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EP 3 757 502 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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20.11.2024 Bulletin 2024/47 |
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Date of filing: 26.06.2019 |
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International Patent Classification (IPC):
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Cooperative Patent Classification (CPC): |
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F28F 9/0278 |
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HEAT EXCHANGER
WÄRMETAUSCHER
ÉCHANGEUR DE CHALEUR
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Designated Contracting States: |
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AL 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 RS SE SI SK SM TR |
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Date of publication of application: |
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30.12.2020 Bulletin 2020/53 |
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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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- BELZOWSKI, Michal
32 050 SKAWINA (PL)
- POKRYWINSKI, Karol
32 050 SKAWINA (PL)
- SZOSTEK, Dawid
32 050 SKAWINA (PL)
- BENOUALI, Jugurtha
78322 LE MESNIL SAINT-DENIS CEDEX (FR)
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Representative: Valeo Systèmes Thermiques |
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Service Propriété Intellectuelle
ZA l'Agiot, 8 rue Louis Lormand
CS 80517
La Verrière 78322 Le Mesnil-Saint-Denis Cedex 78322 Le Mesnil-Saint-Denis Cedex (FR) |
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References cited: :
EP-A2- 1 300 646 DE-A1- 3 511 952
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WO-A2-2008/048505 JP-A- 2003 075 024
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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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FIELD OF THE INVENTION
[0001] The invention relates to heat exchangers. In particular, it relates to heat exchangers
with heat exchange tubes and connection blocks. Specifically, the present invention
relates to heat exchangers as defined in the preamble of claim 1, and as illustrated
in
JP 2003 075 024 A.
BACKGROUND OF THE INVENTION
[0002] Heat exchangers commonly used in the industry usually comprise connection blocks,
into which the connecting pipe of the heat exchange system can be connected so that
the heat exchange fluid can be supplied to or received from said heat exchanger. Oftentimes,
the placement of the connection blocks on the heat exchanger are predetermined. This
may be problematic, as in some cases, the placement of the exit or entry for the heat
exchange fluid greatly influences the performance of the heat exchanger. For example,
in case of heat exchangers with two manifolds connected by heat exchange tubes, a
so-called "dead zones" can occur, wherein the flow of the heat exchange fluid is limited.
This can occur especially when the connection block is not placed centrally with respect
to given plurality of tubes. Examples of such heat exchangers are a condenser, an
evaporator, or an evaporator-condenser, which may function in both heating mode and
cooling mode.
[0003] One of the known solutions to this problem is utilization of additional tubing, which
receives the heat exchange fluid from the manifold at a place optimal in terms of
performance and then directs it to the connection block located elsewhere. However,
such additional tubing negatively influences the external dimensioning of the heat
exchanger. This may lead to reduction of active area of the core and creation of areas,
which cannot be effectively used for heat exchange. Additionally, in some applications
it becomes necessary to introduce additional sealing to prevent by-passing of the
core by air in those areas.
[0004] It would be desirable to provide a heat exchanger which would allow for optimal performance
and at the same time for an unrestricted placement of the inlet/outlet connection
block.
SUMMARY OF THE INVENTION
[0005] The object of the invention is a heat exchanger according to claim 1.
[0006] Preferably, the third section is arranged in parallel to the second section.
[0007] Preferably, the third section is connected fluidically with the second section through
a first opening and a second opening.
[0008] Preferably, the first pass is associated with the inlet port, the second pass is
associated with the outlet port, and the first opening is located closer to the outlet
port then the second opening.
[0009] Preferably, the first opening has a smaller hydraulic diameter than the second opening.
[0010] Preferably, it comprises a third pass between the first pass and the second pass.
[0011] Preferably, the third section receives bottom part of the tubes.
[0012] Preferably, the outlet port is associated with the lower half of the second pass.
[0013] Preferably, the outlet port is associated with the top half of the second pass.
