[0001] The present invention relates to a heat pump type air conditioner, and in particular
to a heat pump type air conditioner which is capable of performing an indoor heating
operation while performing an outdoor defrosting operation.
2. Description of the Prior Art
[0002] In general, a heat pump type air conditioner is an air conditioner performable both
a cooling operation and a heating operation. Because it includes an evaporator and
a condenser, etc., it can perform a heating operation as well as a cooling operation
by reversing a cooling cycle.
[0003] Figure 1 illustrates a cooling cycle of a conventional heat pump type air conditioner.
[0004] The conventional heat pump type air conditioner includes an indoor unit 102 placed
indoors and performing cooling or heating and an outdoor unit 104 placed outdoors
and performing a heat exchange operation.
[0005] The indoor unit 102 includes at least one indoor heat exchanger 106 installed in
each room and performing cooling and heating operations.
[0006] The outdoor unit 104 includes a compressor 108 for compressing a coolant; a four-way
valve 110 for switching a flow of the coolant normally or reversely; an outdoor heat
exchanger 112 used as a condenser in cooling and an evaporator in heating; and an
expansion valve 116 installed at a coolant pipe 114 for connecting the outdoor heat
exchanger 112 with the indoor heat exchanger 106 and turning coolant gas into low
temperature-low pressure state.
[0007] And, a liquid receiver 118 for dividing the coolant into liquid and gas is installed
at the rear of the expansion valve 116, and an opening/closing valve 120 is installed
at the coolant pipe 114 between the outdoor heat exchanger 112 and the indoor heat
exchanger 106 in order to open the coolant supply to the indoor unit 102 and the coolant
discharge to the outdoor unit 104.
[0008] An accumulator 122 for turning the coolant into a gas state is installed at a certain
side of the compressor 108, and an oil divider 124 is installed at a discharge side
of the compressor 108.
[0009] The operation of the conventional heat pump type air conditioner will be described.
[0010] First, in the cooling operation, the coolant gas compressed in the compressor 108
passes the four-way valve 110, flows into the outdoor heat exchanger 112, is converted
into a low temperature-low pressure state while passing the expansion valve 116 and
flows into the indoor heat exchanger 106. And, the coolant gas evaporated in the indoor
heat exchanger 106 performs the indoor cooling operation while performing heat-exchange
with indoor air and is sucked into the compressor 108 through the four-way valve 110
and is circulated again.
[0011] On the contrary, in the heating operation, by reversing the coolant flow with the
four-way valve 110, the coolant gas discharged from the compressor 108 flows into
the indoor heat exchanger 106 through the four-way valve 110, is condensed and performs
the indoor heating operation while performing heat-exchange with indoor air. Afterward,
the coolant passing the indoor heat exchanger 106 is turned into a low temperature-low
pressure state and is evaporated through the outdoor heat exchanger 112. The evaporated
coolant gas is sucked into the compressor 108 through the four-way valve 110 and is
circulated again.
[0012] In the above-described heat pump type air conditioner, in order to perform a defrosting
operation, by performing the cooling operation for a certain time, the outdoor heat
exchanger 112 is used as a condenser, and accordingly frost formed at the outdoor
heat exchanger 112 melts by the condensing heat.
[0013] However, because the heating operation is stopped while performing the defrosting
operation, a room temperature is lowered, and accordingly it may have a bad influence
upon the indoor circumstances.
[0014] In addition, in the conventional heat pump type air conditioner, in case of a multi
type air conditioner in which plural indoor heat exchangers are respectively installed
in rooms, because a coolant quantity supplied to each indoor heat exchanger is the
same, a heat exchanger capacity of each indoor heat exchanger is the same, and accordingly
it is impossible to vary a cooling/heating capacity according to a size of each room.
[0015] US 6,276,158 discloses a heat pump type air conditioner according to the preamble
of claim 1, comprising a compressor for compressing a coolant, a four-way valve for
switching a flow of the coolant normally or reversely, a first and a second outdoor
heat exchangers respectively installed outdoors, used as a condenser in cooling and
used as an evaporator in heating. The disclosed air conditioner allows one outdoor
heat exchanger to be defrosted while the other performs its normal task, but in a
relatively complicated manner.
SUMMARY OF THE INVENTION
[0016] In order to solve the above-mentioned problem, it is an object of the present invention
to provide a heat pump type air conditioner which is capable of maintaining a room
temperature constantly by including two outdoor heat exchangers and performing a heating
operation with one heat exchanger acting as an evaporator when the other heat exchanger
performs a defrosting operation in a simplified manner.
