Claims
- 1. A power driver, said driver comprising:
a driver housing; a motor disposed in said housing; a spindle having a distal end thereof opposite said motor, said distal end having an axial bore formed therein; a gear assembly mounted on said spindle operatively between said motor and said spindle, and secured with respect to said spindle independently of said driver housing, so that said motor rotationally drives said spindle through said gear assembly; a grip mounted in said spindle in communication with said axial bore; and a driver mounted about said spindle in operative communication with said grip so that activation of said driver in a closing direction moves said grip radially toward the axis of said bore and activation of said driver in an opening direction moves said grip radially away from said axis.
- 2. The power driver as in claim 1, including a lock between said spindle and said housing, said lock being configured to rotationally hold said spindle with respect to said housing against rotational force applied to said distal end.
- 3. The power driver as in claim 1, including a cam disposed between said spindle and said housing so that rotation of said spindle due to a rotational force applied to said distal end drives said spindle to a rotationally fixed position with respect to said housing through said cam.
- 4. The power driver as in claim 1,
a lock surface rotationally fixed to said housing, a cam in rotationally driving engagement with said spindle, a drive plate that is disposed with respect to said motor so that said motor rotationally drives said drive plate and that is disposed with respect to said cam so that said drive plate is rotatable with respect to said cam over a limited arc and drivingly engages said cam at either end of said arc, and a lock roller disposed between said cam and said lock surface, wherein said cam is spaced from said lock surface so that, upon rotation of said cam with respect to said drive plate, said cam wedges said lock roller between said cam and said lock surface.
- 5. The power driver as in claim 4, including a plurality of said lock rollers.
- 6. The power driver as in claim 1, including
a lock surface rotationally fixed to said housing, a drive plate operatively disposed with respect to said motor so that said motor rotationally drives said drive plate, a cam in rotationally driving engagement with said spindle and rotatable with respect to said drive plate over a limited arc, said cam defining at least one flat, and a lock roller disposed between said flat and said lock surface, wherein said drive plate has at least two dogs arranged so that said lock roller is disposed in a gap between two said dogs that is wider than said lock roller, and said dogs engage and rotationally drive said spindle, and maintain said lock roller in position at said flat, when said motor rotationally drives said drive plate, and wherein said cam is spaced from said lock surface so that rotation of said cam with respect to said drive plate moves said lock roller up said flat and wedges said lock roller between said lock surface and said flat.
- 7. The power driver as in claim 1, including means for rotationally holding said spindle with respect to said housing against rotational force applied to said distal end.
- 8. The power driver as in claim 1, wherein
said spindle includes a plurality of angularly disposed passageways formed in said distal end and intersecting said axial bore, said grip includes a plurality of jaws, a separate one of said jaws being slidably positioned in one of each of said passageways, each of said jaws having a jaw face formed on one side thereof, and said driver includes a nut axially movably disposed about said spindle distal end in driving engagement with said jaws so that axial movement of said nut with respect to said spindle moves said jaws in said passageways.
- 9. The power driver as in claim 8 wherein said driver includes a generally cylindrical sleeve rotatably mounted about said spindle and defining a threaded inner circumferential surface, wherein said nut defines a threaded outer circumferential surface, and wherein said sleeve threads engage said nut threads so that rotation of said sleeve drives said nut axially with respect to said spindle distal end.
- 10. The power driver as in claim 9 wherein said nut includes a plurality of slots therethrough and wherein each said jaw extends through a respective said slot so that said jaws rotationally fix said nut with respect to said spindle.
- 11. The power driver as in claim 8, wherein said nut defines a plurality of slots extending at least partially radially through said nut and wherein each said jaw includes a portion thereof that is shaped cooperatively with respect to, and is received by, a respective said slot so that said jaw is radially reciprocal with respect to said nut but cannot move axially forward with respect to said nut.
- 12. The power driver as in claim 8, including
a jaw guide mounted axially reciprocally with respect to said spindle and in operative communication with said nut so that said nut transfers rearward axial force to said jaw guide, and a spring disposed between said jaw guide and said spindle so that said spring exerts an axial compression force therebetween.
- 13. The power driver as in claim 9, including
a jaw guide mounted axially reciprocally with respect to said spindle and axially fixed with respect to said sleeve, wherein said jaw guide extends axially rearward of said passageways and is aligned with the radially outward edges of said passageways, and a spring disposed between said jaw guide and said spindle so that said spring exerts an axial compression force therebetween.
