Background of the Invention
This invention relates to flange locks for securing rotary disks on to the spindles of power tools, such as a grinding wheel on to the spindle of an angle grinder or a circular saw blade on to the spindle of a circular saw.
Conventionally the spindles of such tools are screw threaded and the disks have been secured by a lock nut which is locked in place by a spanner and which must also be released by use of the spanner. More recently flange locks have been developed which can be safely secured and released by hand without the use of a tool and examples of such flange locks are to be found in U.S. Pat. Nos. 4,850,154, 4,941,790 and 5,042,207, and European Patent Application 0381809.
It is an object of the present invention to provide an improved flange lock which can be secured and released by hand.
Summary of the Invention
To this end, from one aspect, the invention provides a flange lock for securing a disk on the spindle of a power tool, comprising a boss screwable on the spindle, inner and outer flanges non rotatably mounted on said boss so as to be relatively movable thereon between a first, separated relation rigid with said boss and a second, less separated relation, separation means mounted between said flanges and disposable between a first condition in which said flanges are maintained in said first, separated relation and a second condition in which the flanges are able to move relatively together to said second, less separated condition, and means for disposing said separation means between said two conditions in such a manner that by screwing the flange lock on to the power tool spindle to secure a disk thereon by engaging said inner flange against the disk with said flanges maintained in said first, separated condition so that the flanges are pressed together through said separation means, disposal of said separation means to said second condition will serve to relieve the pressure between said flanges whereby unscrewing of the flange lock is facilitated.
Preferably, the outer flange is fixed rigid with said boss and the inner flange is movable inwardly along the boss to a limit position.
In a preferred form, the separation means comprises a plurality of elements spaced around said flanges and movable between first positions in which they cooperate with said flanges to maintain said flanges in said first separated condition and second positions in which the flanges are able to move relatively together to said second, less separated condition, and means are provided for releasably holding said elements in said first positions, said elements being movable to second positions upon release of said holding means by the flanges being pressed together. Suitably, the separation elements are in the form of rolling members, such as balls, which co-operate with ramp means on said flanges.
From another aspect, the invention provides a flange lock for securing a disk on the spindle of a power tool, comprising a boss screwable on the spindle, an outer flange fixed rigid with said boss and an inner flange non-rotatably mounted on the boss but axially movable thereon between an inner limit position in which the flanges are in a first, separated condition and a second position in which the flanges are in a second, less separated condition, a plurality of balls mounted between said flanges and movable between first positions in which they co-operate with ramp means on said flanges to maintain said flanges in said first, separated condition and second positions in which the inner flange is able to move towards the outer flange to said second, less separated condition, and means for releasably holding said balls in said first positions in such a manner that when the flange lock is screwed on to the power tool spindle to secure a disk thereon by engaging said inner flange against said disk with said flanges maintained in said first, separated condition so that said flanges are pressed together through said balls, release of said holding means will result in said balls being urged by said pressure along said ramp means to said second positions whereby the pressure between the inner flange and the disk is relieved and unscrewing of the flange lock is facilitated.
In such an arrangement, the ramp means suitably comprise inclined surfaces on one or both of said flanges, and each flange desirably has a number of ramps equal to the number of balls arranged in facing pairs along which said balls are movable. Furthermore, the ramps preferably extend circumferentially and means are provided for guiding said balls circumferentially along said ramps.
In a preferred embodiment, spring means urge said balls into said first positions, and the holding means includes a ring member mounted for limited rotation on the boss intermediate said flanges and rotatable in the direction in which the flange lock is screwed on to the spindle to a first limit position in which said balls are locked in said first positions thereof adjacent the upper ends of the ramps, rotation of the ring member in the opposite direction relative to the boss to a second limit position releasing the balls to permit them to run down the ramps. There are ideally three said balls equally spaced around the flange lock by a cage member rotatably mounted on the boss intermediate said flanges, said cage member including an annular wall member circumferentially between an inner face of said ring member and said boss, this wall member having an opening therethrough in which a locking ball larger than the thickness of the wall is positioned, said boss including a recess which in said first limit position of said ring member corresponding to the first positions of the separation balls is aligned with said opening and said locking ball is held partly in said opening and partly in said recess by said inner face of the ring member thus locking the cage against rotation relative to the boss (and thus the flanges), rotation of said ring member to its second limit position aligning a recess in said inner face of said ring member with said opening in said annular wall of said cage member allowing the locking ball to disengage from the recess in the boss and permit the cage member to rotate relative to the boss so that the balls can move down said ramps. Suitably, the opening in the annular wall member of said cage member is inclined in the direction in which said separation balls move down the ramps. A preferred arrangement includes three of the locking balls each engaging associated openings and recesses.
