Bearing seal assembly for electronic throttle control valve
10934946 ยท 2021-03-02
Assignee
Inventors
Cpc classification
F02D9/106
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/3236
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D9/1065
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K1/224
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16K1/226
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/3236
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D9/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present invention is a throttle body assembly which is adaptable for both gasoline and diesel applications, and may also be used for applications to meter fluid, such as for a water cooling valve. The throttle body assembly includes at least one bearing assembly and at least one seal which is used to configure the bearing assembly to withstand a high-pressure environment.
Claims
1. An apparatus comprising: a valve assembly, including: a housing defining a central port; a valve plate disposed in the central port and mounted on a shaft, the shaft further comprising: a first diameter portion; a second diameter portion, the second diameter portion being larger than the first diameter portion; at least one boss formed as part of the housing, the shaft at least partially disposed in the at least one boss; at least one bearing assembly disposed in the boss, such that the shaft extends through and is supported by the bearing assembly, and the at least one bearing assembly is mounted on the first diameter portion, the at least one bearing assembly further comprising: an outer race in contact with the housing; an inner race, the shaft extending through the inner race; a bearing member disposed between the inner race and the outer race; at least one seal located in the boss adjacent the at least one bearing assembly the at least one seal further comprising: a plurality of inner flange portions, one of the plurality of inner flange portions in contact with the inner race and the shaft, and another of the plurality of inner flange portions in contact with the boss and the shaft; a plurality of outer flange portions, one of the plurality of outer flange portions in contact with the outer race and the at least one boss; and an actuator for controlling the rotation of the valve plate and the shaft; wherein the at least one seal prevents leaks between the at least one seal and the at least one boss, and the at least one seal prevents leaks between the at least one seal and the shaft when the at least one seal is exposed to high pressure.
2. The apparatus of claim 1, wherein the at least one seal is located between the at least one bearing assembly and the central port.
3. The apparatus of claim 1, wherein the at least one seal is located on the second diameter portion of the shaft.
4. A valve assembly, comprising: a valve assembly, including: a housing; a side wall formed as part of the housing; a central port formed as part of the housing, the side wall being part of the central port; at least one aperture formed as part of the side wall; a shaft extending through the at least one aperture such that the shaft extends through the central port, the shaft further comprising: a first diameter portion; a second diameter portion, the second diameter portion being larger than the first diameter portion; a valve plate mounted on the shaft such that the valve plate is disposed in the central port; at least one boss formed as part of the housing, the at least one aperture being part of the at least one boss; at least one seal located in the at least one boss such that the at least one seal surrounds the shaft the at least one seal further comprising: a plurality of inner flange portions, one of the plurality of flange portions being in contact with the at least one boss and the shaft; a plurality of outer flange portions; at least one bearing assembly mounted on the shaft and located in the at least one boss such that the at least one bearing is adjacent the at least one seal, and the at least one bearing assembly is mounted on the first diameter portion, the at least one bearing assembly further comprising: an outer race in contact with the housing, one of the plurality of outer flange portions in contact with the outer race and the at least one boss; an inner race, the shaft extending through the inner race, another of the plurality of inner flange portions being in contact with the inner race and the shaft; and a bearing member disposed between the inner race and the outer race; wherein as the shaft is rotated to change the position of the valve plate and air flow through the central port, the at least one seal prevents leaks between the at least one seal and the at least one boss, and the at least one seal prevents leaks between the at least one seal and the shaft when the at least one seal is exposed to high pressure from the air flow.
5. The valve assembly of claim 4, wherein the at least one seal prevents the at least one bearing from being exposed to pressures greater than or equal to 1.0 bar.
6. The valve assembly of claim 4, wherein at least one seal is located between the at least one bearing assembly and the central port.
7. The valve assembly of claim 4, wherein the at least one seal further comprises an X-cross section.
8. The valve assembly of claim 7, the at least one seal having an X-cross section further comprising one of the plurality of outer flange portions is adjacent to the at least one aperture.
9. The valve assembly of claim 4, wherein the at least one seal is located on the second diameter portion of the shaft.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention will become more fully understood from the detailed description and the accompanying drawings, wherein:
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(11) The following description of the preferred embodiment(s) is merely exemplary in nature and is in no way intended to limit the invention, its application, or uses.
(12) A throttle control assembly according to the present invention is shown in the Figures generally at 10. The assembly 10 includes a housing 12, and formed as part of the housing 12 is a central port 14, through which air passes during operation of the assembly 10. Extending through in the central port 14 is a shaft 16, which is rotatable. The shaft 16 includes a slot 18, and disposed in the slot 18 is a valve member, which in this embodiment is a valve plate 20. The valve plate 20 includes two apertures 22, which are in alignment with two threaded apertures 24 formed as part of the shaft 16. Also connecting the plate 20 to the shaft 16 is a fastener, which in this embodiment is a threaded screw 26, which is inserted through the apertures 22 of the plate 20 and the threaded apertures 24 of the shaft 16, securing the valve plate 20 to the shaft 16.
