DRILL WITH REMOVABLE CHUCK
20180214958 ยท 2018-08-02
Inventors
Cpc classification
B23B31/10
PERFORMING OPERATIONS; TRANSPORTING
B25B21/007
PERFORMING OPERATIONS; TRANSPORTING
B23B2231/38
PERFORMING OPERATIONS; TRANSPORTING
B23B51/12
PERFORMING OPERATIONS; TRANSPORTING
International classification
B23B31/06
PERFORMING OPERATIONS; TRANSPORTING
B23B31/10
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A power tool including a motor and a rotatable spindle driven by the motor to hold and drive a first bit. There is a recess located on the spindle. The power tool also includes a removable chuck with a lock member and a locking collar. The locking collar includes a locking position in which the locking collar biases the lock member into the recess to retain the chuck on the spindle. The locking collar also includes a release position in which the lock members are able to exit the recess and the chuck is able to be removed from the spindle by a user. The locking collar is axially movable from the locking position to the release position.
Claims
1. A power tool, comprising: a motor; a rotatable spindle driven by the motor and configured to hold and drive a first bit; a recess located on the spindle; a removable chuck, the removable chuck including a lock member and a locking collar; wherein the locking collar includes a locking position in which the locking collar biases the lock member into the recess to retain the chuck on the spindle; wherein the locking collar includes a release position in which the lock members are able to exit the recess and the chuck is able to be removed from the spindle by a user; and wherein the locking collar is axially movable from the locking position to the release position.
2. The power tool of claim 1, wherein the locking collar is biased towards the locking position.
3. The power tool of claim 1, wherein the locking collar moves in a direction away from the motor when moving from the locking position to the release position.
4. The power tool of claim 1, further comprising a bit receiving opening in which the first bit held by the spindle is received when the chuck is retained on the spindle.
5. The power tool of claim 1, wherein the chuck further includes a plurality of jaws configured to hold and drive a second bit.
6. The power tool of claim 1, wherein the removable chuck includes a connection shaft which holds the lock members.
7. The power tool of claim 1, wherein the lock members are ball bearings.
8. The power tool of claim 7, wherein the locking collar includes a plurality of ball bearing interlock projections which project radially inwardly and keep the lock members in the groove when the locking collar is in the locked position.
9. The power tool of claim 1, wherein the power tool has an axial length along a rotational axis of the motor and wherein the axial length is less than 25 mm.
10. A power tool comprising: a motor; a rotatable spindle driven by the motor and configured to hold and drive a first bit; a removable chuck configured to hold and drive a second bit and including a locking mechanism having a locking position in which the removable chuck is locked to the spindle and a release position in which the removable chuck can be removed from the spindle; wherein the power tool is operable to in a first mode in which the removable chuck is removed from the and the first bit is exposed; wherein the power tool is operable in a second mode in which the removable chuck is locked to the spindle and the first bit is covered by the removable chuck; wherein the power tool is configured to switch between the first mode and the second mode without removal of the first bit from the spindle; wherein the locking mechanism includes an actuation member which is configured to move the locking mechanism from the locking position to the release position; and wherein the actuation member is movable in an axial direction.
11. The power tool of claim 10, wherein the actuation member is movable in an axial direction along an axis of the chuck.
12. The power tool of claim 10, wherein, in the second mode, the actuation member moves away from the motor to move the locking mechanism from the locking position to the release position.
13. The power tool of claim 10, wherein the locking mechanism includes a shaft with a central opening.
14. The power tool of claim 10, wherein the spindle fits into the central opening.
15. The power tool of claim 10, wherein the actuation member is ring shaped.
16. A power tool, comprising: a motor; a rotatable spindle driven by the motor and configured to hold and drive a first bit; a recess located on the spindle; a removable chuck, the removable chuck including a lock member and a locking collar; wherein the locking collar includes a locking position in which the locking collar biases the lock member into the recess to retain the chuck on the spindle; wherein the locking collar includes a release position in which the lock members are able to exit the recess and the chuck is able to be removed from the spindle by a user; wherein the locking collar moves axially away from the motor to move from the locking position to the release position; and wherein the locking collar is biased towards the locking position.
17. The power tool of claim 16, further comprising a bit receiving opening in which the first bit held by the spindle is received when the chuck is retained on the spindle.
18. The power tool of claim 16, wherein the chuck further includes a plurality of jaws configured to hold and drive a second bit.
19. The power tool of claim 16, wherein the removable chuck includes a connection shaft which holds the lock members.
20. The power tool of claim 1, wherein the locking collar includes a plurality interlock projections which project radially inwardly and keep the lock members in the groove when the locking collar is in the locked position.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF EXEMPLARY EMBODIMENTS
[0052] A user may want to quickly switch between two bits to accomplish a task quickly. For example, a user may wish to use a drill bit and quickly switch to a screwdriver bit.
[0053] An exemplary embodiment of the present application shown in
[0054] As shown in
[0055] Drill 1 also includes a removable chuck 60. The removable chuck 60 includes a plurality of jaws 61 for securing a bit. The chuck 60 also includes a locking ring 70. The locking ring 70 helps secure the chuck 60 to the output spindle 20. Additionally, the locking ring 70 can be moved by the user to unlock the chuck 60 from the output spindle 20 so that the chuck 60 can be removed from the remainder of the drill 1.
[0056] Further details of the chuck 60 and locking ring 70 are shown in
[0057] The second portion 85 of the connection shaft 62 does not fit into the chuck body opening 80. Instead, it engages the locking ring 70, as shown in
[0058] As shown in
[0059] When the locking ring 70 slides forward, the locking projections 71 move forward in the grooves 66 and are no longer aligned with the ball bearings 63. Accordingly, the ball bearings 63 may move radially outwardly to some degree.
[0060]
[0061] A user may remove the chuck 60 from the output spindle 20 by pulling forward on the locking ring 70. The locking ring 70 will move forward against the biasing of the compression spring 64 to a forward position. When the locking ring 70 is in a forward position, the locking projections 71 are no longer aligned with the ball bearings. The forward position of the locking ring 70 with respect to the connection shaft 62 is shown in
[0062] A user may recouple the chuck 60 to the output spindle 20 by sliding it back onto the spindle 20. The ball bearings 63 will seat in the groove 21 and will be locked when the locking ring 70 is in its rearward position to which it is biased by the compression spring 64. The user may or may not hold the locking ring 70 in the forward/unlocked position when coupling it to the spindle 20. The locking ring 70 will have to be in the forward/unlocked position in order for the ball bearings 63 to slide onto the spindle 20 into the grooves. However, if the locking ring 70 starts in the rearward/locked position, it will be pressed forward by the action of sliding the chuck 60 onto the spindle 20 and will snap back once the ball bearings 63 sit into the groove 21.
[0063] The configuration of the exemplary embodiment provides a quick and efficient change between the uncoupled chuck 60 mode (
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[0065] While the invention has been described by way of exemplary embodiments, it is understood that the words which have been used herein are words of description, rather than words of limitation. Changes may be made within the purview of the appended claims, without departing from the scope and spirit of the invention in its broader aspects.