This application is based on United Kingdom Patent Application No. 1620749.0 filed on Dec. 6, 2016, the disclosure of which is incorporated herein by reference.
The present disclosure relates to a heat exchanger. The present disclosure further relates to a method of assembling a heat exchanger.
Known heat exchangers, for example bar and plate type heat exchangers, include fluid conduits that are assembled from an array of plates, spacer bars and fins. Such heat exchangers have hot fluid and cold fluid in adjacent layers that are separated by the plates. The plates and bars are normally arranged such that a series of openings for the hot fluid are provided on one side of the heat exchanger and a series of openings for the cold fluid are provided on the opposite side of the heat exchanger. Separate tanks are fixed over each of the openings to provide an inlet and an outlet for each of the hot fluid and the cold fluid.
The assembly of known heat exchangers is complex, at least in part because the spacer bars are assembled in a complexity of discrete linear lengths. Furthermore, each spacer bar within the heat exchanger is sealed in position by a series of welds to prevent leaks within the heat exchanger. The number of discrete spacer bars and the number of welds required in known heat exchangers renders known heat exchangers to be complex to manufacture and therefore vulnerable to leaking.
It is currently only possible to manufacture heat exchangers in non-complex shapes, for example cuboid, which restricts where the inlets and outlets for connection to fluid supplies can be connected.
It is an object of the present disclosure to produce a new heat exchanger. It is an object of the present disclosure to produce a new method of assembling the heat exchanger.
According to an aspect of the present disclosure, a heat exchanger comprises a heat exchange core for a plate heat exchanger, the heat exchange core including a first plate, a second plate and a heat exchange layer, the heat exchange layer being positioned between the first plate and the second plate. The heat exchange layer includes a heat exchange fin that defines at least one passageway for a fluid. The heat exchange layer further includes at least one heat exchange spacer. The at least one heat exchange spacer has a unitary body including a first elongate portion and a second elongate portion. The first elongate portion and the second elongate portion define an angle therebetween. At least one opening is defined between the ends of one unitary body or the ends of two unitary bodies, or is defined by at least one joggle in the at least one unitary body that extends outward. The heat exchange layer further includes at least one tank with a tank opening such that the tank opening is in fluid communication with the at least one opening.
According to another aspect of the present disclosure, a method of assembling a heat exchanger comprises the steps of (a) providing a base plate. The method further comprises (b) mounting at least one heat exchange spacer on the base plate. The method further comprises (c) mounting a first heat exchange fin defining at least one first fluid passageway on the at least one heat exchange spacer of step (b). The method further comprises (d) mounting a first inner plate on the first heat exchange fin. The method further comprises (e) mounting at least one heat exchange spacer on the inner plate. The method further comprises (f) mounting a second heat exchange fin defining at least one second fluid passageway on the at least one heat exchange spacer of step (e). The method further comprises (g) mounting a second inner plate on the second heat exchange fin. The method further comprises (h) mounting at least one heat exchange spacer on the base plate. The method further comprises (i) mounting a further first heat exchange fin defining at least one first fluid passageway on the at least one heat exchange spacer of step (h). The method further comprises (j) mounting an upper plate on the further first heat exchange fin. The mounting of at least one heat exchange spacer includes the steps of: (k) providing at least one unitary body. The mounting further includes (l) shaping the unitary body to provide a first elongate portion and a second elongate portion, the first elongate portion and the second elongate portion defining an angle therebetween. The mounting further includes (m) finishing the shaped unitary body, wherein at least one opening is defined between ends of one unitary body or ends of two unitary bodies or is defined by at least one joggle in the at least one unitary body that extends outwardly. The mounting further includes (n) mounting at least one tank with a tank opening such that the tank opening is in fluid communication with the at least one opening.
