Heat exchanger
12480715 ยท 2025-11-25
Assignee
Inventors
- Masahiro Ariyama (Tokyo, JP)
- Ryoichi Kurihara (Tokyo, JP)
- Takuma Shibata (Tokyo, JP)
- Satoshi Suzuki (Tokyo, JP)
- Kenji WADA (Tokyo, JP)
- Kenji Yamashita (Tokyo, JP)
Cpc classification
F28F3/027
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D9/0075
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2245/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D9/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2275/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D9/0068
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/0049
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28D9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A heat exchanger may include a stacked plurality of plates and a fin plate brazed to each other. Each set of adjacent said plates of the plurality of the plates may define a flow path between plates. Each plurality of the plates may include a flow-through portion penetrating through the plates and through which a fluid is flowable. At least one set of the flow-through portions may be provided at one of the flow paths such that the fluid is flowable from one side of a flow-through portion to an other side of a flow-through portion. The flow-through portion may be disposed outside the fin plate. Each plurality of the plates may further include a through hole disposed outside the fin plate. Each plurality of the plates may further include a first boss portion formed in a substantially elliptical shape surrounding the flow-through portion and the through hole.
Claims
1. A heat exchanger, comprising: a plurality of plates stacked on one another in a stacking direction; a plurality of oil flow paths and a plurality of coolant flow paths disposed in an alternating manner in the stacking direction, each of the plurality of oil flow paths and each of the plurality of coolant flow paths defined by a respective pair of adjacent plates of the plurality of plates; each plate of the plurality of plates including: a plurality of oil passage holes including a first oil passage hole and a second oil passage hole disposed on opposite sides of the respective plate and between which one of the plurality of oil flow paths extends; a plurality of coolant passage holes including a first coolant passage hole and a second coolant passage hole disposed on opposite sides of the respective plate and between which one of the plurality of coolant flow paths extends; a plurality of through holes including (i) a first through hole disposed in the respective plate between the first oil passage hole and the first coolant passage hole and (ii) a second through hole disposed in the respective plate between the second oil passage hole and the second coolant passage hole; a main plate portion; a boss portion protruding from the main plate portion and surrounding (i) the first through hole and (ii) one of the first oil passage hole and the first coolant passage hole; and another boss portion protruding from the boss portion and surrounding the first through hole; wherein the plurality of oil flow paths fluidically communicate with one another in the stacking direction via the plurality of oil passage holes; wherein the plurality of coolant flow paths fluidically communicate with one another in the stacking direction via the plurality of coolant passage holes; wherein the boss portion and the another boss portion protrude in opposite directions; wherein the boss portion of each plate of the plurality of plates abuts the boss portion of an adjacent plate of the plurality of plates; wherein the another boss portion of each plate of the plurality of plates abuts the another boss portion of an adjacent plate of the plurality of plates; wherein the main plate portion of each plate of the plurality of plates is a flat, planar portion oriented perpendicularly to the stacking direction; and wherein the main plate portion of each plate of the plurality of plates is rectangular.
2. The heat exchanger according to claim 1, wherein the first oil passage hole, the second oil passage hole, the first coolant passage hole, and the second coolant passage hole are each arranged proximal a different corner of the main plate portion of the respective plate.
3. The heat exchanger according to claim 1, wherein: the boss portion of each plate of the plurality of plates is brazed to the abutting boss portion of the adjacent plate of the plurality of plates; and/or the another boss portion of each plate of the plurality of plates is brazed to the abutting another boss portion of the adjacent plate of the plurality of plates.
4. The heat exchanger according to claim 1, further comprising a plurality of fin plates disposed in the plurality of oil flow paths and the plurality of coolant flow paths.
5. The heat exchanger according to claim 4, wherein each fin plate of the plurality of fin plates is brazed to a respective pair of plates of the plurality of plates that are disposed adjacent thereto.
6. The heat exchanger according to claim 4, wherein the plurality of fin plates includes: a plurality of first fin plates that are each disposed in a respective oil flow path of the plurality of oil flow paths; and a plurality of second fin plates that are each disposed in a respective coolant flow path of the plurality of coolant flow paths.
7. The heat exchanger according to claim 1, wherein the boss portion surrounds the first through hole and the first oil passage hole, and does not surround the first coolant passage hole.
8. The heat exchanger according to claim 7, wherein the boss portion and the first coolant passage hole each have an elongated shape.