[0017] In a multi type air conditioner including plural indoor heat exchangers, it is another
object of the present invention to provide a heat pump type air conditioner which
is capable of improving a cooling/heating performance by varying a heat exchange performance
of each indoor heat exchanger according to a size of each room.
[0018] A heat pump type air conditioner includes a compressor for compressing a coolant;
a four-way valve for switching a flow of the coolant normally or reversely; a first
and a second outdoor heat exchangers respectively installed outdoors, used as a condenser
in cooling and used as an evaporator in heating; plural indoor heat exchangers respectively
installed at each indoor space and performing a cooling/heating operation; a first
and a second outdoor expansion valves respectively installed at coolant pipes for
connecting the first and second outdoor heat exchangers with the indoor heat exchangers
in order to turn the coolant into a low temperature-low pressure state and open/close
the coolant pipes; a control unit for making one of the first and second outdoor heat
exchangers perform a defrosting operation and making the rest perform a heating operation
by controlling the first and second outdoor expansion valves; and plural indoor expansion
valves respectively installed at the indoor coolant pipes and variously adjusting
a quantity of the coolant flowing into the plural indoor heat exchangers.
[0019] The four-way valve includes a first port connected to a discharge side of the compressor;
a second port connected to the indoor heat exchangers by a first coolant pipe; a third
port connected to the first and second outdoor heat exchangers by a second and a third
coolant pipes; and a fourth port connected to a suction side of the compressor; wherein
the first port communicates with the third port and the second port communicates with
the fourth port in the cooling operation, and the first port communicates with the
second port and the third port communicates with the fourth port in the heating operation.
[0020] The second coolant pipe connects the first outdoor heat exchanger with the four-way
valve, a fourth coolant pipe connects the first outdoor heat exchanger with the indoor
heat exchangers, a sixth coolant pipe connects the fourth coolant pipe with the second
port of the four-way valve, and a first valve is installed at the sixth coolant pipe
in order to open/close it according to an electric signal transmitted from the control
unit.
[0021] The first valve is a solenoid type for opening the sixth coolant pipe according to
an electric signal applied from the control unit.
[0022] The third coolant pipe connects the second outdoor heat exchanger with the four-way
valve, a fifth coolant pipe connects the second outdoor heat exchanger with the indoor
heat exchangers, a seventh coolant pipe connects the fifth coolant pipe with the second
port of the four-way valve, and a second valve is installed at the seventh coolant
pipe to open/close it according to an electric signal transmitted from the control
unit.
[0023] The second valve is a solenoid type for opening the seventh coolant pipe according
to an electric signal applied from the control unit.
[0024] The control unit opens the sixth coolant pipe by operating the first valve and closes
the fourth coolant pipe by operating the first outdoor expansion valve in the defrosting
operation of the first outdoor heat exchanger.
[0025] The control unit opens the seventh coolant pipe by operating the second valve and
closes the fifth coolant pipe by operating the second outdoor expansion valve in the
defrosting operation of the second outdoor heat exchanger.
BRIEF DESCRIPTION OF THE DRAWINGS
[0026] The accompanying drawings, which are included to provide a further understanding
of the invention and are incorporated in and constitute a part of this specification,
illustrate embodiments of the invention and together with the description serve to
explain the principles of the invention.
[0027] In the drawings:
Figure 1 illustrates a construction of a cooling cycle of a heat pump type air conditioner
in accordance with the conventional art;
Figure 2 illustrates a construction of a cooling cycle of a heat pump type air conditioner
in accordance with the present invention;
Figure 3 is a block diagram illustrating a control structure of the heat pump type
air conditioner in accordance with the present invention; and
Figures 4 and 5 are diagrams illustrating the cooling cycle of the heat pump type
air conditioner in accordance with the present invention.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0028] Hereinafter, the preferred embodiment of a heat pump type air conditioner in accordance
with the present invention will be described with reference to accompanying drawings.
[0029] There can be plural embodiments of a heat pump type air conditioner in accordance
with the present invention, hereinafter the most preferred embodiment will be described.
[0030] Figure 2 illustrates a construction of a cooling cycle of a heat pump type air conditioner
in accordance with the present invention.
[0031] The heat pump type air conditioner in accordance with the present invention includes
an indoor unit 2 installed indoors and performing a cooling or a heating operation;
an outdoor unit 4 installed outdoors, connected to the indoor unit 2 by a coolant
pipe and performing a heat exchange operation; and a control unit 6 respectively controlling
a cooling operation, a heating operation and a defrosting operation.
[0032] The indoor unit 2 includes plural indoor heat exchangers 8a, 8b respectively installed
at each indoor space; and plural indoor expansion valves 10a, 10b for turning the
coolant into a low temperature-low pressure state and adjusting a flow amount of the
coolant supplied to each indoor heat exchanger 8a, 8b.