The above and other objects, features and advantages of the present disclosure will become more apparent from the following detailed description made with reference to the accompanying drawings. In the drawings:
First and second embodiments of the present disclosure will now be described with particular reference to
Referring now to
With reference to
As shown in
With reference to
Assembly of the heat exchanger 10 will now be described with particular reference to
The heat exchange spacers 40 are formed from aluminium or an aluminium alloy, or any other material that is suitable for brazing, for example stainless steel, by rolling from a straight section, pressing from a flat plate or by extrusion. The heat exchange spacers 40 are bent into the shape shown in
The heat exchange core 16 is assembled as follows:
A first heat exchange layer is assembled by mounting a first heat exchange spacer 40a on an upper surface 15 of the lower plate 14 such that the lower surface 58 of the heat exchange spacer 40a is adjacent to the upper surface 15 of the lower plate 14. The first heat exchange spacer 40a is positioned on the lower plate 14 such that the first side wall 60 of the unitary body 44 at the first elongate portion 50 is adjacent to the edge of the lower plate 14 at the first end 34 of the heat exchanger 10 and the first side wall 60 of the unitary body 44 at the second elongate portion 52 is adjacent to the edge of the lower plate 14 at the second side 32 of the heat exchanger 10.
In a similar way, a further heat exchange spacer 40 is mounted on the upper surface 15 of the lower plate 14 such that the lower surface 58 of the heat exchanger spacer 40 is adjacent to the upper surface 15 of the lower plate 14. The further heat exchange spacer 40 is positioned on the lower plate 14 such that the first side wall 60 of the unitary body 44 at the first elongate portion 50 is adjacent to the edge of the lower plate 14 at the second end 36 of the heat exchanger 10 and the first side wall 60 of the unitary body 44 at the second elongate portion 52 is adjacent to the edge of the lower plate 14 at the first side 30 of the heat exchanger 10.
In this way a first opening 90 is defined between the first end 46 of the first heat exchange spacer 40a and the second end 48 of the further heat exchange spacer 40 and a second opening 92 is defined between the first end 46 of the further heat exchange spacer 40 and the second end 48 of the first heat exchange spacer 40a.
A first heat exchange fin 42a is mounted on the upper surfaces 15 of the lower plate 14 and between each of the first heat exchange spacer 40a and the further heat exchange spacer 40. A first heat exchange plate 38a is mounted on the first heat exchange fin 42a.
A second heat exchange layer is assembled by mounting a third heat exchange spacer 40b on the first heat exchange plate 38a such that the first side wall 60 of the unitary body 44 at the first elongate portion 50 is adjacent to the edge of the first heat exchange plate 38a at the second end 36 of the heat exchanger 10 and the first side wall 60 of the unitary body 44 at the second elongate portion 52 is adjacent to the edge of the first heat exchange plate 38a at the second side 32 of the heat exchanger 10.
In a similar way, a fourth heat exchange spacer 40c is positioned on the first heat exchange plate 38a such that the first side wall 60 of the unitary body 44 at the first elongate portion 50 is adjacent to the edge of the first heat exchange plate 38a at the first end 34 of the heat exchanger 10 and the first side wall 60 of the unitary body 44 at the second elongate portion 52 is adjacent to the edge of the first heat exchange plate 38a at the first side 30 of the heat exchanger 10.
In this way a third opening 94 is defined between the second end 48 of the third heat exchange spacer 40b and the first end 46 of the fourth heat exchange spacer 40c and a fourth opening (not shown) is defined between the second end 48 of the fourth heat exchange spacer 40c and the first end 46 of the third heat exchange spacer 40b.
A further heat exchange fin 42 is mounted on the heat exchange plate 38a and between each of the third heat exchange spacer 40b and the fourth heat exchange spacer 40c. A further heat exchange plate 38b is mounted on the further heat exchange fin 42. Additional first and second heat exchange layers are similarly assembled and mounted in alternating layers to form the heat exchange core 16.
In the final heat exchange layer, the heat exchange plate 38 is replaced by an upper plate 12. Each of the heat exchange spacers 40 are welded or brazed to the corresponding heat exchange plate 38 and heat exchange fin 42. The assembly of the heat exchanger 10 is less complex and the risk of leaks is reduced compared to traditional heat exchangers.
The first tank 18 is welded to the heat exchanger 10 such that the side wall 72 is mounted to the heat exchange core 16 at the second side 32 of the heat exchanger 10 and the end wall 74 is mounted to the heat exchange core 16 at the first end 34 of the heat exchanger 10. In this way, the opening 78 is in fluid communication with the openings 94 in each of the second heat exchange layers.
