TECHNICAL FIELD
[0001] The present disclosure relates to a heat exchanger using a multi-channeled flat tube
and a refrigeration cycle apparatus including the heat exchanger.
BACKGROUND ART
[0002] When heat is exchanged between low-temperature air and a refrigerant in a heat exchanger
using multi-channeled flat tubes used as an evaporator, frosting on the multi-channeled
flat tube at the lowermost stage in the heat exchanger is likely to be a problem.
[0003] In order to suppress the frosting on the multi-channeled flat tube at the lowermost
stage in the heat exchanger, in PTL 1 (
Japanese Unexamined Patent Application Publication No. 2019-60596), the path length of a refrigerant path including the multi-channeled flat tube at
the lowermost stage is set to be longer than the path lengths of other refrigerant
paths, thereby suppressing frosting of the refrigerant on the multi-channeled flat
tube at the lowermost stage.
SUMMARY
<Technical Problem>
[0004] However, in the heat exchanger of PTL 1 (
Japanese Unexamined Patent Application Publication No. 2019-60596), the frosting on the multi-channeled flat tube at the lowermost stage may fail to
be sufficiently suppressed, and there is room for improvement in terms of suppression
of the frosting on the multi-channeled flat tube at the lowermost stage.
<Solution to Problem>
[0005] A heat exchanger of a first aspect includes a plurality of multi-channeled flat tubes
and a pressure loss part through which a refrigerant flows. The plurality of multi-channeled
flat tubes are arranged side by side in a vertical direction. The plurality of multi-channeled
flat tubes include the multi-channeled flat tubes of a first tube group including
the multi-channeled flat tube disposed at a lowermost stage in the heat exchanger,
and the multi-channeled flat tubes of a second tube group other than the multi-channeled
flat tubes of the first tube group. The multi-channeled flat tubes of the first tube
group form a first path that is a flow path of the refrigerant. The second tube group
forms a second path that is a flow path of the refrigerant. When the heat exchanger
functions as an evaporator, at least a portion of the refrigerant supplied to the
heat exchanger flows into the pressure loss part after flowing through the first path,
and flows into the second path after flowing out the pressure loss part.
[0006] In the heat exchanger of the first aspect, the pressure loss part is provided on
downstream of the first path in a flow direction of the refrigerant when the heat
exchanger is used as an evaporator. Therefore, in the heat exchanger of the first
aspect, it is possible to ensure a large pressure difference between the entry into
the first path and the entry into the second path, in other words, a large temperature
difference between the entry into the first path and the entry into the second path.
Therefore, in the heat exchanger of the first aspect, the heat radiation amount from
the first path when the heat exchanger functions as an evaporator can be ensured,
and frosting on the first path can be suppressed.
[0007] A heat exchanger of a second aspect is the heat exchanger of the first aspect, wherein,
when the heat exchanger functions as an evaporator, an entire amount of the refrigerant
supplied to the heat exchanger flows into the pressure loss part after flowing through
the first path, and flows into the second path after flowing through the pressure
loss part.
[0008] In the heat exchanger of the second aspect, when the heat exchanger functions as
an evaporator, the entire amount of the refrigerant that flows into the heat exchanger
flows through the first path, and therefore a large heat radiation amount from the
first path can be achieved when the heat exchanger functions as an evaporator.
[0009] A heat exchanger of a third aspect is the heat exchanger of the first aspect or the
second aspect, wherein the first tube group includes a plurality of multi-channeled
flat tubes disposed in parallel.
[0010] In the heat exchanger of the third aspect, excessive pressure loss in the first path
can be suppressed.
[0011] A heat exchanger of a fourth aspect is the heat exchanger of the first aspect or
the second aspect, wherein a flow path area of each of the multi-channeled flat tubes
of the first tube group is larger than a flow path area of each of the multi-channeled
flat tubes of the second tube group.
[0012] In the heat exchanger of the fourth aspect, excessive pressure loss in the first
path can be suppressed.
[0013] A heat exchanger of a fifth aspect is the heat exchanger of any of the first aspect
to the fourth aspect, wherein number of the multi-channeled flat tubes included in
the first tube group is smaller than number of the multi-channeled flat tubes included
in the second tube group.
[0014] In the heat exchanger of the fifth aspect, a large volume of refrigerant can flow
through each of the multi-channeled flat tubes of the first path, and a large heat
radiation amount from each of the multi-channeled flat tubes of the first path can
be achieved when the heat exchanger functions as an evaporator.
[0015] A heat exchanger of a sixth aspect is the heat exchanger of any of the first aspect
to the fifth aspect, wherein the pressure loss part is an orifice disposed in a flow
path of the refrigerant between the first path and the second path.
[0016] In the heat exchanger of the sixth aspect, by providing the orifice at the subsequent
stage of the first path, it is possible to ensure a large pressure difference between
the entry into the first path and the entry into the second path, in other words,
a large temperature difference between the entry into the first path and the entry
into the second path. Therefore, in the heat exchanger of the sixth aspect, when the
heat exchanger functions as an evaporator, a large heat radiation amount from the
first path can be achieved and frosting on the first path can be suppressed.
[0017] A heat exchanger of a seventh aspect is the heat exchanger of any of the first aspect
to the fifth aspect, wherein the pressure loss part is a flow divider disposed in
the flow path of the refrigerant between the first path and the second path.
[0018] In the heat exchanger of the seventh aspect, a large pressure difference between
the entry into the first path and the entry into the second path, in other words,
a large temperature difference between the entry into the first path and the entry
into the second path can be ensured, by using the flow divider with which the refrigerant
after passing through the first path is divided to flow into the multi-channeled flat
tubes of the second tube group. Therefore, in the heat exchanger of the first aspect,
when the heat exchanger functions as an evaporator, a large heat radiation amount
from the first path can be achieved and frosting on the first path can be suppressed.
[0019] A heat exchanger of an eighth aspect is the heat exchanger of any of the first aspect
to the fifth aspect, further comprising a header disposed in a flow path of the refrigerant
between the first path and the second path. The pressure loss part is a nozzle disposed
inside the header.
[0020] In the heat exchanger of the eighth aspect, using the nozzle disposed inside the
header ensures a large pressure difference between the entry into the first path and
the entry into the second path, in other words, a large temperature difference between
the entry into the first path and the entry into the second path. Therefore, in the
heat exchanger of the first aspect, when the heat exchanger functions as an evaporator,
a large heat radiation amount from the first path can be achieved and frosting on
the first path can be suppressed.
[0021] A heat exchanger of a ninth aspect is the heat exchanger of the first aspect, further
comprising a bypass path through which the refrigerant is guided to the second path
without flowing through the first path.
[0022] In the heat exchanger of the ninth aspect, it is possible to suppress the occurrence
of a problem in that efficiency of the refrigeration cycle apparatus using the heat
exchanger is deteriorated due to the pressure loss being too large as a result of
the entire amount of refrigerant flowing through the first path when an extremely
large amount of refrigerant is supplied to the heat exchanger.
[0023] A heat exchanger of a tenth aspect is the heat exchanger of any of the first aspect
to the ninth aspect, wherein the multi-channeled flat tubes are disposed in a plurality
of rows in a direction of air flow generated by a fan that sends air to the heat exchanger.
The first path is disposed only on the windward side in the direction of the air flow.
[0024] In the heat exchanger of the tenth aspect, it is easy to suppress frosting on the
multi-channeled flat tubes on the windward and lower sides of the heat exchanger where
adhesion of frost or ice tends to become a problem.
[0025] A refrigeration cycle apparatus according to an eleventh aspect includes a refrigerant
circuit and a fan. The refrigerant circuit includes the heat exchanger according to
any one of the first aspect to the tenth aspect as a heat source heat exchanger, and
a compressor that compresses the refrigerant. The fan sends air to the heat exchanger.
[0026] In the refrigeration cycle apparatus of the eleventh aspect, frosting on the multi-channeled
flat tubes of the first tube group of the heat exchanger can be suppressed, and therefore
the interruption time of the operation during which the heat exchanger functions as
an evaporator can be shortened.
BRIEF DESCRIPTION OF THE DRAWINGS
[0027]
[Fig. 1] Fig. 1 is a schematic configuration diagram of an air conditioning apparatus
according to an embodiment of a refrigeration cycle apparatus of the present disclosure.
[Fig. 2] Fig. 2 is a schematic plan view of the interior of the heat source unit illustrating
the arrangement of a first heat exchanger in a heat source unit of the air conditioning
apparatus in Fig. 1.
[Fig. 3] Fig. 3 is a schematic perspective view of a heat exchanger according to a
first embodiment of the present disclosure used in the air conditioning apparatus
in Fig. 2.
[Fig. 4] Fig. 4 is a partially enlarged perspective view of the first heat exchanger
in Fig. 3.
[Fig. 5] Fig. 5 is a diagram schematically illustrating a structure of the first heat
exchanger in Fig. 3 and schematically illustrating a flow of a refrigerant in the
first heat exchanger when the first heat exchanger functions as an evaporator.
[Fig. 6] Fig. 6 is a diagram schematically illustrating a flow of the refrigerant
in a first path of the first heat exchanger when the first heat exchanger in Fig.
3 functions as an evaporator.
[Fig. 7] Fig. 7 is a diagram schematically illustrating a structure of a first heat
exchanger according to another example, and schematically illustrating a flow of the
refrigerant in the first heat exchanger when the first heat exchanger functions as
an evaporator.
[Fig. 8A] Fig. 8A is a diagram illustrating a difference between the flow of the refrigerant
in the heat exchanger of the present disclosure and a flow of the refrigerant in a
conventional heat exchanger, and is a diagram conceptually illustrating the flow of
the refrigerant in the heat exchanger of the present disclosure.
[Fig. 8B] Fig. 8B is a diagram illustrating a difference between the flow of the refrigerant
in the heat exchanger of the present disclosure and the flow of the refrigerant in
the conventional heat exchanger, and is a diagram conceptually illustrating the flow
of the refrigerant in the conventional heat exchanger.
