Technical Field
[0001] The present invention relates to a refrigeration cycle apparatus.
Background Art
[0002] Patent Literature 1 discloses a compressor system with multiple compressors connected
in parallel.
Citation List
Patent Literature
Summary of Invention
Technical Problem
[0004] For example, there is a refrigeration cycle apparatus that uses the compressor system
of Patent Literature 1 to ensure refrigeration capacity by increasing the refrigerant
circulation volume and thus increasing the volume of refrigerant available for cooling
an object. For such a refrigeration cycle apparatus, the greater the refrigeration
capacity required to cool an object, the larger the total compressor capacity needs
to be. More specifically, the number of compressors needs to be increased or the capacity
per compressor needs to be increased, which leads to higher equipment costs and a
larger size of the refrigeration cycle apparatus as a whole.
[0005] The present disclosure proposes a refrigeration cycle apparatus with a reduced total
compressor capacity, compared to ensuring the refrigeration capacity by increasing
the refrigerant circulation volume.
Solution to Problem
[0006] In a first aspect, the present invention relates to a refrigeration cycle apparatus
including: a first compression element configured to suck in and compress refrigerant
and discharge the compressed refrigerant into a first flow path; a radiator provided
on the first flow path, the radiator being configured to allow the refrigerant to
pass therethrough and dissipate heat extracted from the refrigerant passing therethrough;
a branching section configured to split the refrigerant after passing through the
radiator in the first flow path into a first branch and a second branch; a first decompression
element configured to decompress the refrigerant branched off into the first branch
and flow the decompressed refrigerant into a second flow path; a heat exchanger configured
to cause a heat exchange between the refrigerant flowing in the second flow path and
the refrigerant branched off into the second branch; a second decompression element
configured to decompress the refrigerant in the second branch having undergone the
heat exchange in the heat exchanger; a cooler configured to cool an object through
a heat exchange between the refrigerant decompressed by the second decompression element
and the object and allow the refrigerant after the heat exchange to be sucked into
the first compression element; a second compression element configured to suck in
and compress the refrigerant in the second flow path having undergone the heat exchange
in the heat exchanger and discharge the compressed refrigerant into a third flow path;
and a merging section configured to allow the third flow path to merge into the first
flow path. This configuration can reduce the total compressor capacity compared to
ensuring the refrigeration capacity by increasing the refrigerant circulation volume.
[0007] In a second aspect, the present invention relates to the refrigeration cycle apparatus
of the first aspect, wherein the merging section is configured to allow the third
flow path to merge into the first flow path at a position in the first flow path rearward
of the radiator, and the refrigeration cycle apparatus further comprises a second
radiator in the third flow path, the second radiator being configured to dissipate
heat extracted by allowing the refrigerant compressed by the second compression element
to pass therethrough. This can increase the heat dissipation from the radiator compared
to when the merging section allows the third flow path to merge into the first flow
path at a position in the first flow path forward of the radiator.
[0008] In a third aspect, the present invention relates to the refrigeration cycle apparatus
of the second aspect, wherein a capacity of the first compression element is larger
than a capacity of the second compression element. This can increase the heat dissipation
from the radiator compared to when the capacity of the first compression element is
smaller than that of the second compression element.
[0009] In a fourth aspect, the present invention relates to the refrigeration cycle apparatus
of the third aspect, further including a third decompression element in the third
flow path, the third decompression element being configured to decompress the refrigerant
after passing through the second radiator. This allows for setting a higher compression
ratio for the second compression element.
[0010] In a fifth aspect, the present invention relates to the refrigeration cycle apparatus
of the second aspect, further including a fourth decompression element at a position
in the first flow path rearward of the radiator and forward of where the third flow
path is merged into the first flow path by the merging section, the fourth decompression
element being configured to decompress the refrigerant after passing through the radiator.
This allows for setting a higher compression ratio for the first compression element.
[0011] In a sixth aspect, the present invention relates to the refrigeration cycle apparatus
of any one of the first to fifth aspects, wherein at least a portion of a composition
of the refrigerant comprises carbon dioxide. This can increase the heat dissipation
from the radiator compared to using a non-azeotropic mixed refrigerant free of carbon
dioxide.
[0012] In a seventh aspect, the present invention relates to the refrigeration cycle apparatus
of the first aspect, further including temperature sensors configured to measure temperature
of the refrigerant, one of the sensors being located at a position in the first flow
path forward of the radiator and forward of where the third flow path is merged into
the first flow path by the merging section, another one of the sensors being located
at a position in the third flow path forward of where the third flow path is merged
into the first flow path by the merging section; and a controller configured to control
circulation of the refrigerant based on the temperature of the refrigerant measured
by the temperature sensors, wherein the controller is configured to increase a flow
resistance of the first decompression element when the temperature of the refrigerant
measured in the first flow path is higher than the temperature of the refrigerant
measured in the third flow path. This can reduce the enthalpy difference between the
refrigerant compressed by the first compression element and the refrigerant compressed
by the second compression element.
[0013] In an eighth aspect, the present invention relates to the refrigeration cycle apparatus
of the first aspect, further including temperature sensors configured to measure temperature
of the refrigerant, one of the sensors being located at a position in the first flow
path forward of the radiator and forward of where the third flow path is merged into
the first flow path by the merging section, another one of the sensors being located
at a position in the third flow path forward of where the third flow path is merged
into the first flow path by the merging section; and a controller configured to control
circulation of the refrigerant based on the temperature of the refrigerant measured
by the temperature sensors, wherein the controller is configured to control a flow
rate of the second compression element when the temperature of the refrigerant measured
in the first flow path is higher than the temperature of the refrigerant measured
in the third flow path. This can reduce the enthalpy difference between the refrigerant
compressed by the first compression element and the refrigerant compressed by the
second compression element.
Brief Description of the Drawings
[0014]
FIG. 1 illustrates an example schematic configuration of an air conditioner according
to exemplary embodiments.
FIG. 2 is a schematic diagram of a refrigerant circuit according to a first embodiment.
FIG. 3 is a pressure-specific enthalpy diagram illustrating a refrigeration cycle
of refrigerant circulating in the refrigerant circuit according to the first embodiment.
FIG. 4 is a schematic diagram of a refrigerant circuit according to a second embodiment.
FIG. 5 is a schematic diagram of a refrigerant circuit according to a third embodiment.
FIG. 6 is a schematic diagram of a refrigerant circuit according to a fourth embodiment.
FIG. 7 illustrates a refrigerant circuit in an example application.
