SWITCHING ROCKER ARM HAVING STAMPED INNER ARM CONFIGURATION
20230024930 · 2023-01-26
Assignee
Inventors
Cpc classification
F01L2001/186
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L13/0015
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L2305/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L13/0005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L1/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L2305/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L2013/105
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L1/462
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A switching roller finger follower (SRFF) assembly for valve actuation includes an outer arm and an inner arm pivotally coupled to the outer arm via a pivot axle and at least partially disposed within the outer arm. The inner arm is unitarily formed and has a first inner side arm and a second inner side arm having respective laterally spaced apart longitudinal bends that each define pin apertures. A spring engagement pin extends through the pin apertures, a pair of lost motion springs are supported by the pivot axle, an inner roller is rotatably coupled to the inner arm, and a pair of outer rollers are disposed on respective axles supported by the outer arm.
Claims
1. A switching roller finger follower (SRFF) assembly for valve actuation, the SRFF assembly comprising: an outer arm; an inner arm pivotally coupled to the outer arm via a pivot axle and at least partially disposed within the outer arm, the inner arm being unitarily formed and having a first inner side arm and a second inner side arm having respective laterally spaced apart longitudinal bends that each define pin apertures; a spring engagement pin extending through the pin apertures; a pair of lost motion springs supported by the pivot axle; an inner roller rotatably coupled to the inner arm; and a pair of outer rollers disposed on respective axles supported by the outer arm.
2. The SRFF of claim 1, wherein the respective longitudinal bends are offset from each other by a predetermined distance.
3. The SRFF of claim 1, wherein the spring engagement pin defines crimped regions thereon.
4. The SRFF of claim 3, wherein each lost motion spring has a first end that engages the respective crimped regions of the spring engagement pin, the crimped regions reducing contact stress on the respective lost motion springs.
5. The SRFF of claim 1, wherein the first inner side arm and the second inner side arm each have a bushing aperture to receive a bushing and an inner roller axle.
6. The SRFF of claim 5, wherein the inner roller is rotatably coupled to the inner arm by the bushing.
7. The SRFF of claim 1, wherein the outer arm comprises a stopping feature thereon configured to stop rotation of the inner arm relative to the outer arm.
8. The SRFF of claim 7, wherein the stopping feature comprises material on the outer arm defining a shoulder to be contacted by the inner arm.
9. The SRFF of claim 7, wherein the stopping feature comprises a stop pin extending from the outer arm.
10. The SRFF of claim 1, further comprising a latch assembly configured to selectively latch the inner arm to the outer arm to prevent relative movement therebetween.
11. The SRFF of claim 10, wherein the latch assembly comprises a latch pin slidingly received within a latch bore formed in the outer arm.
12. The SRFF of claim 11, wherein the outer arm includes a hydraulic port fluidly coupled to the latch bore.
13. The SRFF of claim 12, wherein the hydraulic port is configured to selectively receive pressurized fluid from a hydraulic lash adjuster.
14. The SRFF of claim 11, wherein the latch assembly further comprises a latch cage operably associated with the latch pin.
15. The SRFF of claim 14, wherein the latch cage is biased away from the latch pin via a biasing member.
16. The SRFF of claim 14, wherein the latch pin defines a latch cage chamber configured to selectively receive at least a portion of a finger of the latch cage.
17. The SRFF of claim 16, wherein the latch cage finger includes a shelf region and wherein the latch cage comprises a flat, wherein the flat is configured to engage the shelf region of the latch cage and inhibit rotation of the latch pin.
18. A switching roller finger follower (SRFF) assembly for valve actuation, the SRFF assembly comprising: an outer arm; an inner arm pivotally coupled to the outer arm via a pivot axle and at least partially disposed within the outer arm, the inner arm being unitarily formed and having a first inner side arm and a second inner side arm having respective longitudinal bends that each define pin apertures; a spring engagement pin extending through the pin apertures and defining crimped regions thereon; a pair of lost motion springs supported by the pivot axle and having ends that engage the respective crimped regions of the spring engagement pin, the crimped regions reducing contact stress on the respective lost motion springs; an inner roller coupled to the inner arm by a bushing; and a pair of outer rollers disposed on respective axles supported by the outer arm.