[0033] And, the outdoor unit 4 includes a compressor 12 for compressing the coolant; a four-way
valve 14 for switching a flow of the coolant into a normal direction or a reverse
direction; a first and a second outdoor heat exchangers 16, 18 used as a condenser
in a cooling operation and an evaporator in a heating operation; and a first and a
second outdoor expansion valves 20, 22 respectively installed at coolant pipes connecting
the first and second heat exchangers 16, 18 with the indoor heat exchangers 8a, 8b,
turning the coolant gas into a low temperature-low pressure state and opening/closing
the coolant pipes.
[0034] An accumulator 24 for sucking the coolant is installed at a suction side of the compressor
12, and an oil divider 26 is installed at a discharge side of the compressor 12.
[0035] And, a liquid receiver 28 is connected to the coolant pipes connecting the first
and second outdoor heat exchangers 16, 18 with the indoor heat exchangers 8a, 8b.
[0036] The four-way valve 14 includes a first port 30 connected to the discharge side of
the compressor 12; a second port 32 connected to the indoor heat exchangers 8a, 8b;
a third port 34 connected to the first and second outdoor heat exchangers 16, 18;
and a fourth port 36 connected to the suction part of the compressor 12.
[0037] In the cooling operation, because the four-way valve 14 respectively connects the
second port 32 and the fourth port 36 with the first port 30 and the third port 34,
the coolant flows in the normal direction. And, in the heating operation, because
the four-way valve 14 respectively connects the first port 30 and the second port
32 with the third port 34 and the fourth port 36, the coolant flows in the reverse
direction.
[0038] A first coolant pipe 40 connects the second port 32 of the four-way valve 14 with
the indoor heat exchangers 8a, 8b, a second coolant pipe 42 connects the third port
34 with the first outdoor heat exchanger 16, and a third coolant pipe 44 connects
the third port 34 with the second outdoor heat exchanger 18.
[0039] And, a fourth coolant pipe 46 connects the first outdoor heat exchanger 16 with the
indoor heat exchangers 8a, 8b, and a fifth coolant pipe 48 connects the second outdoor
heat exchanger 18 with the indoor heat exchanger 8a, 8b. A first outdoor expansion
valve 20 is installed at the fourth coolant pipe 46, and a second outdoor expansion
valve 22 is installed at the fifth coolant pipe 48.
[0040] The fourth coolant pipe 46 and the fifth coolant pipe 48 join together and are connected
to the liquid receiver 28, and plural indoor expansion valves 10a, 10b are installed
at the coolant pipes connecting the liquid receiver 28 with each indoor heat exchanger
8a, 8b.
[0041] And, an opening/closing valve 52 for intermitting a coolant flow is respectively
installed at a suction pipe and a discharge pipe connected to the indoor heat exchangers
8a, 8b.
[0042] A sixth coolant pipe 54 connects the fourth coolant pipe 46 with the first coolant
pipe 40, and a seventh coolant pipe 56 connects the fifth coolant pipe 48 with the
first coolant pipe 40. A first valve 58 is installed at the sixth coolant pipe 54
to open/close it, and a second valve 60 is installed at the seventh coolant pipe 56
to open/close it.
[0043] Herein, it is preferable for the first and second valves 58, 60 to be a solenoid
type for respectively opening the sixth and seventh coolant pipes 54, 56 when an electric
signal is applied from the control unit 6.
[0044] Figure 3 is a block diagram illustrating a control structure of the heat pump type
air conditioner in accordance with the present invention.
[0045] As depicted in Figure 3, the heat pump type air conditioner in accordance with the
present invention includes an operation selecting unit 70 operated by a user; a first
sensing unit 72 for sensing whether the first outdoor heat exchanger 18 is covered
with frost not less than a setting value; a second sensing unit 74 for sensing whether
the second outdoor heat exchanger 18 is covered with frost not less than a setting
value; and a control unit 6 for performing the cooling operation, the heating operation
and the defrosting operation in accordance with a signal transmitted from the operation
selecting unit 70, the first and second sensing units 72, 74.
[0046] Various types such as a temperature sensor, etc. can be applied to the first and
second sensing units 72, 74, and any method capable of grasping whether the first
outdoor heat exchanger 16 and the second outdoor heat exchanger 18 are covered with
frost can be applied.
[0047] The control unit 6 performs the cooling/heating switching by operating the four-way
valve 14 according to the operation of the operation selecting unit 70. The control
unit 6 makes one of the first outdoor heat exchanger 20 and the second outdoor heat
exchanger 22 perform the defrosting operation and makes the rest perform the heating
operation according to the signal received from the first and second sensing units
72, 74.