- 14. The power driver as in claim 1, wherein
said spindle includes a plurality of angularly disposed passageways formed in said distal end and intersecting said axial bore, said grip includes a plurality of jaws, a separate one of said jaws being slidably positioned in one of each of said passageways, each of said jaws having a jaw face formed on one side thereof and threads formed on an opposite side thereof, and said driver includes a nut that is rotatably mounted relative to said spindle and has threads engaging said threads on said jaws so that rotation of said nut relative to said spindle moves said jaws axially in said passageways.
- 15. A power driver, said driver comprising:
a housing; a motor disposed in said housing; a spindle having a distal end thereof opposite said motor, said distal end having an axial bore formed therein and a plurality of angularly disposed passageways formed in said distal end intersecting said axial bore; a plurality of jaws, a separate one of said jaws being slidably positioned in one of each of said passageways, each of said jaws having a jaw face formed on one side thereof; and a nut axially movably disposed about said spindle distal end in driving engagement with said jaws so that axial movement of said nut with respect to said spindle moves said jaws in said passageways.
- 16. The power driver as in claim 15, including a lock between said spindle and said housing, said lock being configured to rotationally hold said spindle with respect to said housing against rotational force applied to said distal end.
- 17. The power driver as in claim 15, including a generally cylindrical sleeve rotatably mounted about said spindle and defining a threaded inner circumferential surface, wherein said nut defines a threaded outer circumferential surface, and wherein said sleeve threads engage said nut threads so that rotation of said sleeve drives said nut axially with respect to said spindle distal end.
- 18. A chuck, said chuck comprising:
a generally cylindrical body having an axial bore formed therein and a plurality of angularly disposed passageways formed in said body intersecting said axial bore; a plurality of jaws, a separate one of said jaws being slidably positioned in one of each of said passageways, each of said jaws having a jaw face formed on one side thereof; a nut axially movably disposed about said body in driving engagement with said jaws so that axial movement of said nut with respect to said body moves said jaws in said passageways; a jaw guide mounted axially reciprocally with respect to said body and in operative communication with said nut so that said nut transfers rearward axial force to said jaw guide; and a spring disposed between said jaw guide and said body so that said spring exerts an axial compression force therebetween.
- 19. The chuck as in claim 18, including a generally cylindrical sleeve rotatably mounted about said body and in operative communication with said nut so that rotation of said sleeve with respect to said nut moves said nut axially with respect to said body and so that said nut transfers rearward axial force to said sleeve from said jaws, wherein said jaw guide is in operative communication with said sleeve so that said sleeve transfers said rearward axial force to said jaw guide.
- 20. The chuck as in claim 18, wherein said sleeve defines a threaded inner circumferential surface, wherein said nut defines a threaded outer circumferential surface, and wherein said sleeve threads engage said nut threads so that rotation of said sleeve drives said nut axially with respect to said body.
- 21. A power driver, said driver comprising:
a housing; a motor disposed in said housing; a spindle having a distal end thereof opposite said motor, said distal end having an axial bore formed therein; a grip mounted in said spindle in communication with said axial bore; a driver mounted about said spindle in operative communication with said grip so that activation of said driver in a closing direction moves said grip radially toward the axis of said bore and activation of said driver in an opening direction moves said grip radially away from said axis; and a lock between said spindle and said housing, said lock being configured to rotationally hold said spindle with respect to said housing against rotational force applied to said distal end.
- 22. A geared tool holder for use in a power driver having a motor, said tool holder comprising:
a generally cylindrical body having a nose section and a tail section, said nose section having an axial bore formed therein, and said bore being configured to receive a tool therein; a plurality of jaws axially reciprocally disposed in said body in communication with said bore; and a series of gears having an input configured to receive rotational output from said motor, wherein said gears are mounted in communication with said body, and secured with respect to said body independently of the power driver, so that said gears translate rotational drive to said body.
- 23. The tool holder as in claim 22, including a drive shaft configured to rotate with said body, and wherein said gears are mounted and secured to said body through said shaft.
- 24. The tool holder as in claim 23, wherein said body unitarily defines said shaft.
- 25. The tool holder as in claim 22, wherein said series of gears defines at least two planetary gear paths between said input and said body.
- 26. The tool holder as in claim 25, wherein said gears include a reciprocal gear movable between a first position in which said reciprocal gear completes a first said planetary gear path and a second position in which said reciprocal gear completes a second said planetary gear path.
- 27. The tool holder as in claim 22, wherein said gears define at least two different selectable gear ratios between said motor and said body.
- 28. The tool holder as in claim 25, including a gear housing separate from the drive housing and enclosing said gears.
