Vehicle heat exchanger tube and vehicle radiator comprising such a tube
10145623 · 2018-12-04
Assignee
Inventors
Cpc classification
F28F2225/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F3/042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/05383
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2001/027
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/0316
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/0094
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/05366
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28F1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/053
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A vehicle heat exchanger tube (2) comprises at least a first and a second separate fluid channel (14, 16). A tube stiffener (38) has a first stiffening portion (40) stiffening the first channel (14) of the tube (2), and a second stiffening portion (42) stiffening the second channel (16) of the tube (2). The first stiffening portion (40) comprises a first supporting surface (46) supporting the first larger surface (20) of the first channel (14), and a second supporting surface (48) supporting the second larger surface (22) of the first channel (14). The second stiffening portion (42) comprises a first supporting surface (56) supporting the first larger surface (26) of the second channel (16), and a second supporting surface (58) supporting the second larger surface (28) of the second channel (16).
Claims
1. A vehicle heat exchanger tube comprising an internal reinforcement structure, the vehicle heat exchanger tube comprising at least a first and a second separate fluid channel extending along the tube and being parallel with each other and being separated from each other by at least one separating wall extending along at least a portion of the tube, each fluid channel having an inner height and an inner width, the inner height measured in a direction being parallel with a height of the separating wall, the inner height being smaller than the inner width, the first channel having a first large surface, and an opposing second large surface, the second channel having a first large surface, and an opposing second large surface, wherein the internal reinforcement structure is a tube stiffener having a first stiffening portion stiffening the first channel of the tube, and a second stiffening portion stiffening the second channel of the tube, wherein the first and second stiffening portions of the tube stiffener are joined to each other at a joining portion, wherein the first stiffening portion comprises a first supporting surface supporting the first large surface of the first channel, a second supporting surface supporting the second large surface of the first channel, and an intermediate portion connecting the first supporting surface to the second supporting surface, and wherein the second stiffening portion comprises a first supporting surface supporting the first large surface of the second channel, a second supporting surface supporting the second large surface of the second channel, and an intermediate portion connecting the first supporting surface to the second supporting surface, wherein the tube comprises an inlet or outlet end portion at which the separating wall has been discontinued such that the first and second channels combine within the tube at said end portion, wherein the tube stiffener is at least partly received in said end portion such that the joining portion of the tube stiffener is arranged to be inserted into the inlet or outlet end portion at which the separating wall has been discontinued, and wherein the joining portion of the tube stiffener is provided with a cut-out that receives at least a portion of the separating wall, and wherein the first stiffening portion of the tube stiffener extends into the first channel at least partly into the tube where the first and second channels are separated from each other by the separating wall, and wherein the second stiffening portion of the tube stiffener extends into the second channel at least partly into the tube where the channels are separated from each other by the separating wall.
2. A tube according to claim 1, wherein at least one of the large surfaces is provided with surface structures, and wherein said inlet or outlet end portion of the tube is essentially free from such surface structures.
3. A tube according to claim 1, wherein the total length of the tube stiffener, as seen along the tube, is less than 20% of the total length of the tube.
4. A tube according to claim 1, wherein the tube stiffener is made from a sheet metal, and wherein a material thickness of the tube stiffener is less than 30% of the inner height, which is measured in a direction being parallel with the height of the separating wall, of the first and second channels.
5. A tube according to claim 1, wherein the first stiffening portion comprises an edge supporting surface supporting an edge surface connecting the first and second large surfaces of the first channel, and wherein the second stiffening portion comprises an edge supporting surface supporting an edge surface connecting the first and second large surfaces of the second channel.
6. A tube according to claim 1, wherein the tube stiffener is brazed to the first and second channels.
7. A tube according to claim 1, wherein at least one first inlet channel is formed between the first stiffening portion of the tube stiffener and one of the large surfaces of the first channel, and at least one second inlet channel is formed between the second stiffening portion of the tube stiffener and one of the large surfaces of the second channel.
8. A tube according to claim 1, wherein the tube stiffener is entirely received inside the tube.
9. A vehicle radiator, comprising at least one vehicle heat exchanger tube according to claim 1.
10. A vehicle radiator according to claim 9, the vehicle radiator comprising a plurality of vehicle heat exchanger tubes, wherein less than 50% of the total number of vehicle heat exchanger tubes comprise tube stiffeners.
