A HEAT EXCHANGER
20200166296 ยท 2020-05-28
Assignee
Inventors
- Maciej Klusek (Skawina, PL)
- Janus Rod (Skawina, PL)
- Robert Bieniek (Skawina, PL)
- Radoslaw Jonczyk (Skawina, PL)
Cpc classification
F28F21/067
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2275/122
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/0082
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2230/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/062
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2225/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A heat exchanger comprising a tank (10) and a collector (30) assembled together, the tank (10) comprising a foot (11) and the collector (30) comprising a foot receiving surface (33), wherein the foot (11) comprises a groove (16) in which a gasket (20) is placed, and which groove (16) is faced by a foot receiving surface (33) so that together they form a closed cavity within the foot (11) defining a compression volume for the gasket (20), and wherein the foot (11) comprises a compression arrangement providing a filling rate of the compressed gasket (20) after assembly less than 100% of the compression volume.
Claims
1. A heat exchanger comprising: a tank and a collector assembled together, the tank comprising a foot and the collector comprising a foot receiving surface, wherein the foot comprises a groove in which a gasket is placed, wherein the groove is faced by the foot receiving surface so that together they form a closed cavity within the foot defining a compression volume for the gasket, and wherein the foot comprises a compression arrangement providing a filling rate of the compressed gasket after assembly less than 100% of the compression volume.
2. A heat exchanger according to claim 1, wherein the compression arrangement providing the filling rate of the compressed gasket after assembly less than 90% of the compression volume.
3. A heat exchanger according to claim 1, wherein the groove comprises two side walls and a bottom wall.
4. A heat exchanger according to claim 3, wherein the collector comprises a side flange with crimping tabs crimped onto the foot so that the side walls press onto the foot receiving surface.
5. A heat exchanger according to claim 1, wherein the compression arrangement is situated in the groove and comprises a first surface and a second surface, wherein the first surface is closer to the foot receiving surface than the second surface.
6. A heat exchanger according to claim 3, wherein the compression arrangement is situated on the bottom wall of the groove.
7. A heat exchanger according to claim 3, wherein the bottom wall of the groove comprises a protrusion, protruding towards the foot receiving surface, and a filling volume.
8. A heat exchanger according to claim 3, wherein side walls of the groove have surfaces which are parallel to each other.
9. A heat exchanger according to claim 3, wherein the side walls are flat.
10. A heat exchanger according to claim 7, wherein the filling volume is divided by the protrusion along the bottom wall of the groove.
11. A heat exchanger according to claim 1, wherein the compression arrangement is a separate element attached to the bottom of the groove in the tanks foot.
12. A heat exchanger according to claim 11, wherein the compression arrangement complements the shape of the bottom wall and/or the side walls of the groove in which the compression arrangement is placed.
13. A heat exchanger, comprising: a tank comprising a foot; a collector comprising a corresponding foot receiving surface; and a gasket positioned in between the tank and the collector, wherein the tank and the collector are assembled together and are immobilized with respect to each other so that a desired compression of the gasket is provided, the foot receiving surface being U-shaped over at least part of a periphery of the collector and comprising a base, an outer flange and an inner flange connected to the base, and wherein foot of the tank comprises a groove for placement of the gasket, which is incorporated to provide sealing.
Description
[0014] The object of the invention has been shown by means of a drawing, in which:
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022] The groove 16 of the tank 10 comprises two side walls 12, 13 and a bottom wall. Preferably, the side walls 12, 13 of the groove 16 are parallel to each other. Preferably, side walls 12, 13 are flat. The foot receiving surface 33 is then perpendicular to the side walls 12, 13 of the groove 16.
[0023] As the tabs 34 of the outer flange 32 are crimped over the tank foot 11, the bottom of the groove 16 is forced down against the top of the gasket 20 towards the foot receiving surface 33. These forces cause the gasket 20 to be deformed so that the gasket 20 fills the region between the groove's side walls 12, 13 and the foot receiving surface 33. Sealing stress is created as the gasket material pushes out radially against the constraining surfaces of the foot 11 and the foot receiving surface 33. The groove 16 is faced by a foot receiving surface 33 so that together they form a closed cavity within the foot 11 defining a compression volume for the gasket 20.