[Fig. 9] Fig. 9 is a diagram schematically illustrating a Mollier diagram in a case
where a heating operation is performed by the air conditioning apparatus according
to an embodiment of the refrigeration cycle apparatus of the present disclosure.
[Fig. 10] Fig. 10 is a diagram conceptually illustrating a flow of a refrigerant in
a first path of a heat exchanging part of a first heat exchanger according to Modification
A.
[Fig. 11] Fig. 11 is a schematic cross-sectional view of a first heat exchanger according
to Modification C taken along a virtual plane orthogonal to the direction in which
the multi-channeled flat tube extends.
[Fig. 12] Fig. 12 is a diagram depicting an internal structure of part of a first
header of a first heat exchanger according to Modification D.
[Fig. 13] Fig. 13 is a diagram conceptually illustrating a flow of the refrigerant
in a heat exchanger according to Modification E.
DESCRIPTION OF EMBODIMENTS
[0028] Embodiments of a heat exchanger of the present disclosure and a refrigeration cycle
apparatus including the heat exchanger will be described with reference to the drawings.
(1) Overall configuration
[0029] An overview of the refrigeration cycle apparatus of the present disclosure will be
described with reference to Fig. 1. Fig. 1 is a schematic configuration diagram of
an air conditioning apparatus 1 according to an embodiment of a refrigeration cycle
apparatus of the present disclosure.
[0030] The air conditioning apparatus 1 is an apparatus capable of cooling and heating an
air conditioning target space by implementing a vapor compression refrigeration cycle.
Note that the type of the refrigeration cycle apparatus of the present disclosure
is not limited to the air conditioning apparatus, and may be, for example, a hot water
supply apparatus or the like.
[0031] As illustrated in Fig. 1, the air conditioning apparatus 1 mainly includes a heat
source unit 2, utilization units 3a and 3b, a liquid-refrigerant connection pipe 4,
a gas-refrigerant connection pipe 5, and a control unit 23. The control unit 23 controls
the operation of the devices constituting the heat source unit 2 and the utilization
units 3a and 3b.
[0032] The liquid-refrigerant connection pipe 4 and the gas-refrigerant connection pipe
5 connect the heat source unit 2 and the utilization units 3a and 3b. In the air conditioning
apparatus 1, the heat source unit 2 and the utilization units 3a and 3b are connected
with each other via the refrigerant connection pipes 4 and 5, thereby configuring
a refrigerant circuit 6 (see Fig. 1). In the refrigerant circuit 6, a compressor 8,
a flow direction switching mechanism 10, a first heat exchanger 11, a first expansion
mechanism 12, a first stop valve 13, a second stop valve 14, second expansion mechanisms
31a and 31b, and second heat exchangers 32a and 32a, which will be described below,
are connected with each other by refrigerant pipes as illustrated in Fig. 1.
[0033] In the refrigerant circuit 6, for example, R32 that is an HFC refrigerant is sealed
as a refrigerant. However, the type of the refrigerant is not limited to R32, and
the refrigerant may be, for example, R410A, R1234yf, R1234ze(E) R290, CO
2, or the like.
[0034] In Fig. 1, the air conditioning apparatus 1 includes one heat source unit 2 and two
utilization units 3a and 3b, but the number of these units is merely an example. The
air conditioning apparatus 1 may include a plurality of heat source units, or may
include one or three or more utilization units.
(2) Detailed configuration
[0035] The heat source unit 2, the utilization units 3a and 3b, the liquid-refrigerant connection
pipe 4, the gas-refrigerant connection pipe 5, and the control unit 23 of the air
conditioning apparatus 1 will be described below.
(2-1) Heat source unit
[0036] The heat source unit 2 is installed outdoors, for example, on the roof of a building
where the air conditioning apparatus 1 is installed, around the outer wall of the
building, or the like, but is not limited to this.
[0037] The heat source unit 2 of the present embodiment is a side-blowing type unit (see
Fig. 2) that takes in air for heat exchange with the refrigerant from sides (rear
and left sides) of a housing 2a (see Fig. 2) that houses various devices of the heat
source unit 2, and blows out the air after the heat exchange with the refrigerant
from a side (front) of the housing 2a. However, the type of the heat source unit 2
is not limited to the side-blowing type, and a top-blowing type unit may be employed
that takes in the air for heat exchange with the refrigerant from a side of the housing
2a and blows the air after the heat exchange with the refrigerant upward from the
upper portion of the housing 2a.
[0038] The heat source unit 2 mainly includes an accumulator 7, the compressor 8, the flow
direction switching mechanism 10, the first heat exchanger 11, the first expansion
mechanism 12, the first stop valve 13, the second stop valve 14, and a first fan 15
(see Fig. 1).
[0039] The heat source unit 2 includes a suction pipe 17, a discharge pipe 18, a first gas
refrigerant pipe 19, a liquid refrigerant pipe 20, and a second gas refrigerant pipe
21 (see Fig. 1). The suction pipe 17 connects the flow direction switching mechanism
10 and the suction side of the compressor 8. The suction pipe 17 is provided with
the accumulator 7. The discharge pipe 18 connects the discharge side of the compressor
8 and the flow direction switching mechanism 10. The first gas refrigerant pipe 19
connects the flow direction switching mechanism 10 and a gas end of the first heat
exchanger 11. The liquid refrigerant pipe 20 connects a liquid end of the first heat
exchanger 11 and the first stop valve 13. The first expansion mechanism 12 is provided
in the liquid refrigerant pipe 20. The second gas refrigerant pipe 21 connects the
flow direction switching mechanism 10 and the second stop valve 14.
(2-1-1) Compressor
[0040] The compressor 8 is a device that intakes a low-pressure refrigerant in the refrigeration
cycle flowing in from the suction pipe 17, compresses the refrigerant to raise the
pressure to a high pressure in the refrigeration cycle, and discharges the high-pressure
refrigerant in the refrigeration cycle to the discharge pipe 18. In the compressor
8, a motor (not illustrated) is inverter-controlled. The number of rotations of the
motor of the compressor 8 is adjusted by the control unit 23 in accordance with the
operating conditions. The compressor 8 may be a compressor in which the number of
rotations of the motor is constant.
(2-1-2) Flow direction switching mechanism
[0041] The flow direction switching mechanism 10 is a mechanism that switches the flow direction
of the refrigerant in the refrigerant circuit 6 in accordance with an instructed operating
mode or at a timing at which defrosting is performed during the heating operation.
In the present embodiment, the flow direction switching mechanism 10 is a four-way
switching valve.
[0042] During the cooling operation (including the dehumidifying operation) and the defrosting
operation, the flow direction switching mechanism 10 switches the flow direction of
the refrigerant in the refrigerant circuit 6 to send the refrigerant discharged from
the compressor 8 to the first heat exchanger 11 (see the solid line in Fig. 1) by
connecting the suction pipe 17 with the second gas refrigerant pipe 21 and connecting
the discharge pipe 18 with the first gas refrigerant pipe 19 (such a pipe connection
state by the flow direction switching mechanism 10 is referred to as a first state).
[0043] During the heating operation, the flow direction switching mechanism 10 switches
the flow direction of the refrigerant in the refrigerant circuit 6 to send the refrigerant
discharged from the compressor 8 to the second heat exchangers 32a and 32b (see the
broken line in Fig. 1), by connecting the suction pipe 17 with the first gas refrigerant
pipe 19 and connecting the discharge pipe 18 with the second gas refrigerant pipe
21 (such a connection state of the pipes by the flow direction switching mechanism
10 is referred to as a second state).
[0044] Note that the flow direction switching mechanism 10 is not limited to a four-way
switching valve, and may be configured as a combination of a plurality of electromagnetic
valves and refrigerant pipes capable of switching the flow direction of the refrigerant
as described above.
(2-1-3) First heat exchanger
[0045] The first heat exchanger 11 is a heat exchanger that functions as a radiator (condenser)
during the cooling operation/defrosting operation and functions as an evaporator (heat
absorber) during the heating operation. The first heat exchanger 11 is an example
of a heat exchanger in the claims.
[0046] The structure of the first heat exchanger 11 and the flow of the refrigerant in the
first heat exchanger 11 will be described later.
(2-1-4) First expansion mechanism
[0047] The first expansion mechanism 12 is a mechanism that expands the refrigerant flowing
between the first heat exchanger 11 and the second heat exchangers 32a and 32b of
the utilization units 3a and 3b in the refrigerant circuit 6. The first expansion
mechanism 12 is, for example, an electronic expansion valve whose opening degree is
adjustable. The opening degree of the first expansion mechanism 12 is adjusted by
the control unit 23 in accordance with the operating conditions.
(2-1-5) First fan
[0048] The first fan 15 generates an air flow and supplies air to the first heat exchanger
11. The first fan 15 generates a flow of air that flows into the heat source unit
2 from the outside of the housing 2a, passes through the first heat exchanger 11,
and flows out to the outside of the housing 2a. The first fan 15 is, for example,
a propeller fan. However, the type of the first fan 15 is not limited to a propeller
fan, and may be another type of fan.
(2-2) Utilization unit
[0049] The utilization units 3a and 3b are installed in the air conditioning target space
or in the vicinity of the air conditioning target space (such as, for example, in
the attic space of the air conditioning target space).
[0050] The utilization unit 3a mainly includes a second expansion mechanism 31a, a second
heat exchanger 32a, and a second fan 33a (see Fig. 1). The utilization unit 3b mainly
includes a second expansion mechanism 31b, a second heat exchanger 32b, and a second
fan 33b (see Fig. 1).
(2-2-1) Second expansion mechanism
[0051] The second expansion mechanisms 31a and 31b are mechanisms that expand the refrigerant
flowing between the second heat exchangers 32a and 32b of the utilization units 3a
and 3b and the first heat exchanger 11 in the refrigerant circuit 6. The second expansion
mechanisms 31a and 31b are, for example, electronic expansion valves whose opening
degree is adjustable. The opening degree of the second expansion mechanisms 31a and
31b is adjusted by the control unit 23 in accordance with the operating conditions.