19. The SRFF of claim 18, wherein the respective longitudinal bends are laterally distanced and offset from each other by a predetermined distance.
20. The SRFF of claim 19, further including a latch assembly configured to selectively latch the inner arm to the outer arm to prevent relative movement therebetween, the latch assembly comprising: a latch pin slidingly received within a latch bore formed in the outer arm, the latch pin defining an internal latch cage chamber and a flat; a latch cage having a finger configured to be at least partially received within the latch cage chamber, the finger including a shelf region, wherein the flat is configured to engage the shelf region of the latch cage and inhibit rotation of the latch pin; and a biasing member configured to bias the latch pin away from the latch cage.
Description
BRIEF DESCRIPTION OF THE FIGURES
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DETAILED DESCRIPTION
[0028] As will become appreciated from the following discussion, the present disclosure provides a switching roller finger follower (SRFF) assembly with a stamped inner arm having improved longitudinal bends, a stopping feature, and a compact latching design. Longitudinal bends, offset relative to each other so as not to touch are incorporated on an inner arm geometry. A reaction pin used to stop the rotation of the lost motion spring has been moved at one end of the inner arm. In one configuration, the inner arm rotation is stopped using material on the outer arm. In another configuration, a pin is incorporated on the outer arm that is configured to stop inner arm rotation. A new latch pin and cage configuration is also disclosed.
[0029] With initial reference to
[0030] In the example embodiment, the inner arm 12 and the outer arm 14 are both mounted to a pivot axle 20, which secures the inner arm 12 to the outer arm 14 while also allowing a rotational degree of freedom pivoting about the pivot axle 20 when the SRFF assembly 10 is in the unlatched state. A pair of lost motion torsion springs 22 are secured to the pivot axle 20 and are configured to bias the position of the inner arm 12 so that it always comes back to the starting position where the related lift can start. As shown in
[0031] With continued reference to
[0032] For exemplary purposes, as shown in
[0033] With continued reference to
[0034] As illustrated in
[0035] With continued reference to
[0036] With particular reference to
[0037] Turning now to
[0038] As shown in
[0039] In the example embodiment, the latch cage chamber 108 is generally on a volume ‘V’ (
[0040] Described herein are systems and methods for a switching roller finger follower assembly having unique longitudinal inner arm bends and stopping features with a compact latching design. The longitudinal bends are spaced apart and include a reaction pin to limit rotation of the lost motion springs, which are located at ends of the inner arm. Rotation of the inner arm is prevented utilizing material on the outer arm pad or a pin on the outer arm. Moreover, two additional folding operations reduce the width of the inner arm in the valve area. An anti-rotation pin on the inner arm is crimped in the middle to deform the pin in the area where the pin is in contact with the lost motion spring. A shelf on the latch cage is clearance-fit on the latch pin internal chamber, and the shelf region is utilized to stop rotation of the latch pin. The unique geometry of the stamped inner arm advantageously improves stiffness and packaging, avoids contact between the longitudinal bends, and reduces contact stress on the lost motion springs. Further, the latch pin and latch cage design improves packaging to thereby improve latch compression spring performance and response time of the system.
[0041] The foregoing description of the examples has been provided for purposes of illustration and description. It is not intended to be exhaustive or to limit the disclosure. Individual elements or features of a particular example are generally not limited to that particular example, but, where applicable, are interchangeable and can be used in a selected example, even if not specifically shown or described. The same may also be varied in many ways. Such variations are not to be regarded as a departure from the disclosure, and all such modifications are intended to be included within the scope of the disclosure.