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EP 2 375 208 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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05.12.2012 Bulletin 2012/49 |
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Date of filing: 31.03.2010 |
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International Patent Classification (IPC):
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Improved heat exchanger
Verbesserter Wärmetauscher
Échangeur thermique amélioré
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Designated Contracting States: |
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AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL NO
PL PT RO SE SI SK SM TR |
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Date of publication of application: |
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12.10.2011 Bulletin 2011/41 |
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Proprietor: VALEO AUTOSYSTEMY Sp. Z. o.o. |
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32-050 Skawina (PL) |
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Inventors: |
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- Rod Janusz
32-050 Skawina (PL)
- Riviere, Sebastien
32-050 Skawina (PL)
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Representative: Metz, Gaëlle |
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Valeo Systemes Thermiques
BG THS - Service Propriété Industrielle
8, rue Louis Lormand
B.P. 517 - La Verrière 78321 Le Mesnil Saint-Denis 78321 Le Mesnil Saint-Denis (FR) |
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References cited: :
WO-A1-2010/084889 US-A1- 2001 022 220 US-B1- 6 394 176
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JP-A- 2001 153 571 US-A1- 2007 071 920
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
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[0001] The invention concerns heat exchangers, and particularly heat exchangers for the
automobile industry.
[0002] Typically, heat exchangers for automotive vehicles comprise a beam of tubes for circulating
a heat exchange fluid, between two boxes also called tanks or collectors. The challenge
in the design of heat exchangers is based on making the right trade-offs to ensure
the best perfonnance/packaging/endurance ratio.
[0003] This is particularly the case in the field of double heat exchangers, where a first
part of the radiator circulates a heat exchange fluid at a first, high temperature,
and a second part of the radiator circulates the heat exchange fluid (or another one)
at a second, low temperature.
[0004] This type of radiator has many packaging advantages, yet their design is challenging,
because they are subject to high stress in the region of separation between the high
temperature region and the low temperature region. Such a heat exchanger is known
e.g. from
US 6 394 176 B1, which discloses the preamble of claim 1.
[0005] However, as the designs of the heat exchangers have improved, issues relating to
local stress have spread to regular heat exchangers, having single or multiple passes,
as their dimensions where increasingly reduced to accommodate smaller packaging and
lower weight.
[0006] Many designs have been tried to deal with these problems:
- use of two neighboring baffles in both tanks, thereby generating dead tubes, and in
which tightness of the tanks is hard to ensure, and tank assembly process is complicated,
- use of tank profile modification, by brazing the collector and the header forming
the tank to provide a baffle, which complicates the tank assembly,
- use of a region separating baffle in both tanks, jointly with corks in the adjoining
tubes, in order to reduce the flow in these regions, which among other drawbacks greatly
complicates the radiator and tank assembly,
- use of a region separating baffle in both tanks, the baffle also covering several
tubes to provide dead tubes, and being complemented with tightness gaskets, which
an expansive solution with a complicated assembly,
- use of inserts for creating dead tubes, which greatly complicates the assembly,
etc.
[0007] It is obvious from the mere length of the above list that no satisfactory solution
has been found so far to provide a good local reinforcement of the tank/tube junction
while limiting pressure drop, cost increase and assembly complication.
[0008] The invention improves this situation.
[0009] To meet this goal, the invention proposes a heat exchanger for an automotive vehicle,
comprising a tank and a beam of tubes, received at their extremities in openings of
said tank where said tubes are linked to said tank through tube to tank junctions,
some of said tube to tank junctions suffering thermal stress characterized in that
at least some of the tubes involved in said tube to tank junctions suffering thermal
stress have a higher mechanical resistance than the other tubes.
[0010] According to the invention, the mechanical resistance of the heat exchanger is thus
enhanced in the areas suffering thermal stress by the tubes themselves. And the risk
of failure due to thermal stress is lowered without additional parts or complicated
designs. Pressure drop increase is also limited.
[0011] The tubes having higher mechanical resistance are extruded tubes and said other tubes
are folded tubes.
[0012] Other characteristics and advantages of the invention will appear from the following
description of drawings, given by way of example and in a non limitative way.
[0013] In the drawings:
- figure 1 shows a schematic view of a heat exchanger according to the invention,
- figure 2 shows a schematic cross-sectional view of a locally reinforced region of
the heat exchanger of figure 1,
- figure 3 shows a top view of the region of figure 2,
- figure 4 and 5 show two further embodiments of a heat exchanger according to the invention,
and
- figure 6 shows a schematic cross-sectional view of a locally reinforced region of
the heat exchanger of figures 4 and 5.
