US20260185466A1 · App 19/126,541
DEACTIVATING ROLLER WITH TORSIONAL SPRING
Publication
Application
Classifications
IPC Classifications
CPC Classifications
Applicants
EATON INTELLIGENT POWER LIMITED
Inventors
Ondrej CÍSAR, Márk ERDÉLYI
Abstract
A rocker arm assembly for selectively transferring motion from a cam to a valve. The rocker arm assembly including a body having a rocker bore shaft configured to receive a rocker shaft. A lost motion assembly is pivotably attached to the body and is configured to selectively pivot relative to the body. The lost motion assembly includes a bracket pivotally connected to the body at a first end. A roller is attached to a second opposite end of the bracket. A latch pin assembly includes a latch pin for selectively latching the bracket to the body. A torsional spring is provided for biasing the bracket to a first position wherein the latch pin aligns with a mating hole in the body.
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Figures
Description
PRIORITY
[0001]This application claims the benefit of priority of provisional U.S. patent application Ser. No. 63/382,349, filed Nov. 4, 2022, the contents of which are incorporated herein by reference in their entirety.
FIELD
[0002]The subject application relates to, in general, a rocker arm assembly for use in a combustion engine wherein the rocker arm assembly includes a lost motion mechanism for deactivating a roller. More particularly, this application relates to a rocker arm assembly having a torsional spring for biasing a lost motion mechanism to a predetermined position.
BACKGROUND
[0003]An internal combustion engine may utilize springs to bias lost motion mechanisms to a predetermined position. Rocker arm assemblies known heretofore use compression springs to bias the lost motion mechanism to the predetermined position. These compression springs tend to require an excessive amount of space.
[0004]The present application discloses a rocker arm assembly that includes a torsional spring.
SUMMARY OF THE INVENTION
[0005]There is provided a rocker arm assembly for selectively transferring motion from a cam to a valve. The rocker arm assembly including a body having a rocker bore shaft configured to receive a rocker shaft. A lost motion assembly is pivotably attached to the body and is configured to selectively pivot relative to the body. The lost motion assembly includes a bracket pivotally connected to the body at a first end. A roller is attached to a second opposite end of the bracket. A latch pin assembly includes a latch pin for selectively latching the bracket to the body. A torsional spring is provided for biasing the bracket to a first position wherein the latch pin aligns with a mating hole in the body.
[0006]In the foregoing rocker arm assembly, further including a second torsional spring for biasing the bracket to the first position.
[0007]In the foregoing rocker arm assembly, the torsional spring includes a coiled body portion, a first leg engaged with the bracket and a second leg engaged with the body.
[0008]In the foregoing rocker arm assembly, the coiled body portion includes an axis that aligns with a pivot axis of the bracket.
[0009]In the foregoing rocker arm assembly, the first leg applies a biasing force to the bracket to bias the bracket to the first position.
[0010]In the foregoing rocker arm assembly, the first leg engages a peg attached to the bracket.
[0011]In the foregoing rocker arm assembly, the second leg extends into a hole formed in the body.
[0012]In the foregoing rocker arm assembly, a pivot axis of the bracket is offset from a longitudinal axis of the coiled body portion of the torsional spring.
[0013]There is further provided a lost motion assembly configured to attach to a rocker arm assembly. The lost motion assembly is configured to selectively pivot relative to the rocker arm assembly. The lost motion assembly includes a bracket having a first end configured to be pivotally connected to the rocker arm assembly. A roller is attached to an opposite second end of the bracket. A latch pin assembly includes a latch pin configured for selectively latching the second end of the bracket to the rocker arm assembly. A torsional spring is provided for biasing the bracket to a first position.
[0014]In the foregoing lost motion assembly, further including a second torsional spring for biasing the bracket to the first position.
[0015]In the foregoing lost motion assembly, the torsional spring includes a coiled body portion, a first leg engaged with the bracket and a second leg configured to engage with the body.
[0016]In the foregoing lost motion assembly, the coiled body portion includes an axis that aligns with a pivot axis of the bracket.
[0017]In the foregoing lost motion assembly, the first leg applies a biasing force to the bracket to bias the bracket to the first position.
[0018]In the foregoing lost motion assembly, the first leg engages a peg attached to the bracket.
[0019]In the foregoing lost motion assembly, a pivot axis of the bracket is offset from a longitudinal axis of the coiled body portion of the torsional spring.
