COMPACT HEAT EXCHANGER
20230251042 · 2023-08-10
Assignee
Inventors
Cpc classification
F28D2021/0085
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/0042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D7/1615
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/0038
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/024
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/0096
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/053
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D9/0068
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D9/0062
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/325
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/0068
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/0461
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28D9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A heat exchanger having a fins and tubes heat exchanger coupled to a plates heat exchanger and an open sided bypass compartment facing one of the edges of the fin and tubes heat exchanger. The plates heat exchanger has an inlet zone and an outlet zone. The heat exchanger is configured to guide a fluid to flow from the inlet zone, through inlet pathways between plates of the plates heat exchanger, and fins of the fins and tubes heat exchanger then toward the bypass compartment, then in between the fins facing outlet pathways, toward in between the surfaces of the plates facing the outlet pathways, and then toward the outlet zone.
Claims
1. A heat exchanger comprising: a fins and tubes heat exchanger, comprising a plurality of stacked fins penetrated by tubes designed to couple to an external thermal fluid, the fins being configured to transfer heat between the external thermal fluid flowing in the tubes and a fluid flowing in between the fins; a plates heat exchanger comprising a plurality of stacked plates configured to transfer heat from one side of the surface of the plate to the other side of the surface of the plate; a bypass compartment defining an enclosure enclosing at least one side of the fins and tubes heat exchanger, the bypass compartment comprising an open side facing the at least one side of the fins and tube heat exchanger; an inlet zone; and an outlet zone; wherein, the fins and tubes heat exchanger being coupled to the plates heat exchanger such that fins of the fins and tubes heat exchanger are each coupled to a corresponding plate on an edge of the fin and one of the edges of the fin faces the open side of the bypass compartment, plates of the plates heat exchanger are each coupled to a fin of the fins and tubes heat exchanger on an edge of the plate, one of the edges of the plate faces at least one of the inlet zone and the outlet zone, each coupled plate and fin defines a gap with an adjacent coupled plate and fin, and either (i) the portion of the gap between two adjacent plates facing the inlet zone is open, and the portion of the gap between two adjacent plates facing the outlet zone is blocked such that the gap defines an inlet pathway or (ii) the portion of the gap between two adjacent plates facing the outlet zone is open, and the portion of the gap between two adjacent plates facing the inlet zone is blocked such that the gap defines an outlet pathway, the inlet pathways and outlet pathways being alternately stacked, enabling the fluid in the inlet pathway and the fluid in the outlet pathway to be in mutual heat exchange propinquity.
2. The heat exchanger according to claim 1 further comprising a divider surface separating the inlet zone from the outlet zone and connected to the plates heat exchanger laterally to the plane of the plates.
3. The heat exchanger according to claim 1 or 2 wherein the fins and tubes heat exchanger is coupled to a cooling source such that the fluid in the inlet pathway is precooled upstream of said fins and tubes heat exchanger by exchanging heat with a fluid in the outlet pathway while a fluid in the outlet pathway is post-heated downstream of said fins and tubes heat exchanger by exchanging heat with the fluid in the inlet pathway.
4. The heat exchanger according to claims 1 to 3 wherein the fins and tubes heat exchanger is coupled to a heating source such that the fluid in the inlet pathway is preheated upstream of said fins and tubes heat exchanger by exchanging heat with a fluid in the outlet pathway while a fluid in the outlet pathway is post-cooled downstream of said fins and tubes heat exchanger by exchanging heat with the fluid in the inlet pathway.
5. The heat exchanger according to claim any one of claims 1 to 4 wherein plates of the plates heat exchanger are aligned and sealed with fins of the fins and tubes heat exchanger to define a plurality of continuous fluid pathways each pathway comprising a plate and a fin.
6. The heat exchanger according to any one of claims 1 to 5 wherein the bypass compartment is in proximity to the fins and tube heat exchanger and distal from the plates heat exchanger.
7. The heat exchanger according to any one of claims 1 to 6 wherein the plates of the heat exchanger are made of a material having lower thermal conductivity than the material the fins are made of.