FIGS. 8A and 8B illustrate a conventional refrigeration cycle apparatus, where FIG.
8A is a schematic diagram of a refrigerant circuit in the conventional refrigeration
cycle apparatus, and FIG. 8B is a pressure-specific enthalpy diagram illustrating
a refrigeration cycle of refrigerant circulating in the refrigerant circuit.
Description of Embodiments
[0015] A conventional art apparatus without application of embodiments of the present invention
is described first.
[0016] FIGS. 8A and 8B illustrate a conventional refrigeration cycle apparatus, where FIG.
8A is a schematic diagram of a refrigerant circuit 10' in the conventional refrigeration
cycle apparatus, and FIG. 8B is a pressure-specific enthalpy diagram illustrating
a refrigeration cycle of refrigerant circulating in the refrigerant circuit 10'. In
FIG. 8B, the horizontal axis represents specific enthalpy [kJ/kg], and the vertical
axis represents absolute pressure [MPa.abs] with respect to absolute vacuum.
[0017] In FIG. 8A, lines connecting respective devices represent the piping that serves
as refrigerant flow paths. In FIG. 8B, a refrigeration cycle 300' is shown with bold
lines, and points 10a' to 10f' on the refrigeration cycle 300' respectively correspond
to positions 10a' to 10f' on a refrigerant circuit 10'. Thus, the points 10a' to 10f'
on the refrigeration cycle 300' are denoted as the positions 10a' to 10f'. In addition
to the refrigeration cycle 300', FIG. 8B also shows a saturated liquid line 301, a
saturated vapor line 302, a critical point 303, and a 45°C isotherm 304 of carbon
dioxide refrigerant.
[0018] As shown in FIG. 8A, the refrigerant circuit 10' includes two compressors 12', 13'
connected in parallel, a radiator 14', a decompression valve 18', and a cooler 19'
and circulates carbon dioxide therein, which is an example of the refrigerant. More
specifically, the refrigerant after passing through the cooler 19' where it exchanged
heat with an object splits into two branches at a branching section 30' (position
10a'). Of the two branch streams, the refrigerant flowing into one branch is compressed
by the compressor 12', while the refrigerant flowing into the other branch is compressed
by the compressor 13'. The branch streams then merge at a merging section 20' (position
10b'). The merged refrigerant passes through the radiator 14' to dissipate heat (position
10e'). The refrigerant having dissipated heat is then decompressed through the decompression
valve 18' (position 10f') and passes through the cooler 19' again (position 10a').
[0019] The specific enthalpy and pressure of the refrigerant are changed by each device
at each position on the refrigerant circuit 10', establishing a refrigeration cycle
of the refrigerant. More specifically, as shown in FIG. 8B, from position 10a' to
position 10b', the pressure and specific enthalpy of the refrigerant increase due
to the compression by the compressors 12', 13' and the gain of compression heat. From
position 10b' to position 10e', the specific enthalpy of the refrigerant decreases
due to the heat dissipation in the radiator 14'. Further, from position 10e' to position
10f', the pressure of the refrigerant decreases due to the decompression by the decompression
valve 18'. Furthermore, from position 10f' to position 10a', the specific enthalpy
of the refrigerant increases due to the heat exchange with the object in the cooler
19'.
[0020] In the refrigeration cycle apparatus, the ability of the cooler to cool an object
(which may be referred to hereinafter as "refrigeration capacity") is determined by
the magnitude of heat (heat absorption) taken from the object by the refrigerant passing
through the cooler. Thus, in the conventional refrigeration cycle apparatus using
the refrigerant circuit 10', the refrigeration capacity of the cooler 19' is determined
by the product of the change in specific enthalpy when the refrigerant moves from
position 10f' to position 10a' and the volume of refrigerant passing through the cooler
19'.
[0021] To increase the refrigeration capacity of the cooler 19' in the conventional refrigeration
cycle apparatus using the refrigerant circuit 10', the volume of refrigerant circulating
in the refrigerant circuit 10' is increased to increase the volume of refrigerant
passing through the cooler 19'. More specifically, the number of compressors connected
in parallel with the compressors 12', 13' is increased or the capacity of the compressors
12', 13' is increased. Thus, in the conventional refrigeration cycle apparatus using
the refrigerant circuit 10', the total compressor capacity increases along with an
increase in the refrigeration capacity that needs to be ensured. The "total capacity"
refers to the sum of the capacities of all compressors provided in the refrigerant
circuit.
[0022] A refrigeration cycle apparatus according to exemplary embodiments of the present
invention includes a configuration that can reduce the total compressor capacity,
compared to ensuring the refrigeration capacity by increasing the refrigerant circulation
volume.
[0023] Exemplary embodiments of the present invention are now detailed below.
<First Embodiment>
(Air conditioner 1)
[0024] FIG. 1 illustrates an example schematic configuration of an air conditioner according
to exemplary embodiments.
[0025] As shown in the figure, the air conditioner 1 according to the exemplary embodiments
includes a refrigerant circuit 10 having refrigerant circulating therein and a controller
50 to control circulation of the refrigerant in the refrigerant circuit 10. The controller
50 is wired or wirelessly connected to devices included in the refrigerant circuit
10 (described below with reference to FIG. 2) and can transmit control signals to
the devices.
[0026] The air conditioner 1 is an example of the refrigeration cycle apparatus according
to the exemplary embodiments.
[0027] The air conditioner 1 cools the air taken in and supplies it to a space as cold air
to cool the space. More specifically, the air conditioner 1 extracts heat from the
air, which is an example of the object, through a heat exchange between the refrigerant
passing through a cooler (described below with reference to FIG.2) incorporated in
the refrigerant circuit 10 and the air to thereby cool the air. The air conditioner
1 then supplies the cooled air as cold air to the space through an outlet or the like
(not shown) of the indoor unit to cool the space.
(Controller 50)
[0028] The controller 50 controls the circulation of the refrigerant in the refrigerant
circuit 10 by sending control signals to the devices included in the refrigerant circuit
10. The controller 50 also controls the volume of cold air supplied by the air conditioner
1 to the space. The controller 50 according to the exemplary embodiments includes,
for example, an operation panel or controller to accept operations from users and
performs control in response to operational inputs from the users, such as those related
to temperature settings and air volume settings. Also, for example, the controller
50 includes a temperature sensor to measure the temperature of the space and performs
control according to the measurements of the sensor. Furthermore, for example, the
controller 50 includes a temperature sensor to measure the temperature of the refrigerant
in the refrigerant circuit 10 and performs control according to the measurements of
the sensor.
