This disclosure relates to heat exchangers. In particular, it relates to heat exchangers which may be assembled modularly.
Heat exchangers are commonly used in diverse application to expel and/or capture heat. They may include a plurality of pipes or tubes which contain a heat exchange fluid flowing therethrough, and which is exposed to an environment of a higher or lower temperature. As the heat exchange fluid flows through the tubes, the temperature thereof is brought closer to that of the environment, thereby cooling or heating it, as per the required design.
According to one aspect of the presently disclosed subject matter, there is provided a module for constructing therefrom a heat exchanger, the module comprising:
wherein each of the manifolds comprises selectively sealable end openings formed in facing ends thereof and defining a longitudinal flow path substantially perpendicular to the tubes and parallel with the planes defined thereby; and
wherein each of the manifolds further comprises selectively sealable side openings on facing sides thereof and each defining a lateral flow path substantially perpendicular to the longitudinal flow path and to the planes defined by the tubes.
Each of the mats may further comprise two headers configured for bringing the tubes into fluid communication with the manifolds, and each being connected between the tubes and one of the manifolds.
The headers may be overmolded on the tubes.
The headers may comprise positioning features, each configured to cooperate with a corresponding positioning feature of an adjacent header to facilitate positioning thereof.
Each of the side openings may be defined by a side-lip configured to lie in registration with a side-lip of an identical manifold.
Each of the end openings may be defined by an end-lip configured to lie in registration with an end-lip of an identical manifold.
The module may further comprise caps configured to be selectively connected to one or more of the side and end openings to seal it.
According to another aspect of the presently disclosed subject matter, there is provided a module for constructing therefrom a heat exchanger, the module comprising:
wherein at least one of the manifolds comprises a division arrangement configured to facilitate selectively fluidly isolating one or more of the mats from the tubes of the other mats.
The division arrangement may be configured to divide an internal fluid chamber of the manifold along a plane substantially parallel to the planes defined the mats.
The division arrangement may comprise one or more pairs of oppositely disposed slots on an interior surface of the manifold and be configured to receive a partition spanning therebetween. The slots may extend longitudinally along the length of the manifold.
According to a further aspect of the presently disclosed subject matter, there is provided a module for constructing therefrom a heat exchanger, the module comprising:
wherein each of the gaps is disposed such that it overlaps with projections, in a direction perpendicular to the planes, of one or more tubes of other of the mats.
A majority of the gaps in each mat may be of the same size, with each of the mats further comprising one or more, e.g., two, auxiliary gaps of a different size, for example smaller.
The auxiliary gaps may be formed adjacent extreme tubes disposed on one end of their respective tubes.
The mats may be arranged such that extreme tubes of adjacent mats are on alternate sides thereof from one another. Each mat may further comprise a support element configured to grip each of the tubes and maintain its position, each of the support elements being further configured to be rigidly connected to a support element of an adjacent mat so as to preclude an arrangement wherein the mats overlie one another with the extreme tubes thereof on the same sides thereof. The support elements may each comprise a linking arrangement configured to cooperate with the linking arrangement of an adjacent support element to facilitate the rigid connection. The linking arrangements may comprise tabs and slots.
Each of the gaps may be disposed such that it overlaps with projections, in a direction perpendicular to the planes, of a tube of an adjacent mat. Each of the gaps may fully overlap with the projections.
According to a still further aspect of the presently disclosed subject matter, there is provided a module for constructing therefrom a heat exchanger, the module comprising:
wherein each mat comprises one or more support elements disposed coplanar therewith and transverse to the tubes, the support elements configured to grip each of the tubes and maintain its position, each of the support elements being further configured to be rigidly connected to a support element of an adjacent mat.
The support elements may each comprise a linking arrangement configured to cooperate with the linking arrangement of an adjacent support element to facilitate the rigid connection.
The linking arrangement may facilitate snapping connection with an adjacent support element.
The linking arrangements may comprise tabs and slots.
It will be appreciated that a module according to any of the preceding aspects may be provided according to any one or more of the other preceding aspects, including optional features thereof.
According to a still further aspect of the presently disclosed subject matter, there is provided a heat exchanger comprising one or more modules as described above.
In order to understand the invention and to see how it may be carried out in practice, embodiments will now be described, by way of non-limiting examples only, with reference to the accompanying drawings, in which:
As illustrated in
As better seen in
As seen in
Top and bottom surfaces 36, 38 of the header 26 are formed with positioning features 40, designed to cooperate with similar corresponding positioning features on a header placed thereon to facilitate a stacked arrangement thereof. The positioning arrangements 40 may be configured such that the positioning features 40 on both the top and bottom surfaces 36, 38 of the header 26 are designed to cooperate with the positioning features on either the top or bottom surface of an adjacent header.
