TRANSCRITICAL AIR CONDITIONING CIRCUIT WITH INTEGRATED EXPANSION VESSEL
20180017295 · 2018-01-18
Assignee
Inventors
- Georges De Pelsemaeker (Le Mesnil Saint-Denis, FR)
- Sébastien Jacope (Reims, FR)
- Jérôme Mougnier (Reims, FR)
Cpc classification
F25B40/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2275/122
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B39/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/001
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/0231
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D7/1684
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2255/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B39/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F25B25/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D7/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B39/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Air conditioning device (1) with transcritical operating cycle, the device comprising a circuit (4) conveying a refrigerant (5) and successively connecting: the outlet (6) of a compressor (7); a gas cooler (8); the cold circuit (9) of an intermediate cooler (10); an expansion valve (11); a second exchanger (12) having a volume (31, 71) for the circulation of a coolant (21) in a heat-exchange relationship with the refrigerant (5); the inlet (13) of the hot circuit (14) of the intermediate cooler (10); the air conditioning device (1) being characterized in that the second exchanger of type (12) comprises an expansion volume for the coolant (21).
Claims
1. An air conditioning device with transcritical operating cycle, the device comprising: a circuit conveying a refrigerant and successively connecting: an outlet of a compressor, a gas cooler, a cold circuit of an intermediate cooler, an expansion valve, a second exchanger having a volume for the circulation of a coolant in a heat-exchange relationship with the refrigerant, and an inlet of the hot circuit of the intermediate cooler, the outlet of the hot circuit of the intermediate cooler being connected to the inlet of the compressor, wherein the second exchanger comprises an expansion volume for the coolant.
2. The device as claimed in claim 1, wherein the expansion volume of the second exchanger also includes an access plug.
3. An exchanger for an air conditioning device with transcritical operating cycle, comprising: a bundle of tubes for circulating a refrigerant that extend in a volume for circulation of a coolant; and an expansion volume for the coolant.
4. The exchanger as claimed in claim 3, further comprising an access plug to the expansion volume for the coolant.
5. The exchanger as claimed in claim 3, wherein the volume for circulation of the coolant is of substantially parallelepipedal shape and is delimited by a body comprising a first element and a second element clipped to the first element.
6. The exchanger as claimed in claim 5, wherein the first element has a substantially parallelepipedal shape and the second element is substantially plane.
7. The exchanger as claimed in claim 5, wherein the first element and the second element are of substantially parallelepipedal shape.
8. The exchanger as claimed in claim 5, wherein at least one of the elements comprises at least one groove receiving the flanks of a manifold of the bundle of tubes for circulation of the refrigerant.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0024] Reference will be made to the appended drawings, in which:
[0025]
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[0027]
[0028]
[0029]
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DETAILED DESCRIPTION OF THE INVENTION
[0034] Referring to
[0035] The device 1 comprises a circuit 4 conveying a refrigerant 5, here CO.sub.2, in a direction represented by the arrows. The circuit 4 connects successively: [0036] the outlet 6 of a compressor 7; [0037] a gas cooler 8; [0038] the cold circuit 9 of an intermediate cooler 10; [0039] an expansion valve 11; [0040] a second exchanger 12 of the air conditioning device; and [0041] the inlet 13 of the hot circuit 14 of the intermediate cooler 10.
[0042] The outlet 15 of the hot circuit 14 of the intermediate cooler 10 is, for its part, connected to the inlet 16 of the compressor 7.
[0043] A cooling circuit 20 conveys a coolant 21, here water containing glycol, by means of a circulation pump 22. The circuit 20 comprises a fluid/air heat exchanger 23 through which a fan 24 forces a flow of air intended for the passenger compartment of the vehicle 3. The coolant 21 penetrates into the second exchanger 12 in order to lose calories absorbed by the change of state of the refrigerant 5 in the second exchanger 12.
[0044] The second exchanger 12 could be used as a chiller or water cooler type exchanger. In such use, this type of exchanger functions as an exchanger able to produce cold for exchange with a coolant in another circuit of the motor vehicle, in particular when the latter includes batteries.
[0045] The second heat exchanger could also be used as a condenser type exchanger or as a gas cooler type exchanger cooled with a coolant (for example water containing glycol).
[0046] A first embodiment of the second exchanger 12 will now be described with reference to
[0047] The second exchanger 12 comprises a body 30 of substantially parallelepipedal shape delimiting an interior volume 31 containing a tube bundle 50. The body 30 comprises a first molded element 32 of substantially parallelepipedal shape on which is mounted a substantially plane second element 33. The elements 32 and 33 are fastened to one another by a plurality of clips 34 integral with the second element 33. The first element 32 includes an open face 35 and is provided with a plurality of exterior ribs 36 increasing its resistance to pressure. The first element 32 comprises a first internal peripheral groove 37 and an identical second groove 38. The grooves 37 and 38 are respectively at the upper end 39 and at the lower end 40 of the first element 32. The first element 32 also comprises first and second tubular connectors 41 and 42 respectively leading into an upper portion and a lower portion of the interior volume 31. As can be seen in the figures, the connectors 41 and 42 project on two opposite faces of the first element 32, one in the vicinity of the upper end 39 and the other in the vicinity of the lower end 40. A portion 43 of substantially parallelepipedal shape is connected by its base to the upper end 39 of the first element 32. The portion 43 is in fluid communication with the volume 31 because its base is open. A plug 44 situated on the face opposite the base of the portion 43 enables access to the internal volume 43.1 of the portion 43.