[0029] The controller 50 may also obtain information related to the operations of the devices
included in the refrigerant circuit 10, such as the effective values of the operations
relative to the control values, and may control the devices according to the obtained
information.
(Refrigerant circuit 10)
[0030] The refrigerant circuit 10 is a circuit that establishes a refrigeration cycle of
the refrigerant through the circulation of the refrigerant and enables cooling of
the object through a heat exchange with the refrigerant. More specifically, the refrigerant
circuit 10 according to the exemplary embodiments establishes a refrigeration cycle
of carbon dioxide refrigerant, which is an example of the refrigerant, by circulating
the carbon dioxide refrigerant while adjusting its specific enthalpy and pressure,
and enables cooling of the air by extracting heat from the air through a heat exchange
on the low-pressure side. The carbon dioxide refrigerant circulating in the refrigerant
circuit 10 may be referred to hereinafter simply as the "refrigerant".
[0031] In addition to the refrigerant, the refrigerant circuit 10 may also circulate therein
a fluid(s) different from the refrigerant, such as lubricating oil to ensure lubrication
in the compressors described below.
[0032] FIG. 2 is a schematic diagram of the refrigerant circuit 10 according to a first
embodiment.
[0033] As shown in the figure, the refrigerant circuit 10 according to the first embodiment
includes compressors 12, 13 to compress the refrigerant, a radiator 14 to extract
and dissipate heat from the refrigerant, a refrigerant-refrigerant heat exchanger
17 to cause a heat exchange between refrigerants, electric valves 16, 18 with adjustable
opening, and a cooler 19 to cool the air through a heat exchange with the refrigerant
passing therethrough.
[0034] The refrigerant circuit 10 also includes a temperature sensor 501 to measure the
temperature of the refrigerant compressed and discharged by the compressor 12 and
a temperature sensor 502 to measure the temperature of the refrigerant compressed
and discharged by the compressor 13. In addition to the above devices, the refrigerant
circuit 10 may also include pressure and temperature sensors to measure the pressure
and temperature of the refrigerant at various points, receivers that can store the
refrigerant, pressure switchgears as protection mechanisms, filters, heat sinks, oil
separators, etc.
[0035] In FIG. 2, the lines connecting the respective devices represent the flow paths of
the refrigerant, which are implemented by, for example, meal pipes.
[0036] As shown in the figure, the flow paths of the refrigerant circuit 10 are provided
with a branching section 15 for splitting the relevant flow path and a merging section
20 for merging the branched-off paths. Here, the flow path between the compressor
12 and the branching section 15 is referred to as a first flow path 101, the flow
path between the electric valve 16 and the compressor 13 as a second flow path 102,
the flow path between the compressor 13 and the merging section 20 as a third flow
path 103, and the flow path between the electric valve 18 and the compressor 12 as
a fourth flow path 104. Of the two flow paths branched off by the branching section
15, one leading to the electric valve 16 is referred to as a first branch 151 and
the other leading to the cooler 19 via the electric valve 18 is referred to as a second
branch 152. Each flow path may comprise a single seamless pipe or two or more pipes
connected by a flange structure or the like (not shown). The flow paths may also have
various devices positioned along the flow paths.
[0037] The compressor 12 is a device to compress the refrigerant sucked in from the fourth
flow path 104 and discharge it into the first flow path 101. The compressor 13 is
a device to compress the refrigerant sucked in from the second flow path 102 and discharge
it into the third flow path 103. The mechanisms of the compressors 12, 13 are not
limited, and may be of any of various types of mechanisms, such as oscillating, scroll,
and rotary types.
[0038] The compressors 12, 13 compress the sucked-in refrigerant at a compression ratio
(= pressure of the refrigerant to be discharged / pressure of the sucked-in refrigerant)
that is set according to the control of the controller 50 (see FIG. 1) and discharge
it. For the compressors 12, 13 of the present embodiments, for example, the operating
frequency and the volume of refrigerant to be sucked in/discharged are controlled
according to control signals from the controller 50. The "operating frequency" refers
to the frequency of operation of the relevant component in the compressor performed
to compress the refrigerant. Specifically, the operating frequency refers to, for
example, the frequency of oscillation of the oscillating body in an oscillating compressor
or the frequency of rotation of the rotating body in a scroll or rotary compressor.
[0039] The compressor 12 is an example of the first compression element, and the compressor
13 is an example of the second compression element.
[0040] The radiator 14 is a device provided on the first flow path 101 to extract and dissipate
heat from the refrigerant through a heat exchange between the refrigerant passing
therethrough and a fluid such as air or water. As shown in the figure, in the refrigerant
circuit 10 according to the first embodiment, the radiator 14 is provided between
the merging section 20 and the branching section 15 on the first flow path 101. The
radiator 14 may be any of various types of heat exchangers, such as tubular and plate
heat exchangers.
[0041] In the radiator 14, the fluid that exchanged heat with the refrigerant is heated
by the heat extracted from the refrigerant. Thus, in one example, air may be used
as the fluid, and the heated air may be supplied as hot air to the space to warm the
space. In another example, water may be used as the fluid, and the heated water may
be supplied to users as hot water. As such, the radiator 14 can also be used as a
heater to heat fluids.
[0042] The electric valves 16, 18 are each composed of a valve, such as a ball valve, and
a motor to drive the valve. The electric valves 16, 18 regulate the pressure of the
flowing refrigerant as the motor adjusts the opening degree of the valve. More specifically,
the electric valve 16 is provided between the first branch 151 and the second flow
path 102. The electric valve 16 decompresses the refrigerant flowing in from the first
branch 151 by throttle expansion according to the opening degree of the valve and
flows it into the second flow path 102. The electric valve 18 is provided between
the refrigerant-refrigerant heat exchanger 17 and the cooler 19 on the second branch
152. The electric valve 18 decompresses the refrigerant flowing in from the refrigerant-refrigerant
heat exchanger 17 by throttle expansion according to the opening degree of the valve
and flows it into the cooler 19. The opening degrees of the electric valves 16, 18
are adjusted as the respective motors are driven according to control signals from
the controller 50.
[0043] The electric valves 16, 18 have a flow resistance depending on their respective opening
degrees. The flow resistance is a measure of the difficulty in the refrigerant flowing
through the electric valves 16, 18. The higher the opening degree, the higher the
flow resistance with a more difficult flow of the refrigerant, and the lower the opening
degree, the lower the flow resistance with an easier flow of the refrigerant.
