TUBE OF A HEAT EXCHANGER AND HEAT EXCHANGER COMPRISING SUCH A TUBE
20210270532 · 2021-09-02
Assignee
Inventors
Cpc classification
F28F2225/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/05383
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/0391
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2275/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28D1/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/053
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to a tube (6) of a heat exchanger, the tube (6) extending mainly along a longitudinal direction and the tube (6) extending between two opposite lateral edges (21, 22) of the tube (6). The tube (6) comprises a plurality of canals (15a, 15b) that are parallel to the longitudinal direction. The tube (6) comprises a single first rank canal (15a) that is delimited by at least a first lateral edge (21) of the tube (6) and two first rank side walls (16a). The tube (6) comprises at least a second rank canal (15b) that is delimited by at least two second rank side walls (16b). A thickness (19) of both first rank side walls (16a) of the first rank canal (15a) is bigger than a thickness (19) of any second rank side wall (16b) of a second rank canal (15b) of the tube (6) and a thickness (19) of the first lateral edge (21) of the tube (6) is bigger than a thickness (19) of any second rank side wall (16b) of a second rank canal (15b). The tube (6) is obtained by folding a single sheet (23).
Claims
1. A tube of a heat exchanger, the tube (6) extending mainly along a longitudinal direction and between two opposite lateral edges of the tube, the tube comprising: a plurality of canals that are parallel to the longitudinal direction; a single first rank canal that is delimited by at least a first lateral edge of the tube and two first rank side walls; at least a second rank canal that is delimited by at least two second rank side walls, wherein a thickness of both first rank side walls of the first rank canal is bigger than a thickness of any second rank side wall of a second rank canal of the tube, and wherein a thickness of the first lateral edge of the tube is bigger than a thickness of any second rank side wall of a second rank canal.
2. The tube according to claim 1, wherein the thickness of any first rank side wall of the first rank canal is at least twice bigger than the thickness of any second rank side wall of a second rank canal of the tube and wherein the thickness of the first lateral edge of the tube is at least twice bigger than the thickness of any second rank side wall of a second rank canal.
3. The tube according to claim 1, wherein each first rank side wall of the first rank canal comprises at least two folds of a same folded sheet.
4. The tube according to claim 3, wherein a fold is delimited by a longitudinal fringe of the folded sheet.
5. The tube according to claim 3, wherein a fold of one of the first rank side wall is an internal fold of the first rank canal and a fold of the opposite first rank side wall is an external fold of the first rank canal.
6. The tube according to claim 3, wherein the tube is made of the same folded sheet, the folded sheet comprising at least two plies joined together, each ply comprising a side wall of each canal and at least a groove separating two contiguous canals.
7. The tube according to claim 6, wherein the plies are symmetrical with respect to a lateral plan of the tube.
8. The tube according to claim 4, wherein the longitudinal fringe of the external fold and the longitudinal fringe of the internal fold are oriented towards the groove located between the first rank canal and a second rank canal.
9. The tube according to claim 6, wherein the side wall of a first ply faces a side wall of a second ply and wherein the groove of a first ply joins the groove of a second ply.
10. A heat exchanger comprising: at least one tube comprising: a plurality of canals that are parallel to the longitudinal direction; a single first rank canal that is delimited by at least a first lateral edge of the tube and two first rank side walls; at least a second rank canal that is delimited by at least two second rank side walls, wherein a thickness of both first rank side walls of the first rank canal is bigger than a thickness of any second rank side wall of a second rank canal of the tube, and wherein a thickness of the first lateral edge of the tube is bigger than a thickness of any second rank side wall of a second rank canal.
11. A method for manufacturing a tube according to any claim 3, wherein the tube is realized by bending a sheet.
12. The method according to claim 11, further comprising: making a plurality of grooves within the bending sheet along internal delimitating lines that are parallel to a first longitudinal fringe of the sheet; bending a first external part comprising the first longitudinal fringe of the sheet at 180° over a first internal part of the sheet to make an internal fold of a first rank canal; bending a first portion of the sheet at 180° over a median longitudinal line of the sheet; bending a second external part comprising a second longitudinal fringe of the sheet at 180° over the first portion of the sheet to make an external fold of the first rank canal; and brazing the folded sheet to realize the tube.
Description
[0049] Other specificities, details and characteristics of the present invention will be highlighted thanks to the following description, given for general guidance, in relation with the following figures:
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[0065] In the Figures, a heat exchanger 1 according to the invention is shown in a coordinate system Oxyz in which Ox axis is a longitudinal axis, Oy axis is a lateral axis and Oz axis is a transversal axis, the Oxz plan is a longitudinal plan, the Oxy plan is a lateral plan and the Oyz plan is a transversal plan. In the following description, a direction is qualified in accordance with the above mentioned axis and a surface is qualified in accordance with the above mentioned plan.
[0066] In
[0067] The tubes 6 extend mainly along a longitudinal direction A2 that is parallel to the longitudinal axis Ox. The tubes 6 are also laterally extended along a lateral direction A3 that is parallel to the Oy axis. The lateral direction A3 is also perpendicular to a longitudinal plan P1 of the heat exchanger 1 containing the header boxes 3 and the tubes 6. Therefore, the tubes 6 are disposed in respective plans that are parallel to a lateral plan P2, the lateral plan P2 being perpendicular to the longitudinal plan P1 of the heat exchanger 1. In other words, the tubes 6 altogether form the core 2 that is globally arranged as a parallelepiped.