(2-2-2) Second heat exchanger
[0052] The second heat exchangers 32a and 32b are heat exchangers that function as a heat
absorber (evaporator) during the cooling operation to cool the indoor air, and function
as a refrigerant radiator (condenser) during the heating operation to heat the indoor
air.
[0053] The liquid side of the second heat exchangers 32a and 32b is connected with the liquid-refrigerant
connection pipe 4 via a refrigerant pipe, and the gas side of the second heat exchangers
32a and 32b is connected with the gas-refrigerant connection pipe 5 via a refrigerant
pipe. The second heat exchangers 32a and 32b are, for example, a cross-fin type fin-
and-tube heat exchanger including a plurality of heat transfer tubes (not illustrated)
and a plurality of fins (not illustrated).
(2-2-3) Second fan
[0054] The second fans 33a and 33b generate a flow of air that flows into the utilization
units 3a and 3b from the outside (air conditioning target space) of a housing (not
illustrated) that houses various devices of the utilization units 3a and 3b therein,
passes through the second heat exchangers 32a and 32b, and flows out to the outside
of the housing (air conditioning target space). The second fans 33a and 33b are, for
example, a centrifugal fan.
(2-3) Refrigerant connection pipe
[0055] The refrigerant connection pipes 4 and 5 are refrigerant pipes constructed on site
when the air conditioning apparatus 1 is installed. One end of the liquid-refrigerant
connection pipe 4 is connected with the first stop valve 13 of the heat source unit
2, and the other end of the liquid-refrigerant connection pipe 4 is connected with
the refrigerant pipe connected with the liquid side of the second heat exchangers
32a and 32b of the utilization units 3a and 3b (see Fig. 1). One end of the gas-refrigerant
connection pipe 5 is connected with the second stop valve 14 of the heat source unit
2, and the other end of the gas-refrigerant connection pipe 5 is connected with the
refrigerant pipes connected with the gas sides of the second heat exchangers 32a and
32b of the utilization units 3a and 3b (see Fig. 1).
(2-4) Control unit
[0056] The control unit 23 is configured by communicably connecting control boards (not
illustrated) including CPU, ROM, RAM, and the like, which are provided in the heat
source unit 2 and the utilization units 3a and 3b. In Fig. 1, for the sake of simplicity,
the control unit 23 is illustrated at a position away from the heat source unit 2
and the utilization units 3a and 3b.
[0057] As indicated by the broken line in Fig. 1, the control unit 23 is electrically connected
with devices constituting the air conditioning apparatus 1. Specifically, the control
unit 23 is electrically connected with, for example, the compressor 8, the flow direction
switching mechanism 10, the first expansion mechanism 12, the first fan 15, the second
expansion mechanisms 31a and 31b, and the second fans 33a and 33b. The control unit
23 is also electrically connected with various sensors (not illustrated) provided
to the heat source unit 2 and the utilization units 3a and 3b.
[0058] By executing a program for controlling the air conditioning apparatus 1 (by the CPU
executing a program stored in the ROM), the control unit 23 controls the devices forming
the air conditioning apparatus 1 based on operations from a remote controller (not
illustrated), measured values from various sensors (not illustrated), and the like.
[0059] The control unit 23 causes the air conditioning apparatus 1 to execute the cooling
operation (including a dehumidifying operation) or the heating operation by controlling
the devices forming the air conditioning apparatus 1. When a predetermined condition
is satisfied during the heating operation of the air conditioning apparatus 1, the
control unit 23 switches the operation of the air conditioning apparatus 1 to the
defrosting operation. The operation of the air conditioning apparatus 1 during each
operation will be described below.
(3) Operation of air conditioning apparatus
[0060] The cooling operation (including the dehumidifying operation), the heating operation,
and the defrosting operation of the air conditioning apparatus 1 will be described.
The defrosting operation is an operation for melting frost or ice adhered to the first
heat exchanger 11, and is performed while the heating operation being performed is
temporarily interrupted.
[0061] During the cooling operation, the refrigerant circulates through the refrigerant
circuit 6 in the order of the compressor 8, the first heat exchanger 11, the first
expansion mechanism 12, the second expansion mechanisms 31a and 31b, the second heat
exchangers 32a and 32b, and the accumulator 7.
[0062] During the heating operation, the refrigerant circulates through the refrigerant
circuit 6 in the order of the compressor 8, the second heat exchangers 32a and 32b,
the second expansion mechanisms 31a and 31b, the first expansion mechanism 12, the
first heat exchanger 11, and the accumulator 7.
[0063] During the defrosting operation, as in the cooling operation, the refrigerant circulates
through the refrigerant circuit 6 in the order of the compressor 8, the first heat
exchanger 11, the first expansion mechanism 12, the second expansion mechanisms 31a
and 31b, the second heat exchangers 32a and 32b, and the accumulator 7. In other words,
in the air conditioning apparatus 1 of the present embodiment, the refrigerant flows
through the refrigerant circuit 6 in a direction opposite to that during the heating
operation, to melt frost and ice adhered to the first heat exchanger 11.
[0064] An operation of the air conditioning apparatus 1 during the cooling operation will
be described.
[0065] During the cooling operation, the connection state of the pipes achieved by the flow
direction switching mechanism 10 is switched to the first state described above. The
gas refrigerant at a low pressure in the refrigeration cycle (hereinafter, simply
referred to as a low pressure) sucked into the compressor 8 from the suction pipe
17 is compressed by the compressor 8 to have a high pressure in the refrigeration
cycle (hereinafter, simply referred to as a high pressure), and is then discharged
to the discharge pipe 18. The high-pressure gas refrigerant discharged to the discharge
pipe 18 is sent to the first heat exchanger 11 through the flow direction switching
mechanism 10. The high-pressure gas refrigerant sent to the first heat exchanger 11
radiates heat through heat exchange with the air supplied by the first fan 15 in the
first heat exchanger 11 functioning as a radiator for the refrigerant, and thus turns
into a high-pressure liquid refrigerant. The high-pressure liquid refrigerant as a
result of the heat radiation in the first heat exchanger 11 is sent to the second
expansion mechanisms 31a and 3 1b through the first expansion mechanism 12, the first
stop valve 13, and the liquid-refrigerant connection pipe 4. The refrigerant sent
to the second expansion mechanisms 31a and 31b is decompressed to a low pressure by
the second expansion mechanisms 31a and 31b, to be a low-pressure gas-liquid two-phase
refrigerant. The low-pressure gas-liquid two-phase refrigerant as a result of the
decompression by the second expansion mechanisms 31a and 31b is sent to the second
heat exchangers 32a and 32b. The low-pressure gas-liquid two-phase refrigerant sent
to the second heat exchangers 32a and 32b is heat-exchanged with the air supplied
by the second fans 33a and 33b to evaporate in the second heat exchangers 32a and
32b. The air cooled in the second heat exchangers 32a and 32b is blown out to the
air conditioning target space. The low-pressure gas refrigerant after the evaporation
in the second heat exchangers 32a and 32b passes through the gas-refrigerant connection
pipe 5, the second stop valve 14, the flow direction switching mechanism 10, and the
accumulator 7, and is again sucked into the compressor 8.
[0066] During the cooling operation, the control unit 23 performs, for example, the following
control. Note that the control by the control unit 23 described here is an example,
and the control is not limited to this.
[0067] The control unit 23 controls the opening degree of the electronic expansion valve
as an example of each of the second expansion mechanisms 31a and 31b so that the degree
of superheating of the refrigerant at the outlet of each of the second heat exchangers
32a and 32b reaches a target degree of superheating based on a measured value from
a sensor (not illustrated). Further, the control unit 23 controls the operating capacity
of the compressor 8 so that the evaporation temperature approaches the target evaporation
temperature.
[0068] The operation of the air conditioning apparatus 1 during the heating operation will
be described.
[0069] During the heating operation, the connection state of the pipes achieved by the flow
direction switching mechanism 10 is switched to the above-described second state.
The low-pressure gas refrigerant sucked into the compressor 8 from the suction pipe
17 is compressed to a high pressure by the compressor 8, and then discharged to the
discharge pipe 18. The high-pressure gas refrigerant discharged to the discharge pipe
18 is sent to the second heat exchangers 32a and 32b through the flow direction switching
mechanism 10, the second stop valve 14, and the gas-refrigerant connection pipe 5.
The high-pressure gas refrigerant sent to the second heat exchangers 32a and 32b is
heat-exchanged with the air supplied from the second fans 33a and 33b in the second
heat exchangers 32a and 32b to radiate heat, and thus turns into a high-pressure liquid
refrigerant or gas-liquid two phase refrigerant. The air heated through heat exchange
with the refrigerant in the second heat exchangers 32a and 32b is blown out to the
air conditioning target space. The high-pressure refrigerant after the heat radiation
in the second heat exchangers 32a and 32b is sent to the first expansion mechanism
12 through the second expansion mechanisms 31a and 31b, the liquid-refrigerant connection
pipe 4, and the first stop valve 13. The refrigerant sent to the first expansion mechanism
12 is decompressed by the first expansion mechanism 12 to be a low-pressure gas-liquid
two-phase refrigerant. The low-pressure gas-liquid two-phase refrigerant after the
decompression by the first expansion mechanism 12 is sent to the first heat exchanger
11. The low-pressure gas-liquid two-phase refrigerant sent to the first heat exchanger
11 is evaporated through heat exchange with the air supplied from the first fan 15
in the first heat exchanger 11 functioning as an evaporator for the refrigerant, and
turns into a low-pressure gas refrigerant. The low-pressure refrigerant after the
evaporation in the first heat exchanger 11 passes through the flow direction switching
mechanism 10 and the accumulator 7 and is sucked into the compressor 8 again.
[0070] During the heating operation, the control unit 23 performs, for example, the following
control. Note that the control by the control unit 23 described here is an example,
and the control is not limited to this.
