HEAT EXCHANGER, AND EXHAUST HEAT RECOVERY APPARATUS HAVING THE HEAT EXCHANGER
20170362988 · 2017-12-21
Assignee
Inventors
- Kazunari MATSUURA (Toyota-shi, Aichi-ken, JP)
- Masahiro SHIRAI (Handa-shi, Aichi-ken, JP)
- Toshiya TOKUDA (Nagoya-shi, Aichi-ken, JP)
- Hisashi NISHINO (Nagakute-shi, Aichi-ken, JP)
- Yuuichi KAIDO (Okazaki-shi, Aichi, JP)
Cpc classification
F01N2410/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2240/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F3/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/001
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/0265
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D7/1692
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2240/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D21/0003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P2060/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T10/12
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F01N13/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F3/042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F27/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D9/0031
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D9/0068
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F3/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01N5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F27/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A heat exchanger comprises a plurality of heat exchange segments juxtaposed in a housing, and a plug member connected fluid-tightly to the housing, and supporting the heat exchange segments to provide a coolant or cooling medium passage in each gap between the heat exchange segments adjacent to each other. Each heat exchange segment comprises a case having an opening only on a surface of the case, at least outside of the opening being plugged fluid-tightly by the plug member, and a guide member, e.g., fin accommodated in the case, and provided with a plurality of passages allowing only gas flow in a predetermined direction, and gas intake passages and gas exhaust passages at the upstream and downstream thereof, wherein an opening of the case is provided with a gas inlet port communicated with the gas intake passage, and a gas outlet port communicated with the gas exhaust passages.
Claims
1. A heat exchanger for heat exchanging in a housing between exhaust gas and cooling medium, comprising: a housing in which the heat exchanging occurs, the housing possessing an inner surface; a plurality of heat exchange segments juxtaposed in the housing and spaced apart from one another and from the inner surface of the housing; and a plug member connected fluid-tightly to the housing, the plug member supporting the plurality of heat exchange segments to provide cooling medium passages in each of the gaps between the heat exchange segments adjacent to each other, and between the heat exchange segments and the inner surface of the housing; each heat exchange segment comprising; a case having an opening only on a surface of the case, at least an outside of the opening being plugged fluid-tightly by the plug member, and a guide member accommodated in the case, the guide member having a plurality of passages allowing gas flow in only a predetermined direction, and gas intake passages and gas exhaust passages at upstream and downstream of the plurality of passages of the guide member, and the opening of the case of each segment being provided with a gas inlet port communicated with the gas intake passages, and a gas outlet port communicated with the gas exhaust passages.
2. The heat exchanger of claim 1, wherein the guide member of each heat exchange segment comprises a fin formed by a heat exchange plate in a wave shape having a continuous S-like cross section, wherein a side surface of the fin in an extending direction closes the opening of the case between the gas inlet port and the gas outlet port, and wherein opposite end faces of the fin communicate with the gas inlet port and the gas outlet port, respectively.
3. The heat exchanger of claim 1, further comprising; a cooling medium inlet port and a cooling medium outlet port formed in the housing to be communicated with the cooling medium passages; and a flow guide plate disposed between the cooling medium inlet port and the cooling medium outlet port.
4. The heat exchanger of claim 3, wherein the flow guide plate possesses a comb-shaped form that includes teeth, and wherein a part of the teeth configuring the comb-shaped form is disposed in each gap between the plurality of heat exchange segments adjacent to each other.
5. The heat exchanger of claim 4, wherein the flow guide plate has a bent portion with a tip end of a part of the teeth configuring the comb-shaped form being bent, the bent portion providing a cooling medium guide passage to said each gap.
6. The heat exchanger of claim 1, wherein adjacent side surfaces of the cases of the plurality of heat exchange segments each have at least a protruded portion so that the protruded portions are located at a common position on the side surfaces of the cases, and wherein the protruded portion of each case is disposed within a respective one of the cooling medium passages.
7. The heat exchanger of claim 1, wherein the plug member has a plurality of slits formed in parallel with each other, and wherein the openings of the cases are fitted into the slits at the outside of the openings respectively, to support the plurality of heat exchange segments.
8. An exhaust heat recovery apparatus comprising: a main exhaust passage into which is introduced exhaust gas from an internal combustion engine; a bypass passage branched off from a part of the main exhaust passage to provide a gas inlet port, and merged into another part of the main exhaust passage to provide a gas outlet port; a heat exchanger for heat exchanging with the exhaust gas passing through the bypass passage to recover exhaust heat, wherein the heat exchanger comprises: a plurality of heat exchange segments juxtaposed in a housing that possesses an inner surface, the plurality of heat exchange segments being spaced apart from one another and from the inner surface of the housing; and a plug member connected fluid-tightly to the housing, the plug member supporting the plurality of heat exchange segments to provide cooling medium passages in each gap between the heat exchange segments adjacent to each other, and between the heat exchange segments and the inner surface of the housing; each heat exchange segment configuring the plurality of heat exchange segments, comprising; a case having an opening on only one surface of the case, at least outside of the opening being plugged fluid-tightly by the plug member, a guide member accommodated in the case, the guide member having a plurality of passages allowing gas flow in only a predetermined direction, and gas intake passages and gas exhaust passages at upstream and downstream of the plurality of passages of the guide member, and the opening of the case of each segment being provided with a gas inlet port communicated with the gas intake passages to configure the gas inlet port of the bypass passage, and a gas outlet port communicated with the gas exhaust passages to configure the gas outlet port of the bypass passage.