[0044] The electric valve 16 is an example of the first decompression element, and the electric
valve 18 is an example of the second decompression element. Other decompression elements
than the electric valves that can be controlled by the controller 50 (see FIG. 1)
may include solenoid valves with a valve driven by a solenoid.
[0045] The refrigerant-refrigerant heat exchanger 17 is a device to cause a heat exchange
between the refrigerant flowing in the second flow path 102 and the refrigerant flowing
in the second branch 152. More specifically, the refrigerant-refrigerant heat exchanger
17 causes a heat exchange between the refrigerant branched off at the branching section
15 into the first branch 151 and flowing in the second flow path 102 after decompression
by the electric valve 16 and the refrigerant branched off at the branching section
15 into the second branch 152. In the heat exchange in the refrigerant-refrigerant
heat exchanger 17, the refrigerant flowing in the second flow path 102 extracts heat
from the refrigerant flowing in the second branch 152, resulting in cooling the refrigerant
flowing in the second branch 152.
[0046] The cooler 19 is a device provided on the fourth flow path 104 to cool the air by
extracting heat from the air through a heat exchange between the refrigerant passing
therethrough and the air. The cooler 19 may be a heat exchanger such as a tubular
heat exchanger.
[0047] The air that has been cooled through the heat exchange with the refrigerant in the
cooler 19 is supplied to the space via an air passage (not shown) to cool the space.
This implements the cooling function of the air conditioner 1 (see FIG. 1).
[0048] The circulation of the refrigerant in the refrigerant circuit 10 is now described.
In the refrigerant circuit 10 according to the first embodiment, the refrigerant after
cooling the air as it passed through the cooler 19 (position 10a) is compressed by
the compressor 12 and discharged into the first flow path 101 (position 10b). The
refrigerant discharged into the first flow path 101 merges with the refrigerant flowing
in from the third flow path 103 at the merging section 20 (position 10c). The merged
refrigerant then passes through the radiator 14 to dissipate heat and is then branched
off at the branching section 15 into the first branch 151 and the second branch 152
(position 10d). The refrigerant branched off into the first branch 151 is decompressed
by the electric valve 16 and flows into the second flow path 102 (position 10g), where
it exchanges heat in the refrigerant-refrigerant heat exchanger 17 with the refrigerant
branched off into the second branch 152 (position 10h). The refrigerant is then compressed
by the compressor 13 and discharged into the third flow path 103 (position 10i), which
merges with the first flow path 101 at the merging section 20 (position 10c). Meanwhile,
the refrigerant branched off into the second branch 152 and having undergone the heat
exchange in the refrigerant-refrigerant heat exchanger 17 (position 10e) is decompressed
by the electric valve 18 (position 10f) and then passes through the cooler 19 to cool
the air (position 10a).
[0049] With this refrigerant circulation, the refrigerant circuit 10 establishes a refrigeration
cycle of the refrigerant.
(Refrigeration cycle)
[0050] The refrigeration cycle in the refrigerant circuit 10 is detailed with reference
to FIGS. 2 and 3.
[0051] FIG. 3 is a pressure-specific enthalpy diagram illustrating the refrigeration cycle
300 of the refrigerant circulating in the refrigerant circuit 10 according to the
first embodiment. In FIG. 3, the horizontal axis represents specific enthalpy [kJ/kg],
and the vertical axis represents absolute pressure [MPa.abs] with respect to absolute
vacuum.
[0052] In FIG. 3, the refrigeration cycle 300 is shown with bold lines. Points 10a to 10i
on the refrigeration cycle 300 respectively correspond to the positions 10a to 10i
on the refrigerant circuit 10 shown in FIG. 2. Thus, the points 10a to 10i on the
refrigeration cycle 300 are denoted as the positions 10a to 10i. In addition to the
refrigeration cycle 300, FIG. 3 also shows a saturated liquid line 301, a saturated
vapor line 302, a critical point 303, and a 45°C isotherm 304 of the carbon dioxide
refrigerant.
[0053] In the refrigerant circuit 10 according to the first embodiment, the pressure and
specific enthalpy of the refrigerant increase from position 10a to position 10b on
the refrigeration cycle 300 as the refrigerant compressed by the compressor 12 and
having gained compression heat is discharged into the first flow path 101. The specific
enthalpy of the refrigerant varies from position 10b to position 10c as the third
flow path 103 merges at the merging section 20. Further, the specific enthalpy of
the refrigerant decreases from position 10c to position 10d as the merged refrigerant
dissipates heat through the heat exchange with the fluid in the radiator 14. The refrigerant
at position 10c is pressurized to an elevated temperature by the compressors 12, 13,
having a high temperature of more than 45°C, for example. Thus, the fluid with which
the refrigerant exchanges heat in the radiator 14 can take heat from the refrigerant
even if the fluid is, for example, at room temperature (15°C to 25°C).
[0054] At position 10d, the refrigerant in the first branch 151 branched off at the branching
section 15 is decompressed by the electric valve 16 before flowing into the second
flow path 102, so that the pressure of the refrigerant decreases from position 10d
to position 10g. Along with this decrease in pressure, the temperature of the refrigerant
flowing in the second flow path 102 decreases below the temperature of the refrigerant
flowing in the second branch 152. Thus, the refrigerant flowing in the second flow
path 102 takes heat from the refrigerant in the first branch 151 through the heat
exchange with the refrigerant in the first branch 151 in the refrigerant-refrigerant
heat exchanger 17, resulting in the specific enthalpy increasing from position 10g
to position 10h. Conversely, the specific enthalpy of the refrigerant in the second
branch 152 decreases from position 10d to position 10e due to the heat loss through
the heat exchange.
[0055] The refrigerant in the second branch 152 after passing through the refrigerant-refrigerant
heat exchanger 17 is decompressed by the electric valve 18, so that the pressure of
the refrigerant decreases from position 10e to position 10f. The specific enthalpy
of the decompressed refrigerant increases from position 10f to position 10a as it
exchanges heat with the air in the cooler 19 to take heat from the air. The refrigerant
at position 10f has been decompressed to a reduced temperature by the electric valve
18, having a sufficiently low temperature relative to the air to be cooled. Thus,
the refrigerant can take heat from the air, with which it exchanges heat in the cooler
19.
[0056] The refrigerant in the second flow path 102 after passing through the refrigerant-refrigerant
heat exchanger 17 is compressed by the compressor 13 to gain compression heat, resulting
in the pressure and specific enthalpy of the refrigerant increasing from position
10h to position 10i.