[0014] Preferably, an air-conditioning loop comprises a heat exchanger according to the
subject of an invention.
BRIEF DESCRITPTION OF DRAWINGS
[0015] Examples of the invention will be apparent from and described in detail with reference
to the accompanying drawings, in which:
Fig. 1 shows a heat exchanger according to the invention in a first embodiment not
belonging to the invention;
Fig. 2 shows a heat exchanger according to the invention in a second embodiment not
belonging to the invention;
Fig. 3 shows a heat exchanger according to the invention in a third embodiment belonging
to the invention;
Fig. 4 shows a heat exchanger according to the invention in a fourth embodiment belonging
to the invention;
Fig. 5 shows a heat exchanger according to the invention in a fifth embodiment belonging
to the invention;
Fig. 6 shows a heat exchanger according to the invention in a sixth embodiment belonging
to the invention;
Figs. 7a-7b show a plurality of examples of a heat exchanger in a cross-section through
a manifold, with openings visible between the second and the third section.
DETAILED DESCRIPTION OF EMBODIMENTS
[0016] Fig. 1 shows a heat exchanger.
[0017] The heat exchanger comprises a first manifold 1 and a second manifold 2. Manifolds
1, 2 are connected by tubes 3. The heat exchanger further comprises an inlet port
6 and an outlet port 7 located on either of the manifolds 1, 2. In this case, both
the inlet port 6 and the outlet port 7 are located on the first manifold 1 - one below
the other. The heat exchanger is configured to provide at least two passes 4, 5 for
a heat exchange fluid between the inlet port 6 and the outlet port 7. By the term
"pass" it is understood a group of tubes 3 located one next to the other, in which
the heat exchange fluid flows in the same direction. The heat exchanger further comprises
the third section 10 next to the second section 9, preferably in parallel to the second
section 9. The third section 10 receives the heat exchanger fluid from the tubes 3
comprised in the second pass 5. Further, the third section 10 is in fluid communication
with the second section 9 at least through a first opening 11.
[0018] In the heat exchanger presented in Fig.2 the second section 9 and the third section
10 are in a fluid communication through the first opening 11 and a second opening
12.
[0019] As shown in Figs 1-6, the first pass 4 is associated with the inlet port 6. Analogically,
the second pass 5 is associated with the outlet port 7. The outlet port 7 may be associated
either with the lower part of the second pass 5 or with the top half of the second
pass 5. In principle, it could also be associated with the middle of the pass 5. The
type of association affects how the heat exchange fluid travels across the part of
the heat exchanger delimited by the second pass 5.
[0020] In Fig. 2 and 4 the first opening 11 is located closer to the outlet port 7 than
the second opening 12. The outlet port 7 is located near the outermost end of the
second section 9. However, in some applications, as presented in the Fig. 5, moving
the outlet port 7 to the bottom of the second section 9 may be needed. For example,
such need may occur when the packaging constrains or deployment of other devices in
the engine bay do not allow the outlet port 7 to be located on the outermost end of
the second section 9.
[0021] The openings between the second section 9 and the third section 10 may have different
hydraulical diameter. This may allow to control the flow between the sections 9 and
10. Preferably, the opening closer to the outlet port 7 has a smaller hydraulical
diameter, to promote a more uniform flow of the fluid between the sections.
[0022] For example, in case of the example shown in Fig. 2, the first opening 11 may have
a smaller hydraulic diameter than the second opening 12.
[0023] The third section 10 receives all the tubes 3 of the second pass 5, as presented
in the Figs 1 and 2. However, according to the invention, and as shown in Fig. 3,
the third section 10 receives only a part of the tubes 3 of the second pass 5. The
amount of the tubes 3 received by the third section 10 depends on the desired heat
exchanger properties, flow regime, etc. In case when the third section 10 receives
the part of the tubes 3 of the second pass 5, the remaining part of the tubes is received
by the second section 9.