11. A method of forming a vehicle heat exchanger tube, the method comprising: forming a tube comprising at least a first and a second separate fluid channel extending along the tube and being parallel with each other and being separated from each other by at least one separating wall extending along at least a portion of the tube, each fluid channel having an inner height and an inner width, the inner height measured in a direction being parallel with a height of the separating wall, the inner height being smaller than the inner width, the first channel having a first large surface, and an opposing second large surface, the second channel having a first large surface, and an opposing second large surface, wherein the tube is provided with an inlet end portion or an outlet end portion in which the separating wall has been discontinued which allows the first and second separate fluid channels to be combined within the tube, forming a tube stiffener having a first stiffening portion intended for stiffening the first channel of the tube, and a second stiffening portion intended for stiffening the second channel of the tube, wherein the first and second stiffening portions of the tube stiffener are joined to each other at a joining portion, the joining portion of the tube stiffener including a cut-out configured to receive at least a portion of the separating wall, and inserting the joining portion of the tube stiffener into the inlet end portion or the outlet end portion in which the separating wall has been discontinued, wherein a first supporting surface of the first stiffening portion extends into the first channel at least partly into the tube where the first and second channels are separated from each other by the separating wall to support the first large surface of the first channel, and a second supporting surface of the first stiffening portion extends into the first channel at least partly into the tube where the first and second channels are separated from each other by the separating wall to support the second large surface of the first channel, and wherein a first supporting surface of the second stiffening portion extends into the second channel at least partly into the tube where the first and second channels are separated from each other by the separating wall to support the first large surface of the second channel, and a second supporting surface of the second stiffening portion extends into the second channel at least partly into the tube where the first and second channels are separated from each other by the separating wall to support the second large surface of the second channel.
12. A method according to claim 11, further comprising exposing, after inserting the tube stiffener into the tube, the tube and the tube stiffener to a brazing to fix the tube stiffener to the tube.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention is described in more detail below with reference to the appended drawings in which:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
DESCRIPTION OF PREFERRED EMBODIMENTS
(11)
(12) The heat exchanger core 1 comprises a number of vehicle heat exchanger tubes 2 through which a fluid, such as an engine cooling coolant, may be forwarded. Each tube 2 is of the multichannel type, i.e., each individual tube 2 has at least two separate channels as will be elaborated in more detail hereinafter. In the embodiment shown the tubes 2 are arranged in pairs, i.e. with two parallel tubes 2 on each level.
(13) The vehicle heat exchanger tubes 2 are mounted in a header plate 4. The header plate 4 may in turn be mounted to a heat exchanger tank (not shown for reasons of maintaining clarity of illustration) that supplies fluid to be cooled to the vehicle heat exchanger tubes 2. To this end, the header plate 4 comprises a mounting flange 6 connectable to the heat exchanger tank.
(14) Between the tubes 2 heat exchanger fins 8 are arranged for improving the heat transfer between ambient air passing between the tubes 2 and the coolant being forwarded at the inside of the tubes 2. Optionally, a side plate 9 may be arranged outside of the outermost tube 2 or fin 8 to provide stability and physical protection to impact etc.
(15) The vehicle heat exchanger tubes 2 are exposed to high pressures and high temperatures, in particular adjacent to the header plate 4 where the hot coolant enters the tubes 2. For this reason at least some of the tubes 2 are reinforced at their respective inlet end portions 10 by means of respective stiffeners 12 that will be described in more detail hereinafter.
(16)
(17) The first channel 14 has a first large surface 20 and an opposing second large surface 22 each having a width being similar to the inner width WC. The large surfaces 20, 22 are held together by the separating wall 18 and by an edge surface 24. Similarly, the second channel 16 has a first large surface 26 and an opposing second large surface 28 each having a width being similar to the inner width WC. The large surfaces 26, 28 are held together by the separating wall 18 and by an edge surface 30. One or more of the large surfaces 20, 22, 26, 28 may be provided with surface structures, for example dimples 32, for enhancing turbulence.
(18) The tube 2 has the inlet end portion 10 and an outlet end portion 34. At the end portion 10 the separating wall 18 has been discontinued, meaning that the two channels 14, 16 have contact with each other at the end portion 10. Furthermore, surface structures, such as dimples 32, are, according to one embodiment, discontinued at the end portion 10, meaning that the large surfaces 20, 22, 26, 28 are essentially flat at the end portion 10.
(19) The inlet end portion 10 has a length LEP, as measured from a distal end 36 of the tube 2 to the position where the separating wall 18 starts, which length LEP may be, for example, 10-100 mm. The outlet end portion 34 may have a length LEP and a design which is similar to that of the inlet end portion 10.
(20)
(21) The first stiffening portion 40 comprises a first supporting surface 46 adapted to be in contact with the first larger surface 20 of the first channel 14 of the tube 2 shown in
(22) Similarly, the second stiffening portion 42 comprises a first supporting surface 56 adapted to be in contact with the first larger surface 26 of the second channel 16 of the tube 2, and second and third supporting surfaces 58, 60 arranged on opposite sides of the first supporting surface 56 and adapted to be in contact with the second larger surface 28 of the second channel 16. The second and third supporting surfaces 58, 60 are connected to the first supporting surface 56 via intermediate portions 62, and an edge supporting surface 64 is connected to the second supporting surface 58.
(23) At the central joining portion 44 the third supporting surface 50 of the first stiffening portion 40 is connected to the third supporting surface 60 of the second stiffening portion 42.