From a still further aspect, the invention provides a flange lock for securing a disk on the spindle of a rotary tool, comprising a boss screwable on the spindle, an outer flange rigid with the boss and mounted on the outer end thereof, an inner disk-engaging flange non-rotatably mounted on the boss inwardly of the first flange and slidable on the boss away from said outer flange to a limit position, co-operating circumferentially extending ramp means on said flanges, a plurality of balls mounted between the first and second flanges for movement along said ramp means between first rotary positions in which the balls co-operate with said ramp means to produce maximum separation of said flanges with said inner flange in its limit position and second rotary positions in which said inner flange can move towards said outer flange, spring means urging said balls to said first rotary positions, releasable locking means for locking said balls in said first rotary positions in which the flanges are separated with said inner flange in its limit position, and a ring member mounted on said boss intermediate said flanges for rotation between a first rotary limit position in which the releasable locking means is engaged and a second rotary limit position in which said locking means is disengaged whereby the pressure between said flanges created by screwing the flange lock onto a disk with the flanges separated by said balls raised up said ramp means can be relieved by releasing the balls such that they run down said ramp means due to the pressure of the flanges thus relieving the pressure between the inner flange and the disk and facilitating removal of the lock flange.
In order that the invention may be more readily understood, reference will now be made to the accompanying drawings.
Brief Description of the Drawings
FIG. 1 is a cross section through one embodiment of flange lock according to the present invention showing the flange lock securing a grinding disk on the spindle of an angle grinder;
FIG. 2 is an exploded perspective view of the flange lock of FIG. 1 from the front or outer end thereof;
FIG. 3 is an exploded perspective view of the flange lock from the back or inner end thereof;
FIG. 4 is a horizontal cross section of the flange lock looking from the inner end or back thereof in the first separated condition of the lock;
FIG. 5 is a sectional view like that of FIG. 4 showing the second, less separated condition of the flange lock;
FIG. 6 is a schematic illustration of the relationship of a separation ball with ramps on the flanges of the flange lock;
FIG. 7 is a partial cross section through the boss and integral outer flange;
FIG. 8 is a view of the element of FIG. 7 looking from the left in FIG. 7 i.e. the back or inner side of the flange lock;
FIG. 9 is a circumferential section taken along the ramps of the outer flange shown in FIG. 8;
FIG. 10 shows the back side of the cage member of the flange lock;
FIG. 11 is a section along the line XI--XI of FIG. 10;
FIG. 12 shows the front side of the ring member of the flange lock;
FIG. 13 shows the back side of the ring member;
FIG. 14 is a section along the line XIV--XIV of FIG. 12;
FIG. 15 is a view from the front side of the inner flange of the flange lock;
FIG. 16 is a cross section through the inner flange of FIG. 15; and
FIG. 17 is a circumferential partial section along the line XVII--XVII of FIG. 15.
Description of Preferred Embodiments
Referring now to the drawings, the flange lock is shown as used to clamp a grinding wheel or disk 8 on the spindle 10 of an angle grinder. It could also be used to clamp other rotating elements on to spindles such as a circular saw blade on the spindle of a circular saw. The flange lock consists of four major elements; a support member 1 comprising a flange 9 integrally mounted on the outer end of a sleeve-like centre portion or boss 11 which is threaded internally for threading on to the spindle 10 of the angle grinder; a ring element 2 which is rotatably mounted on the boss 11 of the support member 1; a disk-like cage element 3 which is also rotatably mounted on the boss 11 of the support member 1 between the flange 9 and the ring 2; and a clamping flange 4 non-rotatably mounted on the boss 11 of the support member 1 over the ring 2.
The elements 1, 2 and 3 are held against relative axial movement by a circlip 51 engaging in a groove 12 in the boss 11 which prevents axial movement of the elements 2 and 3 along the boss 11. Rotational movement of the clamping flange 4 on the boss 11 is prevented by cooperating flats 42, 11a on the disk 4 and boss 11 respectively. Axial movement of the flange 4 along the boss 11 is limited by the circlip 51 and a second circlip 52 which engages in a groove 13 in the boss 11.
The disk-like cage 3 has projections 31 containing holes 35 which receive support balls 5. The balls 5 fit between the flange 9 and the clamping flange 4 to maintain separation between these two elements. The degree of separation of the flange 9 and flange 4 depends on the position of the balls 5 with respect to circumferentially extending inclined surfaces or ramps 18, 48 on the flanges 9 and 4 respectively.