9. The exhaust heat recovery apparatus of claim 8, wherein the guide member of each heat exchange segment comprises a fin formed by a heat exchange plate in a wave shape having a continuous S-like cross section, wherein a side surface of the fin in an extending direction closes the opening of the case between the gas inlet port and the gas outlet port, and wherein opposite end faces of the fin communicate with the gas inlet port and the gas outlet port, respectively.
10. The exhaust heat recovery apparatus of claim 8, wherein the heat exchanger further comprises: a cooling medium inlet port and a cooling medium outlet port formed in the housing to be communicated with the cooling medium passages; and a flow guide plate disposed between the cooling medium inlet port and the cooling medium outlet port, wherein the flow guide plate possesses a comb-shaped form that includes teeth, and wherein a part of the teeth configuring the comb-shaped form is disposed in each gap between the plurality of heat exchange segments adjacent to each other.
11. The exhaust heat recovery apparatus of claim 10, wherein the flow guide plate has a bent portion with a tip end of a part of the teeth configuring the comb-shaped form being bent, the bent portion providing a cooling medium guide passage to said each gap.
12. The exhaust heat recovery apparatus of claim 8, wherein adjacent side surfaces of the cases of the plurality of heat exchange segments each have at least a protruded portion so that the protruded portions are located at a common position on the side surfaces of the cases, and wherein the protruded portion of each case is disposed within a respective cooling medium passage.
13. The exhaust heat recovery apparatus of claim 8, wherein the housing of the heat exchanger configures an upper housing placed above the main exhaust passage with the opening being positioned below, and wherein a lower housing is connected to the upper housing to form an enclosure shape, the main exhaust passage being provided within the lower housing.
14. The exhaust heat recovery apparatus of claim 13, further comprising: a valve device opening or closing communication between the main exhaust passage and the bypass passage, the valve device being provided with at least a valve member accommodated in the lower housing; a branch section branching off from the main exhaust passage into the bypass passage; and a merged section merged into the main exhaust passage from the bypass passage through the valve member.
15. The exhaust heat recovery apparatus of claim 14, wherein the valve device comprises: a first valve member opening or closing the main exhaust passage; a second valve member opening or closing the bypass passage; a single shaft member supporting the first valve member and second valve member; and a holding member holding the shaft member to be enclosed in the holding member, the holding member being supported on at least one side surface of the lower housing.
16. The exhaust heat recovery apparatus of claim 15, wherein the second valve member is disposed to open or close the bypass passage at the merged section, and wherein the second valve member is disposed to close the bypass passage and shield the holding member against the main exhaust passage, when the first valve member opens the main exhaust passage.
17. The exhaust heat recovery apparatus of claim 15, further comprising a bracket secured to at least one of the upper housing and the lower housing, wherein the valve device is provided with an actuator for driving the shaft member to be rotated, and wherein the actuator is supported on the bracket, and the holding member is fitted into the bracket.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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EMBODIMENTS FOR CARRYING OUT THE INVENTION
[0058] Hereinafter, will be explained desirable embodiments of the present invention referring to drawings.
[0059] The heat exchanger 1 of the present embodiment has a housing thereof configured by the upper housing 21 of the exhaust heat recovery apparatus, and a plurality of (five in the present embodiment) heat exchange segments (represented by “10”), as shown in
[0060] Each guide member 12 is configured to have a plurality of passages (GP), which allow gas flow in only a predetermined direction (longitudinal direction of the case 11 according to the present embodiment), and gas intake passages (GI) and gas exhaust passages (GO) at their upstream and downstream, so that an opening of each case 11 is provided with a gas inlet port 11a which is communicated with the gas intake passage (GI), and a gas outlet port 11b which is communicated with the gas exhaust passages (GO). Five heat exchange segments 10 as described above are placed in parallel with a predetermined gap being spaced each other, and enclosed by the upper housing 21, which has an opening 21a at the same side surface as the opening surface 10a of each heat exchange segment 10. Accordingly, the five heat exchange segments 10 are accommodated in the upper housing 21, so that the gas inlet port 3a and gas outlet port 31b of the bypass passage 3 are configured respectively by the gas inlet port 11a and gas outlet port 11b, which are provided at the fore and back of each heat exchange segment 10 in the predetermined direction (longitudinal direction of the case 11).
