Aspirator for internal combustion engine having integrated flow bypass and check valve
09624882 ยท 2017-04-18
Assignee
Inventors
Cpc classification
F04F5/48
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04F5/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04F5/461
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/10229
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M35/104
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An aspirator for a brake system is provided having the integrated functions of a flow bypass and a check valve for automotive applications to achieve various suction flow openings in response to different engine operating condition to enhance brake boost performance. The brake system includes a brake vacuum booster, an engine having an intake manifold, an aspirator having a movable total flow divergence nozzle, the aspirator being connected to the manifold, and a vacuum line connecting the booster to the aspirator. The aspirator includes a body having an internal end wall. A biasing element such as a spring is provided between the movable total flow divergence nozzle and the internal end wall of the aspirator body. The body of the aspirator includes an air flow path having an upstream area and a downstream area. The movable motive flow nozzle is positioned in the downstream area of the flow path.
Claims
1. A brake system for a vehicle comprising: a brake vacuum booster; an engine having an intake manifold; an aspirator having a movable flow divergence nozzle, said aspirator being connected to said manifold; and a vacuum line connecting said booster to said aspirator.
2. The brake system for a vehicle of claim 1 wherein said aspirator has an air flow path, said path having an upstream area and a downstream area, said aspirator further including a motive flow nozzle positioned in said upstream area of said flow path.
3. The brake system for a vehicle of claim 2 where said divergence nozzle is positioned in said downstream area of said aspirator.
4. The brake system for a vehicle of claim 1 wherein said aspirator has a body, said body connecting said motive flow nozzle and said divergence nozzle.
5. The brake system for a vehicle of claim 4 further including a biasing element positioned between said divergence nozzle and said body.
6. The brake system for a vehicle of claim 5 wherein said biasing element is a spring.
7. The brake system for a vehicle of claim 1 wherein said aspirator further includes an inlet boss to attach said aspirator to said intake manifold.
8. An aspirator for use in a vehicle brake control system having a brake booster and an intake manifold, said aspirator comprising: a body; an ambient air inlet formed in said body; a vacuum line inlet formed in said body; an intake manifold attachment port formed in said body; and a movable flow divergence nozzle positioned in said body.
9. The aspirator for use in a vehicle brake control system of claim 8 wherein said body has an axial bore.
10. The aspirator for use in a vehicle brake control system of claim 9 wherein said movable flow divergence nozzle is positioned in said axial bore.
11. The aspirator for use in a vehicle brake control system of claim 9 wherein said divergence nozzle has a conically-shaped bore.
12. The aspirator for use in a vehicle brake control system of claim 9 wherein said axial bore of said body has an end wall, the aspirator further including a biasing element positioned between said end wall and said movable flow divergence nozzle.
13. The aspirator for use in a vehicle brake control system of claim 12 wherein said biasing element is a spring.
14. The aspirator for use in a vehicle brake control system of claim 9 wherein said bore has first and second spaced apart nozzle movement-limiting shoulders.
15. The aspirator for use in a vehicle brake control system of claim 8 wherein said body has a side wall and wherein said vacuum line inlet is formed in said side wall.
16. An integrated aspirator assembly for a vehicle comprising: a brake vacuum booster; an engine having an intake manifold; a flow path between said booster and said manifold; an aspirator positioned ins aid flow path, said aspirator including a downstream area; and a flow divergence nozzle movably position in said downstream area.
17. The integrated aspirator assembly for a vehicle of claim 16 wherein said aspirator includes an upstream area and a motive flow nozzle positioned in said upstream area.
18. The integrated aspirator assembly for a vehicle of claim 16 wherein said aspirator includes a body, said body having an end wall.
19. The integrated aspirator assembly for a vehicle of claim 18 further including a biasing element positioned between said flow divergence nozzle and said end wall.
20. The integrated aspirator assembly for a vehicle of claim 16 wherein said body includes an inlet and wherein a portion of said inlet has a conically-shaped bore and wherein said divergence nozzle has a conically-shaped bore.
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)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
(6) As those of ordinary skill in the art will understand, various features of the embodiments illustrated and described with reference to any one of the figures may be combined with features illustrated in one or more other figures to produce alternative embodiments that are not explicitly illustrated or described. The combinations of features illustrated provide representative embodiments for typical applications. However, various combinations and modifications of the features consistent with the teachings of the present disclosure may be desired for particular applications or implementations.
(7)
(8) Referring to
(9) Between the vacuum booster assembly 12 and the intake manifold 16 is a flow line 30 having a check valve 32. The flow line 30 includes a booster-to-aspirator portion 34 and an aspirator-to-intake manifold portion 36. Also between the vacuum booster assembly 12 and the intake manifold 16 is a flow bypass line 38 having a check valve 40.
(10) The flow line 30 further includes an aspirator 42. The aspirator 42 includes an aspirator intake end 44 into which ambient, motive flow air enters and an aspirator output end 46. A suction flow introduction gap 48 is formed within the aspirator 42. The suction flow introduction gap 48 is fluidly associated with the booster-to-aspirator portion 34 of the flow line 30. The suction flow introduction gap 48 is also fluidly disposed between the aspirator intake end 44 and the aspirator output end 46.
(11) Referring to
(12) Between the vacuum booster assembly 52 and the intake manifold 56 is a flow line 70 having a check valve 72. An aspirator 74 having integrated flow bypass and check valve functions according to the disclosed inventive concept is attached to the intake manifold 56 by a mounting boss 76 attached to the intake manifold 56 by, for example, welding. The aspirator 74 according to the disclosed inventive concept avoids the need for a separate flow bypass line as is known in the art and as is discussed above in relation to the prior art illustrated in
(13)
(14) Referring to
(15) Formed within the aspirator body 78 is an axial bore 86 having an end wall 87. A first stopper arrangement is provided and is illustrated as stoppers 88 and 88. A second stopper arrangement is provided and is illustrated as stoppers 90 and 90. The stoppers 88, 88, 90 and 90 may be of any configuration, such as a ring.
(16) Movably disposed within the axial bore 86 is a total flow divergence nozzle 92 that includes a central bore 94 having a narrow inlet 95 and a conical outlet 96. The total flow divergence nozzle 92 includes a radially formed shoulder arrangement illustrated as shoulders 98 and 98. Disposed between the end wall 87 of the axial bore 86 and the shoulders 98 and 98 is a pair of pre-loaded biasing elements 100 and 100 illustrated as being in the form of springs, although other biasing elements would be suitable as well. The total flow divergence nozzle 92 is located in the downstream area of the aspirator body 78 while the biasing elements 100 and 100 urge the total flow divergence nozzle 92 in the upstream direction.
(17) Under regular engine and brake boost operating conditions where positive p exists as illustrated in
(18) In such a condition, the total flow divergence nozzle 92 is positioned such that a gap 102 formed between the narrowed outlet 83 of the motive flow nozzle 82 and the narrow inlet 95 of the total flow divergence nozzle 92 for suction flow is minimized and the primary air flow enters the central bore 94 of the total flow divergence nozzle 92 as the ambient air 84 entering the motive flow nozzle 82. The vacuum suction flow from the vacuum inlet 80 is minimized. The restricted gap between the narrow outlet 83 of the motive flow nozzle 82 and the narrow inlet 95 of the total flow divergence nozzle 92 provides a very low pressure for the vacuum booster assembly 52.
(19) However, during other engine operating conditions such under conditions of very low pressure in the intake manifold 56, a negative p results as illustrated in
(20) By way of a non-limiting example, and referring to
(21) The disclosed invention as set forth above overcomes the challenges faced by known brake boost systems by eliminating the need for an additional bypass line. 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.