The second tank 20 is similarly welded to the heat exchanger 10 such that the side wall (not shown) is mounted to the heat exchange core 16 at the first side 30 of the heat exchanger 10 and the end wall 80 is mounted to the heat exchange core 16 at the first end 34 of the heat exchanger 10. In this way, the opening 84 is in fluid communication with the openings 90 in each of the first heat exchange layers.
The third tank 22 is similarly welded to the heat exchanger 10 such that the side wall (not shown) is mounted to the heat exchange core 16 at the first side 30 of the heat exchanger 10 and the end wall (not shown) is mounted to the heat exchange core 16 at the second end 36 of the heat exchanger 10. In this way, the opening (not shown) of the third tank 22 is in fluid communication with the fourth openings (not shown) in each of the second heat exchange layers.
The fourth tank 24 is similarly welded to the heat exchanger 10 such that the side wall 86 is mounted to the heat exchange core 16 at the second side 32 of the heat exchanger 10 and the end wall (not shown) is mounted to the heat exchange core 16 at the second end 36 of the heat exchanger 10. In this way, the opening (not shown) of the fourth tank 24 is in fluid communication with the openings 92 in each of the first heat exchange layers.
The first tank 18 is connected to a primary fluid source and the third tank 22 is connected to an outlet. The fourth tank 24 is connected to a secondary fluid source and the second tank 20 is connected to an outlet. In this way, the primary fluid is passed through the heat exchanger 10 from the openings 94 in the second heat exchange layers and the passageways 70 in the heat exchange fins 42 of the second heat exchange layers to the fourth openings (not shown) in the second heat exchange layers.
The secondary fluid is passed through the heat exchanger 10 in the opposite direction to the hot fluid from the openings 92 in the first heat exchange layers and the passageways 70 in the heat exchange fins 42 of the first heat exchange layers to the openings 90 in the first heat exchange layers.
The primary and secondary fluids can be any heat transfer fluid such as oil or water or refrigerant or air. The temperature of the primary fluid may be greater than the temperature of the secondary fluid. By passing the secondary fluid through the heat exchanger 10, the temperature of the primary fluid is reduced.
A plurality of heat exchange spacers 140a, 140b, 140c, 140d, 140e, 140f, 140g, 140h according to a second embodiment of the present disclosure are shown in
As shown in
Assembly of the heat exchange spacers 140 into first and second heat exchange layers for use in the heat exchanger 10 will now be described. Referring now to
In a similar way, a further heat exchange spacer 140b is mounted on the upper surface of the heat exchange plate 38 such that the lower surface 58 of the heat exchanger spacer 140b is adjacent to the upper surface of the heat exchange plate 38. The further heat exchange spacer 140b is positioned on the heat exchange plate 38 such that the first side wall 60 of the unitary body 144 at the first elongate portion 150b is adjacent to the edge of the heat exchange plate 38 at the first end 34 of the heat exchanger 10 and the first side wall 60 of the unitary body 144 at the second elongate portion 152b is adjacent to the edge of the heat exchange plate 38 at the first side 30 of the heat exchanger 10.
In this way an opening 194 is defined between the first end 146b of the heat exchange spacer 140b and the second end 148a of the heat exchange spacer 140a and a further opening 196 is defined between the first end 146a of the heat exchange spacer 140a and the second end 148b of the heat exchange spacer 140b. Heat exchange plates 38 including heat exchange spacers 140a, 140b as shown in
With reference to
In a similar way, a heat exchange spacer 140d may also be positioned on the heat exchange plate 38 such that the first side wall 60 of the unitary body 144 at the first elongate portion 150d is adjacent to the edge of the heat exchange plate 38 at the second end 36 of the heat exchanger 10 and the first side wall 60 of the unitary body 144 at the second elongate portion 152d is adjacent to the edge of the heat exchange plate 38 at the first side 30 of the heat exchanger 10.
In this way, an opening 190 is defined between the second end 148d of the heat exchange spacer 140d and the first end 146c of the heat exchange spacer 140c and a further opening 192 is defined between the second end 148c of the heat exchange spacer 140c and the first end 146d of the heat exchange spacer 140d. Heat exchange plates 38 including heat exchange spacers 140c, 140d as shown in
Referring now to
With reference to
With particular reference to
As shown in
The unitary body 244 includes a first arcuate portion or bend 254 between the first end 246 and the first side 247, a second arcuate portion or bend 256 between the first side 247 and the fourth side 253, a third arcuate portion or bend 257 between the fourth side 253 and the second side 249 and a fourth arcuate portion or bend 258 between the second side 249 and the second end 248.