9. The heat exchanger according to claim 8, wherein an elongated extent of the boss portion and an elongated extent of the first coolant passage hole extend substantially parallel to one another.
10. The heat exchanger according to claim 7, wherein: each plate of the plurality of plates further includes an additional boss portion protruding from the main plate portion and surrounding the first coolant passage hole; and the boss portion and the additional boss portion protrude from the main plate portion in opposite directions.
11. The heat exchanger according to claim 10, wherein the additional boss portion of each plate of the plurality of plates abuts the additional boss portion of an adjacent plate of the plurality of plates.
12. The heat exchanger according to claim 11, wherein the additional boss portion of each plate of the plurality of plates is brazed to the abutting additional boss portion of the adjacent plate of the plurality of plates.
13. The heat exchanger according to claim 7, wherein the boss portion is continuous and completely surrounds the first through hole and the first oil passage hole such that no portion of the main plate portion is disposed between the first through hole and the first oil passage hole.
14. The heat exchanger according to claim 1, wherein: the boss portion and the another boss portion are arranged on a first side of the respective plate; each plate of the plurality of plates further includes: a second-side boss portion arranged on a second side of the respective plate opposite the first side, the second-side boss portion protruding from the main plate portion and surrounding (i) the second through hole and (ii) one of the second oil passage hole and the second coolant passage hole; and another second-side boss portion arranged on the second side of the respective plate, the another second-side boss portion protruding from the second-side boss portion and surrounding the second through hole; the second-side boss portion and the another second-side boss portion protrude in opposite directions; the second-side boss portion of each plate of the plurality of plates abuts the second-side boss portion of an adjacent plate of the plurality of plates; and the another second-side boss portion of each plate of the plurality of plates abuts the another second-side boss portion of an adjacent plate of the plurality of plates.
15. The heat exchanger according to claim 14, wherein: the boss portion surrounds the first through hole and the first oil passage hole, and does not surround the first coolant passage hole; and the second-side boss portion surrounds the second through hole and the second oil passage hole, and does not surround the second coolant passage hole.
16. The heat exchanger according to claim 15, wherein: each plate of the plurality of plates further includes: an additional boss portion disposed on the first side of the respective plate, the additional boss portion protruding from the main plate portion and surrounding the first coolant passage hole; and an additional second-side boss portion disposed on the second side of the respective plate, the additional second-side boss portion protruding from the main plate portion and surrounding the second coolant passage hole; the boss portion and the additional boss portion protrude from the main plate portion in opposite directions; and the second-side boss portion and the additional second-side boss portion protrude from the main plate portion in opposite directions.
17. The heat exchanger according to claim 16, wherein the first oil passage hole, the second oil passage hole, the first coolant passage hole, and the second coolant passage hole are each arranged proximal a different corner of the main plate portion of the respective plate.
18. A heat exchanger, comprising: a plurality of plates stacked on one another in a stacking direction; a plurality of oil flow paths and a plurality of coolant flow paths disposed in an alternating manner in the stacking direction, each of the plurality of oil flow paths and each of the plurality of coolant flow paths defined by a respective pair of adjacent plates of the plurality of plates; each plate of the plurality of plates including: a plurality of oil passage holes including a first oil passage hole and a second oil passage hole disposed on opposite sides of the respective plate and between which one of the plurality of oil flow paths extends; a plurality of coolant passage holes including a first coolant passage hole and a second coolant passage hole disposed on opposite sides of the respective plate and between which one of the plurality of coolant flow paths extends; a plurality of through holes including (i) a first through hole disposed in the respective plate between the first oil passage hole and the first coolant passage hole and (ii) a second through hole disposed in the respective plate between the second oil passage hole and the second coolant passage hole; a main plate portion structured as a flat, planar portion oriented perpendicularly to the stacking direction; a first boss portion, a second boss portion, and a third boss portion arranged on a first side of the main plate portion; the first boss portion protruding from the main plate portion and surrounding (i) the first through hole and (ii) the first oil passage hole; the second boss portion protruding from the main plate portion and surrounding the first coolant passage hole; and the third boss portion protruding from the first boss portion and surrounding the first through hole; wherein the plurality of oil flow paths fluidically communicate with one another in the stacking direction via the plurality of oil passage holes; wherein the plurality of coolant flow paths fluidically communicate with one another in the stacking direction via the plurality of coolant passage holes; wherein the first boss portion protrudes in an opposite direction than second boss portion and the third boss portion; wherein the first boss portion of each plate of the plurality of plates abuts the first boss portion of an adjacent plate of the plurality of plates; and wherein the third boss portion of each plate of the plurality of plates abuts the third boss portion of an adjacent plate of the plurality of plates.
