Heat exchanger
10274262 ยท 2019-04-30
Assignee
Inventors
Cpc classification
F28F21/084
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/001
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2275/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/126
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/05366
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2225/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2225/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28F1/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/053
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F21/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
In order to prevent deformation of a side member due to thermal stress in a heat exchanger in which water for cooling a high-temperature body circulates, a side member is formed in the shape of a groove, the cross section of which has side wall parts and a base part along the entire length in the lengthwise direction of a main body part, and both ends of the side member in the lengthwise direction are provided with a stepped part, which is formed as a step toward the outside of a core, and one or more brace-like ribs, which integrally connect the tip end and the base part of the stepped part in a slanting manner.
Claims
1. A heat exchanger comprising: flat tubes and corrugated fins alternately arranged in parallel to constitute a core, wherein respective ends of each of the flat tubes are inserted into and fixed to respective tube plates, the heat exchanger further comprising two side members disposed on opposite sides of the core, wherein respective ends of the side members in a longitudinal direction of the side members are integrally fixed to respective side walls of the tube plates, and wherein: each of the side members is bent and formed into a groove shape, the cross section of which has opposing side wall parts and a base part, wherein the base part contacts corrugated fins adjacent to the base part, and wherein the groove shape extends along a length extending from the side wall of one of the tube plates to the side wall of an opposing of the tube plates; the heat exchanger further comprising one or more ribs located on respective end portions of the side members in the longitudinal direction of the side members, wherein the one or more ribs are integrally and protrudingly formed at intermediate portions of the base parts in a widthwise direction and wherein the one or more ribs protrude in a direction away from the heat exchanger core, and wherein the base parts have substantially a same length as that of the core, and comprise stepped parts at the end portions of the side members, each stepped part having a tip end, wherein each of the stepped parts is formed into a stepped shape protruding toward an outside of the core, and the tip ends of the stepped parts are integrally fixed to respective side walls of the tube plates; and the one or more ribs are configured to connect the base parts of the side members and the tip ends of the stepped parts by extending at least from the base parts of the side members to the tip ends of the stepped parts, wherein the one or more ribs have slanting outer surfaces extending from the base parts to the tip ends of the stepped parts.
2. The heat exchanger according to claim 1, wherein: the stepped parts of the side members include flat step surfaces, and wherein an outer surface of each of the tube plates is seated on a respective of the flat step surfaces; and a tip end of each of the one or more ribs of the side members is configured to reach at least a position proximate the outer surface of a side wall of one of the tube plates.
3. A heat exchanger comprising: flat tubes and corrugated fins alternately arranged in parallel to constitute a core, wherein respective ends of each of the flat tubes are inserted into and fixed to respective tube plates, the heat exchanger further comprising two side members disposed on opposite sides of the core, wherein respective ends of the side members in a longitudinal direction of the side members are integrally fixed to respective side walls of the tube plates, and wherein: each of the side members is bent and formed into a groove shape, the cross section of which has opposing side wall parts and a base part, wherein the base part contacts corrugated fins adjacent to the base part, and wherein the groove shape extends along a length extending from the side wall of one of the tube plates to the side wall of an opposing of the tube plates; the heat exchanger further comprising one or more ribs located on respective end portions of the side members in the longitudinal direction of the side members, wherein the one or more ribs are integrally and protrudingly formed at intermediate portions of the base parts in a widthwise direction and wherein the one or more ribs protrude in a direction away from the heat exchanger core, and wherein the base parts have substantially a same length as that of the core, and comprise stepped parts at the end portions of the side members, each stepped part having a tip end, wherein each of the stepped parts is formed into a stepped shape protruding toward an outside of the core, and the tip ends of the stepped parts are integrally fixed to respective side walls of the tube plates; and the one or more ribs are configured to connect the base parts of the side members and the tip ends of the stepped parts by extending at least from the base parts of the side members to the tip ends of the stepped parts.
4. A heat exchanger comprising: flat tubes and corrugated fins alternately arranged in parallel to constitute a core, wherein respective ends of each of the flat tubes are inserted into and fixed to respective tube plates, the heat exchanger further comprising two side members disposed on opposite sides of the core, wherein respective ends of the side members in a longitudinal direction of the side members are integrally fixed to respective side walls of the tube plates, and wherein: each of the side members is bent and formed into a groove shape, the cross section of which has opposing side wall parts and a base part, wherein the base part contacts corrugated fins adjacent to the base part, and wherein the groove shape extends along a length extending from the side wall of one of the tube plates to the side wall of an opposing of the tube plates; the heat exchanger further comprising one or more ribs located on respective end portions of the side members in the longitudinal direction of the side members, wherein the one or more ribs are integrally and protrudingly formed at intermediate portions of the base parts in a widthwise direction and wherein the one or more ribs protrude in a direction away from the heat exchanger core, and wherein the base parts have substantially a same length as that of the core, and comprise stepped parts at the end portions of the side members, each stepped part having a tip end, wherein each of the stepped parts is formed into a stepped shape protruding toward an outside of the core, and the tip ends of the stepped parts are integrally fixed to respective side walls of the tube plates; and the stepped parts include side surfaces which face away from the core of the heat exchanger and the ribs are configured to connect the base parts of the side members to the side surfaces of the stepped parts by extending from the base parts to the tip ends and to the side surfaces, respectively.