[0061] The above-described heat exchanger 1 has the plug member 23 which separates fluid-tightly within the upper housing 21, and plugs fluid-tightly at least outside of the opening of the case 11. The plug member 23 is formed with five slits (represented by 23a) in parallel with each other, as shown in
[0062] The flow guide plate 24 possesses a comb-shaped form as shown in
[0063] The case 11 of each heat exchange segment 10 is formed by two lid members 11x and 11y with their opened side wall portions being connected together, as shown in
[0064] According to the present embodiment, the guide member 12 of each heat exchange segment 10 is configured by a fin 13, which is formed by a single heat exchange plate in a wave shape having a continuous S-like cross section, as shown in
[0065] On the other hand, the valve device 4 is installed in the lower housing 22, within which the main exhaust passage 2 is provided. Therefore, a branched section 2a where the bypass passage 3 is branched off from the main exhaust passage 2, and a merged section 2b where the bypass passage 3 is merged into the main exhaust passage 2 (through a second valve member 42 as described later) are provided within the lower housing 22. As shown in
[0066] The partition wall member 26 is formed in a saddle type case as shown in
[0067] Accordingly, the partition wall member 26 is placed with its opening 26e being opened at the downstream of the valve device 4 of the main exhaust passage 2, as shown in
[0068] With respect to the heat exchanger 1 as configured above, hereinafter, an assembling process of main parts of it will be described referring to
[0069] As shown in
[0070] The upper housing 21 configuring the housing of the heat exchanger 1 is formed in a case shape as shown in
[0071] On the other hand, the valve device 4 used for the exhaust heat recovery apparatus of the present embodiment, is provided with a first valve member 41 for opening or closing the main exhaust passage 2, a second valve member 42 for opening or closing the bypass passage 3, a single shaft member 43 for supporting the first and second valve members 41, 42 and a holding member 44 for holding the shaft member 43 to be enclosed in the holding member 44, to be supported on at least one side surface (left side surface in
[0072] The second valve member 42 of the present embodiment is configured by a curved plate fixed to a support portion of the disc-shaped first valve member 41, and configured to be pivotally moved in an integrated manner with the first valve member 41 about the shaft member 43, which is supported to be rotatable against the holding member 44 (with its opposite ends being supported by the partition wall member 26). And, the second valve member 42 is disposed so as to open or close the bypass valve 3 at the merged section 2b. When the first valve member 41 opens the main exhaust passage 2, therefore, the second valve member 42 closes the bypass valve 3 (not necessarily close it completely), and shields the holding member 44 from the exhaust gas in the main exhaust passage 2. Consequently, the holding member 44 and therefore the shaft member 43 may be protected from being exposed to high temperature exhaust gas in the main exhaust passage 2. Also, as described before, since the partition wall members 25 and 26 are joined to be disposed as an integrated member, not only when they are operated but also when they are assembled, the positional relationship of the first and second valve members 41, 42 relative to the valve seat 25a and through hole 26a can be maintained surely.
[0073] As shown in
[0074] Then, as shown in
[0075] In the present embodiment, as for the actuator 50, as shown in
[0076] According to the exhaust heat recovery apparatus as configured above, the embodiment as shown in
[0077] On the other hand, in the case where it is required to have the exhaust efficiency at the time of middle rotation to high rotation of the internal combustion engine (not shown), the main exhaust passage 2 is fully opened, as indicated by two-dotted chain line in
[0078] Next,
[0079] Also, according to the embodiment as shown in
[0080] As described above, in any embodiments, a plurality of heat exchange segments 10 are accommodated in the upper housing 21, and the exhaust gas passages (GI, GP, GO) are formed in each heat exchange segment 10, respectively, by which the bypass passage 3 is configured. Therefore, the efficient heat exchange can be made by the heat exchangers 1, 1x and 1y, with a heat capacity of the bypass passage 3 and the space required for it being made as small as possible, so that miniaturization of the exhaust heat recovery apparatus as a whole can be achieved.
[0081] Not only a plurality of heat exchange segments 10 are arranged in such a state as those being installed in the vehicle as shown in
DESCRIPTION OF CHARACTERS
[0082] 1, 1x, 1y heat exchanger [0083] 2 main exhaust passage [0084] 2a branch section [0085] 2b merged section [0086] 3 bypass passage [0087] 3a, 11a gas inlet port [0088] 3b, 11b gas outlet port [0089] 4 valve device [0090] 10 heat exchange segment [0091] 11 case [0092] 12 guide member [0093] 13, 13x, 13y fin [0094] 21 upper housing [0095] 22 lower housing [0096] 23 plug member [0097] 24 flow guide plate [0098] 25, 26 partition wall member [0099] 27 wire mesh [0100] 28 bracket [0101] 41 first valve member [0102] 42 second valve member [0103] 43 shaft member [0104] 44 holding member [0105] 45 return spring [0106] 46 lever [0107] 50, 60 actuator