METHOD OF OPERATING A REFRIGERATION CYCLE APPARATUS
20230358450 · 2023-11-09
Assignee
Inventors
Cpc classification
F25B2400/0409
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2400/0403
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B49/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2600/2501
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2600/2513
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B13/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2600/0272
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2400/054
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B41/31
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2700/171
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F25B41/385
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B49/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B41/31
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A method of operating a refrigeration cycle apparatus uses a compressor to compress a coolant. The compressed coolant is fed to a condenser for release of heat, the condensed coolant is later fed to a primary side of an internal heat exchanger for release of heat, and the cooled coolant is guided through an expansion device. The coolant expanded in the expansion device is fed to an evaporator for absorption of heat, the evaporated coolant is later fed to a secondary side of the internal heat exchanger for absorption of heat, and the heated coolant is fed to the compressor. For suction gas temperature control, an amount of heat transferred from the primary side to the secondary side of the internal heat exchanger is controlled with the aid of an additional expansion device arranged parallel to the heat exchanger and between the condenser and the evaporator.
Claims
1: A method of operating a refrigeration cycle apparatus, wherein a coolant is compressed by a compressor (1), wherein the compressed coolant is fed to a condenser (2) for release of heat, wherein coolant condensed in the condenser (2) is later fed to a primary side (3.1) of an internal heat exchanger (3) for release of heat, wherein the coolant cooled down on the primary side (3.1) of the internal heat exchanger (3) is guided through an expansion device (4), wherein the coolant expanded in the expansion device (4) is fed to an evaporator (5) for absorption of heat, wherein the coolant evaporated in the evaporator (5) is later fed to a secondary side (3.2) of the internal heat exchanger (3) for absorption of heat, wherein the coolant heated on the secondary side (3.2) of the internal heat exchanger (3) is fed to the compressor (1), wherein, for suction gas temperature control, an amount of heat transferred from the primary side (3.1) to the secondary side (3.2) of the internal heat exchanger (3) is controlled with the aid of an additional expansion device (6) arranged parallel to the heat exchanger (3) and between the condenser (2) and the evaporator (5).
2: The method according to claim 1, wherein, for suction gas temperature control, an amount of heat transferred from the primary side (3.1) to the secondary side (3.2) of the internal heat exchanger (3) is also controlled with the aid of an additional expansion device (6) connected downstream of the condenser (2) and connected upstream of the internal heat exchanger (3).
3: The method according to claim 1, wherein at least one additional expansion device (6) is controlled for a suction gas superheat of 5 to 15 K.
4: The method according to claim 3, wherein, for suction gas temperature control, at least one additional expansion device (6) is controlled as a function of a rotational speed of the compressor (1).
5: The method according to claim 1, wherein the coolant evaporated in the evaporator (5) is initially fed to a liquid separator (7) and then to the secondary side (3.2) of the internal heat exchanger (3).
6: The method according to claim 1, wherein a temperature at which heat is transferred from an electronic device (8) to be cooled to the internal heat exchanger (3), preferably to the primary side (3.1) thereof, is controlled by at least one additional expansion device (6).
7: A device for carrying out the method according to claim 1, comprising a compressor (1) for compressing a coolant, wherein—viewed in each case in the direction of flow of the coolant—a condenser (2) is connected downstream of the compressor (1), a primary side (3.1) of an internal heat exchanger (3) is connected downstream of the condenser (2), an expansion device (4) is connected downstream of the primary side (3.1), an evaporator (5) is connected downstream of the expansion device (4), a secondary side (3.2) of the internal heat exchanger (3) is later connected downstream of the evaporator (5) and the compressor (1) is connected downstream of the secondary side (3.2), wherein, for suction gas temperature control, an additional expansion device (6) is arranged parallel to the internal heat exchanger (3) and between the condenser (2) and the evaporator (5).
8: The device according to claim 7, wherein an electronic device (8) to be cooled, preferably a frequency converter, is arranged on the internal heat exchanger (3), preferably on the primary side (3.1) thereof.
9: The device according to claim 7, wherein, when viewed in the direction of flow of the coolant, a liquid separator (7) is arranged between the evaporator (5) and the secondary side (3.2) of the internal heat exchanger (3).
10: The device according to claim 7, wherein a changeover valve (9), preferably a 4-2-way valve, which is connected both to a pressure side (1.1) and to a suction side (1.2) of the compressor (1) is provided for switching between a heating mode and a cooling mode.