[0014] The drawings and the following description essentially comprise elements having a
defining character. Thus, they may serve to enhance the comprehension of the invention,
but also to help defining it, in some cases.
[0015] Figure 1 shows a schematic view of a heat exchanger 2 according to the invention.
Heat exchanger 2 is a single pass radiator for air cooling, which comprises tanks
4 and 5 and a beam 6 comprised of tubes 8.
[0016] As appears on figure 2, tanks 4 and 5 each comprise a cover 10 received in a collector
12. Tank 4 comprises a heat exchange fluid input 14, and tank 5 comprises a heat exchange
fluid output 16.
[0017] The beam 6 is made of tubes 8 which are generally long, and parallel between them.
Each tube 8 is received in a respective opening of tanks 4 and 6. Between tubes 8,
fins are arranged, which enhance the heat exchange surface, and which are not represented
here for simplicity.
[0018] The tubes 8 are generally made of aluminium are made by folding of a sheet unto itself,
thus forming two channels, as can be seen on figure 3. Beam 6 comprises specific tubes
in regions referenced by the number 18 located at the tank end.
[0019] In the regions 18, the stress level due to mechanical constraints and temperature
shocks is such that the regular folded tubes 8 may break. In order to overcome this
problem, the Applicant has found that specific tubes 19 which appear more readily
on figures 2 and 3 solves all the resistance issues.
[0020] The tubes 19 are made by an extrusion technique. This is particularly advantageous,
because it allows designing tubes which have a different cross-section, as well as
several ribs for strengthening, for instance two or more ribs, defining channels 40
for fluid circulation.
[0021] In the example shown on figure 2, tube 19 comprises 3 ribs 20, each having a thickness
of 0.35mm. In various embodiments, the number of ribs may be comprised between 2 and
12, and preferably is more than 7 and less than 12. In various embodiments, the thickness
of ribs 20 may be chosen between 0.15mm and 3mm, and more preferably between 0.2mm
and 1.5mm.
[0022] The tube 19 has a radial wall thickness T of 1.5mm and a transverse wall thickness
t of 0.35mm. In various embodiments, the radial wall thickness T may be chosen between
0.225mm and 5mm, and more preferably between 0.75mm and 3mm. In various embodiments,
the transverse wall thickness t may be chosen between 0.15mm and 3mm, and more preferably
between 0.2mm and 1.5mm.
[0023] In general the radial wall thickness T is chosen to be at least bigger than 1.5 times
that of the transverse wall thickness t. Preferably, the wall thickness ratio is chosen
to be at least bigger than 2, and less than10.
[0024] The tube 19 resistance in terms of thermal shock elongation and compression is defined
by its number of ribs, their thickness, the radial wall thickness T and the transverse
wall thickness t.
[0025] The adjustment of the tube parameters will vary according to the application which
is considered, and the specific heat dissipation sought. However, the wall thickness
ratio will remain in the above mentioned ranges.
[0026] The cross section of the radial walls of the extruded tubes may be circular as regards
the external side thereof and circular and/or elliptic as regards the internal side
thereof. In other words, the channels 40 extending laterally may have a circular and/or
elliptic side wall along the tube lateral sides.
[0027] In other embodiments, regions 18 may be further strengthened by providing more than
one tube 19, e.g. 2 to 4 tubes. Since the regions 18 are located at the extremity
of the tanks, the use of the tubes 19 does not complicate the assembly of the heat
exchanger.
[0028] Figures 4 and 5 show two other embodiments according to the invention. In those figures,
tanks 4 and 6 are similar to those of figure 1, but have additional elements.
[0029] In figure 4, tank 4 further comprises a baffle 22 and a further heat exchange fluid
input and/or output 24, the heat exchanger thus being a two-pass heat exchanger. In
figure 5, tank 5 also further comprises a baffle 26 and a further heat exchange fluid
input and/or output 28, the heat exchanger thus forming a double heat exchanger.
[0030] The beam of the heat exchangers of figures 4 and 5 show further local stress regions
referenced 30. Figure 6 shows a top view of a region 30, from the inside of tank.
In the example shown in figure 6, it is the region 30 of figure 4 or 5 which is represented,
and baffle 22 is shown accordingly.
[0031] In the region 30, the baffle 22 is arranged between two openings of tank 4. Since
the heat exchange fluid circulating in the heat exchanger will show significant difference
in temperature, the tubes in the region 30, i.e. the tubes received in the opening
neighboring baffle 22, are subject to a high level of stress, similarly to tubes 19
of regions 18.
[0032] In order to address these stress issues, region 30 comprises tubes 32 received in
the openings which surround baffle 32. While the use of a baffle does complicate the
assembly process, no other satisfactory solution exists to this day. Also, the use
of tubes 32 allows better stress resistance, and ensures tightness of the heat exchanger,
thus providing the best trade-off in terms of assembly and resistance.