Rotation of the cage 3 in the clockwise direction relative to the flange 9 (looking towards the front of the grinding disk) is limited by three pins 7a standing up from the flange 9 which engage one side of each of the ball carrying projections 31 of the cage 3 and are normally pressed against the projections 31 by three compression springs 7 which extend between the pins 7a and pins 7b which project downwardly from the ring 2 intermediate the cage projections 31.
The cage 3 has an annular groove 32 extending along in its upper face (looking towards the back of the grinding disk i.e. from the inner side of the flange lock). In the radially inner face of the groove 32 are three radially inwardly extending slots 33 angled outwardly in the anti-clockwise direction. A small lock ball 6 fits in each slot 33. These slots 33 are aligned with recesses 14 in the outer circumferential face of the boss 11 of the support member and the balls 6 sit partly within the slots 33 and partly inside the recesses 14 in the boss of member 1. Between each slot 33 a short circumferential slot 34 is formed in the base of the groove 32.
The ring 2 fits over the cage 3 and is rotatable relative to the support member 1. The front side face of the ring 2 (i.e. the face away from the grinding disk) has an annular rib 21 which fits in the annular groove 31 in the cage 3. Three pins 22 standing up from the annular rib 21 engage in the circumferential slots 34 of the cage. Three recesses 26 are provided in the radially inner face of the rib 21. Three circumferential slots 24 are provided in the ring 2 outwardly of the rib 21 and in alignment with the balls 5 to allow free movement of the balls relative to the ring 2 and at the same time to allow the balls to engage through the ring 2 with the flange 4.
The flange 4 fits over the ring 2 being non-rotatably mounted on the boss 11 of the support member 1 by means of flats 42 engaging the corresponding flats 11a on the boss 11. The flange 4 can move axially on the boss 11, its axial movement being limited by the second circlip 52.
Before the flange lock is fitted on to the spindle of an angle grinder or the like (i.e. the rest position) the relationship of the parts is as follows.
The projections 31 of the cage 3 are pressed against the pins 7a of the flange 1 by the intermediary of the springs 7 pressing against the pins 7b of the ring 2. The pins 22 of the ring 2 in turn press against the ends of the slots 34 in the cage 3 to press the projections 31 of the cage 3 against the pins 7a. In this position the balls 5 are at the upper ends of the ramps on both the flange 1 and the flange 4 and the flange 4 is pressed against the circlip 52. Furthermore in this position the slots 33 in the cage 3 are aligned with the recesses 14 in the boss 11 and the recesses 26 are out of alignment with the slots 33 so that the inner face of the rib 21 holds the balls 6 in the slots 33 and recesses 14 so that the balls 6 lock the flange 1 and cage 3 against relative rotation.
When the flange lock is rotated on to the spindle by gripping the ring 2 the above condition is maintained since the rotation is in the direction which maintains the condition, i.e. the ring 2 urging the cage 3 into the position in which the projections 31 engage the pins 7a. The flange lock is tightened on to the grinding disk 8 with the flanges 9 and 4 remaining spaced by the balls 5 held between the ramps 18 and 48. The support member 1 is screwed on in the direction of rotation of the grinding disk so that it becomes tighter as the disk rotates.
In order to release the flange lock, the ring 2 is rotated anti-clockwise against springs 7 which results in the following. The recesses 26 move into alignment with the slots 33 and the balls 6 are now moved outwardly by the load on the flange 4 tending to move the balls 5 down the ramps 18, 48 thus rotating the cage 3 anti-clockwise relative to the flanges 9 and 4. As soon as the balls 6 move outwardly the lock between cage 3 and support member 1 is released and the cage 3 rotates relative to the flanges 9 and 4 (against the springs 7) to allow the balls 5 to run down the ramps 18, 48 and the flange 4 to move axially down the boss 11 thus relieving the pressure between the flange 4 and the grinding disk 8 so that the user can now relatively easily unscrew the flange lock by continuing to rotate the ring 2 anti-clockwise.
The maximum rotational movement of the cage against the spring action is about 15.degree.. For release of the mechanism as described above less than 15.degree. of movement is required.
Rubber seals 53 and 54 are provided between the ring 2 and flange 9 and flange 4 respectively to prevent the ingress of dirt.
While a particular embodiment of the invention has been described it will be understood that various modifications and variations may be made to the specific details referred to herein. For example, while in the embodiment illustrated separation balls 5 have been described it will be understood that other slidable elements and low friction bodies, particularly rolling elements, may be utilised.