[0057] The above establishes the refrigeration cycle 300 of the refrigerant circuit 10.
[0058] Here, the refrigerant to cool the air in the cooler 19 has lost its heat through
the heat exchange with the counterpart refrigerant in the refrigerant-refrigerant
heat exchanger 17, prior to being decompressed by the electric valve 18. Thus, the
refrigerant to cool the air in the cooler 19 of the refrigerant circuit 10 (position
10f in FIGS. 2 and 3) has a lower specific enthalpy than the refrigerant to cool the
air in the cooler 19' of the conventional refrigerant circuit 10' (position 10f' in
FIG. 8). This increases the volume of heat taken by the refrigerant per unit volume
in the cooler 19 of the refrigerant circuit 10 compared to the conventional refrigerant
circuit 10' where the heat exchange between refrigerants does not take place. This
allows for ensuring the refrigeration capacity without increasing the refrigerant
circulation volume.
[0059] In the refrigerant circuit 10, the carbon dioxide refrigerant enters a supercritical
state in part of the refrigeration cycle 300, where the refrigerant has larger density
changes along with its pressure changes than when it is in a non-supercritical state.
Thus, a greater refrigeration capacity can be ensured for the compression work of
the compressors 12, 13 than when the refrigerant does not go through a supercritical
state. This is also the case in the refrigerant circuits according to the second to
fourth embodiments described below.
[0060] Referring now to FIGS. 2, 8, and Table 1, the performance of the refrigerant circuit
10 according to the first embodiment is compared with that of the conventional refrigerant
circuit 10'.
Table 1 lists the capacities and coefficients of performance (COP) of the compressors
12, 13/12', 13' in the air conditioner 1 using the refrigerant circuit 10 according
to the first embodiment and an air conditioner using the conventional refrigerant
circuit 10'. The COP is a value obtained by dividing the cooling effect of the coolers
17/17' of the refrigerant circuits 10/10' by the power consumption for the operations
of the refrigerant circuits 10/10', and corresponds to the efficiency of the cooling
effect relative to the power consumption.
[Table 1]
| |
|
Refrigerant circuit 10 |
Refrigerant circuit 10' |
| Compressor 12/12' capacity |
cc |
106 |
81.5 |
| Compressor 13/13' capacity |
cc |
33 |
81.5 |
| Total capacity |
cc |
139 |
163 |
| COP |
|
1.90 |
1.60 |
| Total capacity comparison |
% |
85 |
100 (basis) |
| COP comparison |
% |
119 |
100 (basis) |
[0061] As shown in Table 1, based on the capacities of the compressors 12, 13 in the refrigerant
circuit 10 being 106 cc and 33 cc, respectively, for a total capacity of 139 cc, the
COP of the air conditioner 1 is 1.90. On the other hand, based on the capacities of
the compressors 12', 13' in the conventional refrigerant circuit 10' each being 81.5
cc for a total capacity of 163 cc, the COP of the air conditioner is 1.60. That is,
based on the total capacity and COP of the air conditioner using the conventional
refrigerant circuit 10' taken as 100% (basis), the air conditioner 1 using the refrigerant
circuit 10 can improve the COP to 119% while reducing the total capacity to 85%.
[0062] As described above, in the air conditioner 1 using the refrigerant circuit 10, the
refrigeration capacity is ensured through the heat exchange between the refrigerants
in the refrigerant-refrigerant heat exchanger 17, which can increase the cooling effect
of the air conditioner 1 even with a reduced total compressor capacity, compared to
using the conventional refrigerant circuit 10 which ensures the refrigeration capacity
by increasing the refrigerant circulation volume.
(Control by the controller 50)
[0063] By the way, the controller 50 of the air conditioner 1 (see FIG. 1) may control the
circulation of the refrigerant based on the temperature of the refrigerant measured
by the temperature sensors 501, 502 (see FIG. 2).
[0064] For example, when the temperature of the refrigerant measured by the temperature
sensor 501 is higher than the temperature of the refrigerant measured by the temperature
sensor 502, the controller 50 may reduce the opening degree of the electric valve
16 to increase the flow resistance. Also, for example, when the temperature of the
refrigerant measured by the temperature sensor 501 is higher than the temperature
of the refrigerant measured by the temperature sensor 502, the controller 50 may increase
the volume of refrigerant sucked in by the compressor 13 to increase the flow rate
of the refrigerant in the compressor 13. These controls reduce the enthalpy difference
between the refrigerant compressed by the compressor 12 (position 10b in FIG. 2) and
the refrigerant compressed by the compressor 13 (position 10i in FIG. 2). This, in
turn, allows for setting a higher compression ratio for the compressor 13.
[0065] The locations of the temperature sensors 501, 502 used for control are not limited
to those illustrated in FIG. 2; the temperature sensor 501 may be located at any position
in the first flow path 101 forward of the radiator 14 and forward of where the third
flow path 103 is merged into the first flow path 101 by the merging section 20, and
the temperature sensor 502 may be located at any position in the third flow path 103
forward of where it is merged into the first flow path 101 by the merging section
20.
<Second Embodiment>
(Refrigerant circuit 10-2)
[0066] In a distinction from the first embodiment, the air conditioner 1 according to the
second embodiment includes a refrigerant circuit 10-2 instead of the refrigerant circuit
10 (see FIG. 2).
[0067] FIG. 4 is a schematic diagram of the refrigerant circuit 10-2 according to the second
embodiment.
[0068] As shown in the figure, the refrigerant circuit 10-2 according to the second embodiment
differs from the refrigerant circuit 10 according to the first embodiment only in
that a radiator 21 is provided on the third flow path 103 and that the merging section
20 allows the third flow path 103 to merge into the first flow path 101 at a position
rearward of the radiator 14 in the first flow path 101. Accordingly, common elements
between the refrigerant circuit 10 and the refrigerant circuit 10-2 are identified
by the same names and reference numerals, and detailed descriptions thereof are omitted.
[0069] The radiator 21 is a device provided on the third flow path 103 to extract and dissipate
heat from the refrigerant through a heat exchange between the refrigerant passing
therethrough and a fluid such as air or water. In other words, the radiator 21 takes
heat from the refrigerant compressed by the compressor 13 through a heat exchange
between the refrigerant compressed by the compressor 13 and the fluid.
[0070] The radiator 21 may be a heat exchanger similar to the radiator 14. As with the radiator
14, the radiator 21 can also be used as a heater to heat fluids.