The unitary body 244 includes a joggle 259 at the fourth side 253, the joggle 259 being positioned between the second arcuate portion 256 and the third arcuate portion 257. An opening 241 is defined at the third side 251 between the first end 246 and the second end 248 of the unitary body 244.
Each of the heat exchange spacers 240 has a generally rectangular cross section as shown in
As shown in
The unitary body 344 includes a first arcuate portion or bend 354 between the first end 346 and the third side 351, a second arcuate portion or bend 356 between the third side 351 and the first side 347, a third arcuate portion or bend 357 between the first side 347 and the fourth side 353 and a fourth arcuate portion or bend 358 between the fourth side 353 and the second end 348.
The unitary body 344 includes a joggle 359 at the first side 347, the joggle 359 being positioned between the second arcuate portion 356 and the third arcuate portion 357. An opening 341 is defined at the second side 349 between the first end 346 and the second end 348 of the unitary body 344.
Each of the heat exchange spacers 340 has a generally rectangular cross section as shown in
The heat exchanger 210 is assembled in a similar way to the heat exchanger 10 as described above with the exception that the heat exchange spacers 240 are mounted relative to the heat exchange fins 242 such that the first tab 295 is positioned within the opening 241 and the second tab 297 is positioned within the space provided by the joggle 259.
Similarly, the heat exchange spacers 340 are mounted relative to the heat exchange fins 342 such that the first tab 395 is positioned within the space provided by the joggle 359 and the second tab 397 is positioned within the opening 341.
Once the heat exchanger 210 has been assembled and the heat exchange spacers 240, 340 welded or brazed in position, the first tank 218 is welded to the heat exchanger 210 at the first end 234 such that the opening (tank opening) 278 of the first tank 218 is in fluid communication with the openings 241 of the heat exchange spacers 240 and the tabs 295 of the heat exchange fins 242.
The second tank 220 is similarly welded to the heat exchanger 210 at the first side 230 such that the opening (not shown) of the second tank 220 is in fluid communication with the tabs 395 of the heat exchange fins adjacent to the joggles 359 of the heat exchange spacers 340.
The third tank 222 is similarly welded to the heat exchanger 210 at the second end 236 such that the opening (not shown) of the third tank 222 is in fluid communication with the tabs 297 of the heat exchange fins adjacent to the joggles 259 of the heat exchange spacers 240.
The fourth tank 224 is similarly welded to the heat exchanger 210 at the second side 232 such that the opening 288 of the fourth tank 224 is in fluid communication with the openings 341 of the heat exchange spacers 340 and the tabs 397 of the heat exchange fins 342.
The first tank 218 is connected to a source of cold fluid and the third tank 222 is connected to an outlet. The fourth tank 224 is connected to a source of hot fluid and the second tank 220 is connected to an outlet.
Referring now to
The unitary body 444 is generally L-shaped and has a first leg 441 and a second leg 442. The first leg 441 has a first elongate portion 443 and a second elongate portion 445. The first elongate portion 443 extends in a direction that is generally parallel to the second elongate portion 445. The second leg 442 has a third elongate portion 447 and a fourth elongate portion 449. The third elongate portion 447 extends in a direction that is generally parallel to the fourth elongate portion 449. The third elongate portion 447 and the fourth elongate portion 449 are separated by a lower portion 451 of the unitary body that extends in a direction that is generally perpendicular to the third elongate portion 447 and the fourth elongate portion 449.
The unitary body 444 includes a first arcuate portion or bend 454 between the first end 446 and the first elongate portion 443, a second arcuate portion or bend 456 between the first elongate portion 443 and the third elongate portion 447, a third arcuate portion or bend 457 between the third elongate portion 447 and the lower portion 451, a fourth arcuate portion or bend 459 between the lower portion 451 and the fourth elongate portion 449, a fifth arcuate portion or bend 461 between the fourth elongate portion 449 and the second elongate portion 445 and a sixth arcuate portion or bend 463 between the second elongate portion 445 and the second end 448.