[0024] In known solutions, the gasket 20 can extend at least partially beyond the groove 16 of the foot 11 after assembly and compression.
[0025] The groove 16 of the foot 11 has been provided with a compression arrangement, which aims to assure prevention of excessive filling rate.
[0026] A filling volume provided by the compression arrangement assures (is configured to provide) gasket filling rate inside the groove after assembly at selected level below 100%. More preferably, this level is 90%, to ensure prevention of disadvantageous effects of gasket swelling. By means of filling rate it is meant a percentage of a groove volume which is filled by the gasket material after assembly. A compression arrangement inside groove 16, which provides a desired compression rate of the gasket 20, assures enough free area for gasket to fill the groove and provide desired filling rate.
[0027] An example of the compression arrangement is a protrusion 14, protruding towards the foot receiving surface 33 from the bottom wall of the groove 16, accompanied by a filling volume 15 also comprised within said bottom wall.
[0028]
[0029] Below there are presented formulas, according to which a cross-sectional area A.sub.FV of the filling volume 15 of the groove 16 can be calculated for a groove with flat and parallel side walls.
H.sub.min=D.sub.max(1)1)
W.sub.max=D.sub.max(1)2)
A.sub.FVX*A.sub.GH.sub.min*W.sub.max3)
[0030] denotes a desired compression rate. In general, it will be less than 1 (in other words less than 100%). Preferably its value is 0.4. Other values are also foreseen. Compression rate depends on requirements of specific project, and can also depend on specific gasket type.
[0031] denotes a coefficient selected for ensuring that the gasket will not fall out of the groove during assembly, by making the groove equal or slightly narrower than the minimum diameter of the uncompressed gasket. It is selected after taking into account assumed tolerances. In general, it will be less than 1. Preferably, it is selected from values between 0.01 and 0.1. It is to be noted that the width of the groove does not have to be narrower than the gasket at whole its length. It can advantageously be narrower, as described by equation 2, only in selected places along the run of the groove.
[0032] A.sub.FV denotes a cross-sectional area of the filling volume 15, which should be provided to achieve filling rate <100% at given compression rate . A.sub.G denotes a cross-sectional area of the uncompressed gasket. X denotes a coefficient which can be selected to ensure the condition. To satisfy the above-mentioned requirements, X should be greater than 1. It can for example be 1.1.
[0033] Equation 1 allows to calculate the distance between the top of the protrusion 14 and the level of terminal surface 17 of the foot 11, which is adjacent the foot receiving surface 33, for a selected compression rate .
[0034] Equation 2 allows to calculate distance between side walls 12, 13 of the groove 16, while taking into account a value selected for ensuring that the gasket will not fall out of the groove during assembly.
[0035] Equation 3 allows to calculate a cross-sectional area of the filling volume 15, which should be provided to achieve filling rate <100% at given compression rate .
[0036] In an exemplary embodiment, those values could for example be:
[0037] D_max=2.9 mm, H_min=1.74 mm, W_max=2.7 mm for =0.068, =0.4, X=1.1 which would give A.sub.FV=2.56 mm.sup.2.
[0038] The present invention is applicable for tanks made of any material. Preferably, the protrusion 14 is convex, to facilitate even distribution of pressure. The filling volume 15 (i.e. the compression arrangement) can be produced, depending on what material is used for the tank, by injection technique, machining technique, as a molded structure. The compression arrangement can be produced as a separate element, for example comprising a protrusion and a filling volume as described, attached to the bottom of the groove in the tank's foot, as shown in
[0039] Preferably, the filling volume 15 is divided by the protrusion 14 along the bottom wall of the groove 16.
[0040]
[0041] Because the side walls 12, 13 of the foot 20 both contact the foot receiving surface 33, they serve as stoppers. In other words, the walls of the foot 20 which constitute the groove 16 both directly contact the foot receiving surface 33. This contact is ensured to occur without any obstacles. An example of such obstacle is a fragment of gasket, which has a filling rate higher than 100%, that is a gasket part of which escaped from the groove 16 after compression. This direct contact of the side wall 12, 13 with the foot receiving surface 33 of the collector 30 allows to achieve a precise and defined compression rate .
[0042] A preferred gasket material is silicone, EPDM. The invention however applies to gasket of other materials as well.