Intercooler assembly for vehicle
10184432 ยท 2019-01-22
Assignee
Inventors
- Seng-Joo Yang (Hwaseong-si, KR)
- Hye-Dong Nam (Bucheon-si, KR)
- Jin-Kwan Lee (Hwaseong-si, KR)
- Dang-Hee PARK (Seoul, KR)
- Su-Whan Kim (Hwaseong-si, KR)
Cpc classification
B60Y2306/01
PERFORMING OPERATIONS; TRANSPORTING
F02M26/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60Y2410/113
PERFORMING OPERATIONS; TRANSPORTING
B60Y2304/07
PERFORMING OPERATIONS; TRANSPORTING
F02B29/0456
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K11/08
PERFORMING OPERATIONS; TRANSPORTING
F02M26/31
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K11/04
PERFORMING OPERATIONS; TRANSPORTING
International classification
F02M26/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M26/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B29/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An intercooler assembly for a vehicle includes an intercooler, and a duct connected to a front side of the intercooler and guiding outside air to the intercooler. The duct is in surface-contact with an outer surface of the intercooler, at which the air flowing into the duct flows out to the intercooler.
Claims
1. An intercooler assembly for a vehicle comprising: an intercooler; and a duct detachably connected to a front side of the intercooler and guiding outside air into the intercooler, wherein the duct is in surface-contact with upper and lower surfaces of the intercooler at which the air flowing into the duct flows out to the intercooler, wherein the duct and the intercooler are disposed along a longitudinal direction of the vehicle at the same level and have a common central axis of extension along the longitudinal direction of the vehicle, wherein the contact surface between the duct and the intercooler is arranged in a width direction of the vehicle, wherein the duct comprises at least two fastening plates connected to the duct and extending from a rear end of the duct toward the intercooler, the at least two fastening plates surface-contacting the upper and lower surfaces of the intercooler, wherein the intercooler comprises fastening protrusions protruding from the upper and lower surfaces of the intercooler, wherein each of the at least two fastening plates has fastening holes, into which the fastening protrusions are fitted, and sliding slots communicating with the fastening holes and extending from the fastening holes toward a front side of the duct, and wherein the fastening holes communicate with the sliding slots via a stepped portion formed between the fastening holes and the sliding slots.
2. The intercooler assembly of claim 1, wherein each of the at least two fastening plates further includes a slope formed at arear end of each of the fastening plates, the slope being inclined toward the rear end of each of the fastening plate from the fastening holes such that a thickness of the fastening plate decreases toward the rear end of each of the fastening plate.
3. The intercooler assembly of claim 1, wherein the at least two fastening plates are provided on upper and lower sides of the duct to avoid contact with a pipe which is mounted to side surfaces of the intercooler.
4. The intercooler assembly of claim 3, wherein the intercooler comprises a fastening guide extending from left and right sides of the intercooler to which the pipe is mounted, the fastening guide having an end being bent inwardly toward the upper surface of the intercooler to support upper surfaces of each of the at least two fastening plates.
5. The intercooler assembly of claim 3, further comprising: a sealing guide mounted to left and right sides of the intercooler to which the pipe is mounted, the sealing guide contacting the rear end of the duct; and a flexible connector mounted to left and right sides of the duct, the flexible connector contacting the sealing guide.
6. The intercooler assembly of claim 5, wherein the duct is fastened to the intercooler and upper and lower surfaces of the flexible connector is in contact with an inner surface of the sealing guide.
7. The intercooler assembly of claim 1, wherein when the duct is pushed backward during low speed collision, the fastening protrusions passes through the stepped portion and the fastening protrusions are guided by locating in the sliding slots.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(13) Hereinafter, an intercooler assembly for a vehicle in accordance to exemplary embodiments of the present inventive concept will be described below in more detail with reference to the accompanying drawings.
(14) Referring to
(15) Since the connection of the intercooler 10 and the duct 20 is made by surface-contacting of the upper and lower surfaces of the intercooler 10 and the duct 20, a leakage of air may be prevented between the intercooler 10 and the duct 20. In the related art, the intercooler and the duct are not surface-contacted such that some of the air flowing into the duct 20 is leaked through a gap between the intercooler 10 and the duct 20. However, in the present disclosure as described above, since the intercooler 10 and the duct 20 are surface-contacted, all of the air flowing into the duct 20 can flow to the intercooler 10.
(16) In order to ensure the surface-contact of the intercooler 10 and the duct 20, the duct 20 includes a fastening plate 21 extending from the duct 20 rearwards toward the intercooler 10.