The unitary body 444 includes a joggle 465 at the lower portion 451, the joggle 465 being positioned between the third arcuate portion 457 and the fourth arcuate portion 459. An opening 471 is defined between the first end 446 and the second end 448 of the unitary body 444.
The heat exchange spacer 440 has a generally rectangular cross section as shown in
Referring now to
The unitary body 544 includes a first arcuate portion or bend 554 between the first end 546 and the second side 549, a second arcuate portion or bend 556 between the second side 549 and the third side 551, a third arcuate portion or bend 557 between the third side 551 and the first side 547, a fourth arcuate portion or bend 558 between the first side 547 and the fourth side 553 and a fifth arcuate portion or bend 560 between the fourth side 553 and the second end 548.
A portion 562 of the unitary body 544 that extends between the fifth arcuate portion 560 and the second end 548 extends inward relative to the generally rectangular unitary body 544.
The unitary body 544 includes a first joggle 559 at the first side 547, the joggle 559 being positioned between the third arcuate portion 557 and the fourth arcuate portion 558.
The unitary body 544 includes a second joggle 563 at the second side 549, the second joggle 563 being positioned between the first arcuate portion 554 and the second arcuate portion 556.
The heat exchange spacer 540 has a generally rectangular cross section as shown in
Referring now to
The unitary body 644 includes a first arcuate portion or bend 654 between the first end 646 and the second side 649, a second arcuate portion or bend 656 between the second side 649 and the third side 651, a third arcuate portion or bend 657 between the third side 651 and the first side 547, a fourth arcuate portion or bend 658 between the first side 647 and the fourth side 653 and a fifth arcuate portion or bend 660 between the fourth side 653 and the second end 648.
A portion 662 of the unitary body 644 that extends between the fifth arcuate portion 660 and the second end 648 extends inward relative to the generally rectangular unitary body 644.
The unitary body 644 includes a first joggle 659 at the first side 647, the joggle 659 being positioned between the third arcuate portion 657 and the fourth arcuate portion 658.
The unitary body 644 includes a second joggle 663 at the fourth side 653, the second joggle 663 being positioned between the fourth arcuate portion 658 and the fifth arcuate portion 660.
The unitary body 644 includes a third joggle 670 at the fourth side 653, the third joggle 670 being positioned between the first end 646 and the first arcuate portion 654.
The unitary body 644 includes a fourth joggle 672 at the second side 649, the fourth joggle 672 being positioned between the first arcuate portion 654 and the second arcuate portion 656.
The unitary body 644 includes a fifth joggle 674 at the third side 674, the fifth joggle 674 being positioned between the second arcuate portion 656 and the third arcuate portion 657.
The heat exchange spacer 640 has a generally rectangular cross section as shown in
In any of the above embodiments of the present disclosure, the heat exchange spacer 40, 140, 240, 340, 440, 540, 640 may have a generally pentagonal cross section, for example as shown in
As shown in
As shown in
As shown in
Alternatively, as shown in
As shown in
Alternatively, as shown in
As described above the heat exchanger 10 and the heat exchanger 210 are regular polygon prisms having a generally rectangular cross section. In alternative embodiments of the disclosure, the heat exchanger may be a regular polygon prism having a cross section that is generally pentagonal or hexagonal or ovoid. In some embodiments, the heat exchanger may be generally toroidal, for example as shown in
Referring now to
In alternative embodiments the heat exchanger may be a more complex or non-traditional (non-cuboid) shape as shown in
Referring now to
Referring now to
It will be understood that the heat exchangers 1510, 1610, 1710 are assembled and used as described in relation to the heat exchangers 10, 210.
The heat exchanger spacers and the heat exchange cores for heat exchangers as described herein enable the manufacture of heat exchangers for applications where a traditional generally cuboid structure may not be appropriate. A further advantage provided by the present disclosure is the ability to reduce the amount of material used in the manufacture of heat exchangers and/or to reduce the weight of heat exchangers.