19. The heat exchanger according to claim 18, wherein: each plate of the plurality of plates further includes a first second-side boss portion, a second second-side boss portion, and a third second-side boss portion arranged on a second side of the main plate portion opposite the first side; the first second-side boss portion protrudes from the main plate portion and surrounds (i) the second through hole and (ii) the second oil passage hole; the second second-side boss portion protrudes from the main plate portion and surrounds the second coolant passage hole; the third second-side boss portion protrudes from the first second-side boss portion and surrounds the second through hole; the first second-side boss portion protrudes in an opposite direction than the second second-side boss portion and the third second-side boss portion; the first second-side boss portion of each plate of the plurality of plates abuts the first second-side boss portion of an adjacent plate of the plurality of plates; and the third second-side boss portion of each plate of the plurality of plates abuts the third second-side boss portion of an adjacent plate of the plurality of plates.
20. A heat exchanger, comprising: a plurality of plates stacked on one another in a stacking direction; a plurality of oil flow paths and a plurality of coolant flow paths disposed in an alternating manner in the stacking direction, each of the plurality of oil flow paths and each of the plurality of coolant flow paths defined by a respective pair of adjacent plates of the plurality of plates; each plate of the plurality of plates including: a plurality of oil passage holes including a first oil passage hole and a second oil passage hole disposed on opposite sides of the respective plate and between which one of the plurality of oil flow paths extends; a plurality of coolant passage holes including a first coolant passage hole and a second coolant passage hole disposed on opposite sides of the respective plate and between which one of the plurality of coolant flow paths extends; a plurality of through holes including (i) a first through hole disposed in the respective plate between the first oil passage hole and the first coolant passage hole and (ii) a second through hole disposed in the respective plate between the second oil passage hole and the second coolant passage hole; a main plate portion; a standing wall portion projecting obliquely from the main plate portion and extending along an outer perimeter of the main plate portion; a boss portion protruding from the main plate portion and surrounding (i) the first through hole and (ii) one of the first oil passage hole and the first coolant passage hole; and another boss portion protruding from the boss portion and surrounding the first through hole; wherein the plurality of oil flow paths fluidically communicate with one another in the stacking direction via the plurality of oil passage holes; wherein the plurality of coolant flow paths fluidically communicate with one another in the stacking direction via the plurality of coolant passage holes; wherein the boss portion and the another boss portion protrude in opposite directions; wherein the boss portion of each plate of the plurality of plates is disposed spaced apart from the standing wall portion and abuts the boss portion of an adjacent plate of the plurality of plates; and wherein the another boss portion of each plate of the plurality of plates abuts the another boss portion of an adjacent plate of the plurality of plates.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
DETAILED DESCRIPTION
(10) An embodiment of the present invention will be explained as follows, with reference to the drawings. In the below embodiment, an example will be explained in which the heat exchanger according to the present invention is utilized as a water-cooled type oil cooler in which a lubricating oil of an internal combustion engine is cooled by means of a refrigerant such as a long-life coolant (LLC).
(11) Firstly, an oil cooler 1, which is an embodiment of the heat exchanger of the present invention, is explained. As illustrated in
(12) For convenience of explanation below, of the directions following along the surfaces of the first core plate 5, second core plate 6, upper side first core plate 5U and lower side first core plate 5L of the oil cooler 1 in
(13)
(14) As illustrated in
(15) In the heat exchange portion 2, first core plates 5 configured as a plurality of plates and second core plates 6 configured as a plurality of plates being in closely similar basic shape are alternatingly stacked. Moreover, in the heat exchange portion 2, an oil flow path between plates 7 configured as a first flow path between plates (refer to
(16) As illustrated in
(17) A plurality of first core plates 5, second core plates 6, top plate 3, bottom plate 4, a plurality of first fin plates 9 and a plurality of second fin plates 10 are integrally joined to each other by brazing. In more detail, the top plate 3, first core plate 5 and second core plate 6 are formed by using so-called cladded material, in which a brazing material layer is coated on the surface of an aluminum alloy base material. Each part is temporarily assembled at a predetermined position, and then heated in a furnace to thereby become integrally brazed.
