Miter saw
10493542 ยท 2019-12-03
Assignee
Inventors
Cpc classification
B23D45/048
PERFORMING OPERATIONS; TRANSPORTING
Y10T83/7701
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y10T83/8773
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B27B5/29
PERFORMING OPERATIONS; TRANSPORTING
Y10T83/7697
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
B23D45/02
PERFORMING OPERATIONS; TRANSPORTING
B23D45/04
PERFORMING OPERATIONS; TRANSPORTING
B23D47/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A miter saw includes a base having a peripheral wall, a table rotatably supported upon the base, and a miter angle lock. The miter angle lock includes a pin having a first end adjacent the peripheral wall and an opposite second end. The miter angle lock also includes a cam member engageable with the second end of the pin and movable between a locked position in which the first end of the pin is brought into frictional contact with the peripheral wall for locking the table relative to the base, and an unlocked position in which the first end of the pin is spaced from the peripheral wall of the base.
Claims
1. A miter saw comprising: a base having a peripheral wall; a table rotatably supported upon the base; and a miter angle lock including a pin having a first end adjacent the peripheral wall and an opposite second end, a cam member engageable with the second end of the pin and movable between a locked position in which the first end of the pin is brought into frictional contact with the peripheral wall for locking the table relative to the base, and an unlocked position in which the first end of the pin is spaced from the peripheral wall of the base, and a biasing member that moves the first end of the pin away from the peripheral wall when the cam member is in the unlocked position; wherein the miter angle lock further includes a wear plate having a first end fixed relative to the table and a second, distal end positioned between the cam member and the second end of the pin such that the cam member and the second end of the pin are directly engageable with the wear plate.
2. The miter saw of claim 1, wherein the miter angle lock further includes an actuator for moving the cam member between the locked position and the unlocked position.
3. The miter saw of claim 2, wherein the actuator is pivotable about a pivot axis in unison with the cam member.
4. The miter saw of claim 3, further comprising a bracket coupling the table and the miter angle lock, wherein the cam member and actuator are pivotably coupled to the bracket about the pivot axis.
5. The miter saw of claim 4, wherein the bracket includes a housing having a cylindrical bore in which the pin is slidably received, and wherein the miter angle lock further includes a retainer coupled to the pin, and wherein the biasing member is positioned between the housing and the retainer.
6. The miter saw of claim 3, wherein the actuator includes a pair of lobes, each having an aperture coaxial with the pivot axis, and wherein the cam member is positioned between the lobes.
7. The miter saw of claim 6, wherein the cam member includes an aperture coaxial with the pivot axis.
8. The miter saw of claim 2, further comprising a miter angle adjustment system including a detent actuator spaced from the actuator of the miter angle lock, a detent release member having a detent sized to be received within a recess of the base, and a detent bypass cam engageable with the detent release member to move the detent away from the recess of the base in response to movement of the detent actuator.
9. The miter saw of claim 1, further comprising a miter angle adjustment system including a detent release lever; a detent extending from the detent release lever; and a plurality of recesses defined in the base coinciding with predetermined miter angle positions of the table relative to the base.
10. The miter saw of claim 9, wherein the detent release lever defines an aperture through which the pin protrudes to engage the peripheral wall when in the locked position.
11. The miter saw of claim 9, wherein the detent release lever is adjustable between a first position in which the detent is received in one of the plurality of recesses, and a second position in which the detent is not received in any of the recesses.
12. The miter saw of claim 11, wherein the detent release lever is biased toward the first position.
13. The miter saw of claim 12, wherein the detent release lever is operable to be manually actuated into the second position.
14. The miter saw of claim 13, wherein the table is freely rotatable relative to the base when the detent release lever is held in the second position and when the cam member is in the unlocked position.
15. The miter saw of claim 9, wherein the detent release lever is configured as a leaf spring.
16. The miter saw of claim 9, further comprising a detent bypass mechanism including a detent bypass cam engageable with the detent release lever; and a detent bypass lever coupled for co-rotation with the detent bypass cam.
17. The miter saw of claim 16, wherein the detent bypass cam is pivotable between a first position, in which the detent release lever is located in a first position where the detent is received in one of the plurality of recesses, and a second position, in which the detent release lever is held in a second position where the detent is not received in any of the recesses.
18. The miter saw of claim 17, wherein the detent bypass cam bends the detent release lever in response to the detent bypass cam pivoting from the first position toward the second position.
19. The miter saw of claim 18, wherein the detent release lever is biased toward the first position, and wherein the detent release lever returns from the second position toward the first position in response to the detent bypass cam pivoting from the second position toward the first position.
20. The miter saw of claim 1, further comprising a bracket coupling the table and the miter angle lock, wherein the bracket includes a bore in which the pin is received, and wherein the biasing member is positioned between an opening of the bore and the second end of the pin.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4) In these figures: 1table; 2base; 3retaining blade; 4locking handle; 5rotary pin; 6screws; 7washers; 8spring washers; 9screw; 10friction sheet; 11support structure; 12locking pin; 13spring; 14open ring; 15resilient retaining ring for shaft use; 16indexing cam; 17resilient corrugated retaining ring for shaft use; 18cam handle; 19shaft; 20grooves; 21protrusion; 22, 23bores; 24cam-accommodating gap; 25bore; 26locking cam; 27screw; 30outer circumstantial surface; and L-axis.