[0033] The tubes 32 are similar to tubes 19, i.e they are built by an extrusion technique.
Furthermore, they have identical dimensions in the example shown here, and they may
be made with dimensions within the previously described ranges, including the number
of ribs.
[0034] Also, while the region 30 shown in figure 6 comprises only one tube 32 on each side
of baffle 22, it may comprise more than one tube 32 on each side, e.g. 2 to 4. Further,
there may be more tubes 32 on one side of baffle 22 than on the other side, e.g. 1
or 2 tubes 32 on one side, and 3 or 4 tubes 32 on the other sides.
1. Heat exchanger for an automotive vehicle, comprising a tank (4, 5) and a beam (6)
of tubes (8, 19), received at their extremities in openings of said tank (4, 5) where
said tubes (8, 19) are linked to said tank (4, 5) through tube to tank junctions,
some of said tube to tank junctions suffering thermal stress characterized in that at least some of the tubes (19, 32) involved in said tube to tank junctions suffering
thermal stress have a higher mechanical resistance than the other tubes (8), wherein
said tubes (19, 32) having higher mechanical resistance are extruded tubes (19, 32)
and said other tubes are folded tubes (8).
2. Heat exchanger according to claim 1, wherein said extruded tubes (19, 32) have a radial
wall thickness (T) to transverse wall thickness (t) ratio superior or equal to 1.5.
3. Heat exchanger according to claim 2, wherein said radial wall thickness (T) is chosen
within the range of 0.225mm to 5mm, and more preferably between 0.75mm and 3mm.
4. Heat exchanger according to claim 2, wherein said radial wall thickness (T) is equal
to 1.5mm.
5. Heat exchanger according to any of the claims 1 to 4, said transverse wall thickness
(T) being within the range of 0.15mm to 3mm, and more preferably between 0.2mm and
1.5mm.
6. Heat exchanger according to any of the claims 1 to 4, wherein said transverse wall
thickness (t) is equal to 0.35mm.
7. Heat exchanger according to any of the claims 1 to 6, wherein said extruded tubes
(19, 32) comprise a chosen number of ribs (20), each rib (20) having a thickness chosen
within the range of 0.15mm and 3mm, and more preferably between 0.2mm and 1.5mm, the
number of ribs (20) beings chosen between 2 and 12, and preferably between 7 and less
than 12.
8. Heat exchanger according to claim 7, wherein the number of ribs (20) is 3, and wherein
the thickness of each rib is 0.35mm.
9. Heat exchanger according to any of the claims 1 to 8, wherein said extruded tubes
(19, 32) are located at both ends of said beam (6).
10. Heat exchanger according to any of the claims 1 to 9, further comprising at least
one baffle (22, 26) located between two openings of a tank (4, 5), wherein the tubes
received in these two openings are extruded tubes (32).
1. Wärmetauscher für ein Kraftfahrzeug, umfassend einen Behälter (4, 5) und ein Bündel
(6) aus Rohren (8, 19), die an ihren Enden in Öffnungen im Behälter (4, 5) aufgenommen
sind, wobei die Rohre (8, 19) durch Rohr-Behälter-Verbindungsstellen mit dem Behälter
(4, 5) verbunden sind, wobei einige der Rohr-Behälter-Verbindungsstellen Wärmespannungen
ausgesetzt sind, dadurch gekennzeichnet, dass mindestens ein Teil der an den Wärmespannungen erfahrenden Rohr-Behälter-Verbindungsstellen
beteiligten Rohre (19, 32) einen höheren mechanischen Widerstand aufweisen als die
anderen Rohre (8), wobei die Rohre (19, 32) mit dem höheren mechanischen Widerstand
extrudierte Rohre (19, 32) sind und die anderen Rohre gefalzte Rohre (8) sind.
2. Wärmetauscher nach Anspruch 1, wobei die extrudierten Rohre (19, 32) ein Verhältnis
von radialer Wanddicke (T) zu Querwanddicke (t) von größer gleich 1,5 haben.
3. Wärmetauscher nach Anspruch 2, wobei die radiale Wanddicke (T) innerhalb des Bereichs
von 0,225 mm bis 5 mm und vorzugsweise zwischen 0,75 mm und 3 mm ausgewählt ist.
4. Wärmetauscher nach Anspruch 2, wobei die radiale Wanddicke (T) gleich 1,5 mm ist.
5. Wärmetauscher nach einem der Ansprüche 1 bis 4, wobei die Querwanddicke (t) innerhalb
des Bereichs von 0,15 mm bis 3 mm und vorzugsweise zwischen 0,2 mm und 1,5 mm liegt.