[0071] The radiator 21 is an example of the second radiator.
[0072] In the refrigerant circuit 10-2, the refrigerant after cooling the air as it passed
through the cooler 19 is compressed by the compressor 12 and discharged into the first
flow path 101. The refrigerant discharged into the first flow path 101 passes through
the radiator 14 to dissipate heat. After the refrigerant in the third flow path 103
merges at the merging section 20, the merged refrigerant is blanched off at the branching
section 15 into the first branch 151 and the second branch 152. The refrigerant branched
off into the first branch 151 is decompressed by the electric valve 16 and flows into
the second flow path 102, where it exchanges heat in the refrigerant-refrigerant heat
exchanger 17 with the refrigerant branched off into the first branch 151. The refrigerant
is then compressed by the compressor 13 and discharged into the third flow path 103.
The refrigerant then passes through the radiator 21 to dissipate heat and merges into
the first flow path 101 at the merging section 20. Meanwhile, the refrigerant branched
off into the second branch 152 and having undergone the heat exchange in the refrigerant-refrigerant
heat exchanger 17 is decompressed by the electric valve 18 and then passes through
the cooler 19 to cool the air.
[0073] With this refrigerant circulation, the refrigerant circuit 10-2 establishes a refrigeration
cycle of the refrigerant.
[0074] As with the first embodiment, the second embodiment using the refrigerant circuit
10-2 described above can reduce the total compressor capacity compared to using the
conventional refrigerant circuit 10 that ensures the refrigeration capacity by increasing
the refrigerant circulation volume.
[0075] Additionally, in the refrigerant circuit 10-2, the merging section 20 allows the
third flow path 103 to merge into the first flow path 101 at a position in the first
flow path 101 rearward of the radiator 14, which can increase the heat dissipation
from the radiator 14 compared to when the third flow path 103 is allowed to merge
into the first flow path 101 at a position forward of the radiator 14.
[0076] In the refrigerant circuit 10-2 according to the second embodiment, the capacity
of the compressor 12 may be larger than that of the compressor 13. Such a configuration
can increase the heat dissipation from the radiator 14 compared to when the capacity
of the compressor 12 is smaller than that of the compressor 13.
<Third Embodiment>
(Refrigerant circuit 10-3)
[0077] In a distinction from the first embodiment, the air conditioner 1 according to the
third embodiment includes a refrigerant circuit 10-3 instead of the refrigerant circuit
10 (see FIG. 2).
[0078] FIG. 5 is a schematic diagram of the refrigerant circuit 10-3 according to the third
embodiment.
[0079] As shown in the figure, the refrigerant circuit 10-3 according to the third embodiment
differs from the refrigerant circuit 10-2 according to the second embodiment only
in that the refrigerant circuit 10-3 includes an electric valve 22 to decompress the
refrigerant after passing through the radiator 21. Accordingly, common elements between
the refrigerant circuit 10-2 and the refrigerant circuit 10-3 are identified by the
same names and reference numerals, and detailed descriptions thereof are omitted.
[0080] The electric valve 22 is provided at a position in the third flow path 103 rearward
of the radiator 21 to decompress the refrigerant passing through the electric valve
22.
[0081] The electric valve 22 may have the same configuration as the electric valves 16,
18, with its opening degree adjustable by the controller 50.
[0082] The electric valve 22 is an example of the third decompression element.
[0083] In the refrigerant circuit 10-3, the refrigerant after cooling the air as it passed
through the cooler 19 is compressed by the compressor 12 and discharged into the first
flow path 101. The refrigerant discharged into the first flow path 101 passes through
the radiator 14 to dissipate heat. After the refrigerant in the third flow path 103
merges at the merging section 20, the merged refrigerant is branched off at the branching
section 15 into the first branch 151 and the second branch 152. The refrigerant branched
off into the first branch 151 is decompressed by the electric valve 16 and flows into
the second flow path 102, where it exchanges heat in the refrigerant-refrigerant heat
exchanger 17 with the refrigerant branched off into the first branch 151. The refrigerant
is then compressed by the compressor 13 and discharged into the third flow path 103.
The refrigerant then passes through the radiator 21 to dissipate heat and is further
decompressed by the electric valve 22 before merging into the first flow path 101
at the merging section 20. Meanwhile, the refrigerant branched off into the second
branch 152 and having undergone the heat exchange in the refrigerant-refrigerant heat
exchanger 17 is decompressed by the electric valve 18 and then passes through the
cooler 19 to cool the air.
[0084] With this refrigerant circulation, the refrigerant circuit 10-3 establishes a refrigeration
cycle of the refrigerant.
[0085] As with the first and second embodiments, the third embodiment using the refrigerant
circuit 10-3 described above can reduce the total compressor capacity compared to
using the conventional refrigerant circuit 10 that ensures the refrigeration capacity
by increasing the refrigerant circulation volume.
[0086] Additionally, in the refrigerant circuit 10-3, the refrigerant compressed by the
compressor 13 is decompressed by the electric valve 22, which can increase the compression
ratio for the compressor 13 compared to the absence of the electric valve 22.
<Fourth Embodiment>
(Refrigerant circuit 10-4)
[0087] In a distinction from the first embodiment, the air conditioner 1 according to the
fourth embodiment includes a refrigerant circuit 10-4 instead of the refrigerant circuit
10 (see FIG. 2).
[0088] FIG. 6 is a schematic diagram of the refrigerant circuit 10-4 according to the fourth
embodiment.
[0089] As shown in the figure, the refrigerant circuit 10-4 according to the fourth embodiment
differs from the refrigerant circuit 10-2 according to the second embodiment only
in that the refrigerant circuit 10-4 includes an electric valve 23 to decompress the
refrigerant after passing through the radiator 14. Accordingly, common elements between
the refrigerant circuit 10-2 and the refrigerant circuit 10-4 are identified by the
same names and reference numerals, and detailed descriptions thereof are omitted.
[0090] The electric valve 23 is provided at a position in the first flow path 101 rearward
of the radiator 14 and forward of where the third flow path 103 is merged into the
first flow path 101 by the merging section 20 and decompresses the refrigerant passing
through the electric valve 23.
[0091] The electric valve 23 may have the same configuration as the electric valves 16,
18, 22, with its opening degree adjustable by the controller 50.
[0092] The electric valve 23 is an example of the fourth decompression element.