[0048] And, when the user sets a cooling/heating capacity of each indoor heat exchanger
8a, 8b by operating the operation selecting unit 70, the control unit 6 adjusts a
quantity of the coolant supplied to each indoor heat exchanger 8a, 8b by adjusting
opening of the indoor expansion valves 10a, 10b.
[0049] The operation of the heat pump type air conditioner in accordance with the present
invention will be described.
[0050] First, in the cooling operation, as depicted in Figure 2, when the user selects the
cooling operation by handling the operation selecting unit 70, the control unit 6
respectively connects the second port 32 and the fourth port 36 with the first port
30 and the third port 34 by operating the four-way valve 14. And, the first and second
valves 58, 60 maintain the closed state.
[0051] In that state, when the compressor 12 is operated, the compressed coolant flows into
the first port 30 of the four-way valve 14, is discharged to the third port 34, respectively
flows into the first outdoor heat exchanger 16 and the second outdoor heat exchanger
18 through the second and third coolant pipes 42, 44 and performs the heat exchange.
The coolant leaving the heat exchangers is discharged into the four and fifth coolant
pipes 46, 48, is turned into the low temperature-low pressure state while passing
the first and second outdoor expansion valves 20, 22 and flows into each indoor heat
exchanger 8a, 8b. And, the coolant gas evaporated in each indoor heat exchanger 8a,
8b performs the indoor cooling while performing the heat exchange with indoor air,
flows into the second port 32 of the four-way valve 14 through the first coolant pipe
40, is discharged into the third port 34, flows into the compressor 12, is compressed,
and accordingly the coolant is circulated again.
[0052] Figure 4 is a diagram illustrating the heating operation of the heat pump type air
conditioner in accordance with the present invention.
[0053] When the user selects the heating operation by handling the operation selecting unit
70, the control unit 6 connects the first port 30 of the four-way valve 14 with the
second port 32, connects the third port 34 with the fourth port 36, and accordingly
the coolant flows in the reverse direction. Herein, the first valve 58 and the second
valve 60 are in the closed state.
[0054] The coolant compressed by the operation of the compressor 12 flows into the first
port 30 of the four-way valve 14, is discharged into the second port 32, flows into
the indoor heat exchangers 8a, 8b through the first coolant pipe 40, is condensed
and performs the heat exchange with indoor air, and accordingly the indoor heating
is performed. The coolant passing the indoor heat exchangers 8a, 8b is turned into
the low temperature-low pressure state while passing the indoor expansion valves 10a,
10b, the first and second outdoor expansion valves 10a, 10b and is evaporated while
passing the first and second outdoor heat exchanges 16, 18 through the fourth and
fifth coolant pipes 46, 48. The evaporated coolant flows again into the third port
34 of the four-way valve 14, is discharged into the fourth port 36, is sucked into
the compressor 12, and accordingly the coolant is circulated again.
[0055] In the above-described cooling/heating operation, in case of varying a cooling/heating
capacity of each indoor heat exchanger 8a, 8b installed at each indoor space according
to a size of the indoor space, when the user selects a heat exchange capacity of each
indoor heat exchanger 8a, 8b by handling the operation selecting unit 70, the control
unit 6 adjusts opening of each indoor expansion valve 10a, 10b according to the signal
of the operation selecting unit 70 in order to adjust a flow amount of the coolant
supplied to each indoor heat exchanger 8a, 8b, and accordingly the cooling/heating
capacity can be adjusted.
[0056] The defrosting operation of the air conditioner in accordance with the present invention
will be described.
[0057] Figure 5 is a diagram illustrating the defrosting operation of the heat pump type
air conditioner in accordance with the present invention.
[0058] When the control unit 6 judges one of the outdoor heat exchanges is covered with
frost not less than the setting value after receiving the signal transmitted from
the first and second sensing units 72, 74, it makes the outdoor heat exchanger covered
with frost to perform the defrosting operation and makes the rest to perform the heating
operation, whereby the remaining outdoor heat exchanger functions as an evaporator.
[0059] For example, as depicted in Figure 5, in the heating operation, it is judged whether
the first outdoor heat exchanger 16 requires the defrosting operation (it means the
first outdoor heat exchanger 16 is covered with frost not less than a setting value)
through the signal received from the first sensing unit 72, the control unit 6 opens
the sixth coolant pipe 54 by operating the first valve 58 and closes the fourth coolant
pipe 46 by operating the first outdoor expansion valve 20.