According to a first aspect of the present disclosure there is provided a heat exchanger comprising:
a heat exchange core for a plate heat exchanger, the heat exchange core including a first plate, a second plate and a heat exchange layer, the heat exchange layer being positioned between the first plate and the second plate, wherein the heat exchange layer includes:
a heat exchange fin that defines at least one passageway for a fluid,
at least one heat exchange spacer, the or each heat exchange spacer having a unitary body including a first elongate portion and a second elongate portion, the first elongate portion and the second elongate portion defining an angle therebetween, wherein at least one opening is defined between the ends of one body or the ends of two bodies, or is defined by at least one joggle in the or at least one body that extends outward, and
at least one tank with an opening such that the opening of the or each tank is in fluid communication with the or a said heat exchange spacer opening.
The present disclosure could be particularly advantageous as it reduces the complexity of assembling heat exchangers and also reduces the risk of leaks in heat exchangers.
The body may further include at least one arcuate portion between the first elongate portion and the second elongate portion.
The body may take any suitable form and may have a polygonal cross section, such as a generally rectangular cross section. Alternatively, the body may have a generally pentagonal cross section, or a generally hexagonal cross section, or a generally ovoid cross section, and may have flat, parallel upper and lower surfaces. In that way, the cross section of the body will act to urge the fin away from the upper and lower surfaces, preventing the fin from overlapping the upper or lower surface of the body, which could create a leak path.
The body, in overall shape, may take any suitable form, and in particular embodiments may be generally L-shaped, or generally C-shaped, or generally rectangular, or cylindrical.
A further advantage of the present disclosure is that it facilitates the manufacture of heat exchangers in more complex or non-traditional (non-cuboid) shapes, or any regular or irregular polygon prism, for example cylindrical or L-shaped.
Preferably only one spacer is used in each layer.
The inclusion of an opening facilitates the fluid connection of a fluid inlet or outlet to the heat exchanger and facilitates assembly of a heat exchanger.
An opening between the ends of one body or the ends of two bodies may be on a portion of the body that is opposite to the or at least one joggle.
A generally rectangular body may have a first pair of opposing sides and a second pair of opposing sides, each of the sides of the first pair of opposing sides having a first length and each of the sides of the second pair of opposing sides having a second length, the first length being greater than the second length.
The or at least one joggle may be included on a first side of the first pair of opposing sides and the opening between spacer ends may be included on a second side of the first pair of opposing sides. Alternatively, the or at least one joggle may be included on a first side of the second pair of opposing sides and the opening between spacer ends may be included on a second side of the second pair of opposing sides.
The at least one joggle may be a first joggle and the body may include a second joggle that extends outward. The first joggle may be included on a first side of the first pair of opposing sides and the second joggle may be included on a second side of the first pair of opposing sides. Alternatively, the first joggle may be included on a first side of the second pair of opposing sides and the second joggle may be included on a second side of the second pair of opposing sides.
The body may include more than two joggles that extend outward. At least one joggle may be included on each side of the rectangular body. A plurality of joggles may be included on one or more sides of the rectangular body.
The body may further include a portion that extends inward.
The body may have a height and a length and the height of the body may be substantially constant along the length of the body. This facilitates assembly of a heat exchanger and minimises the risk of leaks within a heat exchanger.
The heat exchange layer may be a first heat exchange layer, wherein the heat exchange fin is a first heat exchange fin that defines a first at least one passageway for a first fluid and the inner plate is a first inner plate. The heat exchange core may further include a second heat exchange layer, the second heat exchange layer including a second heat exchange fin that defines at least one passageway for a second fluid, at least one heat exchange spacer in accordance with the first aspect of the disclosure and a second inner plate.
The at least one passageway that is defined by the first heat exchange fin of the first heat exchange layer may extend in a first orientation and the at least one passageway that is defined by the second heat exchange fin of the second heat exchange layer may extend in a second orientation.
The first orientation may be substantially parallel to the second orientation. Alternatively, the first orientation may be substantially perpendicular to the second orientation, or otherwise non-parallel to the second orientation.
The heat exchange core may include a plurality of first heat exchange layers and a plurality of second heat exchange layers. The plurality of first heat exchange layers and the plurality of second heat exchange layers may be arranged in an alternating stack between the first plate and the second plate.
