be saved.
[0090] The lateral connection pipe portion 42a is placed in parallel to the gas-liquid separation
lateral inflow pipe portion 35a. Especially according to this configuration, the use-side
heat exchanger 12, the gas-liquid separating section 30 and the pressure relief valve
40 can be placed in a limited spaced.
[0091] An exit joint 36 is connected to the gas-liquid separation flow exit 33, and a heat
medium first connection pipe 23 is connected to the heat medium first connection port
22x. An entrance joint 37 is connected to the heat medium first connection pipe 23.
[0092] The exit joint 36 and the entrance joint 37 project outward from the second wall
surface material 62 which is located in the heat medium chamber 3a.
[0093] The heat medium chamber 3a is formed in a corner portion of the outdoor unit 3 utilizing
the first wall surface material 61 and second wall surface material 62 which are adjacent
to each other. Therefore, the exit joint 36 and the entrance joint 37 easily project
from the outdoor unit 3.
[Configuration supported by the above-described embodiment]
[0094] The embodiment supports the following configuration.
(Configuration 1)
[0095] A heat medium circulation device comprising: a refrigerant circuit to which a compressor,
a use-side heat exchanger, an expansion device and a heat source-side heat exchanger
are connected, and through which refrigerant circulates; a heat medium circuit which
circulates heat medium cooled or heated by the refrigerant discharged out from the
compressor in the use-side heat exchanger through a use-side terminal; a gas-liquid
separating section for separating gas in the heat medium circuit from the heat medium;
and a pressure relief valve for releasing the heat medium circuit into atmosphere
when pressure in the heat medium circuit becomes equal to or higher than predetermined
pressure; wherein the pressure relief valve is connected to the gas-liquid separating
section.
[0096] According to this configuration, a space of a heat medium circuit can be saved by
connecting the pressure relief valve to the gas-liquid separating section.
(Configuration 2)
[0097] The heat medium circulation device according to configuration 1, wherein the gas-liquid
separating section is placed in the heat medium circuit located downstream of the
use-side heat exchanger, the gas-liquid separating section includes a gas-liquid separation
inflow port through which the heat medium flows into a cylindrical inner space, a
gas-liquid separation outflow port through which the heat medium flows out from the
cylindrical inner space, and a pressure relief valve connection port to which the
pressure relief valve is connected, and the pressure relief valve and the pressure
relief valve connection port are connected to each other through a pressure relief
valve connecting pipe.
[0098] According to this configuration, the pressure relief valve can be connected to the
gas-liquid separating section by connecting the pressure relief valve and the pressure
relief valve connection port to each other through the pressure relief valve connecting
pipe.
(Configuration 3)
[0099] The heat medium circulation device according to the configuration 2, wherein the
gas-liquid separation inflow port is provided in a bottom surface of the gas-liquid
separating section, and the gas-liquid separation outflow port and the pressure relief
valve connection port are provided in a side surface of the gas-liquid separating
section, and the pressure relief valve connection port is located at a position higher
than the gas-liquid separation outflow port.
[0100] According to this configuration, even when operation of the gas-liquid separating
section has a problem, it is possible to flow out the gas by the pressure relief valve,
and safety can be enhanced.
(Configuration 4)
[0101] The heat medium circulation device according to any one of the configurations 1 to
3, wherein the pressure relief valve is located in a space above the use-side heat
exchanger.
[0102] According to this configuration, the space above the use-side heat exchanger can
effectively be utilized, and space of the heat medium circuit can be saved.
(Configuration 5)
[0103] The heat medium circulation device according to the configuration 2 or 3, wherein
the use-side heat exchanger includes a heat medium first connection port in a lower
portion of a side surface of the use-side heat exchanger, and a heat medium second
connection port in an upper portion of the side surface of the use-side heat exchanger,
the heat medium is introduced into the use-side heat exchanger from the heat medium
first connection port, and the heat medium introduced into the use-side heat exchanger
is discharged out from the heat medium second connection port, the heat medium second
connection port and the gas-liquid separation inflow port are connected to each other
through a gas-liquid separation inflow pipe, and the gas-liquid separation inflow
port is located at a position higher than the heat medium second connection port.
[0104] According to this configuration, the gas-liquid separating section can be placed
above the use-side heat exchanger, and space of the heat medium circuit can be saved.
(Configuration 6)
[0105] The heat medium circulation device according to the configuration 5, wherein the
gas-liquid separation inflow pipe includes a gas-liquid separation lateral inflow
pipe portion connected to the heat medium second connection port and a gas-liquid
separation vertical inflow pipe portion connected to the gas-liquid separation inflow
port, the pressure relief valve connecting pipe includes a lateral connection pipe
portion connected to the pressure relief valve connection port, and a vertical connection
pipe portion connected to the pressure relief valve, and the lateral connection pipe
portion is placed above the gas-liquid separation lateral inflow pipe portion.
[0106] According to this configuration, the gas-liquid separating section and the pressure
relief valve can be placed above the use-side heat exchanger, and space of the heat
medium circuit can be saved.
(Configuration 7)
[0107] The heat medium circulation device according to the configuration 6, wherein the
lateral connection pipe portion is placed in parallel to the gas-liquid separation
lateral inflow pipe portion.
[0108] According to this configuration, the use-side heat exchanger, the gas-liquid separating
section and the pressure relief valve can be placed in the limited space.
[INDUSTRIAL APPLICABILITY]
[0109] The present invention is suitable especially for a heat medium circulation device
using combustible refrigerant.
[EXPLANATION OF SYMBOLS]
[0110]
- 1
- use-side terminal
- 2
- indoor unit
- 3
- outdoor unit
- 3a
- heat medium chamber
- 3b
- machine chamber
- 3c
- air blowing chamber
- 3d
- bottom surface material outer periphery
- 3e
- top surface material outer periphery
- 10
- refrigerant circuit
- 11
- compressor
- 12
- use-side heat exchanger
- 12b
- depth
- 12h
- height
- 12w
- width
- 13
- expansion device
- 14
- heat source-side heat exchanger
- 15
- four-way valve
- 16
- air blower
- 17x
- refrigerant first connection port
- 17y
- refrigerant second connection port
- 20
- heat medium circuit
- 21
- transfer pump
- 22x
- heat medium first connection port
- 22y
- heat medium second connection port
- 23
- heat medium first connection pipe
- 30
- gas-liquid separating section
- 31
- cylindrical inner space
- 31h
- bottle height
- 31R
- bottle diameter
- 31x
- virtual axis
- 32
- gas-liquid separation inflow port
- 32R
- entrance diameter
- 33
- gas-liquid separation outflow port
- 33h
- height
- 33R
- exit diameter
- 34
- pressure relief valve connection port
- 34h
- position
- 35
- gas-liquid separation inflow pipe
- 35a
- gas-liquid separation lateral inflow pipe portion
- 35b
- gas-liquid separation vertical inflow pipe portion
- 36
- exit joint
- 37
- entrance joint
- 40
- pressure relief valve
- 41
- operating lever (operating section)
- 42
- pressure relief valve connection pipe
- 42a
- lateral connection pipe portion
- 42b
- vertical connection pipe portion
- 50
- discharge device
- 51
- float
- 52
- discharge port
- 60
- wall surface material
- 61
- first wall surface material
- 62
- second wall surface material
- 71
- first partition plate
- 71x
- one side
- 71y
- other side
- 72
- second partition plate
- 80
- opening
- 81
- fastening tool