BRIEF DESCRIPTION OF THE DRAWINGS
[0020]
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DETAILED DESCRIPTION
[0028]The following presents a description of the disclosure; however, aspects may be embodied in many different forms and should not be construed as limited to the embodiments set forth herein. Furthermore, the following examples may be provided alone or in combination with one or any combination of the examples discussed herein. Directional references such as “left” and “right” are for ease of reference to the figures.
[0029]Referring to
[0030]Referring to
[0031]The bracket 52 is dimensioned to pivot about a pivot rod 64. In the embodiment illustrated, the pivot rod 64 extends through the pivot hole 56a, through a hole 34 in the body and then through the pivot hole 56b such that the bracket 52 is pivotably attached to the body 30. Bushings 66a, 66b are position on opposite ends of the pivot rod 64.
[0032]A first spring 70A is positioned on one end of the pivot rod 64 and a second spring 70B is positioned on an opposite end of the pivot rod 64. Each spring 70A, 70B includes a coiled body portion 72, a first leg 74 and a second leg 76. Each coiled body portion 72 is positioned around one end of the pivot rod 64. Each first leg 74 extends from the coiled body portion 72 and is positioned on a top of one end of the peg 58. In the embodiment shown, the peg 58 includes peripheral grooves 59a, 59b (
[0033]The springs 70A, 70B are pre-wound such that the first leg 74 applies a downward biasing force B (
[0034]Referring to
[0035]When a lost motion is desired, i.e., when it is desired that motion from the cam 24 is not translated to the valve end 12, pressurized fluid is supplied to a space between the first end cap 92a and the actuation piston 82 to force the actuation piston 82 to move toward the second end cap 92b. As the actuation piston 82 moves, the latch pin 84 and the latch piston 86 are forced toward the second end cap 92b thereby compressing the spring 88. Once the latch pin 84 is completely within the roller, the bracket 52 is unlatched from the body 30 such that movement from the cam 24 is applied only to the bracket 52 and the bracket 52 pivots about the pivot rod 64, i.e., away from the first position against the biasing force of the springs 70A, 70B. This is referred to as a “lost motion” movement. See,
[0036]As described above, the springs 70A, 70B are configured to apply a biasing force to the peg 58 such that when the cam profile returns to the base circle, the bracket 52 is forced to pivot back to the first position where the peg 58 engages the body 30 and the latch pin 84 re-aligns with the bore in the first end cap 92a. When the pressurized fluid applied to the space between the first end cap 92a and the actuation piston 82 is removed or reduced, the spring 88 forces the latch pin 84 into the bore of the first end cap 92a, thereby re-latching the bracket 52 to the body 30, as shown in
[0037]In an alternative embodiment, illustrated in
[0038]In the embodiment illustrated, the pivot axis A of the bracket 52 aligns with a longitudinal axis C of the coiled body portions 72 of the springs 70A, 70B (see,
[0039]It will be apparent to those skilled in the art that various modifications and variations can be made without departing from the spirit and scope of the claimed invention.
Claims
What we claim is:
1. A rocker arm assembly for selectively transferring motion from a cam to a valve, the rocker arm assembly comprising:
a body having a rocker bore shaft configured to receive a rocker shaft; and
a lost motion assembly pivotably attached to the body and configured to selectively pivot relative to the body, the lost motion assembly comprising:
a bracket pivotally connected to the body at a first end and having a roller attached to a second opposite end of the bracket,
a latch pin assembly including a latch pin for selectively latching the bracket to the body, and
a torsional spring for biasing the bracket to a first position wherein the latch pin aligns with a mating hole in the body.
2. The rocker arm assembly of
3. The rocker arm assembly of
4. The rocker arm assembly of
5. The rocker arm assembly of
6. The rocker arm assembly of
7. The rocker arm assembly of
8. The rocker arm assembly of
9. A lost motion assembly configured to attach to a rocker arm assembly, the lost motion assembly configured to selectively pivot relative to the rocker arm assembly, the lost motion assembly comprising:
a bracket having a first end configured to be pivotally connected to the rocker arm assembly and having a roller attached to an opposite second end of the bracket,
a latch pin assembly including a latch pin configured for selectively latching the second end of the bracket to the rocker arm assembly, and
a torsional spring for biasing the bracket to a first position.
10. The lost motion assembly of
11. The lost motion assembly of
12. The lost motion assembly of
13. The lost motion assembly of
14. The lost motion assembly of
15. The lost motion assembly of