6. Wärmetauscher nach einem der Ansprüche 1 bis 4, wobei die Querwanddicke (t) gleich
0,35 mm ist.
7. Wärmetauscher nach einem der Ansprüche 1 bis 6, wobei die extrudierten Rohre (19,
32) eine gewählte Anzahl von Rippen (20) umfassen, die eine Dicke aufweisen, die innerhalb
des Bereichs von 0,15 mm und 3 mm und vorzugsweise zwischen 0,2 mm und 1,5 mm gewählt
ist, wobei die Anzahl von Rippen (20) zwischen 2 und 12 und vorzugsweise zwischen
7 und weniger als 12 gewählt ist.
8. Wärmetauscher nach Anspruch 7, wobei die Anzahl von Rippen (20) 3 ist und wobei die
Dicke jeder Rippe 0,35 mm ist.
9. Wärmetauscher nach einem der Ansprüche 1 bis 8, wobei die extrudierten Rohre (19,
32) an beiden Enden des Bündels (6) positioniert sind.
10. Wärmetauscher nach einem der Ansprüche 1 bis 9, der weiterhin mindestens eine Prallfläche
(22, 26) umfasst, die zwischen zwei Öffnungen eines Tanks (4, 5) positioniert ist,
wobei die in diesen beiden Öffnungen aufgenommenen Rohre extrudierte Rohre (32) sind.
1. Échangeur thermique pour un véhicule automobile, comprenant un réservoir (4, 5) et
un faisceau (6) de tubes (8, 19) reçus à leurs extrémités dans des ouvertures dudit
réservoir (4, 5), lesdits tubes (8, 19) étant reliés audit réservoir (4, 5) au moyen
de raccords tube-réservoir, certains desdits raccords tube-réservoir subissant des
contraintes thermiques, caractérisé en ce qu'au moins certains des tubes (19, 32) impliqués dans lesdits raccords tube-réservoir
subissant des contraintes thermiques ont une plus haute résistance mécanique que les
autres tubes (8), lesdits tubes (19, 32) ayant une plus haute résistance mécanique
étant des tubes extrudés (19, 32) et lesdits autres tubes étant des tubes pliés (8).
2. Échangeur thermique selon la revendication 1, dans lequel lesdits tubes extrudés (19,
32) ont un rapport d'épaisseur de paroi radiale (T) à épaisseur de paroi transversale
(t) supérieur ou égal à 1,5.
3. Échangeur thermique selon la revendication 2, dans lequel ladite épaisseur de paroi
radiale (T) est choisie dans la plage de 0,225mm à 5mm, et plus préférablement entre
0,75mm et 3mm.
4. Échangeur thermique selon la revendication 2, dans lequel ladite épaisseur de paroi
radiale (T) est égale à 1,5mm.
5. Échangeur thermique selon l'une quelconque des revendications 1 à 4, ladite épaisseur
de paroi transversale (t) étant dans la plage de 0,15mm à 3mm, et plus préférablement
entre 0,2mm et 1,5mm.
6. Échangeur thermique selon l'une quelconque des revendications 1 à 4, ladite épaisseur
de paroi transversale (t) étant égale à 0,35mm.
7. Échangeur thermique selon l'une quelconque des revendications 1 à 6, lesdits tubes
extrudés (19, 32) comprenant un nombre choisi de nervures (20), chaque nervure (20)
ayant une épaisseur choisie dans la plage de 0,15mm à 3mm, et plus préférablement
entre 0,2mm et 1,5mm, le nombre de nervures (20) étant choisi entre 2 et 12, et préférablement
entre 7 et moins de 12.
8. Échangeur thermique selon la revendication 7, dans lequel le nombre de nervures (20)
est 3, et dans lequel l'épaisseur de chaque nervure est 0,35mm.
9. Échangeur thermique selon l'une quelconque des revendications 1 à 8, dans lequel lesdits
tubes extrudés (19, 32) sont situés aux deux extrémités dudit faisceau (6).
10. Échangeur thermique selon l'une quelconque des revendications 1 à 9, comprenant en
outre au moins un déflecteur (22, 26) situé entre deux ouvertures d'un réservoir (4,
5), les tubes reçus dans ces deux ouvertures étant des tubes extrudés (32).
REFERENCES CITED IN THE DESCRIPTION
This list of references cited by the applicant is for the reader's convenience only.
It does not form part of the European patent document. Even though great care has
been taken in compiling the references, errors or omissions cannot be excluded and
the EPO disclaims all liability in this regard.
Patent documents cited in the description