INTEGRATED DISK CHECK VALVE IN A HYDRAULIC TENSIONER WITH METERED BACKFLOW
20180119832 ยท 2018-05-03
Inventors
- Matthew W. CRUMP (Cortland, NY, US)
- Glenn E. Swanson (Lansing, NY, US)
- Keith B. Cobb (Cortland, NY, US)
Cpc classification
F16K27/0209
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2007/0859
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2007/0806
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L1/024
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H7/0848
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16K15/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K27/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A check valve assembly (20) and method of assembly can include a hydraulic tensioner (10) having a body (12) defining an inlet fluid passage with an inlet fluid passage port (14a) having a valve seat (14b). The check valve assembly (20) can include a retainer (22) located within the body (12), a valve disk (30) having a sealing surface (32), and a biasing member (34) normally biasing the valve disk (30) toward the inlet fluid passage port (14a). The retainer (22) can define an outlet passage (24). The valve disk (30) and the biasing member (34) can be received within a cavity (26) of the retainer (22). The biasing member (34) can allow reciprocal movement of the valve disk (30) from a closed seated position sealing the inlet fluid passage port (14a) to an open unseated position spaced from the inlet fluid passage port (14a) opening the inlet passage.
Claims
1. In a hydraulic tensioner (10) for an endless loop, flexible, power transmission member of an internal combustion engine of a motor vehicle, the hydraulic tensioner (10) having a body (12) defining an inlet fluid passage with an inlet fluid passage port (14a) having a valve seat (14b) and a check valve assembly (20), the improvement of the check valve assembly (20) comprising: a retainer (22) located within the body (12), the retainer (22) defining an outlet fluid passage (24) in fluid communication with the inlet fluid passage through a cavity (26) defined by the retainer (22); at least one valve disk (30) having at least one valve sealing surface (32), the at least one valve disk (30) received within the cavity (26) for reciprocal movement with respect to the inlet fluid passage port (14a) of the body (12) and normally biased toward the inlet fluid passage port (14a); and at least one biasing member (34) received within the cavity (26) for biasing the at least one valve disk (30) toward the inlet fluid passage port (14a) while allowing reciprocal movement of the at least one valve disk (30) from a closed seated position sealing the inlet fluid passage port (14a) to an open unseated position spaced from the inlet fluid passage port (14a) opening the inlet fluid passage and allowing fluid flow through the inlet fluid passage (14).
2. The improvement of claim 1, wherein the at least one valve sealing surface (32) further comprises: a curved valve sealing surface (32) extending outwardly from the at least one valve disk (30), the at least one valve sealing surface (32) directly engageable with the body (12) of the hydraulic tensioner (10).
3. The improvement of claim 1, wherein the at least one valve disk (30) further comprises: at least one orifice (36) defined in the valve disk (30) allowing a metered backflow of fluid pressure in the hydraulic tensioner (10), the at least one orifice (36) in fluid communication with the inlet fluid passage (14).
4. The improvement of claim 3, wherein the at least one orifice (36) includes a plurality of orifices, each of the plurality of orifices having a predetermined diameter.
5. The improvement of claim 3, wherein the at least one orifice (36) is formed by a process selected from at least one of a metal stamping process, a deep-drawing metal forming process, a waterjet cutting process, and a laser cutting process.
6. The improvement of claim 1 further comprising: a metered fluid passage (38) allowing a metered backflow of fluid pressure in the hydraulic tensioner (10), the metered fluid passage formed in one of the valve sealing surface (32) of the at least one valve disk (30) and the body (12) of the hydraulic tensioner (10), the metered fluid passage (38) in fluid communication with the inlet fluid passage (14).
7. The improvement of claim 1 further comprising: at least one mating surface associated with the inlet fluid passage (14), the at least one valve sealing surface (32) sealingly engageable with the at least one mating surface, the at least one biasing member (34) allowing reciprocal movement of the at least one valve disk (30) from a closed seated position sealing against fluid flow through the inlet fluid passage port (14a) to an open unseated position spaced from the at least one mating surface allowing fluid flow through the inlet fluid passage port (14a).
8. The improvement of claim 7, wherein the at least one valve seat (14b) further comprises: a metered fluid passage (38) allowing a metered backflow of fluid pressure in the hydraulic tensioner (10), the metered fluid passage (38) formed in the at least one valve disk (30) and in fluid communication with the inlet fluid passage (14).
9. A check valve assembly (20) comprising: a hydraulic tensioner (10) having a body (12) defining a fluid passage (18), the fluid passage (18) in fluid communication with an inlet fluid passage having an inlet fluid passage port (14a); a retainer (22) located within the fluid passage (18) of the hydraulic tensioner (10), the retainer (22) defining an outlet fluid passage (24) in fluid communication with the inlet fluid passage through a cavity (26) defined by the retainer (22); at least one valve disk (30) having at least one valve sealing surface (32) directly engageable with the body (12) of the hydraulic tensioner (10), the at least one valve disk (30) received within the cavity (26) for reciprocal movement with respect to the inlet fluid passage port (14a) and normally biased toward the inlet fluid passage port (14a); and at least one biasing member (34) received within the cavity (26) for biasing the at least one valve disk (30) toward the inlet fluid passage port (14a) while allowing reciprocal movement of the at least one valve disk (30) from a seated, closed position sealing the inlet fluid passage port (14a) to an open, unseated position spaced from the inlet fluid passage port (14a) allowing fluid flow through the inlet fluid passage port (14a).
