HEAT EXCHANGER AND TUBE
20170227301 · 2017-08-10
Assignee
Inventors
Cpc classification
F28D1/05383
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D7/0066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D21/0015
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28F1/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to a heat exchanger, particularly for cooling a fluid, comprising a plurality of tubes through which a fluid can flow, an end face of each tube terminating in a collector chamber, said collector chambers being fluidically interconnected by means of the tubes and at least one of said tubes comprising at least one wall section formed from a selectively-permeable membrane. The invention also relates to a tube for a heat exchanger.
Claims
1. A heat exchanger having a plurality of tubes which can be flowed through by a fluid and open on the end side in each case into a header box, the header boxes being in fluid communication with one another by way of the tubes, wherein at least one of the tubes has at least one wall section which is configured by way of a selectively permeable diaphragm.
2. The heat exchanger as claimed in claim 1, wherein each tube has at least one wall section which is configured by way of a selectively permeable diaphragm.
3. The heat exchanger as claimed in claim 1, wherein the selectively permeable diaphragm is connected, such as, in particular, adhesively bonded, to the respective tube.
4. The heat exchanger as claimed in claim 1, wherein the tubes are received on the end side in openings of the tube plates, fin elements being arranged between the tubes, a cover being arranged on each of the tube plates, which cover forms a header box together with the respective tube plate, the tubes, the tube plates, the covers and the fin elements being adhesively bonded or brazed to one another.
5. The heat exchanger as claimed in claim 1, wherein the selectively permeable diaphragm is applied to a supporting structure, the supporting structure and/or the selectively permeable diaphragm being adhesively bonded to the tube.
6. The heat exchanger as claimed in claim 1, wherein the tube has at least one cutout, the edges of the cutout being formed by way of L-shaped receiving regions which are directed into the tube interior and into which the selectively permeable diaphragm and/or the supporting structure can be inserted.
7. The heat exchanger as claimed in claim 1, wherein selectively permeable diaphragm makes a transport of fluid out of the tube to the outside possible.
8. The heat exchanger as claimed in one claim 1, wherein the tube has webs in the interior, the webs connecting two walls of the tube which lie opposite one another to one another.
9. The heat exchanger as claimed in claim 8, wherein the webs are configured in one piece with the walls of the tube and/or are adhesively bonded to the inner walls of the tube.
10. The heat exchanger as claimed in claim 1, wherein the tube has, on two walls which lie opposite one another, in each case at least one cutout which is covered by way of a selectively permeable diaphragm.
11. A tube for a heat exchanger as claimed in claim 1, wherein the tube has at least one wall section which is configured by way of a selectively permeable diaphragm.
12. The tube as claimed in claim 11, wherein the tube is produced by way of bending from strip stock.
13. The heat exchanger as claimed in claim 11, wherein the tube is produced by way of an extrusion method.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0036] In the following text, the invention will be explained in detail using exemplary embodiments with reference to the drawings, in which:
[0037]
[0038]
[0039]
[0040]
[0041]
[0042]
[0043]
PREFERRED EMBODIMENT OF THE INVENTION
[0044]
[0045] The edges 6, 7 of the cutout 5 which lie on the left and the right are formed by way of the free end regions of the sheet metal strip which have been bent over in order to produce the tube. The edges 6, 7 in each case form an L-shaped receiving region 8 which protrudes into the tube interior. The diaphragm 4 is inserted into said L-shaped receiving regions 8 and is adhesively bonded to the tube 1. The selectively permeable diaphragm 4 can extend along the entire length of the tube 1 or else only over one or more part regions. The length of the tube 1 is measured in
[0046] The selectively permeable diaphragm 4 can additionally be applied to a supporting structure which increases the strength and stability of the selectively permeable diaphragm 4. The pressure resistance of the diaphragm 4, in particular, can be increased by way of the supporting structure which is not shown in figure in order to also ensure a sufficient pressure resistance of the tube 1 in the region of the diaphragm 4. The diaphragm 4 terminates flush with the outer surface of the tube 1.