8. The heat exchanger according to any one of claims 1 to 7 configured to enable counter flow of the fluid flowing in the inlet pathway with the fluid flowing in the outlet pathway.
9. The heat exchanger according to any one of claims 1 to 8 wherein the compartment further comprising a shutter.
10. The heat exchanger according to claim 9 wherein the shutter is adapted to be in an open, closed or semi-open state.
11. An apparatus comprising a housing, the heat exchanger defined in claim 1 and a fluid propagating means wherein the housing accommodates the heat exchanger and the propagating means.
12. The apparatus according to claim 11 being a dehumidifier.
13. The apparatus according to claim 11 or 12 further comprising a blower for motivating air, a sump for collecting water condensing in the heat exchanger and means for treating and distributing said condensate water, and a blower and being an atmospheric water generator.
14. The apparatus according to claim 11 further comprising a separation plate adapted to separate the inlet zone from the outlet zone.
15. The apparatus according to claim 11 wherein the apparatus functions as an air conditioner when the shutter is an open state, as an AWG when the shutter is in closed state and bot as an A/C and a AWG when the shutter is on semi-open state.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] The subject matter regarded as the invention is particularly pointed out and distinctly claimed in the concluding portion of the specification. The invention, however, together with objects, features, and advantages thereof, may best be understood by reference to the following detailed description when read with the accompanying drawings in which:
[0017]
[0018]
[0019]
DETAILED DESCRIPTION OF THE PRESENT INVENTION
[0020] In the following detailed description, numerous specific details are set forth in order to provide a thorough understanding of the invention. However, it will be understood by those skilled in the art that the present invention may be practiced without these specific details. In other instances, well-known methods, procedures, and components have not been described in detail so as not to obscure the present invention.
[0021] This description of embodiments of the invention depicts a fins and tubes heat exchanger coupled to a plates heat exchanger in a novel configuration which significantly reduces the volume of said heat exchanger, making it compact and feasible to fit into various new applications.
[0022] Reference is now made to
[0023] Heat exchanger 100 may include plates heat exchanger 12, fins and tubes heat exchanger 16, bypass compartment 30, an inlet zone 18 and an outlet zone 22.
[0024] The fins and tubes heat exchanger 16 may be coupled to the plates heat exchanger 12. The heat exchanger further comprises a bypass compartment 30 defining an enclosure 28 enclosing at least one side of the fins and tubes heat exchanger 16, the bypass compartment 30 comprising an open side 32 facing the at least one side of the fins and tube heat exchanger 16.
[0025] The fins and tubes heat exchanger 16 may be a traditional fins and tubes heat exchanger which comprises a plurality of stacked fins 14, usually made of a material having high thermal conductivity, having through holes 26 through which through tubes 24 pass, the through tubes 24 designed to couple to an external thermal fluid to exchange heat to transfer heat between the external thermal fluid flowing in the tubes 24 and a fluid flowing in between the fins 14.
[0026] The plates heat exchanger 12 may comprise a plurality of stacked plates 10 configured to transfer heat from one side of the surface of the plate to the other side of the surface of the plate. The plate heat exchanger faces the inlet zone and an outlet zone of the heat exchanger 100.
[0027] Fins 14 of the fins and tubes heat exchanger 16 may be each coupled to a corresponding plate 10 on an edge of the fin 14 and one of the edges of the fin faces the open side 32 of the bypass compartment 30.
[0028] Plates 10 of the plates heat exchanger 12 are each coupled to a fin 14 of the fins and tubes heat exchanger 16 on an edge of the plate, one of the edges of the plate 10 faces at least one of the inlet zone 18 and the outlet zone 22.
[0029] The plates 10 of the plates heat exchanger 12 can be aligned and sealed with fins 14 of the fins and tubes heat exchanger 16 to define a plurality of continuous fluid pathways 40 and 42 each pathway comprising a pair of coupled plate 10 and fin 14.