5. The heat exchanger of claim 4, wherein the one or more ribs extend over the tip ends and comprise stepped shapes protruding toward an outside of the core.
6. The heat exchanger of claim 4, wherein at least one of the side members comprises two of the ribs.
7. The heat exchanger according to claim 4, wherein the one or more ribs extend substantially across the side surfaces.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
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(3)
(4)
(5)
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DETAILED DESCRIPTION OF THE INVENTION
(8) Subsequently, embodiments according to the present invention will be described with reference to the drawings.
(9)
First Embodiment
(10) The heat exchanger of the present invention is configured such that corrugated fins 2 and flat tubes 1 form a core 3, both ends of each of the flat tubes 1 are inserted into tube insertion holes of tube plates 4, and side members 5 are disposed at both ends of the core. The present invention is characterized by the portion where the side member 5 is joined with the core 3 and the tube plate 4.
(11) In this example, as shown in
(12) Stepped parts 5b each formed into a stepped shape with its tip end protruding to an outside of the core 3 are provided at both ends of the side member 5 in the lengthwise direction. Brace-like ribs 9 are integrally and protrudingly provided at the center of the stepped part 5b in the widthwise direction toward the outside of the core 3. The stepped part 5b is formed at a position corresponding to the vicinity of the base part between the tube plate 4 and the flat tube 1 which will be described later.
(13) The rib 9 is formed thin and long at the center of the side member 5 in the widthwise direction, connecting a root 7 of the stepped part 5b (in this example, the base part 5c of the main body part 5a of the side member 5) and a tip end 8 in a slanted bracing manner. Except the part where the brace-like rib 9 is formed, the stepped part 5b has a horizontal step surface 5e.
(14) Subsequently, the tube plate 4 with a dish-like shape includes an annular side wall 6 with a rising rim. A bottom part 4a of the tube plate 4 has a large number of insertion holes in parallel with one another through which the flat tubes 1 are inserted. The circumferential rim part of the bottom part 4a has an annular groove with which a sealing material is fit.
(15) In this example, as shown in
(16) Further, in the example of
(17) As
(18) A resin tank with a not shown inlet/outlet pipe for the cooling object is fit with the tube plate 4 via the sealing material to complete production of the heat exchanger.
(19) Besides the resin material, the aluminum material may be used for forming the tank. In this case, the tank and the tube plate 4 are integrally mounted through brazing or welding.
(20) In the embodiment of
(21) The side member 5 has the stepped parts 5b formed at both ends thereof in the lengthwise direction, and a pair of side walls 5d are bent and formed along the entire length in the lengthwise direction while including the stepped parts 5b. The brace-like rib 9 is further disposed on the stepped part 5b, which imparts the strength sufficient to bear the stress concentrated in the specific part of the heat exchanger. This ensures to prevent crack and deformation of the flat tube, and avoid the risk of leakage of the cooling object.
(22) In this example, only one brace-like rib 9 is provided. However, it is possible to provide a plurality of ribs 9.
(23) Other Examples Relating to Shape of Rib 9 of Side Member 5
(24)
(25) In the example of
(26)
(27) The shape of the rib 9 of the side member 5, and the number of the ribs 9 described in the first embodiment and other examples have been disclosed as mere examples. It may be arbitrarily designed so long as the resultant function effects do not deviate from those derived from the scope of the claims of the present application.
Second Embodiment
(28)
(29) The side member 5 has the rib 9 with structure in
(30) Subsequently, an example of the method of molding the stress absorbing part 11 will be described. First, the H-like slit is cut through the press molding process across the entire width of the base part 5c of the side member 5 to form the bottomless part 10. In the above-described process, the H-like upper and lower flanges are disposed along the side wall part 5d so that the side member 5 at the position of the bottomless part 10 is easily deformed under the external force in the widthwise direction. Both side wall parts 5d are press molded in the widthwise direction at the position of the side member 5 so that the resultant waveforms face with each other.
(31) In the example as described above, upon circulation of the high-temperature cooling object inside the heat exchanger, the core 3 thermally expands in the lengthwise direction of the flat tube 1 and the direction orthogonal thereto. The thermal expansion of the flat tube 1 in the lengthwise direction is absorbed by the stress absorbing part 11 of the side member 5. Under the load of the side member 5 owing to the thermal expansion of the core 3 in the widthwise direction, the stress absorbing part 11 has its modulus of section increased, thus preventing deformation.
(32) Further, the base between the side member 5 and the tube plate 4 is provided with the stepped part 5b, the rib 9, and the side wall 5d including those members along the entire length of the side member 5 so as to prevent deformation of especially the base of the side member 5. This makes it possible to prevent deformation of the base of the flat tube 1 at the outermost end of the core 3, and the associated crack in the base of the flat tube.
Third Embodiment
(33)
(34) Note that the first embodiment shows the example that the step surface 5e of the stepped part 5b of the side member 5 is joined with the outer surface of the bottom part 4a of the tube plate 4. It may be configured not to join the step surface 5e and the bottom part 4a while having a gap therebetween.