Flow channeling air intake mixing device for internal combustion engine
09903266 ยท 2018-02-27
Assignee
Inventors
Cpc classification
F02B31/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B31/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02B31/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B31/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A system for targeting an air-fuel mixture flow pattern within the intake port of an internal combustion engine is provided. The system includes a flow pattern control plate movably provided within the intake port. The plate includes at least one air-fuel mixture funneling opening. The opening is rounded and is preferably ovoid. Preferably there are two openings with one opening being larger than the other. The upstream side of the plate includes a sloped surface formed from its edge toward the openings, thus funneling the air-fuel mixture passing from the upstream side, through the plate, and to the downstream side. The size, shape and number of openings can be selectively adjusted thus making the system tunable. The intake port includes a sloped portion formed on its inner surface adjacent the flow pattern control plate to funnel the flow of the air-fuel mixture through the at least one plate opening.
Claims
1. An internal combustion engine comprising: a cylinder head; an intake valve mounted in said cylinder head; an intake port associated with said cylinder head; and a flow pattern control plate movably provided within said port, said plate having a pivoting end pivotably attached to said intake port, an air-fuel mixture funneling end having an opening opposite said pivoting end, and first and second sides, a slope being formed from said pivoting end to said funneling end, and a slope being formed between said sides, said flow pattern control plate having two air-fuel mixture funneling openings formed therein defined by two side arms each of which has a leading end and an intermediate nosepiece having a leading end, said leading end of each of said arms having a first thickness and said leading end of said nosepiece having a second thickness, said first thickness being greater than said second thickness.
2. The internal combustion engine of claim 1, wherein said openings each have a shape and wherein said shape is ovoid.
3. The internal combustion engine of claim 1, wherein one of said openings is larger than the other of said openings.
4. The internal combustion engine of claim 1, wherein said openings are the same size.
5. The internal combustion engine of claim 1, wherein said intake port includes a combustion chamber attachment end and a plenum, said flow pattern control plate being provided within said intake port between said attachment end and said plenum.
6. The internal combustion engine of claim 5, wherein said intake port includes an inner surface and where a sloped portion is formed on said inner surface adjacent said flow pattern control plate.
7. The internal combustion engine of claim 6, wherein said flow pattern control plate includes an indented area to accommodate said sloped portion of said inner surface.
8. The internal combustion engine of claim 6, in which said intake port has a long axis and said flow pattern control plate is movable between a first position in which said plate is substantially perpendicular to said long axis of said intake port and a second position in which said plate is substantially parallel to said long axis of said intake port.
9. The internal combustion engine of claim 8, in which said intake port includes a recessed area to accommodate said plate when in said second position.
10. A flow pattern control plate for use with an engine of the type including an air intake port which communicates with a cylinder in an internal combustion engine, the plate comprising: a body having a pivoting end, a first side and a second side; rounded first and second air-fuel mixture funneling openings formed through said body between said sides and opposite said pivoting end, said openings being defined by two side arms each of which has a leading end and an intermediate nosepiece having a leading end, said leading end of each of said arms having a first thickness and said leading end of said intermediate nosepiece having a second thickness, said first thickness being greater than said second thickness; and a sloping surfaced defined between said first and second sides.
11. The flow pattern control plate of claim 10, wherein said openings have a shape and wherein said shape is ovoid.
12. The flow pattern control plate of claim 10, wherein one of said openings is larger than the other of said openings.
13. The internal combustion engine of claim 10, wherein said openings are the same size.
14. A method of controlling the flow pattern of an air-fuel mixture entering an internal combustion engine from an intake port between changes in low to high engine speeds, the method comprising the steps of: positioning a flow pattern control plate within the intake port, said plate having a pivoting end, an air-fuel mixture funneling opening opposite said pivoting end, first and second sides having a sloping surface formed therebetween and two air-fuel mixture funneling openings formed therein defined by two side arms and an intermediate nosepiece, each of said two side arms having a leading end and said nosepiece having a leading end, said leading end of each of said arms having a first thickness and said leading end of said intermediate nosepiece having a second thickness, said first thickness being greater than said second thickness; and moving said plate to a funneling position during low engine speed and to a non-funneling position during high engine speed.
15. The method of controlling the flow pattern of an air-fuel mixture of claim 14, wherein said openings are selected from the group consisting of different sizes or the same size.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) For a more complete understanding of this invention, reference should now be made to the embodiments illustrated in greater detail in the accompanying drawings and described below by way of examples of the invention wherein:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
(12) In the following figures, the same reference numerals will be used to refer to the same components. In the following description, various operating parameters and components are described for different constructed embodiments. These specific parameters and components are included as examples and are not meant to be limiting.
(13) In general, the disclosed inventive concept provides a system that introduces a targeted flow pattern of the air-fuel mixture. The disclosed inventive concept meets engine system functional requirements. The air-fuel mixture flow pattern is targeted toward a specific region of the intake port. Thus the system is capable of delivering an in-cylinder flow pattern that improves combustion efficiencies and thus improves fuel economy.
(14) The system includes a flow pattern control plate having a pair of air-fuel mixture-passing openings that is usable in combination with an intake port having a sloped interior surface adjacent the plate. The geometry of these elements contributes to the funneling of the air-fuel mixture toward the center of the intake port bore delivering improved tumble motion. By changing the size of the openings, the in-cylinder swirl motion of the air-fuel mixture can be added and may be tuned to adjust the amount of swirl by biasing the size of the plate openings for split port applications.
(15) Particularly, and referring to
(16) The body 12 of the movable flow pattern control plate 10 includes a pivoting intake port attachment end 14 and a funneling end 16. The outer or upstream side of the body 12 includes a peripheral surface 18 and a central area 20. This configuration is most clearly seen in
(17)
(18) Referring to
(19) Still referring to
(20) As noted above, the disclosed inventive concept allows for the tuning of the tumble and swirl of the air-fuel mixture flow. In addition to adjusting the degree of slope of the injector pocket 32, the size of the openings 22 and 24 may be adjusted. Specifically, and with reference to
(21) The openings 22 and 24 may be the same size or may be different sizes. As illustrated in
(22)
(23) As illustrated in
(24) The disclosed invention as set forth above overcomes the challenges faced by known flow channeling air intake mixing devices. However, one skilled in the art will readily recognize from such discussion, and from the accompanying drawings and claims, that various changes, modifications and variations can be made therein without departing from the true spirit and fair scope of the invention as defined by the following claims.