[0093] In the refrigerant circuit 10-4, the refrigerant after cooling the air as it passed
through the cooler 19 is compressed by the compressor 12 and discharged into the first
flow path 101. The refrigerant discharged into the first flow path 101 passes through
the radiator 14 to dissipate heat and is then decompressed by the electric valve 23.
After the refrigerant in the third flow path 103 merges at the merging section 20,
the merged refrigerant is branched off at the branching section 15 into the first
branch 151 and the second branch 152. The refrigerant branched off into the first
branch 151 is decompressed by the electric valve 16 and flows into the second flow
path 102, where it exchanges heat in the refrigerant-refrigerant heat exchanger 17
with the refrigerant branched off into the second branch 152. The refrigerant is then
compressed by the compressor 13 and discharged into the third flow path 103. The refrigerant
then passes through the radiator 21 to dissipate heat and merges into the first flow
path 101 at the merging section 20. Meanwhile, the refrigerant branched off into the
second branch 152 and having undergone the heat exchange in the refrigerant-refrigerant
heat exchanger 17 is decompressed by the electric valve 18 and then passes through
the cooler 19 to cool the air.
[0094] With this refrigerant circulation, the refrigerant circuit 10-4 establishes a refrigeration
cycle of the refrigerant.
[0095] As with the first to third embodiments, the fourth embodiment using the refrigerant
circuit 10-4 described above can reduce the total compressor capacity compared to
using the conventional refrigerant circuit 10 that ensures the refrigeration capacity
by increasing the refrigerant circulation volume.
[0096] Additionally, in the refrigerant circuit 10-4, the refrigerant compressed by the
compressor 12 is decompressed by the electric valve 23, which can increase the compression
ratio for the compressor 12 compared to the absence of the electric valve 23.
<Example Application>
(Switching between cooling/heating)
[0097] The air conditioner 1 may switch between a cooling function of supplying cold air
to a space to cool the space and a heating function of supplying hot air to a space
to warm the space. In this case, sharing the same heat exchanger for both the cooling
function to cool the air and the heating function to heat the air enables the shared
use of air supply paths used for heat exchange and air passages used for supplying
the cold air/hot air after heat exchange to the space.
[0098] The refrigerant circuit in one example application includes a switcher for switching
the cooler 19 (see FIGS. 2, 4 to 6) in the above embodiments between serving as a
heat exchanger to cool the air in the cooling function and serving as a heat exchanger
to heat the air in the heating function.
[0099] FIG. 7 illustrates a refrigerant circuit 10-5 in one application example.
[0100] As shown in the figure, the refrigerant circuit 10-5 in the example application differs
from the refrigerant circuit 10 according to the first embodiment only in that the
refrigerant circuit 10-5 includes a four-way switching valve 60 to switch the connections
of four flow paths. Accordingly, common elements between the refrigerant circuit 10
and the refrigerant circuit 10-5 are identified by the same names and reference numerals,
and detailed descriptions thereof are omitted.
[0101] The four-way switching valve 60 is provided to connect the flow paths between the
cooler 19 and the compressor 12 to the flow paths between the merging section 20 and
the radiator 14. The connections of the flow paths are switched between a first state
and a second state under the control of the controller 50, the first state being where
the cooler 19 and the compressor 12 are connected and the merging section 20 and the
radiator 14 are connected, the second state being where the cooler 19 and the merging
section 20 are connected and the compressor 12 and the radiator 14 are connected.
[0102] The four-way switching valve 60 is an example of the switcher, and other components
may be used for switching.
[0103] In the refrigerant circuit 10-5 in the first state, the refrigerant circulates in
the same manner as in the refrigerant circuit 10 described with reference to FIG.
2, cooling the air with which the refrigerant exchanges heat in the cooler 19. This
implements the cooling function of the air conditioner 1.
[0104] On the other hand, in the refrigerant circuit 10-5 in the second state, the refrigerant
circulates in a different manner than in the first state, and the pressure and specific
enthalpy of the refrigerant change along the reverse path of the refrigeration cycle
300 described with reference to FIG. 3. More specifically, the refrigerant compressed
by the compressors 12, 13 merges at the merging section 20 and then passes through
the cooler 19. Here, the refrigerant passing through the cooler 19 has been pressurized
to an elevated temperature by the compressors 12, 13 and has a sufficiently high temperature
relative to the air with which it exchanges heat. Thus, the air with which the refrigerant
exchanges heat in the cooler 19 is heated by taking heat from the refrigerant. This
implements the heating function of the air conditioner 1.
[0105] In the illustrated example of FIG. 7, the switcher is used in the refrigerant circuit
10 according to the first embodiment to implement the refrigerant circuit 10-5 of
the example application. However, a similar switcher may be used in the refrigerant
circuits 10-2, 10-3, 10-4 according to the second, third, and fourth embodiments.
[0106] In the second, third, and fourth embodiments described above as well as in the example
application using the switcher, the controller 50 of the air conditioner 1 may control
the circulation of the refrigerant based on the refrigerant temperature measured by
the temperature sensors 501, 502 (see FIGS. 2, 4 to 7).
<Other variants>
[0107] The above embodiments have illustrated the refrigeration cycle apparatus as being
used in the air conditioner 1. However, the scope of use of the refrigeration cycle
apparatus is not limited to this, and it may be used in various types of equipment
for cooling objects, such as refrigerated warehouses, refrigerators, and ice machines.
As described above with reference to FIG. 2, taking advantage of the heat dissipation
at the radiator 14, the refrigeration cycle apparatus may also be used in various
devices for heating objects, such as heaters, water boilers, and water heaters.
[0108] Carbon dioxide refrigerant has been provided as an example of the refrigerant circulating
in each refrigerant circuit. However, the type of refrigerant is not limited to this.
A mixed refrigerant made of carbon dioxide and one or more other components may be
used, or a single component refrigerant or mixed refrigerant free of carbon dioxide
may be used. However, using a refrigerant that contains carbon dioxide in at least
a portion of its composition, such as the carbon dioxide refrigerant in the above
embodiments, leads to increased heat dissipation at the radiators 14, 21 compared
to using a non-azeotropic mixed refrigerant free of carbon dioxide.
[0109] Furthermore, the first and second compression elements may be integrated into a single
component such that the compression operation in each compression element is implemented
by a common motor or the like. However, providing the compression elements as distinct
components, like the compressors 12, 13 in the above embodiments, allows for controlling
each compression element individually according to the condition of the sucked-in
refrigerant and other factors.