(17) The fastening plate 21 may be mounted at a rear end of the duct 20, extending rearwards from which the air is discharged from duct 20 toward the intercooler 10.
(18) The fastening plate 21 may be installed to surround the upper and lower surfaces of the intercooler 10. As the fastening plate 21 is formed to surround the upper and lower surfaces of the intercooler 10, the intercooler 10 and the duct 20 may be surface-contacted.
(19) In order to fasten the fastening plate 21 to the intercooler 10, fastening protrusions 11 may be formed on the intercooler 10, and fastening holes 21b into which the fastening protrusions 11 are inserted may be formed at the fastening plate 21. When the duct 20 slides toward and engages to the intercooler 10, the fastening protrusions 11 are fitted into the fastening holes 21b so that the duct 20 and the intercooler 10 are assembled.
(20) Referring to
(21) Further, a sliding slot 21c may be formed longitudinally to communicate with the fastening holes 21b on the fastening plate 21. The sliding slot 21c is formed at a front side of the fastening holes 21b, that is, toward the front end of the duct 20.
(22) A stepped portion may be formed between the fastening holes 21b and the sliding slot 21c at which the fastening holes 21b and the sliding slot 21c communicated with each other as shown in
(23) The fastening plate 21 may be formed around the entire periphery of the duct 20, or it may be formed only on the partial periphery of the duct 20. That is, as shown in
(24) If the intercooler 10 is arranged in the vertical direction (perpendicularly with respect to
(25) When the fastening plate 21 is fastened in the intercooler 10, the fastening guide 12 may fix both ends of the fastening plate 21. The fastening guide 12 protrudes from a side of the intercooler 10, and an upper portion of the fastening guide 12 is bent, and thus, when the fastening plate 21 is fastened to the intercooler 10, the both side ends of the fastening plate 21 is fixed by pressing of the fastening guide 12.
(26) On the other hand, the intercooler 10 and the duct 20 may be coupled to each other through a sealing guide 13 and a flexible connector 22 at which the pipe 15 is mounted to the intercooler 10.
(27) The sealing guide 13 may be formed at the opposite side of the pipe 15 on the intercooler 10 at which the fastening plate 21 does not surface-contact the intercooler 10. The sealing guide 13 may extend from a front side of the intercooler 10 in a predetermined length at the side of the intercooler 10.
(28) The flexible connector 22 may be provided at the rear end in the duct 20. The flexible connector 22 may extend from the rear end of the duct 20 at which the fastening plate 21 is not formed. The flexible connector 22 is made of a deformable material such as synthetic rubber. Since the flexible connector 22 deforms at the low speed collision of a vehicle, it is possible to prevent deformation of the intercooler 10.
(29) The flexible connector 22 may have an outer surface thereof in contact with an inner surface of the sealing guide 13. When the duct 20 is fastened to the intercooler 10 using the fastening plate 21, the flexible connector 22 may be fastened in order to be in contact with the inner surface of the sealing guide 13.
(30) Hereinafter, a process of the intercooler assembly for vehicle according to the present disclosure will be described.
(31) As shown in
(32) When sliding the duct 20 onto the intercooler 10, as shown in
(33) As described above, in the process of combining the duct 20 to the intercooler 10 without using a separate tool, it may be easy to assemble by sliding the duct 10 onto the intercooler 10.
(34) When the duct 20 is fitted to the intercooler 10, since the fastening plate 21 of the duct 20 and the flexible connector 22 surface-contact with the upper and lower surfaces of the intercooler 10, fuel efficiency is improved as cooling efficiency of the intercooler 10 is improved by preventing a leakage of air between the intercooler 10 and the duct 20.
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(37) By surface-contacting the duct 20 and the intercooler 10, the air leakage is prevented.
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(39) When a vehicle is in the low speed collision, the duct 20 is pushed toward a rear side of the vehicle by an impact. When the duct 20 is pushed, the duct 20 moves rearwards, however, the intercooler 10 may be maintained.
(40) That is, when the duct 20 is pushed rearwards by the impact, fitting between the fastening holes 21b of the duct 20 and the fastening protrusions 11 of the intercooler 10 may be damaged, and while the duct 20 is pushed rearwards, the sliding slot 21c moves rearwards along the fastening protrusions 11.
(41) In addition, since the flexible connector 22 is deformable, only the flexible connector 22 may be deformed as the duct 20 moves backwards.
(42) Thus, when the duct 20 is pushed rearwards at the low speed collision, the fastening plate 21 moves toward the sliding slot 21c, and by deforming only the flexible connector 22, it is possible to prevent breakage of the intercooler 10.