HEAT EXCHANGER
20170284743 · 2017-10-05
Assignee
Inventors
- Sébastien Devedeux (Versailles, FR)
- Laurent Odillard (Le Luart, FR)
- Benjamin Ferlay (Cernay La Ville, FR)
Cpc classification
F28F2275/122
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/0082
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/0251
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/05375
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28D1/053
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present invention relates to a heat exchanger (1) comprising: a heat exchange core bundle (3) in which a first heat-transfer fluid circulates, at least one inlet tank (5a) or outlet tank (5b) for a second heat-transfer fluid, at least one collector (7) arranged on the periphery of the heat exchange core bundle (3) and comprising a lateral wall (75) of which at least two portions (77) are folded over so as to fix the tank (5a, 5b) by crimping against the heat exchange core bundle (3),
the lateral wall (75) following the contour of at least one corner of the heat exchange core bundle (7), said lateral wall (75) comprising, on each side of the corner, a folded-over portion (77) and comprising in the region of said corner a non-folded-over portion (79), the folded-over portions (77) being connected continuously to the non-folded over portion (79).
Claims
1. A heat exchanger comprising: a heat exchange core bundle in which a first heat-transfer fluid circulates; at least one inlet tank or outlet tank for a second heat-transfer fluid, said inlet/outlet tank comprising a bearing zone and at least one shoulder oriented toward the outside of said inlet/outlet tank in the region of the bearing zone; and at least one collector arranged on the periphery of the heat exchange core bundle and comprising: a base on which the bearing zone of the inlet/outlet tank is intended to rest, a lateral wall of which at least two portions are folded over onto the shoulder so as to fix the inlet/outlet tank by crimping against the heat exchange core bundle, wherein the lateral wall follows the contour of at least one corner of the heat exchange core bundle, said lateral wall comprising, on each side of the corner, a folded-over portion and comprising in the region of said corner a non-folded-over portion, the folded-over portions being connected continuously to the non-folded over portion.
2. The heat exchanger as claimed in the preceding claim 1, wherein the folded-over portions are connected continuously to the non-folded-over portion by a portion under torsion.
3. The heat exchanger as claimed in the preceding claim 2, wherein the thinning of the thickness of the lateral wall in the region of the portions under torsion is less than or equal to 20%.
4. The heat exchanger as claimed in claim lone of the preceding claims, wherein the tank is crimped by the collector over at least one quarter of its length between two corners of the heat exchange core bundle.
5. The heat exchanger as claimed in claim 1, wherein the lateral wall is continuous over the entire periphery of the heat exchanger.
6. The heat exchanger as claimed in claim 1, wherein a seal is arranged between the bearing zone of the tank and the base of the fixing device.
7. The heat exchanger as claimed in claim 6, wherein the seal is placed in a groove within the base of the fixing device.
8. The heat exchanger as claimed in claim 5, wherein the tank comprises, in the region of at least one corner of the heat exchange core bundle, a buffer that presses against the edge face of the non-folded-over portion and a leg perpendicular to said buffer, said leg compressing the seal.
9. The heat exchanger as claimed in claim 1, wherein the collector is formed as one with the heat exchange core bundle.
10. The heat exchanger as claimed in claim 1, wherein the collector is an element fixed on the periphery of the heat exchange core bundle.
Description
[0022] Other features and advantages of the invention will become more clearly apparent from reading the following description, given by way of nonlimiting illustrative example, and from studying the attached drawings among which:
[0023]
[0024]
[0025]
[0026]
[0027]
[0028] In the various figures, the elements that are identical bear the same reference numerals.
[0029] As illustrated by
[0033] The heat exchange core bundle 3 generally adopts a parallelepipedal shape, a first collector 7 following the periphery of one face of said heat exchange core bundle 3 and a second collector 7 following the periphery of the opposite face.
[0034] The collector 7 may be formed as one with the heat exchange core bundle 3 or alternatively may be an element fixed to the periphery of the heat exchange core bundle 3, for example by brazing.
[0035] As shown in greater detail in
[0036] The collector 7 also comprises a lateral wall 75 which is folded over onto the shoulder 51 in order to fix the tank 5a, 5b by crimping. In order for the fixing to be effective, the heat exchanger 1 comprises at least two portions 77 that are folded over onto the shoulder 51, preferably on opposite sides of one and the same face.
[0037] In the example shown in
[0038] In order to seal the fixing of the tanks 5a, 5b against the heat exchange core bundle 3, a seal 9 may be placed between the bearing zone 57 of the tank 5a, 5b and the base 71 of the collector 7. When the tank 5a, 5b is fixed, the seal 9 is compressed between the bearing zone 57 and the base 71, as is illustrated in
[0039] The lateral wall 75 of the collector 7 continuously follows the contour of a corner of the heat exchange core bundle 7. This following of a corner by the lateral wall 75 is illustrated in greater detail in
[0040] The fact that the lateral wall follows the contour of the corners makes it possible to limit the risks of breakage in the region of the folded-over portion 77. Specifically, this configuration prevents a concentration of stresses, for example caused by vibrations, and distributes the stresses over the entire length of the lateral wall 75.
[0041] As
[0042] In order to maintain sufficient ability to withstand stress, the thinning of the thickness of the lateral wall 75 of the collector 7 in the region of the portions 78 under torsion is preferably less than or equal to 20%.
[0043] In order to control this thinning, the configuration and geometry of the lateral wall 75 in the region of the corners of the heat exchange core bundle 3 may be defined according to various parameters and using the following formula:
L=P×(a1×H=b1)(a2×H+b2)
[0044] L corresponds to the length between the non-folded-over wall 79 and the folded-over portion 77 along the axis of folding of the portion 77.
[0045] P corresponds to the depth of crimping, namely to the distance between the inside of the wall 79 and the end of the folded-over portion 77, in the direction of crimping of the folded-over portion 77.
[0046] H corresponds to the height of the non-folded over portion 79, namely to the distance between the plane formed by the shoulder 51 and the top of the non-folded-over portion 79.
[0047] The values a1,a2, b1 and b2 are constants obtained by trial and error as a function of various thinnings of the thickness of the collector 7. These constants are given in the table below:
TABLE-US-00001 Thinning % a1 b1 a2 b2 3.3 −0.36 3.89 4.02 −4.40 6.7 −0.25 2.68 2.77 −3.03 10.0 −0.20 2.13 2.20 −2.41 13.3 −0.17 1.79 1.85 −2.03 16.7 −0.14 1.55 1.61 −1.76 20.0 −0.13 1.37 1.42 −1.56 23.3 −0.11 1.23 1.27 −1.39 26.7 −0.10 1.11 1.15 −1.26 30.0 −0.09 1.01 1.04 −1.14 33.3 −0.08 0.92 0.95 −1.04
[0048] In order for the fixing of the tank 5a, 5b to be as effective and robust as possible, this tank is crimped by the collector 7 over at least one quarter of its length between two corners of the heat exchange core bundle 3.
[0049] In the embodiment shown in
[0050] As illustrated in
[0051] Thus it may be clearly seen that the heat exchanger 1 according to the present invention, on account of the specific configuration of the collector 7, notably at the corners, allows better resistance to stress and therefore better durability of the fixing between the heat exchange core bundle 3 and the tank 5a, 5b.