(18) The first core plate 5 and second core plate 6 are formed by press-forming a thin base metal of aluminum alloy to become a rectangular overall shape (substantially square). The first core plate 5 and second core plate 6 comprise a pair of oil passage holes 11, 11 configured as a pair of first flow-through portions, and a pair of coolant passage holes 12, 12 configured as a pair of second flow-through portions.
(19) Moreover, as illustrated in
(20) The top plate 3 comprises a coolant introduction portion 14 which communicates with one side of the coolant passage hole 12 of the uppermost portion of the heat exchange portion 2, and a coolant discharge portion 15 which communicates with the other side of the coolant passage hole 12 of the uppermost portion of the heat exchange portion 2. As illustrated in
(21) As illustrated in
(22) A pair of oil passage holes 11, 11 is positioned at the outer edges of the first core plate 5 and second core plate 6, and is formed in a symmetrical position across the center of the core plate. In further detail, as illustrated in
(23) A pair of coolant passage holes 12, 12 is positioned at the outer edges of the first core plate 5 and second core plate 6, and is formed in a symmetrical position across the center of the first core plate 5 and second core plate 6. In further detail, as illustrated in
(24) The coolant passage hole 12 is formed so as not to overlap with oil passage hole 11. In further detail, coolant passage hole 12 is formed on a diagonal line of the first core plate 5 and second core plate 6, unlike the oil passage hole 11. The coolant passage hole 12 is formed in a widely extending substantially elliptical shape in a direction (substantially extending direction) extending at the end portion of the boss portions 21, 24 in the left-right direction (x-direction).
(25) As illustrated in
(26) Moreover, coolant introduced from the coolant introduction portion 14 of top plate 3 flows through a coolant flow path between plates 8, flows inside the heat exchange portion 2 on the whole in a direction orthogonal to the stacking direction of the first core plate 5 and second core plate 6, and reaches the coolant discharge portion 15 of top plate 3. The W-arrow mark in
(27) As illustrated in
(28) Because of the relationships with the top plate 3 and bottom plate 4, the upper side first core plate 5U positioned at the uppermost portion of the heat exchange portion 2 and the lower side first core plate 5L positioned at the lowermost part of the heat exchange portion 2 have a configuration somewhat different to the other first core plates 5 positioned at the intermediate portion of the heat exchange portion 2. Specifically, no boss portion 22 and boss portion 23 are provided in the lowermost part of the lower side first core plate 5L, and only the boss portion 21 protruding towards the side of the coolant flow path between plates 8 (upper side) is provided. Moreover, no boss portion 21 is provided in the uppermost portion of the upper side first core plate 5U, but the boss portion 22 and boss portion 23 each protruding towards the side of the oil flow path between plates 7 (lower side) are provided.
(29) As illustrated in
(30) Therefore, by alternatingly combining the first core plate 5 and second core plate 6, fixed gaps which become the oil flow path between plates 7 and coolant flow path between plates 8 are formed between the first core plate 5 and second core plate 6.
(31) The boss portion 21 provided at the perimeter of oil passage hole 11 and through hole 13 in the first core plate 5 is joined to the boss portion 24 provided at the perimeter of oil passage hole 11 and through hole 13 of the adjacent side of the second core plate 6. Two oil flow paths between plates 7 adjacent in the up/down direction thereby communicate with each other, and are isolated from the coolant flow paths between plates 8 which is between the two oil flow paths between plates 7. Accordingly, in a state of a plurality of the first core plates 5 and second core plates 6 having been joined, the oil flow paths between plates 7 each communicate with each other via the plurality of oil passage holes 11. This plurality of oil passage holes 11 constitutes an (oil) flow-through portion penetrating through the plates through which a fluid (oil) flows.
(32) The boss portion 21 is a protruded portion which is provided by protruding from the first core plate 5 in the stacking direction: namely, any one direction of the z-axis direction, for example, the +z-axis direction (the upper side direction in the z-axis direction of the heat exchange portion 2). The boss portion 21 is a boss corresponding to the first boss portion formed so as to protrude until abutting with the adjacent second core plate 6. The boss portion 21 is formed so as to surround the boss portion 23 as a third boss portion and so as to protrude in the reverse direction to the boss portion 23. In the boss portion 21, the oil passage hole 11 provided at this boss portion 21 is adjacent to the through hole 13 provided at the boss portion 23. The boss portion 21 is also disposed adjacent to the boss portion 22. The boss portion 22 is a boss corresponding to the second boss portion formed so as to protrude until abutting with the adjacent second core plate 6. The boss portion 21 is formed in a concavo-convex shape in the cross-sectional direction of the first core plate 5. Moreover, in the boss portion 21, the edge portion protruding from the first core plate 5, as seen in a plan view of the first core plate 5, has one shape continuous with the edge portion of the boss portion 22.