Description
[0022]
[0023]
[0024]
[0025]
[0026] The four refrigeration cycle apparatuses shown in the figures (apart from
[0027] As can be seen from
[0028] Whether the operating mode I is denoted as the heating mode or the cooling mode ultimately depends simply on the direction in which the heat transport takes place or is intended to take place. Hereinafter for the sake of simplicity—and which is also possible due to the (substantially) symmetrical construction of the refrigeration cycle apparatus according to the invention—the operating mode I is equivalent to the heating mode and the operating mode II is equivalent to the cooling mode.
[0029] It is thus essential for the method according to the invention that, for suction gas temperature control, an amount of heat transferred from the primary side 3.1 to the secondary side 3.2 of the internal heat exchanger 3 is controlled with the aid of an additional expansion device 6 arranged parallel to the heat exchanger 3 and between the condenser 2 and the evaporator 5. This solution is shown in
[0030] This has the result, therefore, that in the solution according to the invention at least two expansion devices always have to be configured to be controllable. In the solutions according to
[0031] It is further preferably provided that the coolant evaporated in the evaporator 5 is initially fed to a liquid separator 7 and then to the secondary side 3.2 of the internal heat exchanger 3. Alternatively, expressed in terms of the subject matter: viewed in the direction of flow of the coolant, a liquid separator 7 is arranged between the evaporator 5 and the secondary side 3.2 of the internal heat exchanger 3. As can also be seen in
[0032] In other words, with reference to
[0033] It is further preferably provided that, in particular in heating mode, at least one additional expansion device 6 is controlled for a suction gas superheat of 5 to 15 K. In the embodiment according to
[0034] Conversely, in the embodiment according to
[0035] It is further preferably provided that, in particular in heating mode, for suction gas temperature control, at least one additional expansion device 6 is controlled as a function of a rotational speed of the compressor 1. Relative to this rotational speed dependency, it is particularly preferably provided in this case that with a low rotational speed of the compressor 1 in heating mode, the additional expansion device 6 is controlled for a suction gas superheat of 10 to 15 K. At a higher rotational speed of the compressor 1 in heating mode, alternatively it is preferably provided that the additional expansion device 6 is controlled for a suction gas superheat of 5 to 10 k.
[0036] For the above-described method in which the transferred quantity of heat is controlled with the aid of an additional expansion device 6 arranged parallel to the internal heat exchanger 3 and between the condenser 2 and the evaporator 5, a refrigeration cycle apparatus (see in particular
[0037] It is thus essential for this apparatus (see once again
[0038] It is also particularly preferably provided that an electronic device 8 to be cooled, preferably a frequency converter, is arranged on the internal heat exchanger 3, preferably on the primary side 3.1 thereof.
[0039] It is more particularly preferably provided in this case that the heat exchanger 3 is configured as a plate heat exchanger (see also https://de.wikipedia.org/w/index.php?title=Plattenw%C3% A4rm e%C3%BCbertrager&oldid=199812395), wherein to avoid a formation of condensed water the (relatively warm) primary side 3.1 of the heat exchanger 3 is formed from external channels of the plate heat exchanger; and the secondary side 3.2 is thus arranged internally.
[0040] Finally, it is also preferably provided that a temperature at which heat is transferred from the electronic device 8 to be cooled to the internal heat exchanger 3, preferably to the primary side 3.1 thereof, is controlled by at least one additional expansion device 6.
[0041] For the sake of completeness, finally the mode of operation of the refrigeration cycle apparatus, shown in
[0042] If the changeover valve 9 is now switched to the other operating mode (here the cooling mode), the coolant correspondingly no longer flows downstream of the compressor 1 at the changeover valve 9 to the heat exchanger (previously the condenser) 2 but directly to the heat exchanger 5 which now operates as a condenser, wherein coolant correspondingly flows through the expansion device 4, the primary side 3.1 of the heat exchanger 3, the additional expansion device 6 and the heat exchanger with the reference sign 2, which then operates as an evaporator, and then correspondingly in the reverse direction until the coolant then in turn passes to the changeover valve 9 and is also conducted therefrom back to the liquid separator 7, in order to pass back to the compressor 1 after passing the secondary side 3.2 of the heat exchanger 3.
REFERENCE LIST
[0043] 1 Compressor [0044] 1.1 Pressure side [0045] 1.2 Suction side [0046] 2 Condenser [0047] 3 Internal heat exchanger [0048] 3.1 Primary side [0049] 3.2 Secondary side [0050] 4 Expansion device [0051] 5 Evaporator [0052] 6 Additional expansion device [0053] 7 Liquid separator [0054] 8 Electronic device [0055] 9 Changeover valve