The heat exchange core may further include a first inlet, a first outlet, a second inlet and a second outlet. The first inlet and the first outlet may be in fluid communication with the at least one passageway that is defined by the first heat exchange fin of the first heat exchange layer. The second inlet and the second outlet may be in fluid communication with the at least one passageway that is defined by the second heat exchange fin of the second heat exchange layer.
The or each heat exchange fin may have a fin height and the or each heat exchange spacer may have a spacer height, wherein the fin height and the spacer height may be substantially equal.
According to another aspect of the present disclosure there is provided a method of assembling a heat exchanger including the steps:
(a) providing a base plate;
(b) mounting at least one heat exchange spacer on the base plate;
(c) mounting a first heat exchange fin defining at least one first fluid passageway on the at least one heat exchange spacer of step (b);
(d) mounting a first inner plate on the first heat exchange fin;
(e) mounting at least one heat exchange spacer on the inner plate;
(f) mounting a second heat exchange fin defining at least one second fluid passageway on the at least one heat exchange spacer of step (e);
(g) mounting a second inner plate on the second heat exchange fin;
(h) mounting at least one heat exchange spacer on the base plate;
(i) mounting a further first heat exchange fin defining at least one first fluid passageway on the at least one heat exchange spacer of step (h);
(j) mounting an upper plate on the further first heat exchange fin; and
wherein the mounting of at least one heat exchange spacer includes the steps of:
(k) providing a unitary body;
(l) shaping the unitary body to provide a first elongate portion and a second elongate portion, the first elongate portion and the second elongate portion defining an angle therebetween; and
(m) finishing the shaped unitary body,
wherein at least one opening is defined between the ends of one body or the ends of two bodies or is defined by at least one joggle in the or at least one body that extends outwardly, and
(n) mounting at least one tank with an opening such that the opening of the tank is in fluid communication with the or a said heat exchange spacer opening.
In step (m) an outer surface of the shaped unitary body may be smoothed, or planished, or otherwise finished for example to ensure that the height of the unitary body is constant over its length. This facilitates assembly of a heat exchanger and minimises the risk of leaks within a heat exchanger.
In step (l) the unitary body may be shaped to include at least one arcuate portion between the first elongate portion and the second elongate portion.
In step (k) the unitary body may be provided to have a polygonal cross section, such as a generally rectangular cross section. Alternatively, the unitary body may be provided to have a generally pentagonal cross section, or a generally hexagonal cross section, or a generally ovoid cross section, and may have flat, parallel upper and lower surfaces, preventing the fin from overlapping the upper or lower surface, which could create a leak path.
In step (l) the unitary body may be shaped to take any suitable form, for example generally L-shaped, or generally C-shaped, or generally rectangular, or cylindrical. This facilitates the manufacture of heat exchangers in more complex or non-traditional (non-cuboid) shapes, or any regular or irregular polygon prism, for example cylindrical or L-shaped.
In step (l) the unitary body may be shaped to include at least one joggle that extends outward. The inclusion of one or more joggles provides a site for a fluid inlet or outlet and facilitates assembly of a heat exchanger.
In step (l) the unitary body may be shaped to define an opening between the ends of the body.
In step (l) the unitary body may be shaped to include a portion that extends inward.
The step of mounting may include brazing, for example, brazing the or each first heat exchange spacer to the base plate.
Before step (j), steps (d) to (i) may be repeated at least once.
After step (j), a first inlet and a first outlet may be connected in fluid communication with the at least one first fluid passageway.
After step (j), a second inlet and a second outlet may be connected in fluid communication with the at least one second fluid passageway.
It should be appreciated that while the processes of the embodiments of the present disclosure have been described herein as including a specific sequence of steps, further alternative embodiments including various other sequences of these steps and/or additional steps not disclosed herein are intended to be within the steps of the present disclosure.
While the present disclosure has been described with reference to preferred embodiments thereof, it is to be understood that the disclosure is not limited to the preferred embodiments and constructions. The present disclosure is intended to cover various modification and equivalent arrangements. In addition, while the various combinations and configurations, which are preferred, other combinations and configurations, including more, less or only a single element, are also within the spirit and scope of the present disclosure.
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Number | Date | Country | |
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20180156547 A1 | Jun 2018 | US |