[0060] Then, the coolant compressed in the compressor 12 is discharged into the second port
32 of the four-way valve 14, is supplied to each indoor heat exchanger 8a, 8b through
the first coolant pipe 40. Part of the coolant discharged into the second port 32
is supplied to the first outdoor heat exchanger 16 through the sixth coolant pipe
54, is condensed and performs the defrosting operation. And, the coolant discharged
after finishing the defrosting operation of the first outdoor heat exchanger 16 flows
into the compressor 12 through the second coolant pipe 42 and the four-way valve 14.
Herein, the second outdoor heat exchanger 18 performs the normal heating operation,
i.e functions as an evaporator, same as the above-described heating operation.
[0061] As described above, even in the defrosting operation of the first outdoor heat exchanger
16, the second outdoor heat exchanger 18 performs the heating operation normally,
i.e functions as an evaporator, and accordingly the indoor heating can be continually
performed.
[0062] And, it is judged the second outdoor heat exchanger 18 requires the defrosting operation,
the control unit 6 opens the seventh coolant pipe 56 by operating the second valve
60 and closes the fifth coolant pipe 48 by operating the second outdoor expansion
valve 60.
[0063] Then, the coolant compressed in the compressor 12 is discharged into the second port
32 of the four-way valve 14, is supplied to each indoor heat exchanger 8a, 8b through
the first coolant pipe 40. And, part of the coolant discharged into the second port
32 is supplied to the second outdoor heat exchanger 18 through the seventh coolant
pipe 56, is condensed and performs the defrosting operation. And, the coolant discharged
after finishing the defrosting operation of the second outdoor heat exchanger 18 flows
again into the compressor 12 through the third coolant pipe 44 and the four-way valve
14. Herein, the first outdoor heat exchanger 16 can normally perform the heating operation,
i.e it functions as an evaporator, same as the above-described heating operation.
[0064] As described above, in the heat pump type air conditioner in accordance with the
present invention, by installing an indoor expansion valve at each indoor heat exchanger,
a cooling/heating capacity can be varied according to a size of an indoor space by
adjusting a quantity of the coolant supplied to each indoor heat exchanger by adjusting
opening of each indoor expansion valve.
[0065] In addition, by including two outdoor heat exchangers, when one outdoor heat exchanger
performs the defrosting operation, the rest performs the heating operation, a room
temperature can be maintained constantly, and accordingly the indoor circumstances
can be maintained pleasantly.
1. A heat pump type air conditioner, comprising:
a compressor (12) for compressing a coolant;
a four-way valve (14) for switching a flow of the coolant normally or reversely;
a first and a second outdoor heat exchanger (16,18) respectively installed outdoors,
used as a condenser in cooling and used as an evaporator in heating,
characterized in that the air conditioner further comprises:
plural indoor heat exchangers (8a,8b) respectively installed at each indoor space
and performing a cooling/heating operation;
a first and a second outdoor expansion valve (20,22) respectively installed at coolant
pipes (46,48) for connecting the first and second outdoor heat exchangers (16,18)
with the indoor heat exchangers (8a, 8b) in order to turn the coolant into a low temperature-low
pressure state and open/close the coolant pipes (46, 48);
coolant pipes (54,56) with first (58) and second (60) valves connecting the outdoor
heat exchangers (16,18) with each other and with the compressor (12); and
a control unit (6) for making one of the first and second outdoor heat exchangers
(16, 18) perform a defrosting operation and making the rest perform a heating operation,
whereby the remaining outdoor heat exchanger functions as an evaporator, by controlling
the first and second outdoor expansion valves (20,22), the four-way valve (14) and
said first and second valves (58,60).
2. The air conditioner of claim 1, further comprising:
plural indoor expansion valves (10a, 10b) installed at indoor coolant pipes in order
to individually adjust a quantity of the coolant flowing into the plural indoor heat
exchangers (8a,8b).
3. The air conditioner of claim 1, wherein the four-way valve (14) includes:
a first port (30) connected to a discharge part of the compressor (12);
a second port (32) connected to the indoor heat exchangers (8a,8b) by a first coolant
pipe (40);
a third port (34) connected to the first and second outdoor heat exchangers (16,18)
by a second and a third coolant pipes (42,44); and
a fourth port (36) connected to a suction part of the compressor (12);
wherein the first port (30) communicates with the third port (34) and the second port
(32) communicates with the fourth port (36) in the cooling operation, and the first
port (30) communicates with the second port (32) and the third port (34) communicates
with the fourth port (36) in the heating operation.
4. The air conditioner of claim 1, wherein the second coolant pipe (42) connects the
first outdoor heat exchanger (16) with the four-way valve (14), a fourth coolant pipe
(46) connects the first outdoor heat exchanger (16) with the indoor heat exchangers
(8a,8b), a sixth coolant pipe (54) connects the fourth coolant pipe (46) with the
second port (32) of the four-way valve (14), and a first valve (58) is installed at
the sixth coolant pipe (54) in order to open/close it according to an electric signal
transmitted from the control unit (6).