[0047]
[0048]
[0049] The webs 9 are formed in each case by way of the free end regions of the sheet metal strip which have been bent over in order to form the tube 1. The L-shaped receiving regions 8 are configured by way of bending by 90° downward out of the upper broad side 3 on each of the free end regions and subsequent bending by 90° to the left or to the right. The webs 9 are configured by way of renewed bending over of the free end regions by 90° downward. Finally, the webs 9 have a base region 10 which in turn is configured by way of bending over by 90° to the left or to the right and is seated on the inner side of the lower broad side 3.
[0050] The webs 9 are adhesively bonded fixedly with their respective base region 10 in each case on the inner side of the lower broad side 3. The tube 1 and the webs 9 are configured in one piece, all of the broad sides 3, the narrow sides 2, the L-shaped receiving regions 8 and the webs 9 with their base regions 10 being produced by way of bending operations of the free end regions of the sheet metal strip. The webs 9 increase the stability of the tube 1. In addition, the webs form a plurality of chambers 11 in the interior of the tube 1, which chambers 11 extend along the main throughflow direction of the tube 1.
[0051] In alternative embodiments, the webs can also be inserted subsequently into the shaped tube and can be adhesively bonded to the tube.
[0052]
[0053] The web 12 is produced by way of bending of the sheet metal strip by 90° upward out of the plane of the lower broad side 3, subsequent bending of the sheet metal strip by 180° downward and final bending of the sheet metal strip by 90° back into the plane of the lower broad side 3. The web 12 is therefore also configured in one piece with the remaining tube 1 and is produced only by way of bending operations of the sheet metal strip which acts as strip stock for the tube 1. The web 12 is supported on the selectively permeable diaphragm 4 or on the supporting structure below the selectively permeable diaphragm 4. The web 12 is of double-walled configuration.
[0054] In the exemplary embodiment of
[0055]
[0056] The free end regions of the sheet metal strip in
[0057] The tube from
[0058]
[0059] The cutout 23 is delimited laterally by way of L-shaped receiving regions into which the selectively permeable diaphragm 24 is inserted. The selectively permeable diaphragm 24 is adhesively bonded to the tube 20 in the region of the L-shaped receiving regions 25.
[0060] A plurality of webs 26 are arranged in the interior or the tube 20, which webs 26 are of T-shaped configuration and run from the lower broad side 22 toward the upper broad side 22 or the selectively permeable diaphragm 24. The section of the webs 26 which runs parallel to the broad sides 22 bears against the selectively permeable diaphragm 24 or against the L-shaped receiving regions 25. The webs 26 are adhesively bonded to the tube 20 at the contact points between the webs 26 and the selectively permeable diaphragm 24 or the upper broad side 22. Six chambers 27 which extend along the main throughflow direction are configured in the tube 20 by way of the webs 26.
[0061] The webs 26 are configured in one piece with the tube 20 and are already formed into the tube 20 during the extrusion method. In alternative embodiments, the number, the positioning and the shape of the webs can vary.
[0062]
[0063] A plurality of webs 36, 37 are configured in the tube 30. The webs 36 run from the lower broad side 32 to the upper broad side, whereas the web 37 runs from the left-hand narrow side 31 to the right-hand narrow side 31. The transversely running web 37 divides the inner volume of the tube 30 into an upper half and a lower half. The webs 36 are configured in the form of I-beams and bear at the top and the bottom in each case against the selectively permeable diaphragms 34 or the supporting structure (not shown). The two outer webs 36 in each case directly adjoin the L-shaped receiving regions 35. The webs 36 intersect the transversely running web 37. The webs 36, 37 are configured in one piece together with the outer walls of the tube 30 and are produced in a common extrusion method.
[0064] The inner volume of the tube 30 is divided by way of the webs 36 and the web 37 into twelve chambers 38 which extend along the main throughflow direction of the tube 30.
[0065] In alternative embodiments, the tubes from
[0066] It is possible, moreover, to configure the webs in the interior of the tubes by way of inserts which are inserted into the tubes along the main throughflow direction of the latter and are adhesively bonded to the inner sides of the tubes. Flat tubes can also be produced here completely by way of the bending of a sheet metal strip. It is advantageous here that, independently of their production method, the tubes have a cutout on one of the outer surfaces, which cutout can be covered by a selectively permeable diaphragm. The inner side of the selectively permeable diaphragm comes into contact directly with the fluid which flows through the tubes, in order to make a crossover of the fluid or of the water component of the fluid possible.
[0067] The exemplary embodiments which are shown in