[0030] In the example depicted in
[0031] As can be seen in
[0032] Each coupled plate and fin defines a gap (40 or 42) with an adjacent coupled plate and fin. These gaps may either be (i) characterized by having the portion of the gap between two adjacent plates facing the inlet zone 18 being open, and the portion of the gap between two adjacent plates facing the outlet zone 22 being blocked such that the gap defines an inlet pathway 40 or (ii) characterized by having the portion of the gap between two adjacent plates facing the outlet zone 22 being open, and the portion of the gap between two adjacent plates facing the inlet zone 18 being blocked such that the gap defines an outlet pathway 42.
[0033] Accordingly, the gaps between two adjacent plates may be alternately open in the inlet zone 18 and blocked in the outlet zone 22 or vice versa—blocked in the in the inlet zone 18 and open in the outlet zone 22. The gaps may be alternately blocked or open in each zone such that on a certain the entire stack of plates 10 is configured to have alternate stacked inlets and outlets.
[0034] In some embodiments, the plates 10 are made of low heat-conductive material such as plastic and the fins 14 (as well as the tubes) are made of a high heat conductive material such as a metal or metal alloy. In some embodiments, the plates 10 are made of a material having a thermal conductivity of less than or equal to 5W/m.Math.° C. In some embodiments, the fins 14 are made of a material having a thermal conductivity higher than or equal to 50W/m.Math.° C. In some embodiments, the fins 14 and/or the tubes 24 (vide infra) are made of aluminum, aluminum alloy, copper, copper alloy, or stainless steel.
[0035] In some embodiments, the plate 10 comprises attaching protrusions dispersed in the peripheral margin area proximate to the edge which overlaps the peripheral margin area of the fin 14 for pressing the fin to an adjacent plate or to the same plate.
[0036] In some embodiments the fins 14 may include through holes. The term “through hole” refers to a hole that passes from one side of the article to the other side.
[0037] The fins may be penetrated by tubes 24 designed to couple to an external thermal fluid for example by connecting to a refrigeration cycle. The tubes 24 conduct a second (thermal) fluid flow 26 (either hot or cold) that is meant to exchange heat with the fluid flowing through the pathways (i.e in-between the fins and the plates). The fins are attached on one of their edges to the plates. The opposite edge of the fins to the edge which is attached to the plate, faces the bypass zone 28, which is defined by a bypass compartment 30 included in heat exchanger 100. In some embodiments, the bypass compartment 30 is defining an enclosure having an open side 32 facing the side of the fins and tubes heat exchanger 16 being distal to the side 34 of the fins and tubes heat exchanger 16 which is attached to the plates heat exchanger 12. It is noted that the fins can be attached to the plates at their edges or, as in the embodiment depicted in
[0038] Fluid flow 38, might split and re-enter the fin and tube heat exchanger 16 from few other outlet pathways. For the sake of simplicity this split is not shown in
[0039] The bypass compartment 30 may have a shutter 31. The shutter 31 may be closed as in
[0040] In embodiments having a shutter 31, the apparatus may further comprise a duct having one outlet opening disposed in proximity to the inlet/outlet zones (18, 22) and one inlet opening being disposed at a target space for climate control (e.g. the indoor of a vehicle) to enable a closed circuit air conditioning. The opening of the duct being disposed in the inlet/outlet zone may have a shutter such that when the compartment shutter 31 and the duct shutter are open, and the blower pulls an airflow from the air conditioned space through the duct inlet, through the duct, toward the duct outlet, trough the inlet/outlet zone (18, 22), through the heat exchangers, through the bypass compartment 30 and back to the air conditioned space through the bypass shutter 31.
[0041] In some embodiments, an air motivating means such as a fan or blower is positioned at the outlet zone of the heat exchanger and pulls air from the outlet pathways 42. In such embodiments, which also have a shutter 31 as explained above, then when the shutter 31 is in an open state, then the rotation of the propeller of the aforementioned motivating means can be reversed, so fluid flow is pushed into the outlet pathways 42, that now serve as additional inlet pathways. The fluid flow then passes through the plates 10, then the fins 14, where it exchanges heat with the external fluid 26 through fins 14 and tubes 24, exits the fins and tubes heat exchanger 16 and combines with fluid flow 38 arriving from the inlet pathways 40 to exit the apparatus 1000 as cold/hot air.