10. The check valve assembly (20) of claim 9, wherein the at least one valve disk (30) further comprises: at least one orifice (36) formed in the at least one valve disk (30) allowing a metered backflow of fluid pressure in the hydraulic tensioner (10), the at least one orifice (36) in fluid communication with the inlet fluid passage (14).
11. The check valve assembly (20) of claim 10, wherein the at least one orifice (36) is formed by a process selected from at least one of a metal stamping process, a deep-drawing metal forming process, a waterjet cutting process, and a laser cutting process.
12. The check valve assembly (20) of claim 9 further comprising: a metered fluid passage (38) allowing a metered backflow of fluid pressure in the hydraulic tensioner (10), the metered fluid passage (38) formed in one of the valve sealing surface (32) of the at least one valve disk (30) and the body (12) of the hydraulic tensioner (10).
13. The check valve assembly (20) of claim 12, wherein the metered fluid passage (38) is formed by a process including a laser cutting process.
14. A method of assembling a hydraulic tensioner (10) having a body (12) defining an inlet fluid passage port (14a) and supporting a check valve assembly (20) for an endless loop, flexible, power transmission member of an internal combustion engine of a motor vehicle, the method comprising: positioning a retainer (22) within the body (12), the retainer (22) defining an outlet fluid passage (24) in fluid communication with the inlet fluid passage port (14a) through a cavity (26) defined by the retainer (22); inserting at least one check valve disk (30) having at least one valve sealing surface (32), the at least one valve disk (30) received within the cavity (26) for reciprocal movement with respect to the inlet fluid passage port (14a) of the body (12) and normally biased toward the inlet fluid passage port (14a); and biasing the at least one valve disk (30) toward the inlet fluid passage port (14a) while allowing reciprocal movement of the at least one valve disk (30) from a closed seated position sealed with respect to the inlet fluid passage port (14a) to an open unseated position spaced from the inlet fluid passage port (14a) allowing fluid flow through the inlet fluid passage port (14a).
15. The method of claim 13 further comprising: forming at least one mating surface associated with the inlet fluid passage (14), the at least one valve sealing surface (32) sealingly engageable with the at least one mating surface, the at least one biasing member (34) allowing reciprocal s movement of the at least one valve disk (30) from a seated sealed position to an unseated position spaced from the at least one mating surface allowing fluid flow therethrough.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0008] The description herein makes reference to the accompanying drawings wherein like reference numerals refer to like parts throughout the several views, and wherein:
[0009]
[0010]
[0011]
DETAILED DESCRIPTION
[0012] Referring now to
[0013] Referring now to
[0014] Referring now to
[0015] Referring now to
[0016] The check valve assembly 20 can include at least one mating surface 14b associated with the inlet fluid passage. The at least one valve sealing surface 32 can be sealingly engageable with the at least one mating surface 14b. The at least one biasing member 34 can allow reciprocal movement of the at least one valve disk 30 from a closed seated position sealing against fluid flow through the inlet fluid passage port 14a to an open unseated position spaced from the at least one mating surface 14b allowing fluid flow through the inlet fluid passage port 14a. The at least one valve seat 14b can include a metered fluid passage 38 allowing a metered backflow of fluid pressure in the hydraulic tensioner 10. The metered fluid passage 38 can be formed in the at least one valve disk 30 and in fluid communication with the inlet fluid passage 14.
[0017] A check valve assembly 20 can be assembled in a hydraulic tensioner 10. The hydraulic tensioner 10 can have a body 12 defining an inlet fluid passage port 14a and supporting the check valve assembly 20 for an endless loop, flexible, power transmission member of an internal combustion engine of a motor vehicle. The method can include positioning a retainer 22 within the body 12 and inserting at least one check valve disk 30. The retainer 22 can define an outlet fluid passage 24 in fluid communication with the inlet fluid passage port 14a through a cavity 26 defined by the retainer 22. The at least one valve disk 30 can be received within the cavity 26 for reciprocal movement with respect to the inlet fluid passage port 14a of the body 12 and normally biased toward the inlet fluid passage port 14a. The method can further include biasing the at least one valve disk 30 toward the inlet fluid passage port 14a while allowing reciprocal movement of the at least one valve disk 30 from a closed seated position sealed with respect to the inlet fluid passage port 14a to an open unseated position spaced from the inlet fluid passage port 14a allowing fluid flow through the inlet fluid passage port 14a. The method can further include forming at least one mating surface 14b associated with the inlet fluid passage 14. The at least one valve sealing surface 32 can be sealingly engageable with the at least one mating surface 14b. The at least one biasing member 34 can allow reciprocal movement of the at least one valve disk 30 from a seated sealed position to an unseated position spaced from the at least one mating surface 14b allowing fluid flow therethrough.
[0018] While the invention has been described in connection with what is presently considered to be the most practical and preferred embodiment, it is to be understood that the invention is not to be limited to the disclosed embodiments but, on the contrary, is intended to cover various modifications and equivalent arrangements included within the spirit and scope of the appended claims, which scope is to be accorded the broadest interpretation so as to encompass all such modifications and equivalent structures as is permitted under the law.