5. The air conditioner of claim 4, wherein the first valve (58) is a solenoid type for
opening the sixth coolant pipe (54) according to an electric signal applied from the
control unit (6).
6. The air conditioner of claim 1, wherein the third coolant pipe (44) connects the second
outdoor heat exchanger (18) with the four-way valve (14), a fifth coolant pipe (48)
connects the second outdoor heat exchanger (18) with the indoor heat exchangers (8a,8b),
a seventh coolant pipe (56) connects the fifth coolant pipe (48) with the second port
(32) of the four-way valve (14), and a second valve (60) is installed at the seventh
coolant pipe (56) to open/close it according to an electric signal transmitted from
the control unit (6).
7. The air conditioner of claim 6, wherein the second valve (60) is a solenoid type for
opening the seventh coolant pipe (56) according to an electric signal applied from
the control unit (6).
8. The air conditioner of claim 4, wherein the control unit (6) opens the sixth coolant
pipe (54) by operating the first valve (58) and closes the fourth coolant (46) pipe
by operating the first outdoor expansion valve (20) in the defrosting operation of
the first outdoor heat exchanger (16).
9. The air conditioner of claim 6, wherein the control unit (6) opens the seventh coolant
pipe (56) by operating the second valve (60) and closes the fifth coolant pipe (48)
by operating the second outdoor expansion valve (22) in the defrosting operation of
the second outdoor heat exchanger (18).
1. Klimaanlage des Wärmepumpentyps, umfassend:
einen Kompressor (12) zum Komprimieren eines Kühlmittels;
ein Vierwegeventil (14) zum Umschalten eines Kühlmittelflusses in normaler oder umgekehrter
Richtung;
einen ersten und einen zweiten Außen-Wärmetauscher (16, 18), die jeweils außen installiert
sind und beim Kühlen als ein Kondensator verwendet werden und beim Heizen als ein
Verdampfer verwendet werden;
dadurch gekennzeichnet, dass die Klimaanlage ferner enthält:
mehrere Innen-Wärmetauscher (8a, 8b), die jeweils in jedem Innenraum installiert sind
und einen Kühl/Heizbetrieb durchführen;
ein erstes und ein zweites Außen-Expansionsventil (20, 22), die jeweils in Kühlmittelrohren
(46, 48) installiert sind, um den ersten und den zweiten Außen-Wärmetauscher (16,
18) mit den Innen-Wärmetauschern (8a, 8b) zu verbinden, um das Kühlmittel in einen
Zustand niedriger Temperatur und niedrigen Drucks umzuwandeln und die Kühlmittelrohre
(46, 48) zu öffnen/zu schließen; Kühlmittelrohre (54, 56) mit einem ersten (58) und
einem zweiten (60) Ventil, welche die Außen-Wärmetauscher (16, 18) miteinander und
mit dem Kompressor (12) verbinden; und
eine Steuereinheit (6), um entweder den ersten oder den zweiten Außen-Wärmetauscher
(16, 18) einen Enteisungsbetrieb und den anderen einen Heizbetrieb durchführen zu
lassen, wobei der verbleibende Außen-Wärmetauscher als ein Verdampfer arbeitet, indem
das erste und das zweite Außen-Expansionsventil (20, 22), das Vierwegeventil (14)
und das erste und das zweite Ventil (58, 60) gesteuert werden.
2. Klimaanlage nach Anspruch 1, ferner enthaltend:
mehrere Innen-Expansionsventile (10a, 10b), die in den Innen-Kühlmittelrohren installiert
sind, um eine Kühlmittelmenge individuell einzustellen, die in die mehreren Innen-Wärmetauscher
(8a, 8b) fließt.
3. Klimaanlage nach Anspruch 1, bei welcher das Vierwegeventil (14) umfasst:
einen ersten Anschluss (30), der mit einer Abgabeseite des Kompressors (12) verbunden
ist;
einen zweiten Anschluss (32), der durch ein erstes Kühlmittelrohr (40) mit den Innen-Wärmetauschern
(8a, 8b) verbunden ist;
einen dritten Anschluss (34), der durch ein zweites und ein drittes Kühlmittelrohr
(42, 44) mit dem ersten und
dem zweiten Außen-Wärmetauscher (16, 18) verbunden ist; und
einen vierten Anschluss (36), der mit einer Ansaugseite des Kompressors (12) verbunden
ist;
wobei beim Kühlbetrieb der erste Anschluss (30) mit dem dritten Anschluss (34) in
Verbindung steht und der zweite Anschluss (32) mit dem vierten Anschluss (36) in Verbindung
steht und beim Heizbetrieb der erste Anschluss (30) mit dem zweiten Anschluss (32)
in Verbindung steht und der dritte Anschluss (34) mit dem vierten Anschluss (36) in
Verbindung steht.
