Claims
- 1. A rotary hammer operable in an idle mode and a hammer mode, the rotary hammer comprising:
a housing; a barrel positioned in the housing and having a forward portion; a ram positioned within the barrel and being movable relative to the barrel between hammering positions and an idle position; and a ram catcher assembly positioned adjacent the forward portion of the barrel to releasably hold the ram in the idle position, the ram catcher assembly including
a friction member frictionally engageable with the ram, and a damping member at least partially surrounding the friction member, wherein, as the ram moves to the idle position with a force, the damping member absorbs at least a portion of the force and the friction member applies friction to the ram.
- 2. The rotary hammer of claim 1, wherein the ram includes a tapered nose portion, and wherein the friction member is frictionally engageable with the nose portion.
- 3. The rotary hammer of claim 1, wherein the friction member is harder than the damping member.
- 4. The rotary hammer of claim 1, wherein the friction member is formed of a first material and the damping member is formed of a second material.
- 5. The rotary hammer of claim 1, wherein the friction member is formed of steel and the damping member is formed of a soft plastic material.
- 6. The rotary hammer of claim 1, wherein the damping member is made of an elastomeric material.
- 7. The rotary hammer of claim 1, wherein the friction member is moveable radially.
- 8. The rotary hammer of claim 1, wherein the friction member includes a first substantially C-shaped member and a second substantially C-shaped member.
- 9. The rotary hammer of claim 1, wherein the friction member has a catch condition, in which the friction member engages the ram to releasably hold the ram in the idle position, and a released condition, the friction member being movable radially from the released condition to the catch condition.
- 10. The rotary hammer of claim 1, wherein the friction member is radially compressible from a released position to a compressed position.
- 11. The rotary hammer of claim 1, wherein the damping member includes a radially extending outer surface, and wherein as the ram moves to the idle position, the ram engages and compresses the damping member in an axial direction, causing the damping member to bulge radially, engagement of the outer surface of the damping member directing the bulging radially inwardly.
- 12. The rotary hammer of claim 11, wherein radially inwardly directed bulging of the damping member moves the friction member radially inwardly to engage the ram and to releasably hold the ram in the idle position.
- 13. The rotary hammer of claim 1, wherein, when the ram is in the hammering positions, the friction member does not hold the ram.
- 14. The rotary hammer of claim 1, wherein the barrel defines an axis, wherein the ram has a length along the axis, and wherein, when the ram is in the idle position, the friction member is in contact with the ram along a portion of the length of the ram to releasably hold the ram.
- 15. A rotary hammer operable in an idle mode and a hammer mode, the rotary hammer comprising:
a housing; a barrel supported in the housing and having a forward end, the forward end defining a port; a ram positioned in the barrel and movable relative to the barrel between hammering positions and an idle position; and a damping member supported adjacent the forward end of the barrel and engageable with the ram to absorb a force of the ram as the ram moves toward the idle position, the damping member defining a central aperture extending axially through the damping member, a plurality of radially extending grooves communicating with the central aperture, and a circumferentially extending groove communicating with the plurality of radially extending grooves, air passing through the port and over the damping member along the radially extending grooves and the circumferentially extending groove to cool the damping member.
- 16. The rotary hammer of claim 15, wherein the damping member is a damping washer.
- 17. The rotary hammer of claim 15, wherein the damping member includes a plurality of damping washers.
- 18. A rotary hammer operable in an idle mode and a hammer mode, the rotary hammer comprising:
a housing; a barrel positioned in the housing and including a forward portion defining ports; and a ram positioned within the barrel and movable relative to the barrel between hammering positions and an idle position, the ports being configured to trap a volume of air in the forward portion in front of the ram to reduce the velocity of the ram as the ram moves to toward the idle position and to, thereafter, release the volume of air from the forward portion to allow the ram to move to the idle position.
- 19. A power tool comprising:
a housing; a crankcase assembly supported in the housing and having a wall defining an interior portion, grease being housed in the interior portion; a shaft rotatably supported in the crankcase assembly and having an end extending through the wall, the shaft defining a breather port in the end, the breather port communicating between the interior portion and atmosphere, the breather port having an interior end and an atmosphere end, the interior end of the shaft providing a slinger surface adjacent to the breather port, rotation of the shaft preventing grease from entering the breather port; and a permeable cover positioned over the atmosphere end of the breather port, operation of the power tool causing pressure buildup in the crankcase assembly, the pressure being vented from the crankcase assembly through the breather port.