For example, a positioning projection 42a may be provided spanning lengthwise on one side of the length of the top surface 36, and a correspondingly formed positioning socket 42b, configured to receive within a positioning projection, is provided spanning lengthwise on the other side of the top surface. A similar positioning projection and socket (not illustrated) are formed on the bottom surface 38, on respective opposite sides (i.e., with the positioning socket of the bottom surface being formed on the same side along the length of the header 26 that the positioning projection 42a is formed on the top surface 36, and the positioning projection of the bottom face being formed on the same side along the length of the header that the positioning socket 42b is formed on the top surface). Accordingly, when two headers 26 are stacked one atop the other with the exchanger ends 32 thereof parallel to one another and facing the same direction, the positioning projections 42a of one will be aligned with the positioning sockets 42b of the other, irrespective of which of the top and bottom surfaces 36, 38 of each is facing upwardly.
The headers 26 may be made of a moldable material, such as a polymer, e.g., a thermoplastic or thermoset. Accordingly, the header 26 may be formed directly on the tubes 24 connected thereto, e.g., by an overmolding process, thereby simplifying manufacture of the mat 20 by obviating the need to insert a large number of tubes 24 into their respective headers 26. In addition, by providing the header 26 which is overmolded on the tubes 24, the tubes do not need to be welded, either to the header or the manifold 22, mitigating the risk of ends of the tubes being deformed such that flow through them is restricted and/or prevented.
As illustrated in
The seats 46 may be evenly spaced along the length of the support element 28, giving rise to evenly sized gaps 25 between a majority of adjacent tubes 24 of each mat 20, with the exception of a small number (e.g., one or two) extreme seats 46a at one end, which is spaced from its adjacent seat by a different distance, for example a smaller distance, than are the other seats from one another, giving rise to auxiliary gaps 25a which are smaller than the other, evenly sized, gaps.
The support elements 28 may further comprise a linking arrangement configured to facilitate rigid connection of each support element to one adjacent thereto, i.e., on an adjacent mat 20. This rigid connection may contribute to the mat's 20 stability, e.g., withstanding vibrations due to fluids rushing rapidly past the tubes 24.
According to some examples, each of the linking arrangements may comprise upwardly-projecting linking tabs 52 and downwardly-facing linking slots 54, each configured to receive therein a linking tab, for example snappingly, thereby facilitating simple connection to an adjacent support element 28. It will be appreciated that the linking tabs 52 may face downwardly with the linking slots 54 facing upwardly, or be arranged in any other suitable manner, without departing from the scope of the presently disclosed subject matter, mutatis mutandis. The linking tabs and slots 52, 54 are spaced such that when one of the support elements 28 is disposed above the other, each of the linking tabs of one of the support elements is aligned with a corresponding linking slot of the other.
According to some examples, the linking tabs and slots 52, 54 may be spaced such that each of the linking tabs of one of the support elements is aligned with a corresponding linking slot of the other only when they are reversed with respect to one another, i.e., the extreme seats 46a thereof are on opposite sides along their lengths, as illustrated in
The support elements 28 may be further used to facilitate construction of the heat exchanger 12. As seen in
As illustrated in
Side surfaces 74 of the housing 58 are each formed with one or more selectively sealable (i.e., configured to facilitate it to be sealed, thereby preventing flow of fluid therethrough, selectively) side openings 76 for attachment to an adjacent manifold, each defining a lateral flow path Plat therethrough. The lateral flow paths Plat are each substantially perpendicular to the planes defined by the tubes 24. A raised side-lip 78 may be formed about each side opening 76, constituting a welding surface for facilitating a sealing connection to another element, such as a cap, inlet/outlet or a corresponding side-lip of an adjacent manifold (thereby bringing the two manifolds into fluid communication with each other via the facing side openings), as described below. Accordingly, outer surfaces 78a of the side-lips 78 may be configured to substantially fully contact corresponding side-lips of an adjacent manifold 22 when two manifolds are disposed adjacently to another with the side surface 74 of one facing a side surface of the other, e.g., the outer surface of each side-lip may be flat and substantially parallel to a plane defined by the tubes 24 of one of the mats 20.
Ends 80 of the housing 58 are each formed with a selectively sealable end opening 82, for attachment to an adjacent manifold, and defining a longitudinal flow path Plon therebetween. The longitudinal flow path Plon is substantially perpendicular to the tubes 24 and the lateral flow path Plat, and parallel to the planes defined thereby. A raised end-lip 84 may be formed around each end opening 82, constituting a welding surface for sealing connection to another element, such as a cap, inlet/outlet or a corresponding end-lip of an adjacent manifold (thereby bringing the two manifolds into fluid communication with each other via the facing end openings), as described below. Accordingly, an outer surface 84a of each end-lip 84 may be configured to substantially fully contact a corresponding end-lip of an adjacent manifold 22 when two manifolds are disposed adjacently to another with the end 80 of one facing the end of the other, e.g., the outer surface of each end-lip may be flat and substantially perpendicular to an axis traversing longitudinally through the fluid chamber 60.