[0071] The control unit 23 controls the opening degree of the electronic expansion valve
as an example of the first expansion mechanism 12 based on a measured value from a
sensor (not illustrated) so that the degree of superheating of the refrigerant at
the outlet of the first heat exchanger 11 reaches a target degree of superheating.
Further, the control unit 23 controls the operating capacity of the compressor 8 so
that the evaporation temperature approaches the target evaporation temperature.
[0072] When a start condition for the defrosting operation is satisfied during the heating
operation, the control unit 23 switches the operation of the air conditioning apparatus
1 from the heating operation to the defrosting operation. Although not limited, the
start condition of the defrosting operation is, for example, a condition that the
temperature of the refrigerant flowing through the first heat exchanger 11 is lower
than a predetermined temperature, or a condition that the continuous time of the heating
operation exceeds a predetermined time.
[0073] As in the cooling operation, the defrosting operation is an operation in which the
connection state of the pipes is switched to the first state by the flow direction
switching mechanism 10 and the first heat exchanger 11 is caused to function as a
radiator for the refrigerant. Description of how the refrigerant flows through the
air conditioning apparatus 1 during the defrosting operation will be omitted.
[0074] The control unit 23 executes the defrosting operation until a defrosting operation
end condition is satisfied (until a predetermined defrosting time elapses, or until
it is determined that defrosting of the first heat exchanger 11 has been completed
based on measured values from various sensors provided to the air conditioning apparatus
1). Specifically, for example, the control unit 23 determines that the defrosting
for the first heat exchanger 11 has been completed when a measured value from a temperature
sensor (not illustrated) provided to the first gas refrigerant pipe 19 continues to
be higher than a predetermined temperature for a predetermined time. When the defrosting
operation end condition is satisfied, the control unit 23 ends the defrosting operation
and restarts the heating operation of the air conditioning apparatus 1.
(4) First heat exchanger
[0075] The shape, structure, and the like of the first heat exchanger 11 will be described
with further referring to Figs. 2 to 6.
[0076] Fig. 2 is a schematic plan view of the interior of the heat source unit 2 for explaining
the arrangement of the first heat exchanger 11 in the heat source unit 2. Fig. 3 is
a schematic perspective view of the first heat exchanger 11. Fig. 4 is a partially
enlarged perspective view of the first heat exchanger 11. Fig. 5 is a view illustrating
the structure of the first heat exchanger 11 and schematically illustrating the flow
of the refrigerant in the first heat exchanger 11 when the first heat exchanger 11
functions as an evaporator. Fig. 6 is a diagram schematically illustrating the flow
of the refrigerant in a first path P1 of the first heat exchanger 11 when the first
heat exchanger 11 functions as an evaporator. Fig. 6 is a diagram illustrating end
surfaces on the side of a first header 150, which will be described below, of multi-channeled
flat tubes 110 of a first tube group 114 of the first heat exchanger 11, which will
be described below.
[0077] Fig. 5 is a diagram schematically illustrating the structure of the first heat exchanger
11. Therefore, for example, the first heat exchanger 11 has an L-shape as illustrated
in Fig. 3, but is illustrated to have a linear shape (I-shape) in Fig. 5. In addition,
for example, the number of the multi-channeled flat tubes 110 (indicated by the broken
lines) illustrated in the first heat exchanger 11 is not the actual number of the
multi-channeled flat tubes 110 included in the first heat exchanger 11.
[0078] In the following description, in order to describe directions and positional relationships,
expressions such as "left", "right", "front", "rear", "front surface", and "rear surface"
may be used for convenience. The directions indicated by these expressions follow
the directions of the arrows illustrated in the drawings unless otherwise specified.
[0079] The heat source unit 2 includes the housing 2a as described above. The accumulator
7, the compressor 8, the flow direction switching mechanism 10, the first heat exchanger
11, the first expansion mechanism 12, the first stop valve 13, the second stop valve
14, and the first fan 15 are housed in the housing 2a. The inside of the housing 2a
is partitioned into a machine chamber R1 in which the compressor 8, the accumulator
7, the flow direction switching mechanism 10, the first expansion mechanism 12, the
first stop valve 13, and the second stop valve 14 are mainly disposed, and a fan chamber
R2 in which the first heat exchanger 11 and the first fan 15 are mainly disposed (see
Fig. 2). In Fig. 2, devices arranged in the machine chamber R1 are not illustrated.
[0080] In the present embodiment, the first heat exchanger 11 has a substantially L shape
as illustrated in Figs. 2 and 3. As illustrated in Fig. 2, in plan view, the first
heat exchanger 11 extends from the rear right side of the housing 2a (near the machine
chamber R1) to the vicinity of the rear left end portion of the housing 2a along the
back surface of the housing 2a, changes direction near the rear left end portion of
the housing 2a, and extends to the vicinity of the front left end portion.
[0081] The first fan 15 is disposed in front of the first heat exchanger 11. When the first
fan 15 is operated, air is sucked in from the back surface and the left side surface
of the housing 2a and passes through the first heat exchanger 11 (see the arrows in
Fig. 2). The air that has passed through the first heat exchanger 11 is finally blown
out forward from the front surface of the housing 2a (see the arrow in Fig. 2).
[0082] As illustrated in Figs. 3 and 5, the first heat exchanger 11 mainly includes a heat
exchanging part 100, the first header 150, a second header 160, a flow divider 170,
a first pipe 180, and a second pipe 190.
[0083] Although not limited, the heat exchanging part 100, the first header 150, the second
header 160, the flow divider 170, the first pipe 180, and the second pipe 190 of the
first heat exchanger 11 are made of aluminum or an aluminum alloy. The heat exchanging
part 100, the first header 150, the second header 160, the flow divider 170, the first
pipe 180, and the second pipe 190 are joined to each other by brazing or the like.
(4-1) Configuration of first heat exchanger
[0084] Various configurations of the first heat exchanger 11 will be described.
(4-1-1) Heat exchanging part
[0085] The heat exchanging part 100 is a main part of the first heat exchanger 11. The heat
exchange between the refrigerant and the air mainly takes place in the heat exchanging
part 100. The heat exchanging part 100 includes a plurality of the multi-channeled
flat tubes 110 arranged side by side in the vertical direction, and a plurality of
fins 120 attached to the multi-channeled flat tubes 110. In the present embodiment,
73 multi-channeled flat tubes 110 are arranged side by side in the vertical direction
in the heat exchanging part 100. Note that, the number of multi-channeled flat tubes
110 of the heat exchanging part 100 is merely an example, and may be changed as appropriate.
[0086] In the present embodiment, as illustrated in Fig. 4, in the first heat exchanger
11, two rows of the heat exchanging parts 100 are arranged in the direction of the
air flow generated by the first fan 15 (air flow direction A). In other words, in
the first heat exchanger 11 of the present embodiment, a plurality of rows of the
multi-channeled flat tubes 110 are arranged in the air flow direction A.
[0087] Hereinafter, among the two rows of the heat exchanging parts 100, the heat exchanging
part 100 disposed on the upstream side may be referred to as a heat exchanging part
100u, and the heat exchanging part 100 disposed on the downstream side may be referred
to as a heat exchanging part 100d (see Fig. 4). Note that when there is no particular
needs to distinguish between the heat exchanging parts 100u and 100d, such as when
describing contents common to the two, the heat exchanging parts may be simply referred
to as the heat exchanging parts 100.
[0088] The air flow direction A here means the direction of the air flow passing through
the heat exchanging part 100 when the heat exchanging parts 100 are viewed along the
vertical direction in which the multi-channeled flat tubes 110 of the heat exchanging
parts 100 are arranged. In other words, here, the air flow direction A means the flow
direction of the air passing through the heat exchanging parts 100 when the heat exchanging
parts 100 are viewed from the upper side (in plan view).
[0089] In the first heat exchanger 11 of the present embodiment, the heat exchanging parts
100 are arranged in two rows in the air flow direction A. However, the first heat
exchanger 11 may have only one row of the heat exchanging part 100. Further, the first
heat exchanger 11 may include three or more rows of heat exchanging parts 100 in the
air flow direction A.
[0090] As illustrated in Fig. 6, the multi-channeled flat tube 110 is a flat-shaped heat
transfer tube (in the cross section of the heat transfer tube, the thickness (height
in the vertical direction) is smaller than the width). As illustrated in Figs. 4 and
6, each of the multi-channeled flat tubes 110 has a plurality of holes 112 formed
to extend in parallel to each other along the direction in which the multi-channeled
flat tube 110 extends. The holes 112 of each multi-channeled flat tube 110 function
as flow paths for the refrigerant.
[0091] Each of the multi-channeled flat tubes 110 of each heat exchanging part 100 has a
substantially L-shape corresponding to the shape of the first heat exchanger 11. One
end of each of the multi-channeled flat tubes 110 is connected with the first header
150, and the other end of each of the multi-channeled flat tubes 110 is connected
with the second header 160. Specifically, in plan view, each of the multi-channeled
flat tubes 110 extends from the first header 150 disposed in the vicinity of the machine
chamber R1 on the rear right side of the housing 2a to the vicinity of the rear left
end portion along the back surface of the housing 2a, changes direction in the vicinity
of the rear left end portion of the housing 2a, and extends to the second header 160
disposed in the vicinity of the front left end portion of the housing 2a.
[0092] Note that the shape of the multi-channeled flat tubes 110 (in other words, the shape
of the first heat exchanger 11) is not limited to the L-shape. Depending on the type
of the heat source unit 2, the required performance, and the like, a shape other than
the L-shape, such as a linear shape (I-shape), a U-shape, or a quadrangular shape,
may be adopted as the shape of the multi-channeled flat tube 110.
[0093] The multi-channeled flat tubes 110 of each heat exchanging part 100 are divided into
two groups (the first tube group 114 and a second tube group 116). In other words,
the plurality of multi-channeled flat tubes 110 include the multi-channeled flat tubes
110 of the first tube group 114 and the flat multi-channeled flat tubes 110 of the
second tube group 116. In the heat exchanging part 100, the multi-channeled flat tubes
110 of the second tube group 116 mainly contribute to heat exchange between the refrigerant
and the air.