[0024] The example shown in Fig. 4 differs from the example of Fig. 3 in that there are
two openings between the second section 9 and the third section 10. This may promote
a more uniform flow of the fluid through the heat exchanger.
[0025] In another example, as presented in the Fig. 5, the third section 10 receives bottom
part of the tubes 3. Consequently, the remaining upper part of the tubes 3 is longer
than the bottom part of the tubes 3 and they are received by the second section 9.
[0026] In an embodiment presented in the Fig. 6 the heat exchanger comprises a third pass
13 between the first pass 4 and the second pass 5. In this case, the fluid flows first
through the first pass 4, then through the third pass 13 and finally through the second
pass 3. The third pass 13 is suitable for applications in which the outlet port 7
is desired to be deployed on the opposite side of the heat exchanger. Even in such
case, the flow through the second pass 3 is more uniform than if the third section
10 was not applied.
[0027] Figs. 7a-7e show a plurality of examples of a heat exchanger in a cross-section through
a manifold, with openings visible between the second section 9 and the third section
10.
[0028] Fig. 7a shows an example, in which the first opening 11 is the only opening providing
a fluidal communication of the third section 10 with the second section 9.
[0029] Fig. 7b shows an example, in which there are two openings - the first opening 11
and the second opening 12 providing a fluidal communication of the third section 10
with the second section 9. In this case, they are of the same hydraulic diameter.
[0030] Fig. 7c shows an example, in which there are two openings - the first opening 11
and the second opening 12 providing a fluidal communication of the third section 10
with the second section 9. In this case, the first opening 11 is of a smaller hydraulic
diameter than the second opening 12.
[0031] Fig. 7d shows an example, in which besides the first opening 11, the second opening
12 there is a further plurality of openings between the second section 9 and the third
section 10. In this case, all of the openings are of the same hydraulic diameter.
[0032] Fig. 7e shows an example, in which besides the first opening 11, the second opening
12 there is a further plurality of openings between the second section 9 and the third
section 10. In this case, the hydraulic diameter is progressively increasing from
the first opening to the last.
[0033] Compared to classic jumper-line design, the invention allows to eliminate additional
components, and the whole assembly is lighter.
[0034] In general, the invention allows mitigating the occurrence of the "dead-zones" within
the pass associated with the outlet block, especially when the block is not placed
near the center of the pass.
[0035] It should mentioned that the invention provides analogous benefits when the flow
through the inlet/outlets, manifolds and tubes is reversed, i.e. it works in cooling
mode. The outlet then becomes an inlet, and the inlet becomes an outlet.
[0036] Other variations to the disclosed embodiments can be understood and effected by those
skilled in the art in practicing the claimed invention, from a study of drawings,
the disclosure, and the appended claims. The mere fact that certain measures are recited
in mutually different dependent claims does not indicate that a combination of these
measures cannot be used to the advantage.
1. A heat exchanger comprising a first manifold (1) and a second manifold (2) connected
by tubes (3), configured to provide at least two passes (4, 5) for a heat exchange
fluid between an inlet port (6) and an outlet port (7) located on either of the manifolds
(1, 2), wherein for at least one of the passes (4, 5), at least one of the manifolds
(1, 2) comprises a first section (8) adapted to receive the heat exchange fluid directly
from the tubes (3), and a second section (9) which is adapted to receive the heat
exchange fluid from the tubes (3) through a third section (10), the third section
(10) being adapted to receive the heat exchange fluid directly from the tubes (3)
comprised in the second pass (5), and being arranged in fluid communication with the
second section (9), the heat exchanger being characterized in that the third section (10) receives only a part of the tubes (4) of the second pass (5).
2. A heat exchanger according to claim 1, wherein the third section (10) is arranged
in parallel to the second section (9).
3. A heat exchanger according to any preceding claim, wherein the third section (10)
is connected fluidically with the second section (9) through a first opening (11)
and a second opening (12).
