TUBE WITH A RESERVOIR OF PHASE-CHANGE MATERIAL FOR A HEAT EXCHANGER
20170261269 · 2017-09-14
Assignee
Inventors
- Frédéric Tison (Guecelard, FR)
- Sylvain Moreau (Spay, FR)
- Lionel Robillon (Mulsanne, FR)
- Aurélie Bellenfant (Roeze-Sur-Sarthe, FR)
- François Busson (Saint-Gervais-en-Belin, FR)
Cpc classification
F28D2021/0085
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E60/14
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F28F3/044
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2020/0013
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/0094
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/0341
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/0096
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D20/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28D20/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F3/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present invention relates to a tube (1) with a reservoir of phase-change material for a heat exchange bundle (100) of a heat exchanger, said tube (1) with a reservoir of phase-change material including: two flow plates (3) which are configured to be assembled with one another in a fluid-tight fashion and form at least one duct (31) in which a first heat-transfer fluid flows between said flow plates (3), at least one reservoir plate (5) including cavities (51), said reservoir plate (5) being configured so that it can be assembled in fluid-tight fashion on an external face of one of the two flow plates (3) so as to close the cavities (51) and form housings for the phase-change material, said cavities (51) projecting from the external face of the reservoir plate (5) so that that a second heat-transfer fluid can circulate between said cavities (51).
Claims
1. A tube with a reservoir of phase-change material for a heat exchange bundle of a heat exchanger, said tube with a reservoir of phase-change material comprising: two flow plates configured to be assembled with one another in a fluid-tight fashion and form at least one duct in which a first heat-transfer fluid flows between said flow plates; and at least one reservoir plate including cavities, said reservoir plate being configured to be assembled in fluid-tight fashion on an external face of one of the two flow plates to close the cavities and form housings for the phase-change material, said cavities projecting from the external face of the reservoir plate so that that a second heat-transfer fluid can circulate between said cavities.
2. The phase-change material reservoir tube as claimed in claim 1, further comprising a single reservoir plate on one of a plurality of external faces in contact with the second heat-transfer fluid.
3. The phase-change material reservoir tube as claimed in claim 1, further comprising a reservoir plate with a reservoir of phase-change material on each of a plurality of external faces in contact with the second heat-transfer fluid.
4. The phase-change material reservoir tube as claimed in claim 3, wherein said tube with a reservoir of phase-change material includes a common orifice for filling the projecting cavities of the two reservoir plates.
5. The phase-change material reservoir tube as claimed in claim 1, wherein the projecting cavities are domed-shaped.
6. The phase-change material reservoir tube as claimed in claim 1, wherein the projecting cavities have a “V” distribution about the longitudinal axis of the reservoir plate.
7. The phase-change material reservoir tube as claimed in claim 5, wherein the top of the projecting cavities is flat in order to come into contact with an exchange tube facing the top in the heat exchange bundle.
8. The phase-change material reservoir tube as claimed in claim 1, wherein the circulation plates are identical.
9. The phase-change material reservoir tube as claimed in claim 8, wherein at least one of the circulation plates includes hollows for storing phase-change material.
10. The phase-change material reservoir tube as claimed in claim 9, wherein each hollow is in contact with the other circulation plate.
11. The phase-change material reservoir tube as claimed in claim 9, wherein the hollows are arranged in a quincunx.
12. A heat exchange bundle for a heat exchanger, including at least one tube with a reservoir of phase-change material as claimed in claim 1.
13. A heat exchanger including at least one heat exchange bundle as claimed in claim 12.
Description
[0023] Other features and advantages of the invention will become more clearly apparent on reading the following description given by way of nonlimiting illustrative example and from the appended drawings in which:
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032] In the various figures, identical elements bear the same reference numbers.
[0033] As
[0034] The two circulation plates 3 are configured to be assembled to one another in a fluid-tight manner and to form at least one duct 31 in which a first heat-transfer fluid circulates between said circulation plates 3. The two circulation plates 3 are preferably identical and disposed relative to one another in a “mirror” configuration, which makes it possible to produce only one type of circulation plate 3 and therefore makes it possible to achieve savings in production.
[0035] For its part the at least one reservoir plate 5 for its part includes cavities 51 and is configured to be assembled in a fluid-tight manner to an external face of one of the two circulation plates 3 so as to close the cavities 51 and form housings for the phase-change material. These cavities 51 project on the external face of the reservoir plate 5 so that a second heat-transfer fluid, for example a flow of air, can circulate between said cavities 51.
[0036] Only two different types of plates are used to produce the tube 1 with a reservoir of phase-change material, namely two circulation plates 3 and at least one reservoir plate 5. A design of this kind makes it possible to limit the production of a reservoir tube of this kind to these two types of plates, consequently generating savings in production costs. Moreover, assembly is simplified by this small number of types of plates.
[0037] An additional advantage of the tube 1 with a reservoir of phase-change material is that the phase-change material is directly in contact with the circulation plate 3, which facilitates and improves the exchanges of heat energy between the first heat-transfer fluid and the phase-change material.
[0038] As
[0039] Because the external face of the circulation plate 3 includes hollows 32, the latter form complementary reserves of phase-change material so that, for a given overall size, a tube with a reservoir 5 of phase-change material including hollows 32 of this kind enables storage of a greater quantity of phase-change material. The effect of this is to increase the time for which the phase-change material exchanges heat energy with the second fluid.
[0040] Moreover, given that the hollows 32 form additional connections with the adjacent circulation plate 3, the mechanical strength of the tube 1 with a reservoir of phase-change material is increased. Consequently a tube 1 of this kind with a phase-change material reservoir may be used in a heat exchanger of the type of an evaporator that is adapted to receive a coolant fluid the pressure of which has a nominal value of approximately 15 bar.
[0041] As
[0042] According to a variant embodiment, the tube 1 can nevertheless include a reservoir plate 1 with a reservoir of phase-change material on each of its external faces in contact with the second heat-transfer fluid as shown in
[0043] According to a first embodiment shown in
[0044] According to a second embodiment shown in
[0045] In either the first or second embodiment the projecting cavities 51 have a flat top 55 of cylindrical and polygonal, for example approximately trapezoidal, section.
[0046] Tops 55 of this kind are intended to come into contact with a facing exchange tube 30 inside the heat exchange bundle 100 as shown in
[0047] The exchange tube 30 may be a tube including microchannels, a tube of this kind being obtained by the superposition of plane plates and a corrugated plate, the latter sometimes being termed an internal separator, said corrugated plate then being disposed between the two adjacent plane plates to form the microchannels.
[0048] According to a variant embodiment, the exchange tubes 30 can more particularly consist of two circulation plates 3 as described above assembled to one another in a fluid-tight manner.
[0049]
[0050] It is therefore clear that because it consists of two circulation plates 3 and at least one reservoir plate 5 the tube 1 with a reservoir of phase-change material enables simple fabrication and assembly at relatively low cost. Moreover, the phase-change material is directly in contact with the circulation plate 3, which facilitates and improves the exchanges of heat energy between the first heat-transfer fluid and the phase-change material.