[0094] The first tube group 114 includes one or more multi-channeled flat tubes 110. The
multi-channeled flat tubes 110 of the first tube group 114 include the multi-channeled
flat tube 110 disposed at the lowermost stage in the first heat exchanger 11 (disposed
at the lowermost stage in each heat exchanging part 100). Here, the multi-channeled
flat tubes 110 disposed at the lowermost stage in the first heat exchanger 11 are
denoted by the symbol "110L" (see Fig. 5 and Fig. 6).
[0095] In the present embodiment, the first tube group 114 includes the multi-channeled
flat tube 110L disposed at the lowermost stage and the multi-channeled flat tube 110
disposed at the second stage from the bottom in each of the heat exchanging parts
100u and 100d. However, depending on the design, the first tube group 114 may include
only the multi-channeled flat tube 110L disposed at the lowermost stage in each of
the heat exchanging parts 100u and 100d, or may include the multi-channeled flat tube
110 disposed at the third lowest stage from the bottom or higher, in addition to those
at the lowermost stage and the second stage from the bottom in each of the heat exchanging
parts 100u and 100d.
[0096] The second tube group 116 includes the multi-channeled flat tubes 110 other than
the multi-channeled flat tubes 110 of the first tube group 114. In particular, in
the present embodiment, all of the multi-channeled flat tubes 110 except for the multi-channeled
flat tubes 110 of the first tube group 114, belong to the second tube group 116. The
number of the multi-channeled flat tubes 110 included in the first tube group 114
is preferably smaller than the number of the multi-channeled flat tubes 110 included
in the second tube group 116. For example, in the present embodiment, the number of
multi-channeled flat tubes 110 included in the first tube group 114 is 4 (2 tubes
× 2 rows), and the number of multi-channeled flat tubes 110 included in the second
tube group 116 is 142 (71 tubes × 2 rows). Preferably, the number of the multi-channeled
flat tubes 110 included in the first tube group 114 is within 10%, more preferably
within 5%, of the total number of the multi-channeled flat tubes 110 included in the
first heat exchanger 11.
[0097] The multi-channeled flat tubes 110 of the first tube group 114 form the first path
P1 that is a flow path of the refrigerant.
[0098] The multi-channeled flat tubes 110 of the second tube group 116 form a second path
P2 that is a flow path of the refrigerant.
[0099] The refrigerant flows in the following manners respectively when the first heat exchanger
11 functions as a radiator and as an evaporator.
[0100] When the first heat exchanger 11 functions as an evaporator, the refrigerant flows
into the flow divider 170 as an example of a pressure loss part after through the
first path P1, and then flows into the second path P2 after flowing through the flow
divider 170. In particular, in the present embodiment, when the first heat exchanger
11 functions as an evaporator, the entire amount of the refrigerant supplied to the
first heat exchanger 11 flows into the flow divider 170 after flowing through the
first path P1, and flows into the second path P2 after flowing through the flow divider
170. Details of how the refrigerant flows through the first heat exchanger 11 when
the first heat exchanger 11 functions as an evaporator will be described below.
[0101] When the first heat exchanger 11 functions as a radiator, the refrigerant flows through
the first heat exchanger 11 in a direction opposite to that when the first heat exchanger
11 functions as an evaporator. In short, when the first heat exchanger 11 functions
as a radiator, the refrigerant flows into the flow divider 170 after flowing through
the second path P2, and flows into the first path P1 after flowing through the flow
divider 170. In particular, in the present embodiment, when the first heat exchanger
11 functions as a radiator, the entire amount of refrigerant supplied to the first
heat exchanger 11 flows into the flow divider 170 after flowing through the second
path P2, and flows into the first path P1 after flowing through the flow divider 170.
Details of how the refrigerant flows through the first heat exchanger 11 when the
first heat exchanger 11 functions as a radiator will be described below.
[0102] The fin 120 partitions the space between the multi-channeled flat tubes 110 adjacent
to each other in the vertical direction (the direction in which the multi-channeled
flat tubes 110 are arranged) into a plurality of ventilation channels through which
air flows. The fins 120 have a plurality of horizontally elongated notches 122 formed
into which the plurality of multi-channeled flat tubes 110 can be inserted (see Fig.
4). The direction in which the notches 122 extend substantially coincides with the
air flow direction A generated by the first fan 15. The notches 122 are open on the
leeward side so that the multi-channeled flat tubes 110 are inserted from the leeward
side toward the windward side in the air flow direction. The notches 122 of the fins
120 are formed at a predetermined interval in the vertical direction.
(4-1-2) First header
[0103] The first header 150 is a vertically long hollow tubular member whose upper end and
lower end are closed. One first header 150 is provided for each of the two rows of
heat exchanging parts 100. However, the first header 150 may be a single tubular member
shared by the two rows of heat exchanging parts 100, and the inside of the first header
150 may be partitioned into spaces corresponding to the two rows of heat exchanging
parts 100.
[0104] Two first headers 150 are installed in an upright state in the vicinity of the machine
chamber R1 on the rear right side of the housing 2a (see Fig. 2). One end of each
of the plurality of multi-channeled flat tubes 110 of the corresponding heat exchanging
part 100 is connected with each first header 150.
[0105] Although the internal structure is not limited, in the first heat exchanger 11 of
the present embodiment, the inside of each of the first headers 150 is partitioned
into four independent spaces 152a to 152d in the vertical direction. Inside the first
header 150, the spaces 152a, 152b, 152c, and 152d are arranged in this order from
the bottom.
[0106] As illustrated in Fig. 5, the space 152a at the lowermost stage is connected with
one end of the first pipe 180 and communicates with the first pipe 180. As illustrated
in Fig. 5, the liquid refrigerant pipe 20 is connected with the other end of the first
pipe 180 (the end portion opposite to the side connected with the space 152a of the
first header 150). Further, as illustrated in Fig. 5, the space 152a of each first
header 150 is connected with one end of the multi-channeled flat tube 110L at the
lowermost stage in the heat exchanging part 100 corresponding to the first header
150. Thus, the space 152a and the multi-channeled flat tube 110L at the lowermost
stage in the heat exchanging part 100 communicate with each other.
[0107] As illustrated in Fig. 5, the space 152b communicates with a pipe (main pipe) 174
of the flow divider 170, and communicates with a main body 172 of the flow divider
170 via the pipe 174. The space 152b of each first header 150 is connected with one
end of the multi-channeled flat tube 110 at the second stage from the bottom (the
multi-channeled flat tube 110 of the first tube group 114) in the heat exchanging
part 100 corresponding to that first header 150. Thus, the space 152b and the multi-channeled
flat tube 110 at the second stage from the bottom in the heat exchanging part 100
communicate with each other.
[0108] As illustrated in Fig. 5, the space 152c communicates with a pipe (capillary) 176
of the flow divider 170, and communicates with the main body 172 of the flow divider
170 via the pipe 176. In addition, for example, one end of each of the multi-channeled
flat tube 110 at the 3rd to 14th stages from the bottom in the heat exchanging part
100 corresponding to the first header 150 is connected with the space 152c of each
first header 150. Thus, the space 152c and each of the multi-channeled flat tubes
110 at the 3rd to 14th stages from the bottom in the heat exchanging part 100 communicate
with each other.
[0109] As illustrated in Fig. 5, the space 152d at the uppermost stage is connected with
the one end of the second pipe 190 and communicates with the second pipe 190. As illustrated
in Fig. 5, the first gas refrigerant pipe 19 is connected with the other end of the
second pipe 190 (the end portion opposite to the side connected with the space 152d
of the first header 150). The space 152d of each first header 150 is connected, for
example, with one end of the multi-channeled flat tubes 110 at the 15th to 73rd stages
from the bottom in the heat exchanging part 100 corresponding to the first header
150. Thus, the space 152d and the multi-channeled flat tubes 110 at the 15th to 73rd
stages from the bottom in the heat exchanging part 100 communicates with each other.
(4-1-3) Second header
[0110] The second header 160 is a vertically long hollow tubular member whose upper end
and lower end are closed. One second header 160 is provided for each of the two rows
of heat exchanging parts 100. However, the second header 160 may be a single tubular
member shared by the two rows of heat exchanging parts 100, and the inside of the
second header 160 may be partitioned into spaces corresponding to the two rows of
heat exchanging parts 100.
[0111] Two second headers 160 are installed in an upright state at the front left end of
the housing 2a of the heat source unit 2 (see Fig. 2). One end (the end portion on
the side not connected with the first header 150) of each of the plurality of multi-channeled
flat tubes 110 of the corresponding heat exchanging part 100 is connected with each
second header 160.
[0112] Although the internal structure is not limited, in the first heat exchanger 11 of
the present embodiment, the inside of each of the second headers 160 is partitioned
into eight independent spaces 162a to 162h. Inside the first header 150, the spaces
162a, 162b, 162c, 162d, 162e, 162f, 162g, and 162h are arranged in this order from
the bottom.
[0113] The space 162a is connected with one ends of the multi-channeled flat tubes 110 at
the lowermost stage and the second stage from the bottom in the heat exchanging part
100 corresponding to the first header 150 (in other words, the multi-channeled flat
tubes 110 of the first tube group 114). Thus, the space 162a communicates with the
multi-channeled flat tubes 110 of the first tube group 114.
[0114] The space 162b is connected with each of the spaces 162c to 162h through a plurality
of pipes 164, and the space 162b communicates with all of the plurality of spaces
162c to 162h. The space 162b is connected with one ends of the multi-channeled flat
tubes 110 at the 3rd to 14th stages from the bottom in the heat exchanging part 100
corresponding to the first header 150. Thus, the space 162b communicates with the
multi-channeled flat tubes 110 at the 3rd to 14th stages from the bottom in the heat
exchanging part 100.
[0115] The spaces 162c to 162h are similar, and thus will be described in a simplified manner.
[0116] The space 162c is connected with the space 162b through the pipe 164, and is connected
with one end of each of the multi-channeled flat tubes 110 at the 15th to 24th stages
from the bottom in the heat exchanging part 100 corresponding to the first header
150.