[0068] The core 2 has two faces, usually the large faces of the parallelepiped, that are parallel to the longitudinal plan P1 and through which the air flow 5 is passing, a first face being an inlet face 11 of the core 2 and a second face being an outlet face 12 of the core 2. The air flow 5 is entering the core 2 through the inlet face 11 and the air flow 5 is exiting the core 2 through the outlet face 12, the air flow 5 flowing along the lateral direction. The inlet face 11 of the core 2 is an upstream face of the core 2 in comparison to the outlet face 12 of the core 2 that is a downstream face of the core 2 considering the sense of flowing of the air flow 5 through the core 2. Each tube 6 having a first longitudinal extremity 7 and a second longitudinal extremity 8, the tubes 6 have all their first longitudinal extremities 7 in fluidic communication with a first header box 3, for example a top header box, and have all their second longitudinal extremities 8 in fluidic communication with a second header box 3, for example the bottom header box. The longitudinal first extremity 7 and the second longitudinal extremity 8 form the longitudinal edges of the tube 6.
[0069] The tube 6 is delimited by the two parallel longitudinal edges and two parallel lateral edges 21, 22 that are perpendicular to the longitudinal edges. The lateral edges 21, 22 are longer than the longitudinal edges.
[0070] Inside the core 2, the tubes 6 are arranged so that a first lateral edge 21 of each tube 6 is located in the inlet face 11 and a second lateral edge 22 of the considered tube 6 is located in the outlet face 12. Therefore, the lateral edges 21, 22 of the tubes 6 delimit partially the core 2 and in particular the inlet face 11 and the outlet face 12. The first lateral edge 21 of a tube 6 is an upstream end of the tube 6 in comparison to the second lateral edge 22 of the tube 6 that is a downstream end of the tube 6 considering the flowing sense of the air flow 5 through the core 2.
[0071] The heat exchanger 1 is equipped with a refrigerant fluid inlet 9 through which the refrigerant fluid 4 is admitted inside the heat exchanger 1. The refrigerant fluid inlet 9 equips the first header box 3. The heat exchanger 1 is also equipped with a refrigerant fluid outlet 10 through which the refrigerant fluid 4 is evacuated from the heat exchanger 1. The refrigerant fluid outlet 10 equips the second header box 3. The refrigerant fluid inlet 9 and the refrigerant fluid outlet 10 are located on the same longitudinal side of the heat exchanger 1. Therefore, in this embodiment of the invention, the refrigerant fluid 4 circulates along a path that is designed as a I form path. Other localization of the refrigerant fluid inlet 9 and the refrigerant fluid outlet 10 are possible, so that the heat exchanger 1 of the invention may provide a U form path or a W form path or other combinations of path for the refrigerant fluid 4.
[0072] The core 2 comprises these tubes 6 and corrugated fins 14 that are separating two contiguous tubes 6, the corrugated fins 14 enhancing the heat exchange between the refrigerant fluid 4 and the air flow 5.
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[0074] Among the canals 15a, 15b, a first rank canal 15a is partly delimited by the first lateral edge 21, i.e the upstream edge of the core 2. In other words, the first rank canal 15a is the one that is firstly in contact with the air flow 5 when the air flow 5 is entering the core 2 of the heat exchanger 1.
[0075] A tube 6 comprises then a single first rank canal 15a and at least one second rank canal 15b, for example two second rank canals 15b as in the figured embodiment of the invention. In other words, and as regard the circulation of the air flow 5, the first rank canal 15a is the front canal and the second rank canals 15b are behind the first rank canal 15a.
[0076] Each canal 15a, 15b is also delimited by two side walls 16a, 16b that are located in a respective plan parallel to the lateral plan P2. Side walls 16a, 16b of a considered canal 15a, 15b are facing each other. More particularly, the first rank canal 15a is delimited by two first rank side walls 16a and each second rank canal 15b is delimited by two second rank side walls 16b.
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[0078] The present invention proposes that a thickness 19 of all first rank side walls 16a of the first rank canal 15a is bigger than a thickness 19 of any second rank side wall 16b of a second rank canal 15b of the tube 6. The present invention proposes also that a thickness 19 of the first lateral edge 21 of the tube 6 is bigger than a thickness 19 of any second rank side wall 16b of a second rank canal 15b. The thickness 19 of a side wall 16a, 16b is measured between the inner surface 17 and the outer surface 18 of the considered side wall 16a, 16b along a direction perpendicular to both surfaces 17, 18.
[0079] In the illustrated embodiment, the thickness 19 of any first rank side wall 16a of the first rank canal 15a is twice bigger than the thickness 19 of any second rank side wall 16b of a second rank canal 15b of the tube 6 and the thickness 19 of the first lateral edge 21 of the tube 6 is twice bigger than the thickness 19 of any second rank side wall 16b of a second rank canal 15b.
[0080] Thanks to that technical characteristic of the tube 6 according to the invention, any potential corrosion of the first rank side wall 16a of the first rank canal 15a is less likely to induce leaks of refrigerant fluid 4, which means that the tube 6 and the heat exchanger 1 comprising such a tube 6 is more robust than the heat exchanger of the prior art.
[0081] Such a tube 6 can be obtained thanks to different methods.
[0082] For example, the tube 6 can be obtained by extrusion of an aluminum fused cast that passes through a grid comprising a pattern that is identical to the cross section of the tube featured in
[0083] For example, the tube 6 can be obtained by joining two plates together along a joint plan that is identical to the lateral plan P2 featured in
[0084] For example, the tube can be obtained by folding a single sheet 23 of a metallic material, aluminum for instance, in order to manufacture a tube 6 as featured in
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[0092] A fifth step of the method for manufacturing the tube 6 from the sheet 23 is consisting in brazing the folded sheet 23 illustrated in
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