(33) The boss portion 25 provided at the perimeter of the coolant passage hole 12 in the second core plate 6 is joined to the boss portion 22 provided at the perimeter of the coolant passage hole 12 of the adjacent side of the first core plate 5. Two coolant flow paths between plates 8 adjacent in the up/down direction thereby communicate with each other, and are isolated from the oil flow paths between plates 7 which is between the two coolant flow paths between plates 8. Accordingly, in a state of a plurality of the first core plates 5 and second core plates 6 having been joined, the coolant flow paths between plates 8 each communicate with each other via a plurality of coolant passage holes 12. This plurality of coolant passage holes 12 constitutes a (coolant) flow-through portion penetrating through the plates through which a fluid (coolant) flows.
(34) The boss portion 24 is a protruded portion which is provided by protruding in the stacking direction from the second core plate 6; namely, any one direction of the z-axis direction, for example, the z-axis direction (the lower side direction in the z-axis direction of the heat exchange portion 2). The boss portion 24 is a boss corresponding to the first boss portion formed so as to protrude until abutting with the adjacent first core plate 5. The boss portion 24 is formed so as to surround the boss portion 26 as a third boss portion and so as to protrude in the reverse direction to the boss portion 26. The boss portion 24 is provided in a position corresponding to the boss portion 21 of the adjacent first core plate 5 in the z-axis direction. In the boss portion 24, the oil passage hole 11 is adjacent to the through hole 13 provided at the boss portion 26. The boss portion 24 is also disposed adjacent to the boss portion 25. The boss portion 25 is a boss corresponding to the second boss portion formed so as to protrude until abutting with the adjacent first core plate 5. The boss portion 24 is formed in a concavo-convex shape in the cross-sectional direction of the second core plate 6. Moreover, in the boss portion 24, the edge portion protruding from the second core plate 6, as seen in a plan view of the second core plate 6, has one shape continuous with the edge portion of the boss portion 25.
(35) The boss portion 23 around the through hole 13 in the first core plate 5 is joined to the boss portion 26 provided at the perimeter of through hole 13 of the second core plate 6 adjacent in the up/down direction. Accordingly, in a state of a plurality of the first core plates 5 and second core plates 6 having been joined, through hole 13 does not communicate with the oil flow path between plates 7 and coolant flow path between plates 8.
(36) As illustrated in
(37) The first fin plate 9 is joined, by a suitable method such as brazing, to flat portions in the second core plate 6 where boss portions 24, 25, 26 etc. are not provided. As illustrated in
(38) In a plan view, the first fin plate 9 has an anisotropy such that the flow path resistance in the direction parallel to the y-axis direction is less than the flow path resistance in the direction parallel to the x-axis direction. In other words, the first fin plate 9 has an anisotropy such that the flow path resistance in the direction parallel to the lateral side 9b is greater than the flow path resistance in the direction parallel to the longitudinal side 9a. In the oil flow path between plates 7, the first fin plate 9 is disposed so as to be in contact with both sides of a set of an adjacent pair of plates (first core plate 5 and second core plate 6) which demarcate the oil flow path between plates 7 between one set of oil passage holes 11.
(39) As illustrated in
(40) The second fin plate 10 is joined, by a suitable method such as brazing, to flat portions in the first core plate 5 where boss portions 21, 22, 23 etc. are not provided, and is positioned in the y-direction by a plurality of embossments 117 formed at the first core plate 5. As illustrated in
(41) In a plan view, the second fin plate 10 has an anisotropy such that the flow path resistance in the direction parallel to the y-axis direction is less than the flow path resistance in the direction parallel to the x-axis direction. In other words, the second fin plate 10 has an anisotropy such that the flow path resistance in the direction parallel to the lateral side 10b is greater than the flow path resistance in the direction parallel to the longitudinal side 10a. In the coolant flow path between plates 8, the second fin plate 10 is disposed so as to be in contact with both sides of a set of an adjacent pair of plates (first core plate 5 and second core plate 6) which demarcate the coolant flow path between plates 8 between one set of coolant passage holes 12.