[0117] The space 162d is connected with the space 162b through the pipe 164, and is connected
with one end of each of the multi-channeled flat tubes 110 at the 25th to 34th stages
from the bottom in the heat exchanging part 100 corresponding to the first header
150.
[0118] The space 162e is connected with the space 162b through the pipe 164, and is connected
with one end of each of the multi-channeled flat tubes 110 at the 35th to 44th stages
from the bottom in the heat exchanging part 100 corresponding to the first header
150.
[0119] The space 162f is connected with the space 162b through the pipe 164, and is connected
with one end of each of the multi-channeled flat tubes 110 at the 45th to 54th stages
from the bottom in the heat exchanging part 100 corresponding to the first header
150.
[0120] The space 162f is connected with the space 162b through the pipe 164, and is connected
with one end of each of the multi-channeled flat tubes 110 at the 55th to 64th stages
from the bottom in the heat exchanging part 100 corresponding to the first header
150.
[0121] The space 162h is connected with the space 162b through the pipe 164, and is connected
with one end of each of the multi-channeled flat tubes 110 at the 65th to 73rd stages
from the bottom in the heat exchanging part 100 corresponding to the first header
150.
(4-1-4) Flow divider
[0122] The flow divider 170 is a device with which the refrigerant flowing from the first
path P1 is divided to flow into the spaces 152c of the two respective first headers
150 when the first heat exchanger 11 functions as an evaporator.
[0123] The flow divider 170 includes the flow divider main body 172, the pipe (main pipe)
174, and the plurality of pipes (capillaries) 176. The pipe 174 communicates the flow
divider main body 172 with the space 152b of each of the two first headers 150. The
pipe 176 communicates the flow divider main body 172 with the space 152c of each of
the two first headers 150.
[0124] The flow divider main body 172 is a mechanism with which the refrigerant flowing
in from the pipe 174 is divided to flow into the plurality of pipes 176. While with
the flow divider 170 here, the refrigerant that has flowed into the flow divider main
body 172 is divided to flow into the two pipes 176, the number of flow paths into
which the refrigerant divided by the flow divider 170 flows may be appropriately determined
in accordance with how the paths are designed in the first heat exchanger 11 or the
like.
[0125] Here, the flow divider 170 is an example of the pressure loss part of the present
disclosure.
[0126] When the first heat exchanger 11 is used as an evaporator, if a predetermined amount
of refrigerant (for example, at a specified maximum flow rate in a normal operation)
flows through the flow divider 170 functioning as a pressure loss part and the second
path P2 in this order, the total pressure loss in the pressure loss part becomes larger
than the total pressure loss in the second path P2. In other words, the pressure loss
part here is defined as a part where the total pressure loss is larger than that in
the second path P2 when a predetermined amount of refrigerant (for example, at a specified
maximum flow rate in a normal operation) flows, when the first heat exchanger 11 is
used as an evaporator.
[0127] Preferably, the minimum cross-sectional area of the flow path of the flow divider
170 or another form of pressure loss part is set to be smaller than the sum of the
cross-sectional areas of the flow paths of the multi-channeled flat tube 110 at the
lowermost stage included in the first path P1. As in Modification A described below,
when there are other multi-channeled flat tubes 110 that are different from those
at the lowermost stage and are connected in parallel with the multi-channeled flat
tube 110 at the lowermost stage in the first path P1, for example, the minimum cross-sectional
area of the flow path of the pressure loss part is set to be smaller than the sum
of the flow path cross-sectional areas of the multi-channeled flat tube 110 at the
lowermost stage included in the first path P1 and the multi-channeled flat tubes 110
connected in parallel with this multi-channeled flat tube 110 at the lowermost stage.
[0128] With such a configuration, decrease in the liquid pressure, which is insufficient
when the liquid simply flows through the first path P1, can be easily promoted by
the pressure loss part.
[0129] Specifically, for example, in the present embodiment, since the first path P1 includes
the multi-channeled flat tubes 110 of the two rows of heat exchanging parts 100 connected
in parallel, the sum of the flow path cross-sectional areas of the multi-channeled
flat tubes 110 at the lowermost stage included in the first path P1 means the sum
of the flow path cross-sectional areas of the holes 112 of the two multi-channeled
flat tubes 110. The minimum cross-sectional area of the flow path of the flow divider
170 or another type of pressure loss part is preferably set to be smaller than the
sum of the cross-sectional areas of the flow paths of the holes 112 of the two multi-channeled
flat tubes 110.
[0130] As a way of increasing the pressure loss of the flow divider 170, the pressure loss
in the flow divider 170 may be set to a desired magnitude by providing an orifice
173 in the refrigerant flow path in the flow divider main body 172.
[0131] Further, as another way of increasing the pressure loss in the flow divider 170,
in addition to the provision of the orifice 173 in the flow divider main body 172,
or instead of the provision of the orifice 173 in the flow divider main body 172,
the pipe diameters of the pipe 174 and the pipe 176 may be appropriately selected
with respect to the predetermined amount of the refrigerant flowing into the first
heat exchanger 11.
[0132] Furthermore, as another way of increasing the pressure loss in the flow divider 170,
an orifice 174a may be provided in the pipe 174 or an orifice 176a may be provided
in the pipe 176 in addition to or instead of any of the above-described ways.
[0133] While all of the orifice 173, the orifice 174a, and the orifice 176a are illustrated
in Fig. 5, this does not mean that all of the orifice 173, the orifice 174a, and the
orifice 176a need to be provided.
[0134] Here, an example in which the flow divider 170 functions as the pressure loss part
is described, but something other than the pressure loss part may be used as the pressure
loss part. For example, in a case where the flow does not needs to be divided after
the flow out from the first path P1, the flow divider 170 may be omitted as illustrated
in Fig. 7, and an orifice 171a may be provided in a pipe 171 connecting the space
152b and the space 152c of the first header 150.
(5) Flow of refrigerant in first heat exchanger
(5-1) Feature of and effect obtained by heat exchanger of the present disclosure
[0135] First, features of the heat exchanger of the present disclosure and effects obtained
by the heat exchanger of the present disclosure will be described with reference to
Figs. 8 and 9.
[0136] Fig. 8A is a diagram illustrating a difference between the flow of the refrigerant
in the heat exchanger of the present disclosure and a flow of the refrigerant in a
conventional heat exchanger, and is a diagram conceptually illustrating the flow of
the refrigerant in a heat exchanger HEX of the present disclosure functioning as an
evaporator.
[0137] Fig. 8B is a diagram illustrating a difference between the flow of the refrigerant
in the heat exchanger of the present disclosure and a flow of the refrigerant in the
conventional heat exchanger, and is a diagram conceptually illustrating the flow of
the refrigerant in a conventional heat exchanger HEX1 functioning as an evaporator.
[0138] It should be noted that the heat exchanger HEX illustrated in Fig. 8A used in the
description here is a simplified heat exchanger of the present disclosure for facilitating
understanding of the description, and has a structure different from the first heat
exchanger 11 described above. For example, the heat exchanger HEX illustrated in Fig.
8A is not illustrated in a mode in which the refrigerant flows through the multi-channeled
flat tubes 110 in a turning back manner in the first path P1. For example, the heat
exchanger HEX illustrated in Fig. 8A is not illustrated in a mode in which the refrigerant
flows through the multi-channeled flat tubes 110 in a turning back manner in the second
path P2.
[0139] While a detailed description of the heat exchanger HEX1 in Fig. 8B is omitted, the
heat exchanger HEX1 is the same as the heat exchanger HEX of the present disclosure
except for the way in which the refrigerant flows and the fact that a flow divider
DIV is not intended to achieve the pressure loss. Similarly to heat exchanger HEX,
the heat exchanger HEX1 is a heat exchanger in which the plurality of multi-channeled
flat tubes 110 are arranged in the vertical direction.
[0140] Fig. 9 is a diagram schematically illustrating a Mollier diagram in a case where
a heating operation is performed by the air conditioning apparatus according to an
embodiment of the refrigeration cycle apparatus including the heat exchanger HEX,
for explaining the effect obtained by the heat exchanger HEX of the present disclosure.
Note that Fig. 9 is a diagram for explanation and does not illustrate an actual Mollier
diagram of the air conditioning apparatus of the present disclosure.
[0141] In the conventional heat exchanger HEX1 illustrated in Fig. 8B, when the heat exchanger
HEX1 is used as an evaporator, the entire amount of the refrigerant flows into the
flow divider DIV, is divided by the flow divider DIV to flow into each path of the
heat exchanging part of the heat exchanger HEX1, and then flows out of the heat exchanger
HEX1. The heat exchanger HEX1 has a structure in which a path length of a path (referred
to as a lowermost stage path) including the flat heat transfer tube at the lowermost
stage in the heat exchanging part is longer than path lengths of other paths. For
example, in the example of Fig. 8B, the refrigerant flows out from the paths other
than the path at the lowermost stage in the heat exchanging part without turning back
(the path length is equivalent to one multi-channeled flat tube), whereas in the path
at the lowermost stage in the heat exchanging part, the refrigerant turns back twice
and thus flows out after flowing for a length corresponding to three flat tubes. In
the heat exchanger HEX1 in Fig. 8B, since the pressure loss of the lowermost stage
path of the heat exchanging part is larger than those of the other paths, the amount
of the refrigerant flowing through the lowermost stage path of the heat exchanging
part is small, and the refrigerant hardly exchanges heat. Thus, the flat heat transfer
tube at the lowermost stage in the heat exchanging part is less likely to be frosted.
[0142] On the other hand, in the conventional heat exchanger HEX1, the pressure loss in
the lowermost stage path of the heat exchanging part is not large as in the heat exchanger
HEX of the present disclosure and the refrigerant hardly flows in the lowermost stage
path of the heat exchanging part. Therefore, when the outside air temperature becomes
low, the multi-channeled flat tube in the lowermost stage path in the heat exchanging
part is likely to be frosted.