- 29. A geared tool holder for use in a power driver having a motor, said tool holder comprising:
a drive shaft that defines generally cylindrical chuck body having a nose section and a tail section, said nose section having an axial bore formed therein, and said bore being configured to receive a tool therein; a plurality of jaws axially reciprocally disposed in said body in communication with said bore; a series of gears having an input configured to directly receive rotational output from said motor, wherein said gears are mounted in communication with said drive shaft, and secured with respect to said drive shaft independently of the power driver, so that said gears translate rotational drive to said drive shaft, and wherein said gears define at least two different selectable gear ratios between said motor and said drive shaft; and a gear housing separate from the driver and enclosing said gears, wherein said series of gears defines at least two planetary gear paths between said input and said drive shaft and includes a reciprocal gear movable between a first position in which said reciprocal gear completes a first said planetary gear path and a second position in which said reciprocal gear completes a second said planetary gear path.
- 30. A geared tool holder for use in a power driver having a motor and a driver housing defining an opening at a forward end thereof and a keyway that communicates with said opening, said tool holder comprising:
a drive shaft; a generally cylindrical chuck body having a nose section and a tail section, said tail section being configured to rotate with a drive shaft, said nose section having an axial bore formed therein, and said bore being configured to receive a tool therein; a plurality of jaws axially reciprocally disposed in said body in communication with said bore; a series of gears having an input configured to receive rotational output from said motor, wherein said gears are mounted in communication with said drive shaft, and secured with respect to said drive shaft independently of the power driver, so that said gears translate rotational drive to said drive shaft; and a gear housing separate from the driver, said gear housing being configured to be received by the driver housing opening and defining a key that is shaped to mate with the keyway when said gear housing is received by the driver housing so that said key axially secures said gear housing to the driver housing.
- 31. The tool holder as in claim 30, wherein the keyway and said key comprise corresponding threads.
- 32. The tool holder as in claim 31, wherein one of said threads includes a detent biased toward the other of said threads, wherein the other of said threads defines a receptacle configured to receive said detent, and wherein said detent and said receptacle are disposed on said threads so that when said threads are fully engaged with each other, said receptacle receives said detent.
- 33. A method of assembling a power driver, said method comprising the steps of:
providing a power driver having a motor and a driver housing; providing a geared tool holder that includes
a drive shaft, a generally cylindrical chuck body having a nose section and a tail section, said tail section being configured to rotate with a drive shaft, said nose section having an axial bore formed therein, and said bore being configured to receive a tool therein, a plurality of jaws axially reciprocally disposed in said body in communication with said bore, and a series of gears having an input configured to directly receive rotational output from said motor, wherein said gears are mounted in communication with said drive shaft, and secured with respect to said drive shaft independently of the power driver, so that said gears translate rotational drive to said drive shaft, wherein said gears define at least two different selectable gear ratios between said motor and said drive shaft; and attaching said tool holder to said power driver.
- 34. The method as in claim 33, wherein said attaching step includes connecting said tool holder to said motor and assembling said power driver housing about said motor and said gears.
- 35. The method as in claim 33, wherein said tool holder includes a gear housing disposed about said gears, wherein one of said driver housing and said gear housing defines a female thread and the other of said driver housing and said gear housing defines a corresponding male thread, and wherein said attaching step includes threadedly mating said driver housing and said gear housing.
- 36. The method as in claim 33, wherein said drive shaft unitarily defines said chuck body.
- 37. The method as in claim 33, wherein, in said chuck body provided tool holder, said series of gears defines at least two planetary gear paths between said input and said drive shaft and includes a reciprocal gear movable between a first position in which said reciprocal gear completes a first said planetary gear path and a second position in which said reciprocal gear completes a second said planetary gear path.
- 38. The method as in claim 36, wherein said tool holder includes a generally cylindrical sleeve disposed about said chuck body in communication with said jaws so that reciprocal movement of said sleeve moves said jaws toward and away from said bore.
- 39. The method as in claim 38, wherein said generally cylindrical sleeve is in communication with said jaws so that rotation of said sleeve in a first direction moves said jaws toward said bore and rotation of said sleeve in an opposite direction moves said jaws away from said bore.
Parent Case Info
[0001] This is a continuation-in-part of application Ser. No. 09/455,223 filed Dec. 6, 1999, and claims the benefit of U.S. Provisional Application No. 60/226,631 filed Aug. 21, 2000. Each of these applications are incorporated by reference herein.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60226631 |
Aug 2000 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
| Parent |
09455223 |
Dec 1999 |
US |
| Child |
09729572 |
Dec 2000 |
US |