CONDENSER
20200232689 · 2020-07-23
Inventors
Cpc classification
F28B1/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/05383
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2339/045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/126
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F25B39/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A condenser includes a fluid inlet in an upper manifold and a fluid outlet in a lower manifold. The condenser includes multiport tubes provided with a plurality of separate flow channels which are delimited by outer opposite side walls and internal intermediate walls extending between the outer opposite side walls of the tubes. The multiport tubes define a channel space between them. A plurality of cooling plates extend between the upper manifold and the lower manifold. The cooling plates are in thermal contact with the multiport tubes to receive a heat load from fluid in the flow channels. The cooling plates have outer edges which protrude out from the channel space and are directed away from the channel space.
Claims
1. A condenser, comprising: a fluid inlet in an upper manifold; a fluid outlet in a lower manifold; multiport tubes extending between the upper and lower manifold, wherein the multiport tubes are provided with a plurality of separate flow channels which are delimited by outer opposite side walls and internal intermediate walls extending between the outer opposite side walls of the tubes, the multiport tubes providing a flow path between the upper manifold and the lower manifold, wherein the multiport tubes define a channel space between the multiport tubes; and a plurality of cooling plates extending between the upper manifold and the lower manifold, wherein the cooling plates are in thermal contact with the multiport tubes to receive a heat load from fluid in the flow channels; wherein the cooling plates have outer edges which protrude out from the channel space and are directed away from the channel space.
2. The condenser according to claim 1, wherein the condenser has a parallel configuration with cooling plates that have side surfaces in parallel with outer side walls of the multiport tubes.
3. The condenser according to claim 2, wherein the cooling plates have opposite outer edges protruding out from the channel space and an intermediate section in the channel space, the cooling plates are attached via the intermediate section to an outer side wall of a respective multiport tube.
4. The condenser according to claim 1, wherein the channel space is provided with fins extending between the outer side walls of the multiport tubes and side surfaces of the cooling plates.
5. The condenser according to claim 1, wherein the condenser has a perpendicular configuration with cooling plates that have side surfaces which are perpendicular to the outer side walls of the multiport tubes.
6. The condenser according to claim 5, wherein first ones of the plurality of the cooling plates having their outer edges protruding out from the channel space in a first direction have a second inner edge attached to a first base extending along first outer side walls of the multiport tubes, and second ones of the plurality of the cooling plates having their outer edges protruding out from the channel space in a second direction have a second inner edge attached to a second base extending along second outer side walls of the multiport tubes.
7. The condenser according to claim 1, wherein the condenser comprises a natural convection condenser.
8. The condenser according to claim 1, further comprising a fan generating an airflow between the cooling plates.
9. The condenser according to claim 1, wherein the condenser comprises a natural convection condenser provided by a fan assisting vertical flow of air upwards between the cooling plates.
10. The condenser according to claim 1, wherein the condenser receives fluid from and passes fluid to an evaporator cooling a high current or voltage device, preferably a circuit breaker of a generator.
11. A condenser, comprising: a first manifold; a second manifold; multiport tubes extending between the first and second manifolds, wherein the multiport tubes are provided with a plurality of separate flow channels that provide a flow path between the first manifold and the second manifold; and a plurality of cooling plates extending between the first manifold and the second manifold, wherein the cooling plates are in thermal contact with the multiport tubes to receive a heat load from fluid in the flow channels.
12. The condenser of claim 11, wherein the multiport tubes define a channel space between the multiport tubes, and wherein the cooling plates comprise outer edges that protrude out from the channel space and are directed away from the channel space.
13. The condenser according to claim 11, wherein the condenser has a parallel configuration with cooling plates that have side surfaces in parallel with outer side walls of the multiport tubes.
14. The condenser according to claim 13, wherein the cooling plates have opposite outer edges protruding out from the channel space and an intermediate section in the channel space, the cooling plates are attached via the intermediate section to an outer side wall of a respective multiport tube.
15. The condenser according to claim 11, wherein the channel space is provided with fins extending between the outer side walls of the multiport tubes and side surfaces of the cooling plates.
16. The condenser according to claim 11, wherein the condenser has a perpendicular configuration with cooling plates that have side surfaces which are perpendicular to the outer side walls of the multiport tubes.
17. The condenser according to claim 16, wherein first ones of the plurality of the cooling plates having their outer edges protruding out from the channel space in a first direction have a second inner edge attached to a first base extending along first outer side walls of the multiport tubes, and second ones of the plurality of the cooling plates having their outer edges protruding out from the channel space in a second direction have a second inner edge attached to a second base extending along second outer side walls of the multiport tubes.
18. A condenser, comprising: a first manifold; a second manifold; multiport tubes extending between the first and second manifolds, wherein the multiport tubes are provided with a plurality of separate flow channels that provide a flow path between the first manifold and the second manifold; a first base attached to and extending along outer side walls of the multiport tubes on a first side of the multiport tubes; and a first plurality of cooling plates extending from the first base away from the multiport tubes.
19. The condenser of claim 18, further comprising: a second base attached to and extending along outer side walls of the multiport tubes on a second side of the multiport tubes opposite the first side; and a second plurality of cooling plates extending from the second base away from the multiport tubes.
20. The condenser of claim 18, wherein the first plurality of cooling plates extend in a direction perpendicular to the first base.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0007] In the following disclosure, embodiments will be described in closer detail by way of example and with reference to the attached drawings, in which
[0008]
[0009]
[0010]
DESCRIPTION OF EMBODIMENTS
[0011]
[0012] The illustrated condenser 1 comprises an upper manifold 4 with a fluid inlet 3 for receiving fluid. Depending on the implementation the heated fluid may originate from an evaporator, for instance. The lower manifold 6 is provided with a fluid outlet 5 as illustrated in one of
[0013]
[0014] The condenser 1 illustrated in
[0015] However, in some implementations the airflow between the cooling plates 10 may be assisted by a fan, as illustrated in the embodiment of
[0016] The multiport tubes 2 are arranged to the condenser 1 in such a way that they define a channels space 15 between them, such that all flow channels 9 are located within this channel space, as illustrated in
[0017] During operation, a large pressure drop in the channels 9 of the multiport tubes 2, as compared to the pressure drop in the manifold, will force the fluid in vapor state entering the upper manifold 4 to a homogeneous flow distribution between the different channels 9 of all multiport tubes. In praxis the pressure drop in the channels is significantly larger than in the manifold. The result is a high thermal effectiveness, because of the homogeneous vapor distribution to all channels of the multiport tubes.
[0018] In
[0019] To provide additional rigidity to the condenser 1 and also to increase heat dissipation, fins 16 are arranged in the channel space 15 to extend between the outer side walls 7 of the multiport tubes 2 and the side surfaces 12 of the cooling plates 10. Consequently, in the illustrated embodiment these fins are used to make the structure more robust.
[0020] The condenser 1 illustrated in
[0021]
[0022]
[0023] Similarly, as in the previous embodiment, the cooling plates 10 are dimensioned such that their outer edges 13 protrude out of the channel space 15. However, a first base 17 is attached to extend along the outer side walls 7 of the multiport tubes 2 on a first side of the multiport tubes 2. A second inner edge 18 of the parallel cooling plates 10 extending in a first direction (to the right in
[0024]
[0025] It is to be understood that the above description and the accompanying figures are only intended to illustrate certain embodiments that can be varied and modified without departing from the scope of the inventive concepts.