[0143] The pressure loss in the lowermost stage path in the heat exchanging part is larger
than those in other paths in the heat exchanger HEX1. Therefore, also when the heat
exchanger HEX1 is used as a condenser during the defrosting operation, the amount
of refrigerant flowing through the lowermost stage path in the heat exchanging part
is likely to be small. Therefore, once frost or ice adheres to the lowermost stage
path in the heat exchanger HEX1, it takes time to remove the frost or ice (until the
defrosting operation is completed).
[0144] On the other hand, in the heat exchanger HEX of the present disclosure illustrated
in Fig. 8A, when the heat exchanger HEX is used as an evaporator, the refrigerant
passes through the first path P1 (path including the multi-channeled flat tube 110L
at the lowermost stage) in the heat exchanging part, flows into the flow divider 170
as the pressure loss part, and then flows into the second path P2 formed by the multi-channeled
flat tubes 110 (of the second tube group 116) other than the first tube group 114
forming the first path P1. In particular, in the first heat exchanger 11 described
in the first embodiment, when the first heat exchanger 11 is used as an evaporator,
the entire amount of refrigerant flowing into the first heat exchanger 11 passes through
the first path P1 of the heat exchanging part, flows into the flow divider 170 as
the pressure loss part, and then flows into the second path P2 of the heat exchanging
part formed by the multi-channeled flat tubes 110 of the second tube group 116.
[0145] Therefore, a large pressure loss can be achieved with the flow divider 170 as an
example of the pressure loss part in the heat exchanger HEX of the present disclosure.
Thus, the Mollier diagram as illustrated in Fig. 9 is obtained when the air conditioning
apparatus according to the embodiment of the refrigeration cycle apparatus of the
present disclosure is caused to perform the heating operation, and a large temperature
difference (Ta -Tb) between the inlet and the outlet of the first path P1 can be achieved.
Further, as in the first heat exchanger 11 of the first embodiment, when the entire
amount of the refrigerant flowing into the heat exchanger HEX flows through the first
path P1, a large amount of the refrigerant can flow through the first path P1 as compared
with the lowermost stage path of the conventional heat exchanger HEX1. As a result,
heat radiation proportional to the product of the amount of refrigerant flowing and
the temperature difference (Ta -Tb) is obtained in the first path P1 of the heat exchanger
HEX, and suppression of frosting is facilitated even when the temperature of the air
for heat exchange is low in the first path P1 of the heat exchanger HEX.
[0146] Further, in the heat exchanger HEX, when the heat exchanger HEX is used as a condenser
in the defrosting operation, all the refrigerant flowing into the heat exchanger HEX
flows into the first path P1 after passing through the second path P2 and the flow
divider 170. Therefore, in the heat exchanger HEX, even if frost adheres to the first
path P1 or ice adheres to the multi-channeled flat tube 110L of the first path P1
or the like, the time required for removing them (defrosting operation time) can be
shortened.
[0147] The flow direction of the refrigerant when the heat exchangers HEX and HEX1 function
as a radiator is simply opposite to the flow direction of the refrigerant when the
heat exchangers function as an evaporator, and thus a detailed description thereof
will be omitted herein.
(5-2) Flow of refrigerant in first heat exchanger
[0148] Next, the flow of the refrigerant in the first heat exchanger 11 when the first heat
exchanger 11 described in the above embodiment functions as an evaporator will be
described with reference to Figs. 5 and 6. The direction of the flow of the refrigerant
when the first heat exchanger 11 functions as a radiator is simply opposite to that
when the first heat exchanger 11 functions as an evaporator, and thus a detailed description
thereof will be omitted herein.
[0149] When the first heat exchanger 11 functions as an evaporator, the refrigerant flows
into the first pipe 180 from the liquid refrigerant pipe 20, and then the refrigerant
flows into the spaces 152a in the two first headers 150. As illustrated in Figs. 5
and 6, the refrigerant that has flowed into the space 152a flows through the multi-channeled
flat tube 110L (first path P1) of the heat exchanging part 100 communicating with
the space 152, turns back in the space 162a of the second header 160 communicating
with the multi-channeled flat tube 110L, and flows through the multi-channeled flat
tube 110 (first path P1) at the second stage from the bottom in the heat exchanging
part 100 communicating with the space 162a, to the space 152b of the first header
150 communicating with the multi-channeled flat tube 110. The refrigerant that has
flowed into the space 152b passes through the flow divider 170 while flowing through
the pipe 174, the flow divider main body 172, and the pipe 176 in this order to be
divided to flow into the spaces 152c of the two first headers 150. The refrigerant
that has flowed into the space 152c of each first header 150 flows to the space 162b
of the second header 160 through the multi-channeled flat tube 110 (second path P2)
of the heat exchanging part 100 communicating with the space 152c. The refrigerant
that has flowed into the space 162b of each second header 160 is divided to flow into
the plurality of pipes 164, flows into the spaces 162c to 162h of the second header
160, and flows through the multi-channeled flat tubes 110 (second path P2) communicating
with the spaces 162c to 162h of the second header 160 to the space 152d of the first
header 150. The refrigerant that has flowed into the spaces 152d of the two first
headers 150 passes through the second pipe 190 and flows into the first gas refrigerant
pipe 19.
[0150] In the present embodiment, the first tube group 114 includes the two heat exchanging
parts 100, and includes the plurality of multi-channeled flat tubes 110 arranged in
parallel (connected in parallel). With the plurality of multi-channeled flat tubes
110 arranged in parallel thus included, even when the entire amount of refrigerant
flowing into the first heat exchanger 11 flows through the first path P1, it is possible
to suppress the occurrence of excessive pressure loss in the multi-channeled flat
tubes 110 of the first path P1. In other words, all of the refrigerant supplied to
the first heat exchanger 11 flowing through a single multi-channeled flat tube 110,
may lead to excessive pressure loss. In view of this, the first heat exchanger 11
of the present embodiment includes the plurality of multi-channeled flat tubes 110
arranged in parallel (connected in parallel), whereby the occurrence of such an excessive
pressure loss can be suppressed.
[0151] In the present embodiment, in the first path P1, the refrigerant flows through the
multi-channeled flat tube 110L, and then flows through the multi-channeled flat tube
110 at the second stage from the bottom, but this configuration is merely an example.
For example, the first path P1 may include only the multi-channeled flat tubes 110L,
and the refrigerant that has flowed through the multi-channeled flat tubes 110L of
the two rows of the heat exchanging parts 100 may immediately flow into the flow divider
170. However, when such a configuration is adopted, it may be necessary to connect
the first pipe 180 with the second header 160 side of the first heat exchanger 11.
However, for the sake of easier manufacturing of the first heat exchanger 11, the
first pipe 180 and the second pipe 190 are preferably connected with the same header
(in particular, the first header 150 in the present embodiment).
(6) Features
[0152] (6-1)
The first heat exchanger 11 includes the plurality of multi-channeled flat tubes 110
and the pressure loss part through which the refrigerant flows.
[0153] The pressure loss part is, for example, the flow divider 170. The pressure loss part
is, for example, the orifice 173, 174a, or 176a provided in the flow divider 170.
Alternatively, the pressure loss part may be the orifice 171a provided in the pipe
171.
[0154] The plurality of multi-channeled flat tubes 110 are arranged side by side in the
vertical direction. The plurality of multi-channeled flat tubes 110 include the multi-channeled
flat tubes 110 of the first tube group 114 including the multi-channeled flat tube
110 (110L) disposed at the lowermost stage in the first heat exchanger 11, and the
multi-channeled flat tubes 110 of the second tube group 116 other than the multi-channeled
flat tubes 110 of the first tube group 114. The multi-channeled flat tubes 110 of
the first tube group 114 form the first path P1 that is a flow path of the refrigerant.
The multi-channeled flat tubes 110 of the second tube group 116 form the second path
P2 that is a flow path of the refrigerant. When the first heat exchanger 11 functions
as an evaporator, at least a portion of the refrigerant supplied to the first heat
exchanger 11 flows into the pressure loss part after flowing through the first path
P1, and flows into the second path P2 after flowing out the pressure loss part.
[0155] The pressure loss part is provided downstream of the first path P1 in the flow direction
of the refrigerant when the first heat exchanger 11 is used as an evaporator. Therefore,
in the first heat exchanger 11, it is possible to ensure a large pressure difference
between the entry into the first path P1 and the entry into the second path P2, in
other words, a large temperature difference between the entry into the first path
P1 and the entry into the second path P2. Therefore, in the first heat exchanger 11,
the heat radiation amount from the first path P1 when the first heat exchanger 11
functions as an evaporator can be ensured, and frosting on the first path P1 can be
suppressed.
[0156] (6-2)
In the first heat exchanger 11, when the first heat exchanger 11 functions as an evaporator,
the entire amount of refrigerant supplied to the first heat exchanger 11 flows into
the pressure loss part after flowing through the first path P1, and flows into the
second path P2 after flowing through the pressure loss part.
[0157] In the first heat exchanger 11 of the second aspect, when the first heat exchanger
11 functions as an evaporator, the entire amount of the refrigerant flowing into the
first heat exchanger 11 flows through the first path P1, and therefore a large heat
radiation amount from the first path P1 can be achieved when the first heat exchanger
11 functions as an evaporator. Therefore, in the first heat exchanger 11, frosting
on the multi-channeled flat tube 110 (110L) at the lowermost stage is less likely
to occur.
[0158] Further, when the first heat exchanger 11 functions as a radiator, in the first heat
exchanger 11, the entire amount of the inflowing refrigerant flows into the first
path P1 after passing through the second path P2. With all the refrigerant flowing
through the first path P1, it is possible to melt and remove frost and ice adhered
to the multi-channeled flat tubes 110 of the first tube group 114 in a relatively
short period of time during reverse cycle defrosting in which the first heat exchanger
11 is used as a radiator.
[0159] For example, even if moisture generated during defrosting freezes around the multi-channeled
flat tube 110L at the lowermost stage in the first heat exchanger 11, the reverse
cycle defrosting operation can melt the ice that has attached to the multi-channeled
flat tube 110L and remove the ice in a relatively short period of time.