[0110] Also, multiple compressors connected in parallel may be used instead of the compressor
12, and/or multiple compressors connected in parallel may be used instead of the compressor
13. Such configurations can also reduce the total capacity compared to ensuring the
refrigeration capacity by increasing the refrigerant circulation volume as in the
conventional refrigerant circuit 10'.
[0111] In the above embodiments, electric valves or solenoid valves are used as the decompression
elements to enable control of the opening degrees by the controller 50. However, if
control by the controller 50 is not necessary, capillary tubes or orifice plates may
be used as the decompression elements.
[0112] In the above embodiments, the flow of refrigerant is illustrated as being split into
two branches of the first and second branches 151, 152. However, the flow may be split
into three or more branches including the first and second branches 151, 152. Correspondingly,
multiple flow paths including the third flow path 103 may merge into the first flow
path 101. When the flow is split into three or more branches, such split may take
place at multiple branching sections including the branching section 15, and the merging
may take place at multiple merging sections including the merging section 20.
<Additional remarks>
[0113] The above embodiments can be described as having the following aspects.
[0114] The air conditioner 1 of the above embodiments includes any one of the refrigerant
circuits 10-1, 10-2, 10-3, 10-4, 10-5, each of which includes: the compressor 12 configured
to suck in and compress refrigerant and discharge the compressed refrigerant into
the first flow path 101; the radiator 14 provided on the first flow path 101, the
radiator 14 being configured to allow refrigerant to pass therethrough and dissipate
heat extracted from the refrigerant passing therethrough; a branching section 15 configured
to split the refrigerant after passing through the radiator 14 in the first flow path
101 into the first branch 151 and the second branch 152; the electric valve 16 configured
to decompress the refrigerant branched off into the first branch 151 and flow the
decompressed refrigerant into the second flow path 102; the refrigerant-refrigerant
heat exchanger 17 configured to cause a heat exchange between the refrigerant flowing
in the second flow path 102 and the refrigerant branched off into the second branch
152; the electric valve 18 configured to decompress the refrigerant in the second
branch 152 having undergone the heat exchange in the refrigerant-refrigerant heat
exchanger 17; the cooler 19 configured to cool air through a heat exchange between
the refrigerant decompressed by the electric valve 18 and the air and allow the refrigerant
after the heat exchange to be sucked into the compressor 12; the compressor 13 configured
to suck in and compress the refrigerant in the second flow path 102 having undergone
the heat exchange in the refrigerant-refrigerant heat exchanger 17 and discharge the
compressed refrigerant into the third flow path 103; and the merging section 20 configured
to allow the third flow path 103 to merge into the first flow path 101. This configuration
can reduce the total capacity of the compressors 12, 13 compared to air conditioners
including the conventional refrigerant circuit 10' that ensures the refrigeration
capacity by increasing the refrigerant circulation volume.
[0115] In the refrigerant circuit 10-2 according to the second embodiment, the merging section
15 allows the third flow path 103 to merge into the first flow path 101 at the position
in the first flow path 101 rearward of the radiator 14. The third flow path 103 is
provided with the radiator 21 to dissipate heat extracted by allowing the refrigerant
compressed by the compressor 13 to pass therethrough. This can increase the heat dissipation
from the radiator 14 compared to when the merging section 15 allows the third flow
path 103 to merge into the first flow path 101 at a position in the first flow path
101 forward of the radiator 14.
[0116] In the refrigerant circuit 10-2, the capacity of the compressor 12 is larger than
that of the compressor 13. This can increase the heat dissipation from the radiator
14 compared to when the capacity of the compressor 12 is smaller than that of the
compressor 13.
[0117] In addition to the configuration of the refrigerant circuit 10-2, the refrigerant
circuit 10-3 according to the third embodiment includes the electric valve 22 in the
third flow path 103 to decompress the refrigerant after passing through the radiator
21. This allows for setting a higher compression ratio for the compressor 13.
[0118] In addition to the configuration of the refrigerant circuit 10-2, the refrigerant
circuit 10-4 according to the fourth embodiment includes, at a position in the first
flow path 101 rearward of the radiator 14 and forward of where the third flow path
103 is merged into the first flow path 101 by the merging section 20, the electric
value 23 to decompress the refrigerant after passing through the radiator 14. This
allows for setting a higher compression ratio for the compressor 12.
[0119] Carbon dioxide refrigerant is used in the air conditioner 1 of the above embodiments.
This can increase the heat dissipation from the radiator 14 compared to using a non-azeotropic
mixed refrigerant free of carbon dioxide.
[0120] The air conditioner 1 of the above embodiments includes the temperature sensors 501,
502 for measuring the temperature of the refrigerant, the temperature sensor 501 being
located at the position in the first flow path 101 forward of the radiator 14 and
forward of where the third flow path 103 is merged into the first flow path 101 by
the merging section 15, the temperature sensor 502 being located at the position in
the third flow path 103 forward of where the third flow path 103 is merged into the
first flow path 101 by the merging section 15. The controller 50 of the air conditioner
1 may increase the flow resistance of the electric valve 16 when the temperature of
the refrigerant measured by the temperature sensor 501 is higher than the temperature
of the refrigerant measured in the third flow path 103. This can reduce the enthalpy
difference between the refrigerant compressed by the compressor 12 and the refrigerant
compressed by the compressor 13.
[0121] In the air conditioner 1 of the above embodiments, the controller 50 may increase
the flow rate of the compressor 13 when the temperature of the refrigerant measured
in the first flow path 101 is higher than the temperature of the refrigerant measured
in the third flow path 103. This can also reduce the enthalpy difference between the
refrigerant compressed by the compressor 12 and the refrigerant compressed by the
compressor 13.
[0122] While exemplary embodiments have been described above, it will be understood that
various modifications can be made to the forms and details without departing from
the sprit and scope of the appended claims.
[0123] For example, part of the configurations described above may be omitted, or other
features may be added to the configurations described above. Also, for example, a
configuration included in one embodiment may be replaced with a configuration included
in another embodiment, or a configuration included in one embodiment may be added
to another embodiment.
Reference Signs List
[0124]
1 Air conditioner
10, 10-2, 10-3, 10-4, 10-5 Refrigerant circuit
12, 13 Compressor
14, 21 Radiator
15 Branching section
16, 18, 22, 23 Electric valve
17 Refrigerant-refrigerant heat exchanger
19 Cooler
20 Merging section
50 Controller
60 Switching circuit
101 First flow path
102 Second flow path
103 Third flow path
151 First branch
152 Second branch
501, 502 Temperature sensor