DETAILED DESCRIPTION
(5) The miter saw of the present invention will be described in greater detail in the following description which demonstrates an exemplary embodiment of the present invention, in conjunction with
(6) Referring now to
(7) Referring to
(8) In this embodiment, the support structure 11, table 1 and retaining blade 3 are secured together using screws 6, pads 7 and spring washers 8. The screws 6 may be implemented as M6 screws, the pads 7 may be implemented as 6 pads and the spring washers 8 may be implemented as 6 spring washers. Additionally, the support structure 11 is further provided at its front end with an M6 screw 27 for adjusting a distance from a mounting position of the support structure 11 for ensuring a sufficient space for enabling two cams 16 and 26, described in detail below, to rotate therein to realize the indexing and interlocking operations.
(9) The rotary indexing mechanism further includes a blade drive mechanism. The retaining blade 3 is coupled to the blade drive mechanism. Under the action of this blade drive mechanism, the retaining blade 3 can be bent itself such that the protrusion 21 is evacuated from the corresponding groove 20. The blade drive mechanism is in rotary connection to the support structure 11.
(10) More specifically, as shown in
(11) With reference to
(12) Along an axial direction of the shaft 19, the cam 16 is located between the support structure 11 and the cam handle 18. A resilient retaining ring 15 for shaft use is provided between the support structure 11 and cam 16, and a resilient corrugated retaining ring 17 for shaft use is position between the cam 16 and the cam handle 18. The resilient retaining ring 15 may be implemented as a resilient 8 ring for shaft use.
(13) After the blade drive mechanism, support structure 11 and retaining blade 3 are assembly together, the shaft 19 and the support structure 11 are in rotary connection, which allows the shaft 19 and the cam handle 18 to rotate about the axial direction of the shaft 19. The rotation of the cam handle 18 drives the cam 16 to rotate synchronously and hence the cam 16 comes in contact with the blade 3. With the cam 16 further rotating, it pushes against the retaining blade 3 and, as a result, bends the retaining blade 3. In this embodiment, the cam 16 is arranged above the retaining blade 3 and pushes the retaining blade 3 downwardly to make the bend.
(14) When to adjust the rotational angle of the table 1 with respect to the base 2, the cam handle 18 is rotated to drive the cam 16 to rotate about a center line of the bore 23. As the cam 16 contacts the retaining blade 3, the rotation of the cam 16 generates a downward force on the retaining blade 3 which bends the blade 3 and thereby makes the protrusion 21 on the retaining blade 3 move out of the corresponding receiving groove 20 of the base 2. After this, the table 1 is rotatable with respect to the base 2 freely.
(15) Referring to
(16) The locking mechanism further includes a locking drive mechanism. The locking drive mechanism includes a locking handle 4 and a friction sheet 10. A rear end face of the locking pin 12 contacts the friction sheet 10, and the friction sheet 10 can be bent to drive the locking pin 12 to make contact with the outer circumstantial surface 30 of the base 2 to accomplish the lock operation. The bending of the friction sheet 10 can be accomplished by rotating the locking handle 4.
(17) The locking handle 4 has a locking cam 26 fixedly mounted thereon. The locking cam 26 pushes the friction sheet 10 with the rotating of the locking handle 4 and hence causes the friction sheet 10 to be bent. In this embodiment, the support structure 11 defines a gap 24 in which the friction sheet 10 is disposed and the cam 26 rotates in the gap 24 to push the friction sheet 10. One end of the friction sheet 10 is fixed on the support structure 11 using a screw 9. The screw 9 may be implemented as an M4 screw. Reference may be made to the cam 16 for a better understanding of the cam 26. Compared to wheel-shaped structures functioning in a similar way used in conventional miter saws, these cams 26 and 16 are advantageous in owning a protrusion that can push the friction sheet 10 and the retaining blade 3, respectively, when the cams rotate.
(18) The locking handle 4 is in rotary connection with the support structure 11 by means of a rotary pin 5.
(19) The locking drive mechanism further includes a spring 13 which is stretchable and compressible in an axis direction of the locking pin 12. The spring 13 surrounds the locking pin 12 and has its one end fixedly connected to the locking pin 12 and the other end connected to the friction sheet 10 through an open ring 14.
(20) In this embodiment, locking the table 1 against the base 2 can be accomplished by rotating the locking handle 4 downwardly to cause the cam 26 to push the friction sheet 10. The sheet 10 then drives the locking pin 12 to move forward and press against the outer circumstantial surface 30 of the base 2 at a front end of the driving the locking pin 12. In this configuration, a friction force between the front end of the locking pin 12 and the outer circumstantial surface 30 can maintain the table 1 and the base 2 in a desired interlocked state. Further, the spring 13 surrounding the locking pin 12 acts as a withdrawal means which pulls the locking pin 12 back to the original position when the locking handle 4 is loosened.
(21) Referring to
(22) As described above, the miter saw of the present invention uses a rotary indexing mechanism to achieve the rotational position indexing between the base and the table and uses a locking mechanism to further realize the interlocking between the base and the table. Both the rotary indexing mechanism and the locking mechanism are mounted on a support structure that is fixedly connected to the table. Such design enables the construction of a more reasonable and practical structure that allows the position indexing and interlocking to be accomplished by a single hand. In addition, by coupling the table and the rotary indexing mechanism to the base from the top side and the bottom side of the base, respectively, the table and the rotary indexing mechanism further creates a clamping effect on the base, which can promote the position indexing performance compared to conventional indexing mechanisms.
(23) Various features of the invention are set forth in the following claims.