[0160] (6-3)
In the first heat exchanger 11, the first tube group 114 includes a plurality of multi-channeled
flat tubes 110 arranged in parallel.
[0161] Specifically, in the above embodiment, when the first heat exchanger 11 functions
as an evaporator, in the first path P1, the refrigerant flows in parallel through
the multi-channeled flat tubes 110L at the lowermost stage in the two heat exchanging
parts 100, and then flows in parallel through the multi-channeled flat tubes 110 at
the second stage from the bottom in the two heat exchanging parts 100. In the above
embodiment, when the first heat exchanger 11 functions as a radiator, in the first
path P1, the refrigerant flows in parallel through the multi-channeled flat tubes
110 at the second stage from the bottom in the two heat exchanging parts 100, and
then flows in parallel through the multi-channeled flat tubes 110L at the lowermost
stage in the two heat exchanging parts 100.
[0162] In the first heat exchanger 11, the occurrence of an excessive pressure loss in the
first path P1 can be suppressed.
[0163] (6-4)
In the first heat exchanger 11, the number of the multi-channeled flat tubes 110 included
in the first tube group 114 is smaller than the number of the multi-channeled flat
tubes 110 included in the second tube group 116.
[0164] In the first heat exchanger 11, a high flow rate of the refrigerant in each of the
multi-channeled flat tubes 110 of the first path P1 can be achieved, and a large heat
radiation amount from each of the multi-channeled flat tubes 110 of the first path
P1 can be achieved when the first heat exchanger 11 functions as an evaporator/radiator.
[0165] (6-5)
The air conditioning apparatus 1 includes the refrigerant circuit 6 and the first
fan 15 as an example of a fan. The refrigerant circuit 6 includes the first heat exchanger
11 as a heat source heat exchanger, and the compressor 8 that compresses the refrigerant.
The first fan 15 sends air to the first heat exchanger 11.
[0166] In the air conditioning apparatus 1, frosting on the multi-channeled flat tubes 110
of the first tube group 114 of the first heat exchanger 11 can be suppressed, and
therefore, the interruption time of the operation in which the first heat exchanger
11 functions as an evaporator can be shortened.
[0167] In addition, in the air conditioning apparatus 1, as described above, defrosting
of the multi-channeled flat tubes 110 of the first tube group 114 of the first heat
exchanger 11 can be completed in a short period of time, and thus, the defrosting
operation performed while the operation in which the first heat exchanger 11 functions
as an evaporator is interrupted can be completed.
(7) Modifications
[0168] The above-described embodiment can be appropriately modified, for example, as illustrated
in the following modifications. It should be noted that each of the modifications
may be applied in combination with another modification as appropriate as long as
they do not contradict each other.
(7-1) Modification A
[0169] In the above embodiment, in the first path P1, the refrigerant flows through the
multi-channeled flat tubes 110L at the lowermost stage arranged in parallel in the
two heat exchanging parts 100, and then flows through the multi-channeled flat tubes
110 at the second stage from the bottom arranged in parallel in the two heat exchanging
parts 100.
[0170] However, the configuration in which the refrigerant flows through the plurality of
multi-channeled flat tubes 110 arranged in parallel (connected in parallel) in the
first path P1 is not limited to the configuration described above. For example, in
the first path P1, as illustrated in Fig. 10, the refrigerant may flow through the
multi-channeled flat tubes 110 at the lowermost stage and the second stage from the
bottom arranged in parallel in a heat exchanging part 100, and then flow through the
multi-channeled flat tubes 110 at the third stage and the fourth stage from the bottom
arranged in parallel in that heat exchanging part 100.
[0171] The configuration of Modification A can be applied not only to the case where a plurality
of rows of the heat exchanging parts 100 exist, but also to the case where only one
row of the heat exchanging part 100 exists, for example.
(7-2) Modification B
[0172] The first path P1 described in the above embodiment may be disposed only on the windward
side in the air flow direction A where frost or ice is particularly likely to be a
problem. For example, in the embodiment described above, the first path P1 may be
disposed only in the heat exchanging part 100u.
[0173] When the first path P1 is disposed only in the heat exchanging part 100u as described
above, for example, the configuration of the heat exchanging part 100 described in
Modification A can be applied.
[0174] When the first path P1 is disposed only in the heat exchanging part 100u, the first
heat exchanger 11 may be designed so that the refrigerant flows through the first
path P1, then flows through the flow divider 170, and then flows through the second
path P2 including all the multi-channeled flat tubes 110 of the heat exchanging part
100d and the multi-channeled flat tubes 110 other than those in the first tube group
114 of the heat exchanging part 100u.
(7-3) Modification C
[0175] In the above embodiment, the refrigerant flows through the plurality of multi-channeled
flat tubes 110 arranged in parallel in the first path P1 for suppressing occurrence
of excessive pressure loss.
[0176] However, the configuration of the first path P1 for excessive pressure loss is not
limited to such a configuration. For example, in the first path P1, the flow path
area of each of the multi-channeled flat tubes 110 of the first tube group 114 may
be made larger than the flow path area of each of the multi-channeled flat tubes 110
of the second tube group 116, in order to suppress excessive pressure loss in the
first path P1. Specifically, as the multi-channeled flat tubes forming the first path
P1, like the multi-channeled flat tube 110a of the heat exchanging part 100u in Fig.
11, a multi-channeled flat tube in which the size of the holes 112 and the number
of the holes 112 are larger than those of the other multi-channeled flat tubes 110
may be used. Alternatively, only one of a configuration in which the size of the holes
112 is larger than that of the other multi-channeled flat tubes 110 in the multi-channeled
flat tube 110a and a configuration in which the number of holes 112 is larger than
that of the other multi-channeled flat tubes 110 may be adopted.
[0177] In Fig. 10, an example where the first path P1 is disposed only in the heat exchanging
part 100u is illustrated as an example.
(7-4) Modification D
[0178] In the above-described embodiment, the pressure loss part is the flow divider 170
or the orifice 171a disposed in the pipe 171. However, the pressure loss part may
be a nozzle disposed inside the header. Specifically, the pressure loss part may be
a nozzle 154 disposed in the space 152c of the first header 150.
[0179] To be more specific, as illustrated in Fig. 12, the space 152c of the first header
150 may be provided with a structure in which when the first heat exchanger 11 functions
as an evaporator, the refrigerant flowing in from the pipe 176 is blown upward by
the nozzle 154, and the refrigerant is distributed to the multi-channeled flat tube
110 communicating with the space 152c while being circulated in the upper space as
indicated by arrows. The first heat exchanger 11 may be designed such that a desired
pressure loss is achieved by the nozzle 154.
(7-5) Modification E
[0180] In the above-described embodiment, the entire amount of refrigerant flowing into
the first heat exchanger 11 flows through the first path P1.
[0181] However, in the case where the refrigeration cycle apparatus in which the heat exchanger
is used is large, the amount of refrigerant flowing into the heat exchanger becomes
extremely large, and when all the refrigerant flows through the first path P1, excessive
pressure loss may occur in the first path P1. If the number of the multi-channeled
flat tubes 110 of the first tube group 114 is increased and the refrigerant flows
through the large number of the multi-channeled flat tubes 110 connected in parallel,
the pressure loss occurring in the first path P1 can be suppressed. However, in such
a configuration, the number of the multi-channeled flat tubes 110 belonging to the
second path P2 mainly contributing to heat exchange may be reduced, and thus the efficiency
of the refrigeration cycle apparatus may be compromised.
[0182] Therefore, as illustrated in Fig. 13, the heat exchanger HEX of the present disclosure
may include a bypass path through which the refrigerant is guided to the second path
P2 without flowing through the first path P1. In Fig. 13, a path through which the
refrigerant flows to the second path P2 through the flow divider 170 after flowing
through the first path P1 is referred to as a main path M, and a path through which
the refrigerant flows to the second path P2 through the flow divider 170 without flowing
through the first path P1 is referred to as a bypass path B.
[0183] While it is preferable to reduce the amount of the refrigerant flowing through the
first path P1 in order to suppress the pressure loss in the first path P1, it is preferable
to increase the amount of the refrigerant flowing through the first path P1 for the
sake of suppression of frosting and the like. Therefore, at least 50% of the amount
of the refrigerant supplied to the heat exchanger HEX preferably flows through first
path P1. More preferably, at least 70% of the refrigerant supplied to the heat exchanger
HEX flows through first path P1.
[0184] This heat exchanger HEX can suppress the occurrence of a problem in that the efficiency
of the air conditioning apparatus 1 using the heat exchanger HEX is compromised due
to excessive pressure loss as a result of the entire amount of refrigerant flowing
in the first path P1 when an extremely large amount of the refrigerant is supplied
to the heat exchanger HEX.
<Additional note>
[0185] While embodiments and modifications of the present disclosure have been described
above, it should be understood that various changes in mode and detail may be made
without departing from the spirit and scope of the present disclosure as set forth
in the claims.
REFERENCE SIGNS LIST
[0186]
- 1
- Air conditioning apparatus (refrigeration cycle apparatus)
- 6
- Refrigerant circuit
- 8
- Compressor
- 11
- First heat exchanger (heat exchanger)
- 15
- First fan (fan)
- 110
- Multi-channeled flat tube
- 110A
- Multi-channeled flat tube (multi-channeled flat tube of first tube group)
- 110L
- Multi-channeled flat tube disposed at lowermost stage
- 114
- First tube group
- 116
- Second tube group
- 150
- First header (header)
- 154
- Nozzle (pressure loss part)
- 170
- Flow divider (pressure loss part)
- 171a
- Orifice (pressure loss part)
- 173
- Orifice (pressure loss part)
- 174a
- Orifice (pressure loss part)
- 176a
- Orifice (pressure loss part)
- A
- Air flow direction
- B
- Bypass path
- P1
- First path
- P2
- Second path
CITATION LIST
PATENT LITERATURE