Intake manifold secondary gas distribution via structural posts
09541044 ยท 2017-01-10
Assignee
Inventors
- Ray Host (Mount Clemens, MI, US)
- Milind B. Kulkarni (Canton, MI, US)
- Calvin C. Tran (Canton, MI, US)
- Joshua D. Simon (Sylvania, OH, US)
Cpc classification
F02M35/1036
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/104
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/10347
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/10321
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/10052
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/10222
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
An intake manifold for an internal combustion engine comprises upper and lower shell members with outer flanges. The shell members define a manifold cavity having a plenum and a plurality of runners. The upper shell includes an upper post formed as an indentation into the plenum with a tunnel wall and a terminus wall. The lower shell includes a lower post formed as an indentation into the plenum with a tunnel wall and a terminus wall. The terminus walls are attached to provide a brace across the plenum. One of the posts includes an orifice penetrating the tunnel wall. A sealed coupler extends from the one post and is adapted to receive a secondary gas for mixing within the plenum. Thus, secondary gases can be introduced without additional structures that could impede gas flow and could increase manufacturing cost.
Claims
1. An intake manifold comprising: an upper shell member with an outer flange; a lower shell member with an outer flange joined to the outer flange of the upper shell member to define a manifold cavity having a plenum and a plurality of runners, wherein the upper shell includes an upper post formed as an indentation into the plenum with a tunnel wall and a terminus wall, wherein the lower shell includes a lower post formed as an indentation into the plenum with a tunnel wall and a terminus wall, wherein the terminus walls are attached to provide a brace across the plenum, and wherein one of the posts includes an orifice penetrating the tunnel wall; and a sealed coupler extending from the one post and adapted to receive a secondary gas for mixing within the plenum.
2. The manifold of claim 1 wherein the coupler is comprised of a separate unit sealed to the tunnel wall by an O-ring, wherein the orifice is disposed intermediate of the O-ring and the terminus wall.
3. The manifold of claim 2 further comprising a bracket mounting the coupler onto the shell member and compressing the O-ring.
4. The manifold of claim 1 wherein the upper and lower shell members are comprised of molded polymeric material, and wherein the outer flanges and the terminus walls are joined by friction welding.
5. The manifold of claim 1 wherein the one post is the upper post.
6. The manifold of claim 1 further comprising a flow guide on a plenum side of the tunnel wall of the one post to deflect secondary gas passing through the orifice into the plenum.
7. A method of manufacturing an intake manifold for an internal combustion engine, comprising the steps of: molding a polymeric upper shell member having an outer flange and an upper post section formed as an indentation with a tunnel wall and a terminus wall; molding a polymeric lower shell member having an outer flange and a lower post section formed as an indentation with a tunnel wall and a terminus wall; friction welding the upper and lower shell members at the outer flanges and at the terminus walls to define a plenum with the joined post sections providing a brace across the plenum reducing vibrations, wherein the tunnel wall of one of the shell members includes an orifice; and mounting a sealed coupler extending from the post section of the one shell member adapted to convey a secondary gas through the orifice for mixing within the plenum.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
(10) Referring to
(11) Post 20 has an upper post section 21 formed as an indentation 22 into an outer surface of plenum section 15. Post 20 has a lower post section 23 formed as an indentation into an outer surface 24 of lower shell member 12. Flanges 17 and 18 are coupled together in a friction welding process, during which adjacent ends of post sections 21 and 23 are friction welded, thereby creating a single substantially rigid post 20 extending between upper shell member 11 and lower shell member 12. Additional posts such as a post 25 can be assembled in the same manner. Secondary gas ports can be integrated in more than one of the posts, but one such port will normally provide enough gas capacity. Multiple ports may be useful when there is a desire to inject secondary gas at various different locations in relation to the runners.
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(13) An upper or lower post in a shell member provides an advantageous site for locating a secondary gas port, especially a post which is located toward an upstream end of a plenum section near the main inlet of the intake manifold. As shown in
(14) A secondary gas port is shown in greater detail in
(15) In order to compress seal 60 and maintain sealed coupler 56 in its desired inserted position within tunnel wall 51, a bracket 62 may be employed. A flange 63 extending from body 57 bears against bracket 62. Bracket 62 has a first end 64 captured over a post 65 on upper shell member 50 and has a second end 66 fastened to ii) upper shell member 50 by a fastener (e.g., screw) 67. Many other attachment methods such as bonding or other types of fastening will occur to those skilled in the art.
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(20) By integrating a secondary gas port into a structural post of the intake ii) manifold as disclosed above, the present invention achieves improved flow as a result of lowering the internal obstructions to flow. The invention can be manufactured at low cost using well established processes. In particular, a polymeric upper shell member can be molded with known materials having an outer flange and an upper post section formed as an indentation with a tunnel wall and a terminus wall. A polymeric lower shell member is also molded having an outer flange and a lower post section formed as an indentation with a tunnel wall and a terminus wall. The upper and lower shell members can be friction welded at the outer flanges and at the terminus walls to define a plenum with the joined post sections providing a brace across the plenum reducing vibrations. The tunnel wall of one of the shell members includes an orifice (e.g., as a result of the original molded shape or formed by a secondary operation such as drilling). A sealed coupler is mounted to the shell member so that it extends from the post section of the one shell member adapted to convey a secondary gas through the orifice for mixing within the plenum.