4. A heat exchanger according to claim 3, wherein the first pass (4) is associated with
the inlet port (6), the second pass (5) is associated with the outlet port (7), and
the first opening (11) is located closer to the outlet port (7) then the second opening
(12).
5. A heat exchanger according to claim 3 or 4, wherein the first opening (11) has a smaller
hydraulic diameter than the second opening (12).
6. A heat exchanger according to any preceding claim, wherein it comprises a third pass
(13) between the first pass (4) and the second pass (5).
7. A heat exchanger according to any preceding claim, wherein the third section (10)
receives all the tubes (3) of the second pass (5).
8. A heat exchanger according to any of claims 1-6, wherein the third section (10) receives
a part of the tubes (3) of the second pass (5).
9. A heat exchanger according to claim 8, wherein the third section (10) receives bottom
part of the tubes (3).
10. A heat exchanger according to any preceding claim, wherein the outlet port (7) is
associated with the lower half of the second pass (5).
11. A heat exchanger according to any preceding claim, wherein the outlet port (7) is
associated with the top half of the second pass (5).
12. An air-conditioning loop comprising a heat exchanger according to any preceding claim.
1. Wärmetauscher, umfassend ein erstes Sammelrohr (1) und ein zweites Sammelrohr (2),
die über Rohre (3) verbunden sind, wobei der Wärmetauscher dazu ausgestaltet ist,
mindestens zwei Durchläufe (4, 5) für ein Wärmetauschfluid zwischen einem Einlassanschluss
(6) und einem Auslassanschluss (7), die an dem einen oder dem anderen der Sammelrohre
(1, 2) angeordnet sind, bereitzustellen, wobei für mindestens einen der Durchläufe
(4, 5) mindestens eines der Sammelrohre (1, 2) einen ersten Abschnitt (8) umfasst,
der zur Aufnahme des Wärmetauschfluids direkt von den Rohren (3) ausgeführt ist, sowie
einen zweiten Abschnitt (9), der zur Aufnahme des Wärmetauschfluids von den Rohren
(3) durch einen dritten Abschnitt (10) ausgeführt ist, wobei der dritte Abschnitt
(10) dazu ausgeführt ist, das Wärmetauschfluid direkt von den Rohren (3) aufzunehmen,
die in dem zweiten Durchlauf (5) umfasst sind, und in Fluidverbindung mit dem zweiten
Abschnitt (9) angeordnet ist, wobei der Wärmetauscher dadurch gekennzeichnet ist, dass der dritte Abschnitt (10) nur einen Teil der Rohre (4) des zweiten Durchlaufs (5)
aufnimmt.
2. Wärmetauscher nach Anspruch 1, wobei der dritte Abschnitt (10) parallel zu dem zweiten
Abschnitt (9) angeordnet ist.
3. Wärmetauscher nach einem der vorhergehenden Ansprüche, wobei der dritte Abschnitt
(10) durch eine erste Öffnung (11) und eine zweite Öffnung (12) fluidisch mit dem
zweiten Abschnitt (9) verbunden ist.
4. Wärmetauscher nach Anspruch 3, wobei der erste Durchlauf (4) dem Einlassanschluss
(6) zugeordnet ist, der zweite Durchlauf (5) dem Auslassanschluss (7) zugeordnet ist
und die erste Öffnung (11) näher an dem Auslassanschluss (7) angeordnet ist als die
zweite Öffnung (12).
5. Wärmetauscher nach Anspruch 3 oder 4, wobei die erste Öffnung (11) einen kleineren
hydraulischen Durchmesser als die zweite Öffnung (12) hat.
6. Wärmetauscher nach einem der vorhergehenden Ansprüche, wobei er einen dritten Durchlauf
(13) zwischen dem ersten Durchlauf (4) und dem zweiten Durchlauf (5) umfasst.
7. Wärmetauscher nach einem der vorhergehenden Ansprüche, wobei der dritte Abschnitt
(10) alle Rohre (3) des zweiten Durchlaufs (5) aufnimmt.