[0048] The second element 33 comprises a first tubular connector 45 and a second tubular connector 46 leading into the volume 31 and respectively facing the grooves 37 and 38.
[0049] Here the tube bundle 50 comprises seven parallel tubes 51 of rectangular section. The tubes 51 comprise crenellations 51.1 that increase the exchange area of the tubes with the medium surrounding them. The tubes 51 extend in the volume 31 from an inlet manifold 52 to an outlet manifold 53. Each of the manifolds 52 and 53 has a substantially parallelepipedal shape and a respective sealing element 54 and 55 nesting in the tubular part of the connectors 46 and 45 respectively.
[0050] During the manufacture of the second exchanger 12, the flanks of the manifolds 53 and 54 of the tube bundle 50 are placed in the respective grooves 38 and 37 of the first element 32. The second element 33 is then offered up so that the sealing elements 54 and 55 engage in the tubular parts of the connectors 46 and 45 respectively. The second element 33 is then brought into contact with the first element 32 and the elements 32 and 33 are fastened together by means of the clips 34. The second exchanger 12 constructed in this way therefore comprises a tube bundle 50 extending in an interior volume 31 between the two manifolds 52 and 53. The second exchanger 12 also comprises the internal volume 43.1 of the portion 43 in fluid communication with the volume 31.
[0051] The second exchanger 12 is connected to the air conditioning device 1 so that the refrigerant 5 at the outlet from the expansion valve 11 enters the inlet manifold 52 via the connector 46 and leaves the outlet manifold 53 via the connector 45. The inlet of the exchanger 23 is connected to the connector 42 and the outlet of the exchanger 23 is connected to the connector 41. In operation, the expanded refrigerant 5 evaporates in the tubes 51 of the tube bundle 50 and cools the coolant 21 circulated in the interior volume 31 by the circulation pump 22. In the event of variation of the volume of coolant 21 caused by a change in ambient pressure or a large quantity of heat to be evacuated, the volume 43.1 allows the expansion of the coolant 21. In effect, the volume 43.1 being situated above the connector 41 of the outlet for the coolant 21, the latter is little if at all occupied by the coolant 21 and forms an expansion volume for the latter.
[0052] Elements identical or analogous to those described above carry a reference number identical to the latter in the following description with reference to
[0053] The body 30 of the second exchanger 12 is of substantially parallelepipedal shape and comprises a molded first element 32 of substantially parallelepipedal shape open on one of its faces. A second element 70 that is also substantially parallelepipedal comprises an open face on which the open face of the element 32 is mounted. The bodies 32 and 70 thus define an interior volume 71 for circulation of the coolant 21. The elements 32 and 70 are fastened to one another by a plurality of clips 34. The connection between the two elements 32 and 70 can be effected by means of clips, screws, induction welding or vibration welding. The second element 70 is provided with a plurality of exterior ribs 36 increasing its resistance to pressure and a first internal peripheral groove 72 and a second internal peripheral groove 73 identical to the groove 72. The grooves 72 and 73 are respectively situated at the upper end 74 and at the lower end 75 of the second element 70. The second element 70 comprises a first tubular connector 45 and a second tubular connector 46 leading into the volume 71 facing the grooves 72 and 73 respectively.
[0054] Here the tube bundle 80 comprises fourteen tubes 51 extending in the volume 71 from the inlet manifold 52 to the outlet manifold 53.
[0055] During manufacture of the second exchanger 12, the flanks of the manifolds 53 and 54 of the tube bundle 80 are placed in the grooves 38 and 37 respectively of the first element 32. The second element 70 is then offered up so that the grooves 73 and 72 face the flanks of the manifolds 53 and 54. In this position, the sealing elements 54 and 55 engage in the tubular parts of the connectors 46 and 45 respectively. The second element 70 is then brought into contact with the first element 32 and the elements are clipped together. The second exchanger 12 constructed in this way therefore comprises a tube bundle 80 offering the exchange area of fourteen tubes 51. The manufacture of the second exchanger according to this second embodiment employs many elements common to or identical with the first embodiment, resulting in reduced manufacturing and tooling costs.
[0056] Of course, the invention is not limited to the embodiments described but rather encompasses any variant within the scope of the invention as defined by the claims.
[0057] In particular: [0058] although the circuit here connects directly the various components of the air conditioning device, the invention applies equally to components connected to one another via other components such as for example a desiccator, control or regulation members, valves, etc.; [0059] although here the refrigerant is CO.sub.2, the invention applies equally to other types of refrigerants able to operate with transcritical operating cycle; [0060] although here the coolant is water containing glycol, the invention applies equally to other types of coolant such as for example alcohol, salt water, ammonia or ammonium chloride; [0061] although here the elements constituting the body of the second exchanger are produced by a molding process, the invention applies equally to other methods of manufacturing the elements such as for example pressing, forming, welding or machining; [0062] although here the elements of the body are clipped to one another, the invention applies equally to elements connected to one another by other assembly means such as for example welding, screwing, gluing; [0063] although here the connectors mounted on the body of the second exchanger are tubular, the invention applies equally to other types of connectors such as for example bayonet connectors or cartridge type connectors; [0064] although here the tubes of the tube bundle are crenellated and seven or fourteen in number, the invention applies equally to tubes of any shape in different numbers, such as for example smooth tubes.