[0042] The top 44 and bottom 46 sides of the heat exchanger 100 are blocked. In some embodiments, a portion of the top 44 and/or bottom 46 sides of the fins and tubes heat exchanger can be at least partially open to the bypass compartment 30. In such embodiments, the bypass compartment 30 allows the fluid flow 38 to exit the inlet pathway 40 and reenter the outlet pathway 42 through fins and tubes heat exchanger portion of the top 44 and/or the bottom sides 46.
[0043] When the heat exchanger 100 is operating, the fluid flow 20 thus enters the heat exchanger 100 (with assistance of motivating means such as a blower or a pump) via first inlets 48 of the plates heat exchanger 12 in an inlet zone 18 of the heat exchanger 100, continues to flow through the inlet pathways 40 where it is confined by two plates 10 of the plates heat exchanger 12 and is in heat exchange with the fluid 50 that flows in the outlet pathways 42 on either side of the inlet pathway 40. The fluid flow 20 then enters the portion of the inlet pathway 40 in the fins and tubes heat exchanger 16, by passing the first outlets of the plates heat exchanger/first inlets of the fins 52. In the fins and tubes portion of the inlet pathway 40, the fluid flow 20 indirectly exchanges heat with the external thermal fluid 26 flowing in the tubes 24. The fluid flow 20 then exits the fins through the first outlet of the fins 54, enters the bypass zone 28 as fluid flow 38, where it is confined by the open sided bypass compartment 30. The fluid flow 38 then reenters the fins and tubes heat exchanger 16 through its second set of inlets 56 into the outlet pathways 42 as fluid flow 50. Fluid flow 50 exchanges heat with the external thermal fluid 26 and exits the fins and tubes portion of the outlet pathways 42 through the second fins outlets/second plates inlets 58. The fluid flow 50 then flows in the plates heat exchanger portion of the outlet pathway 42 where it exchanges heat with the incoming fluid 20 flow on either side of the outlet pathway 42 through the plates 10. Finally, the fluid flow leaves the heat exchanger via the second set of outlets 60 of the plates heat exchanger 12 to an outlet zone 22 of heat exchanger 100.
[0044] Accordingly, when the fins and tubes is coupled to a cooling source the fluid in the inlet pathway 40 is precooled upstream of the fins and tubes heat exchanger 16 while the fluid in the outlet pathway 42 is post-heated downstream of said fins and tubes heat exchanger 16. When the fins and tubes is coupled to a heating source, (e.g. when the apparatus operates as an AC on heating mode) the fluid in the inlet pathway 40 is preheated upstream of the fins and tubes heat exchanger 16 while the fluid in the outlet pathway 42 is post-cooled downstream of said fins and tubes heat exchanger 16.
[0045] The heat exchange between the incoming fluid flow 20 to the outgoing fluid flow 50 increases the energy efficiency of the heat exchange process as the fluid flow that exchanges heat with the external thermal fluid 26 is already closer to the temperature of the thermal fluid 26 due to the exchange of heat with the outgoing airflow.
[0046] The heat exchanger of the invention can be prepared according to ordinary production methods available in the art.
[0047] The configuration described above is less space consuming in comparison to other prior art heat exchangers, such as those described in international patent application PCT/IL2018/051266. This allows utilizing this technology for various applications which were not conceived yet so far especially in confined spaces such as on a kitchen counter-top, a bathroom or a ceiling duct.
[0048] The heat exchanger may be located inside an apparatus. The apparatus can be an AWG, an AC unit a dehumidifier or a pasteurizing device. The fluid can be air such as humid air to be dried, air comprising solvent vapors to be regenerated or a liquid such as milk to pasteurized. A person of skill in the art would know how to make the necessary adjustments in order to incorporate the heat exchanger of the invention as part of the specific apparatus. The apparatus can function as an air conditioner when the shutter is an open state, as an AWG when the shutter is in closed state and bot as an A/C and an AWG when the shutter is on semi-open state.
[0049] In some embodiments, the apparatus is a hybrid A/C—AWG system that can be installed for example in a vehicle, which can switch between an AC mode, an AWG mode and a concomitant AC and AWG mode by selecting the state of the shutter in the bypass compartment between open state, closed state and semi open state, respectively.