8. Wärmetauscher nach einem der Ansprüche 1 - 6, wobei der dritte Abschnitt (10) einen
Teil der Rohre (3) des zweiten Durchlaufs (5) aufnimmt.
9. Wärmetauscher nach Anspruch 8, wobei der dritte Abschnitt (10) den unteren Teil der
Rohre (3) aufnimmt.
10. Wärmetauscher nach einem der vorhergehenden Ansprüche, wobei der Auslassanschluss
(7) der unteren Hälfte des zweiten Durchlaufs (5) zugeordnet ist.
11. Wärmetauscher nach einem der vorhergehenden Ansprüche, wobei der Auslassanschluss
(7) der oberen Hälfte des zweiten Durchlaufs (5) zugeordnet ist.
12. Klimatisierungskreislauf, umfassend einen Wärmetauscher nach einem der vorhergehenden
Ansprüche.
1. Échangeur thermique comprenant un premier collecteur (1) et un second collecteur (2)
raccordés par des tubes (3), conçus pour former au moins deux passages (4, 5) pour
un fluide d'échange thermique entre un orifice d'entrée (6) et un orifice de sortie
(7) situés sur l'un ou l'autre des collecteurs (1, 2), au moins un des collecteurs
(1, 2) comprenant, pour au moins un des passages (4, 5), une première section (8)
propre à recevoir le fluide d'échange thermique directement des tubes (3), et une
deuxième section (9) qui est propre à recevoir le fluide d'échange thermique des tubes
(3) par l'intermédiaire d'une troisième section (10), la troisième section (10) étant
propre à recevoir le fluide d'échange thermique directement des tubes (3) compris
dans le deuxième passage (5), et étant placée en communication fluidique avec la deuxième
section (9), l'échangeur thermique étant caractérisé en ce que la troisième section (10) reçoit seulement une partie des tubes (4) du deuxième passage
(5).
2. Échangeur thermique selon la revendication 1, dans lequel la troisième section (10)
est disposée parallèlement à la deuxième section (9).
3. Échangeur thermique selon l'une quelconque des revendications précédentes, dans lequel
la troisième section (10) est raccordée fluidiquement à la deuxième section (9) par
le biais d'une première ouverture (11) et d'une seconde ouverture (12).
4. Échangeur thermique selon la revendication 3, dans lequel le premier passage (4) est
associé à l'orifice d'entrée (6), le deuxième passage (5) est associé à l'orifice
de sortie (7), et la première ouverture (11) est placée plus près de l'orifice de
sortie (7) que la seconde ouverture (12).
5. Échangeur thermique selon la revendication 3 ou 4, dans lequel la première ouverture
(11) présente un diamètre hydraulique inférieur à celui de la seconde ouverture (12).
6. Échangeur thermique selon l'une quelconque des revendications précédentes, comprenant
un troisième passage (13) entre le premier passage (4) et le deuxième passage (5).
7. Échangeur thermique selon l'une quelconque des revendications précédentes, dans lequel
la troisième section (10) reçoit tous les tubes (3) du deuxième passage (5).
8. Échangeur thermique selon l'une quelconque des revendications 1 à 6, dans lequel la
troisième section (10) reçoit une partie des tubes (3) du deuxième passage (5) .
9. Échangeur thermique selon la revendication 8, dans lequel la troisième section (10)
reçoit la partie inférieure des tubes (3).
10. Échangeur thermique selon l'une quelconque des revendications précédentes, dans lequel
l'orifice de sortie (7) est associé à la moitié inférieure du deuxième passage (5).
11. Échangeur thermique selon l'une quelconque des revendications précédentes, dans lequel
l'orifice de sortie (7) est associé à la moitié supérieure du deuxième passage (5).
12. Boucle de climatisation comprenant un échangeur thermique selon l'une quelconque des
revendications précédentes.
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