As best seen in
Reverting to
Several modules 10 may be assembled together to form the heat exchanger 12. According to some examples, modules 10 are arranged with the manifolds on each side thereof stacked together, such that side surfaces 74 thereof face each other, with side-lips 78 thereof lying in registration with those of adjacent modules, i.e., outer surfaces 78a of the side-lips contacting one another, defining side junctions 100 therebetween. (Herein, reference numeral may be used to refer collectively to all reference numerals which include the same number followed by a trailing letter and/or prime, e.g., 100 may be used to refer collectively to 100′a, 100′b, 100″a, 100″b, etc. Similarly, 100′ may be used to refer collectively to 100′a, 100′b, etc., and 100a may be used to refer collectively to 100′a and 100″a.) Two or more modules 10 so stacked constitute a lateral subassembly 150 of the heat exchanger, spanning between first and second ends 102′, 102″ defined by the manifolds 22. In the present disclosure, the prime notation is used to refer to corresponding side junctions 100 formed between opposite ends 102 of the same manifolds, i.e., side junction 100a is formed between first ends 102′ of the same pair of adjacent manifolds 22 between the second ends 102″ of which side junction 100′a is formed.
The lateral subassembly 150 may be configured to regulate fluid flow therethrough. According to some examples, as illustrated schematically in
According to other examples, all of the side junctions 100′ of the first end 102′ are left unsealed, and all of the side junctions 100″ of the second end 102″ are sealed. In addition, partitions 104 are provided in the manifolds 22 of the first end 102′, thereby fluidly isolating some of the headers 26 of each module 10 from the others within the manifold 22. Accordingly, fluid within the lateral subassembly 150 flows through each mat 20 in succession in both direction, reversing direction one time therewithin. It will be appreciated that the manifolds 22 may be configured to receive more than one partitions, thereby allowing reversing of fluid flow more than once within each Nipples 94 may be provided as necessary at the entrance and exit of the fluid flow path so defined.
It will be appreciated that the heat exchanger 12 may comprise a single module 10, a single lateral subassembly 150, one or more modules connected only by end openings 82 thereof, several lateral subassemblies connected by end openings thereof, any of the above or other combinations modified by connecting adjacent manifolds 22 via holes cut by a user in top surfaces 56 thereof (e.g., as illustrated in
As illustrated in
Those skilled in the art to which this invention pertains will readily appreciate that numerous changes, variations and modifications can be made without departing from the scope of the invention mutatis mutandis.
Number | Date | Country | Kind |
---|---|---|---|
248304 | Oct 2016 | IL | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/IL2017/051120 | 10/3/2017 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2018/069919 | 4/19/2018 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
4619315 | Waryasz | Oct 1986 | A |
4923004 | Fletcher | May 1990 | A |
5582238 | Plaschkes | Dec 1996 | A |
6161616 | Haussmann | Dec 2000 | A |
9863722 | Kim | Jan 2018 | B2 |
10048010 | Cheong | Aug 2018 | B2 |
10126065 | Pautler | Nov 2018 | B2 |
10690380 | Cohen | Jun 2020 | B2 |
20050247443 | Kim | Nov 2005 | A1 |
20100206532 | Alahyari | Aug 2010 | A1 |
20110030935 | Riondet | Feb 2011 | A1 |
20110088885 | Samuelson | Apr 2011 | A1 |
20120267085 | Plaschkes | Oct 2012 | A1 |
20160370119 | Pautler | Dec 2016 | A1 |
20170219249 | Cohen | Aug 2017 | A1 |
Number | Date | Country |
---|---|---|
5362079 | Sep 1980 | AU |
129087 | Dec 1928 | CH |
102297614 | Dec 2011 | CN |
10 2009 013 280 | Sep 2010 | DE |
10 2012 011 926 | Dec 2013 | DE |
0 683 373 | Nov 1995 | EP |
499 085 | Jan 1920 | FR |
2472782 | Feb 2011 | GB |
2011084613 | Jul 2011 | WO |
Entry |
---|
“Plastic Gas-Liquid Heat Exchanger” Calorplast Waermetechnik, (retrieved online Sep. 27, 2016), www.calorplast-waermetechnik.de/en/products/plastic-heat-exchangers/plastic-gas-liquid-heat-exchanger/. |
“Plastic Immersion-Type Heat Exchanger” Calorplast Waermetechnik, (retrieved online Sep. 27, 2016), www.calorplast-waermetechnik.de/en/products/plastic-heat-exchangers/plastic-immersion-type-heat-exchanger/. |
“CALORPLAST Immersion Type Polymer Heat Exchanger” Calorplast Waermetechnik, (retrieved online Sep. 27, 2016), www.calorplast-waermetechnik.de/wp-content/uploads/immersion-type-heat-exchanger.pdf. |
“CALORPLAST—Immersion Style Heat Exchanger” Calorplast Waermetechnik, (retrieved online Sep. 27, 2016), www.calorplast-waermetechnik.de/wp-content/uploads/bad-waermetauscher-dokument.pdf. |
“CALORPLAST Gas / Liquid Polymer Heat Exchanger” Calorplast Waermetechnik, (retrieved online Sep. 27, 2016), www.calorplast-waermetechnik.de/wp-content/uploads/gas-liquid-heat-exchanger.pdf. |
“CALORPLAST—Gas-Liquid Heat Exchanger” Calorplast Waermetechnik, (retrieved online Sep. 27, 2016), www.calorplast-waermetechnik.de/wp-content/uploads/gas-wasser-waermetauscher-dokument.pdf. |
Number | Date | Country | |
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20190257587 A1 | Aug 2019 | US |