(24) A total length LTS of the stiffener 38, as measured from an outer end 70 of the stiffener 38 to an inner end 72, is longer than the length LEP of the inlet end portion 10 as described hereinbefore with reference to
(25) The total length LTS of the stiffener 38, as seen along the tube 2, is typically less than 20% of the total length LT of the tube 2, as shown in
(26)
(27) As best illustrated in
(28) Similarly, the first supporting surface 56 of the second portion 42 of the stiffener 38 supports the first larger surface 26 of the second channel 16, and the second and third supporting surfaces 58, 60 supports the second larger surface 28 of the second channel 16. The edge supporting surface 64 supports the edge surface 30. The respective supporting surface 56, 58, 60, 64 is at least partly fixed to its respective surface 26, 28, 30 by means of, for example, being brazed thereto.
(29) The intermediate portions 52 of the first portion 40 of the stiffener 38 prevents the first supporting surface 46 from being displaced from the second and third supporting surfaces 48, 50. As the first supporting surface 46 is fixed to the first large surface 20 and the second and third supporting surfaces 48 and 50 are fixed to the second large surface 22, those first and second large surfaces 20, 22 are prevented from being displaced from each other, under, for example, the pressure exerted from the medium at the inside of the first channel 14. Also the edge surface 24 is supported. In essence, the first channel 14 is prevented from being expanded under the influence of the internal pressure. Thus, the stiffener 38 adds strength and support to the first channel 14. In a corresponding manner, the stiffener 38 also adds strength and support to the second channel 16.
(30) As is best illustrated in
(31) As best illustrated in
(32) In
(33) Hereinbefore, it has been described that the vehicle heat exchanger tube 2 comprises a first fluid channel 14 and a second fluid channel 16, and that the tube stiffener 38 has a first stiffening portion 40 stiffening the first channel 14 of the tube 2, and a second stiffening portion 42 stiffening the second channel 16 of the tube 2. It will be appreciated that the vehicle heat exchanger tube according to an alternative embodiment could comprise further parallel fluid channels, for example a third fluid channel which is arranged adjacent to the second fluid channel 16.
(34)
(35) A tube stiffener 138 is inserted in an inlet end portion 110 of the tube 102. The tube stiffener 138 is rather similar to the tube stiffener 38 but comprises a first stiffening portion 140 adapted for stiffening the first channel 114 of the tube 102, a second stiffening portion 142 adapted for stiffening the second channel 116 of the tube 102, and a third stiffening portion 143 adapted for stiffening the third channel 117 of the tube 102. The respective stiffening portions 140, 142, 143 may have a similar design as the stiffening portions 40, 42 described in detail hereinabove with reference to
(36) The first stiffening portion 140 supports larger surfaces 120, 122 of the first channel 114 of the tube 102 according to principles similar to those described hereinabove with reference to
(37) The first joining portion 144 of the stiffener 138 is provided with a first cut-out 174, and the second joining portion 145 is provided with a second cut-out 175. When the stiffener 138 has been inserted in the inlet end portion 110 of the tube 102 the first separating wall 118 of the tube 102 is at least partly received in the first cut-out 174 of the stiffener 138, and the second separating wall 119 is at least partly received in the second cut-out 175 of the stiffener 138. The first portion 140 of the stiffener 138 will thereby extend into the first channel 114 at least partly into that part thereof where the first and second channels 114, 116 are separated from each other by the first separating wall 118, the second portion 142 of the stiffener 138 will extend into the second channel 116 at least partly into that part thereof where the channels 114, 116, 117 are separated from each other by the first and second separating walls 118, 119, and the third portion 143 of the stiffener 138 will extend into the third channel 117 at least partly into that part thereof where the second and third channels 116, 117 are separated from each other by the second separating wall 119. Thereby the sensitive transition area between the inlet end portion 110 and the ends of the separating walls 118, 119 is efficiently supported by the first, second and third portions 140, 142, 143 of the stiffener 138 extending beyond that transition area and into the separated portions of the channels 114, 116, 117.
(38) It will be appreciated that numerous variants of the embodiments described above are possible within the scope of the appended claims.
(39) Hence, a vehicle heat exchanger tube may comprise two or more separate fluid channels extending along the tube 2 and being parallel with each other and being separated from each other by respective separating walls. Most preferably, the vehicle heat exchanger tube comprises 2 to 5 separate and parallel fluid channels being separated from each other by respective separating walls, and a tube stiffener preferably comprises the same number of stiffening portions and is adapted to stiffen each of the respective channels.
(40) To summarize, a vehicle heat exchanger tube (2) comprises at least a first and a second separate fluid channel (14, 16). A tube stiffener (38) has a first stiffening portion (40) stiffening the first channel (14) of the tube (2), and a second stiffening portion (42) stiffening the second channel (16) of the tube (2). The first stiffening portion (40) comprises a first supporting surface (46) supporting the first larger surface (20) of the first channel (14), and a second supporting surface (48) supporting the second larger surface (22) of the first channel (14). The second stiffening portion (42) comprises a first supporting surface (56) supporting the first larger surface (26) of the second channel (16), and a second supporting surface (58) supporting the second larger surface (28) of the second channel (16).