(13) The shaft 16 is partially disposed in an aperture 28a formed as part of a first boss 52a, and the first boss 52a is formed as part of the housing 12. The central port 14 also includes a side wall 14a, which also forms part of the first boss 52a, and the aperture 28a is formed as part of the boss 52a. A first bearing assembly 30a and a second bearing assembly 30b support the shaft 16, and allow for the shaft 16 to rotate relative to the housing 12. The first bearing assembly 30a is located in the boss 52a and held in place in the boss 52a by a plug 32. The second bearing assembly 30b is located in a second boss 52b, and is maintained in the boss 52b by a C-washer 34 located in a groove 50 formed as part of the shaft 16. There is a second aperture 28b formed as part of the side wall 14a such that the second aperture 28b is formed as part of the second boss 52b. The second bearing assembly 30b is located between the C-washer 34 and the end of the shaft 16, and is located inside and supported by the boss 52b formed as part of the housing 12.
(14) The housing 12 also includes a cavity, shown generally at 36, and disposed in the cavity 36 is an actuator, which in this embodiment is an electric motor 38, held in place by two motor screws 40. Attached to the shaft of the motor 38 is a first gear, or pinion gear 42. The pinion gear 42 is in mesh with a second gear, or intermediate gear 44. The intermediate gear 44 is mounted on an intermediate shaft 46, and the intermediate shaft 46 partially extends into an aperture 48 formed as part of the housing 12. Also formed as part of the intermediate gear 44 is a middle gear 54, which is smaller in diameter compared to the intermediate gear 44. The middle gear 54 is in mesh with a sector gear 58.
(15) Mounted on and surrounding the outside of the boss 52 is a lower bushing 60, and mounted on the lower bushing 60 is a biasable member 62, which in this embodiment is a return spring 62, having two coil portions. The return spring surrounds the lower bushing 60, and there is an intermediate bushing 66 disposed between the coil portions of the return spring 62. The intermediate bushing 66 includes a slit portion 68 which allows the intermediate bushing 66 to partially deflect without breaking, such that the coil portions may be made together from a single continuous wire, and the intermediate bushing 66 may be installed between the coil portions.
(16) The sector gear 58 is mounted on one of the coil portions, and one end of the return spring 62 is in contact with a first pin 74 functioning as a first spring stop, and a second end of the return spring 62 in contact with a second pin 76 functioning as a second spring stop. Each of the pins 74,76 are partially disposed in corresponding apertures 78 formed as part of the housing 12.
(17) Connected to the housing 12 is a cover 80, and disposed between the cover 80 and the housing 12 is a seal 82 which surrounds an outer lip 84 formed as part of the housing 12. The cover 80 is connected to the housing 12 using a plurality of clips 86. There is also a secondary cover 88, which is attached to the cover 80. Once the cover 80 is attached to the housing 12, the terminals for the motor 38 can be viewed through an opening in the cover 80. Once it is determined that the terminals of the motor 38 are in contact with the terminals formed as part of the cover 80, the secondary cover 88 is attached to the cover 80.
(18) The cover 80 also includes a connector 90 which is in electrical communication with the motor 38, such that the connector 90 is able to be connected to a source of power. Integrally formed with the cover 80 is a lead frame, which places the connector 90 in electrical communication with a sensor (not shown).
(19) An enlarged sectional view of a portion of the housing 12 is shown in
(20) There are different types of seals which may be used to provide a sealing function at or around the bearing assembly 30b. An embodiment of a seal 100 used with the bearing assembly 30b is shown in
(21) Another embodiment of a seal 102 is shown in
(22) The seal 102 may also be placed outside of the bearing assembly 30b, as shown in
(23) Another embodiment is shown in
(24) Yet another embodiment is shown in
(25) Another embodiment of the present invention is shown in
(26) In operation, the spring 62 biases the sector gear 58, and therefore the shaft 16 and valve plate 20 towards a closed position, such that the central port 14 is substantially closed, or blocked completely, depending upon how the assembly 10 is configured. When a current is applied to the motor 38, the pinion gear 42 is rotated, which causes the rotation of the intermediate gear 44, the middle gear 54, and the sector gear 58. To rotate the sector gear 58, the force applied to the sector gear 58 by the return spring 62 is overcome. The amount of rotation of the sector gear 58 is in proportion to the amount of current applied to the motor 38, which must overcome the force applied to the sector gear 58 by the return spring 62.
(27) As the sector gear 58 is rotated, the shaft 16 is rotated as well, rotating the plate 20, and allowing increased levels of air flow through the central port 14. The amount of rotation of the sector gear 58 is detected by the sensor, such that the valve plate 20 may be placed in a desired position. The shaft 16 is supported by the bearing assemblies 30a,30b, and the seals 100,102,104 prevent leaking around the bearing assemblies 30a,30b during the operation of the throttle control assembly 10. The throttle control assembly 10 may be used to control the flow of air, or any type of fluid, making the assembly 10 useful for many different applications, including applications where the assembly is exposed to high pressures.
(28) The description of the invention is merely exemplary in nature and, thus, variations that do not depart from the gist of the invention are intended to be within the scope of the invention. Such variations are not to be regarded as a departure from the spirit and scope of the invention.