4. Klimaanlage nach Anspruch 1, bei welcher das zweite Kühlmittelrohr (42) den ersten
Außen-Wärmetauscher (16) mit dem Vierwegeventil (14) verbindet, ein viertes Kühlmittelrohr
(46) den ersten Außen-Wärmetauscher (16) mit den Innen-Wärmetauschern (8a, 8b) verbindet,
ein sechstes Kühlmittelrohr (54) das vierte Kühlmittelrohr (46) mit dem zweiten Anschluss
(32) des Vierwegeventils (14) verbindet und ein erstes Ventil (58) in dem sechsten
Kühlmittelrohr (54) installiert ist, um es in Übereinstimmung mit einem von der Steuereinheit
(6) übertragenen elektrischen Signal zu öffnen bzw. zu schließen.
5. Klimaanlage nach Anspruch 4, bei welcher das erste Ventil (58) ein Solenoid-Typ zum
Öffnen des sechsten Kühlmittelrohrs (54) gemäß einem von der Steuereinheit (6) angelegten
elektrischen Signal ist.
6. Klimaanlage nach Anspruch 1, bei welcher das dritte Kühlmittelrohr (44) den zweiten
Außen-Wärmetauscher (18) mit dem Vierwegeventil (14) verbindet, ein fünftes Kühlmittelrohr
(48) den zweiten Außen-Wärmetauscher (18) mit den Innen-Wärmetauschern (8a, 8b) verbindet,
ein siebtes Kühlmittelrohr (56) das fünfte Kühlmittelrohr (48) mit dem zweiten Anschluss
(32) des Vierwegeventils (14) verbindet und ein zweites Ventil (60) in dem siebten
Kühlmittelrohr (56) installiert ist, um es in Übereinstimmung mit einem von der Steuereinheit
(6) übertragenen elektrischen Signal zu öffnen bzw. zu schließen.
7. Klimaanlage nach Anspruch 6, bei welcher das zweite Ventil (60) ein Solenoid-Typ zum
Öffnen des siebten Kühlmittelrohrs (56) gemäß einem von der Steuereinheit (6) angelegten
elektrischen Signal ist.
8. Klimaanlage nach Anspruch 4, bei welcher die Steuereinheit (6) bei dem Enteisungsbetrieb
des ersten Außen-Wärmetauschers (16) das sechste Kühlmittelrohr (54) durch Betätigung
des ersten Ventils (58) öffnet und das vierte Kühlmittelrohr (46) durch Betätigung
des ersten Außen-Expansionsventils (20) schließt.
9. Klimaanlage nach Anspruch 6, bei welcher die Steuereinheit (6) bei dem Enteisungsbetrieb
des zweiten Außen-Wärmetauschers (18) das siebte Kühlmittelrohr (56) durch Betätigung
des zweiten Ventils (60) öffnet und das fünfte Kühlmittelrohr (48) durch Betätigung
des zweiten Außen-Expansionsventils (22) schließt.
1. Appareil de conditionnement d'air de type pompe à chaleur, comprenant :
un compresseur (12) pour comprimer un fluide de refroidissement ;
un distributeur progressif à quatre voies (14) pour modifier un flux du fluide de
refroidissement de manière normale ou inversée ;
un premier et un second échangeur de chaleur d'extérieur (16, 18) respectivement installé
à l'extérieur, utilisé en tant que condensateur dans le refroidissement et utilisé
en tant qu'évaporateur dans le chauffage,
caractérisé en ce que l'appareil de conditionnement d'air comprend en outre :
plusieurs échangeurs de chaleur d'intérieur (8a, 8b) respectivement installés au niveau
de chaque espace d'intérieur et réalisant une opération de refroidissement/chauffage
;
un premier et un second détendeur d'extérieur (20, 22) respectivement installé au
niveau de conduites de fluide de refroidissement (46, 48) pour relier les premier
et second échangeurs de chaleur d'extérieur (16, 18) aux échangeurs de chaleur d'intérieur
(8a, 8b) afin d'amener le fluide de refroidissement à un état de basse température
- basse pression et d'ouvrir/de fermer les conduites de fluide de refroidissement
(46, 48) ;
des conduites de fluide de refroidissement (54, 56), avecdes première (58) et seconde
(60) soupapes reliant les échangeurs de chaleur d'extérieur (16, 18) l'un à l'autre
et au compresseur (12) ; et
une unité de commande (6) pour amener l'un des premier et second échangeurs de chaleur
d'extérieur (16, 18) à réaliser une opération de dégivrage et amener le reste à réaliser
une opération de chauffage, moyennant quoi l'échangeur de chaleur d'extérieur restant
fonctionne en tant qu'évaporateur, en commandant les premier et second détendeurs
d'extérieur (20, 22), le distributeur progressif à quatre voies (14) et lesdites première
et seconde soupapes (58, 60).
