SPINDLE LOCKING APPARATUS FOR A ROTARY POWER TOOL
20200171613 ยท 2020-06-04
Assignee
Inventors
- Robert Arthur (Trenton, MI, US)
- Nathaniel P Wenzel (Lyndhurst, OH, US)
- Nicholas J Russell (Kirtland, OH, US)
- Michael J Flaherty (Westland, MI, US)
Cpc classification
B23Q11/0092
PERFORMING OPERATIONS; TRANSPORTING
B25F5/001
PERFORMING OPERATIONS; TRANSPORTING
International classification
B23Q11/00
PERFORMING OPERATIONS; TRANSPORTING
B25B33/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A spindle locking apparatus for power tools having a spindle mounted for rotation within a tubular housing. The locking apparatus includes a locking sleeve disposed between the spindle and its tubular housing, a locking collar surrounding the tubular housing radially outboard of the locking sleeve, and a set of drive pins mechanically coupling the locking collar to the locking sleeve through axial slots in the tubular collar. The inner periphery of the locking sleeve is shaped to lockingly engage a flat-sided portion of the spindle, and a spring element biases the locking sleeve away from the flat-sided portion of the spindle to unlock the spindle. The locking collar is axially shiftable against the spring bias as permitted by the slots in the tubular housing to bring the locking sleeve into locking engagement with the flat-sided portion of the spindle to prevent spindle rotation.
Claims
1. A user-manipulated spindle locking apparatus for a tool having a cylindrical spindle supported for rotation within a tubular housing, where said spindle locking apparatus is axially shiftable to engage a flat-sided portion of said spindle to prevent rotation of said spindle, said locking apparatus comprising: a locking sleeve disposed in an annular cavity between said spindle and said tubular housing, said locking sleeve having an inner periphery portion shaped to lockingly engage the flat-sided portion of said spindle; a locking collar surrounding said tubular housing radially outboard of said locking sleeve, and axially shiftable on said tubular housing; first and second axial slot openings in said tubular housing; and first and second drive pins extending through said first and second axial slot openings to mechanically couple said locking collar to said locking sleeve, each such drive pin having an outboard end retained in said locking collar, and an inboard end retained in said locking sleeve, whereby said spindle is prevented from rotating when said locking collar is axially shifted as permitted by an interface between said drive pins and said axial slot openings to bring said inner periphery portion of said locking sleeve into locking engagement with the flat-sided portion of said spindle.
2. The locking apparatus of claim 1, further comprising: a spring element disposed in the annular cavity between said spindle and said tubular housing so as to bias the locking sleeve away from the flat-sided portion of the spindle to define a rest or unlocked position in which said spindle is free to rotate within said tubular housing.
3. The locking apparatus of claim 2, where: said spring is a multi-wave disk spring.
4. The locking apparatus of claim 2, where: said spring is disposed axially forward of said locking sleeve to bias said locking sleeve axially rearward of said flat-sided portion of said spindle; and said locking collar is axially shifted forward against the bias of said spring to bring said inner periphery portion of said locking sleeve into locking engagement with the flat-sided portion of said spindle.
5. The locking apparatus of claim 1, where: said inner periphery portion of said locking sleeve is disposed in a central axial location of said locking sleeve, and said drive pins are radially aligned with said inner periphery portion.
6. The locking apparatus of claim 1, where: said locking collar includes left and right halves that are joined around said tubular housing, and mutually fastened.
7. The locking apparatus of claim 6, further comprising: a spring steel band clamped around the joined left and right halves to mutually fasten them.
8. The locking apparatus of claim 7, where: said spring steel band retains said drive pins in said locking collar.
9. The locking apparatus of claim 7, where: said left and right halves of said locking collar include peripheral ridges that axially retain said spring steel band on said locking collar.
10. The locking apparatus of claim 8, further comprising: said locking collar includes left and right halves formed by splitting a one piece ring; and the left and right halves are joined with intervening spacer pins that compensate for ring material lost due to the splitting.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0005]
[0006]
[0007]
[0008]
DESCRIPTION OF THE PREFERRED EMBODIMENT
[0009] The spindle locking apparatus of this invention is designed for use in power tools having a spindle mounted for rotation within a tubular housing, where it is desirable to temporarily prevent the spindle from rotating with respect to the housing while attaching or removing implements driven by the spindle. One such power tool is an angle grinder having a threaded drive shaft, where abrasive grinding or cutting disks are secured to the drive shaft with a threaded fastener; in such tools, the spindle is mechanically coupled to the drive shaft, and it is desirable to rotationally lock the spindle (and drive shaft) when attaching or removing the threaded fastener.
[0010] The locking apparatus of the present invention is illustrated herein in the context of an angle grinder, and the angle grinder's front housing assembly 10 is shown in the drawings. Referring to
[0011] As seen in the exploded view of
[0012] As seen in
[0013] The slot openings 46 in the wall of tubular housing portion 12a limit axial shifting of the locking collar/sleeve assembly due to their interference with the locking pins 40a, 40b, and also prevent rotation of the assembly with respect to the tubular housing 12. The spring 34 biases the assembly toward an inboard limit position (defined by the inboard end of the slot openings 46) in which the inner periphery portion 36a of locking sleeve 36 does not engage the flat-sided feature 28 of spindle 22, leaving the spindle 22 free to rotate; this state of the spindle locking apparatus 20 is depicted in
[0014] As also seen in
[0015] In a preferred embodiment, the locking collar 38 is constructed by splitting a metal ring of suitable diameter to form the locking collar halves 38a and 38b. The splitting procedure may be carried out by cutting, for example. Since some material is removed by the splitting procedure, the abutting faces of the locking collar halves 38a, 38b are recessed (as designated by the reference numeral 39 in
[0016] The cross-sectional views of
[0017] The cross-sectional view of
[0018] In summary, the spindle locking apparatus 20 of the present invention provides a robust and convenient way for the user of a power tool to rotationally lock the power tool's spindle while changing grinder disks or other implements. The apparatus is particularly well suited to retrofit applications because the locking sleeve 36 is easily inserted into the cavity 56 between the spindle 22 and its tubular housing 12, and because the locking collar 38 is constructed as a two-piece clamshell joined to surround the outer periphery of tubular housing 12. Of course, the various elements of the apparatus may be sized differently than shown to suit a given power tool, and may be constructed of metal or plastic, as appropriate. Also, it will be recognized that while the invention has been described in reference to the illustrated embodiments, numerous modifications and variations in addition to those mentioned herein will occur to those skilled in the art. Accordingly, it will be appreciated that systems incorporating these and other modifications and variations still fall within the intended scope of the invention.