(42) At the first core plate 5, an edge portion 27 is provided at the boss portion 21. The edge portion 27 functions as a second edge portion in contact with the coolant configured as a second fluid. The edge portion 27 is provided at the part of the boss portion 21 facing towards the central side of the first core plate 5; in other words, at the part facing the second fin plate 10. As illustrated in
(43) Because the edge portion 27 comprises the above shape, the flow of coolant from one side of the coolant passage hole 12 towards the other side of the coolant passage hole 12 on the first core plate 5 in the heat exchange portion 2, seeps into the second fin plate 10 whilst spreading towards the second direction (x-direction) of the coolant flow path between plates 8 following along one side of edge portion 27, as illustrated by arrow marks L11A, L11B, L11C in
(44) At the second core plate 6, an edge portion 28 is provided at the boss portion 25. The edge portion 28 functions as a first edge portion in contact with the oil configured as a first fluid. The edge portion 28 is provided at the part of the boss portion 25 facing towards the central side of the second core plate 6; in other words, at the part facing the first fin plate 9. As illustrated in
(45) Because the edge portion 28 comprises the above shape, the flow of oil flowing through the oil flow path between plates 7, from one side of oil passage hole 11 towards the other side of oil passage hole 11 on the second core plate 6 in the heat exchange portion 2, is as illustrated by arrow marks L21A, L21B, L21C in
(46) Furthermore, the back surface side (recessed portion side) of the boss portion 24 also functions as an oil pathway. A pathway space, sandwiched between the back surface side of edge portion 27A of the boss portion 24 and edge portion 26A formed by the boss portion 26, is also formed such that the respective edge portions are relatively angled, which similarly contributes to the spreading of oil.
(47) In the oil cooler 1 configured as in the above, the boss portion 21 and the boss portion 24, which are formed surrounding the through hole 13 and oil passage hole 11, are brazed. Thus, when the first and second core plates 5, 6 are brazed, a large brazing area can be ensured by the boss portions 21, 24 (first boss portions), because the boss portions 21, 24 which have a large contour and a large area. Further, in the coolant flow path between plates 8, the space can be eliminated between the first and second core plates 5, 6 adjacent in the stacking direction between the boss portions 21, 24. Because plate deformation due to fluid pressure occurs due to a fluid pressure difference of the coolant and oil, countermeasures are especially needed when the pressure on the oil side becomes high and the pressure differential becomes large. However, in this oil cooler 1, because the space between the first and second core plate 5, 6 (coolant flow path between plates 8) does not exist at the positions of the boss portions 21, 24, a pressure differential between the oil and coolant does not occur. Therefore, even if the oil pressure becomes high, there is no deformation due to the oil pressure being applied to the plate flat portion of the perimeter of the oil passage hole 11. Furthermore, the portion where the first boss portions were brazed have a plate thickness of two overlapping plates, hence the strength of the perimeters of oil passage hole 11 and through hole 13, which are fluid ports, can be improved. Moreover, as illustrated in
(48) Moreover, boss portions 23, 26 (third boss portions) of the perimeter of the through hole 13 are formed so as to protrude until abutting with an adjacent plate in the reverse direction to the boss portions 21, 24. Thus, because the boss portions 23, 26 are coupled in the stacking direction and a columnar structure is formed in the oil flow path between plates 7, the perimeter of the oil passage hole 11 adjacent to the through hole 13 is supported and the deformation strength can be raised.
(49) Accordingly, according to the oil cooler 1 thereby configured, the rigidity of the perimeter of the fluid port portion outside the first fin plate 9 and the second fin plate 10 can be improved, and thus plate deformation due to expansion of the heat exchanger can be suppressed when internal pressure occurring inside the heat exchanger rises, and the strength of oil cooler 1 as a whole can be improved.
(50) Although the embodiment of the present invention is explained as above, the present invention is not limited to the heat exchanger according to the aforementioned embodiment of the present invention, and includes any mode encompassed in the concept and claims of the present invention. Moreover, the constituents may be suitably and selectively combined so as to exhibit at least a portion of the aforementioned object and effect. For example, shapes, materials, arrangements and sizes etc. of the constituents in the aforementioned embodiment may be suitably changed depending on the specific mode of use of the present invention.
(51) In the oil cooler 1, an example was explained in which the flow-through portion provided at the boss portion 21 and the boss portion 24 which surround the boss portion 23 and the boss portion 26, is the oil passage hole 11, for example. However, there is no limitation on the type of fluid flowing through the flow-through portion.