2. Appareil de conditionnement d'air selon la revendication 1, comprenant en outre :
plusieurs détendeurs d'intérieur (10a, 10b) installés au niveau de conduites de fluide
de refroidissement d'intérieur afin d'ajuster individuellement une quantité du fluide
de refroidissement s'écoulant dans les plusieurs échangeurs de chaleur d'intérieur
(8a, 8b).
3. Appareil de conditionnement d'air selon la revendication 1, dans lequel le distributeur
progressif à quatre voies (14) comprend :
un premier orifice (30) raccordé à une partie d'évacuation du compresseur (12) ;
un deuxième orifice (32) raccordé aux échangeurs de chaleur d'intérieur (8a, 8b) par
une première conduite de fluide de refroidissement (40) ;
un troisième orifice (34) raccordé aux premier et second échangeurs de chaleur d'extérieur
(16, 18) par une deuxième et une troisième conduite de fluide de refroidissement (42,
44) ; et
un quatrième orifice (36) raccordé à une partie d'aspiration du compresseur (12) ;
dans lequel le premier orifice (30) communique avec le troisième orifice (34) et le
deuxième orifice (32) communique avec le quatrième orifice (36) dans l'opération de
refroidissement, et le premier orifice (30) communique avec le deuxième orifice (32)
et le troisième orifice (34) communique avec le quatrième orifice (36) dans l'opération
de chauffage.
4. Appareil de conditionnement d'air selon la revendication 1, dans lequel la deuxième
conduite de fluide de refroidissement (42) relie le premier échangeur de chaleur d'extérieur
(16) au distributeur progressif à quatre voies (14), une quatrième conduite de refroidissement
(46) relie le premier échangeur de chaleur d'extérieur (16) aux échangeurs de chaleur
d'intérieur (8a, 8b), une sixième conduite de fluide de refroidissement (54) relie
la quatrième conduite de fluide de refroidissement (46) au deuxième orifice (32) du
distributeur progressif à quatre voies (14), et une première soupape (58) est installée
au niveau de la sixième conduite de fluide de refroidissement (54) afin de l'ouvrir/de
la fermer selon un signal électrique émis par l'unité de commande (6).
5. Appareil de conditionnement d'air selon la revendication 4, dans lequel la première
soupape (58) est de type électrovanne pour ouvrir la sixième conduite de fluide de
refroidissement (54) selon un signal électrique appliqué par l'unité de commande (6).
6. Appareil de conditionnement d'air selon la revendication 1, dans lequel la troisième
conduite de fluide de refroidissement (44) relie le second échangeur de chaleur d'extérieur
(18) au distributeur progressif à quatre voies (14), une cinquième conduite de fluide
de refroidissement (48) relie le second échangeur de chaleur d'extérieur (18) aux
échangeurs de chaleur d'intérieur (8a, 8b), une septième conduite de fluide de refroidissement
(56) relie la cinquième conduite de fluide de refroidissement (48) au deuxième orifice
(32) du distributeur progressif à quatre voies (14), et une seconde soupape (60) est
installée au niveau de la septième conduite de fluide de refroidissement (56) pour
l'ouvrir/la fermer selon un signal émis par l'unité de commande (6).
7. Appareil de conditionnement d'air selon la revendication 6, dans lequel la seconde
soupape (60) est de type électrovanne pour ouvrir la septième conduite de fluide de
refroidissement (56) selon un signal électrique appliqué par l'unité de commande (6).
8. Appareil de conditionnement d'air selon la revendication 4, dans lequel l'unité de
commande (6) ouvre la sixième conduite de fluide de refroidissement (54) en actionnant
la première soupape (58) et ferme la quatrième conduite de fluide de refroidissement
(46) en actionnant le premier détendeur d'extérieur (20) dans l'opération de dégivrage
du premier échangeur de chaleur d'extérieur (16).
9. Appareil de conditionnement d'air selon la revendication 6, dans lequel l'unité de
commande (6) ouvre la septième conduite de fluide de refroidissement (56) en actionnant
la seconde soupape (60) et ferme la cinquième conduite de fluide de refroidissement
(48) en actionnant le second détendeur d'extérieur (22) dans l'opération de dégivrage
du second échangeur de chaleur d'extérieur (18).