- 20. A power tool for use with a tool element, the tool element having an end and a transverse groove defined in the end, the power tool comprising:
a housing; a drive mechanism supported in the housing and operable to rotatably and reciprocatingly drive the tool element; a chuck operably connected to the drive mechanism; and a retaining device supported in the chuck and operable to selectively retain the tool element in the chuck, the retaining device including
a transversely-extending pin having a first end and a second end, the pin being moveable between a locked position, in which the pin engages the groove in the tool element to retain the tool element in the chuck, and an unlocked position, in which pin is disengaged from the groove, and an actuating assembly operable to move the pin from the locked position to the unlocked position and from the unlocked position to the locked position, the actuating assembly including an actuator engaging the first end and the second end of the pin, and a biasing member biasing the actuator to move the pin toward the locked position.
- 21. The power tool of claim 20, wherein the barrel defines an axis, and wherein the actuator is axially moveable to move the pin radially between the locked position and the unlocked position.
- 22. A method of operating a rotary hammer, the rotary hammer being operable in an idle modes and a hammer mode, the rotary hammer including a housing, a barrel positioned in the housing and having a forward portion, the barrel defining an axis, a ram positioned within the barrel and being movable relative to the barrel between hammering positions and an idle position, and a ram catcher assembly positioned adjacent to the forward portion of the barrel to releasably hold the ram in the idle position, the ram catcher assembly including a friction member frictionally engageable with the ram, and a damping member at least partially surrounding the friction member, the method comprising the acts of:
moving the ram relative to the barrel from a hammering position toward the idle position; axially compressing the damping member; absorbing an axial force of the ram with the damping member; radially moving the friction member inwardly with the damping member; and applying friction to the ram with the friction member to catch the ram with the friction member to hold the ram in the idle position.
- 23. The method of claim 22, wherein the ram includes a tapered nose portion, and wherein the act of applying friction includes engaging the nose portion with the friction member.
- 24. The method of claim 22, wherein the act of radially moving includes deforming the friction member inwardly toward the axis.
- 25. The method of claim 22, wherein the act of radially moving includes radially compressing the friction member.
- 26. The method of claim 22, wherein the act of absorbing an axial force includes axially deforming the damping member.
- 27. The method of claim 26, wherein the damping member includes a radially extending outer surface and wherein, the method further comprises engaging the outer surface with the barrel.
- 28. The method of claim 26, wherein the act of absorbing an axial force includes deforming the damping member radially inwardly to compress the friction member.
- 29. A method of operating a rotary hammer, the rotary hammer being operable an idle mode and a hammer mode, the rotary hammer including a housing, a barrel positioned in the housing and including a forward portion defining ports, a ram positioned within the barrel and movable relative to the barrel between hammering positions and an idle position, the method comprising the acts of:
moving the ram relative to the barrel from a hammering position toward the idle position; trapping a volume of air in the forward portion in front of the ram; and releasing the volume of air through the ports to allow the ram to move to the idle position.
- 30. The method of claim 29, wherein the rotary hammer includes a ram catcher, and wherein the method further comprises the act of engaging the ram with the ram catcher to releasably hold the ram in the idle position.
- 31. The method of claim 30, wherein the ram catcher includes a friction member, and wherein engaging the ram includes frictionally engaging the ram with the friction member.
- 32. The method of claim 30, wherein the ram catcher includes a friction member, and wherein the act of engaging the ram includes radially compressing the friction member.
- 33. The method of claim 30, wherein the ram catcher includes a damping member at least partially surrounding the friction member, and wherein the method further comprises the act of absorbing axial force with the damping member.
- 34. A method of operating a rotary hammer, the rotary hammer being operable in an idle mode and a hammer mode, the rotary hammer including a housing, a barrel supported in the housing and having a forward end, the forward end defining a port, a ram positioned in the barrel and movable relative to the barrel between hammering positions and an idle position, and a damping member supported adjacent the forward end of the barrel and engageable with the ram to absorb a force of the ram as the ram moves toward the idle position, the damping member defining a central aperture extending axially through the damping member, a plurality of radially extending grooves communicating with the central aperture, and a circumferentially extending groove communicating with the plurality of radially extending grooves, the method comprising the acts of:
passing air through the port and into the forward end; and passing air along the plurality of radially extending grooves and the circumferentially extending grooves to cool the damping member.
RELATED APPLICATIONS
[0001] This application claims priority under 35 U.S.C. § 119 to co-pending U.S. Provisional Application Serial. No. 60/322,958, filed Sep. 17, 2001.
Provisional Applications (1)
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Number |
Date |
Country |
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60322958 |
Sep 2001 |
US |