The present invention relates to a polishing tool including a grinding member, and a polishing tool unit having a tool holder that holds the polishing tool.
For deburring and polishing of moldings, pressed products, and machined products of metals, a polishing tool in which the base ends of linear grinding members are bundled with a grinding member holder so as to form a brush-shape is employed. Patent Literature 1 describes a polishing tool unit (polisher brush) in which a polishing tool is held by a tool holder including a shank serving as an attachment part to a processing machine. The tool holder includes a sleeve coaxial with the shank. The polishing tool is held by the tool holder in a state that a grinding member holder is inserted into the sleeve, and the free ends of linear grinding members protrude from the tip opening of the sleeve. The grinding member holder is movable inside the sleeve in the axial direction, and adjustment of the protruding amount of the linear grinding members from the sleeve is made by moving the grinding member holder in the axial direction.
Here, using a fixing screw, the grinding member holder is fixed to a desired position in the sleeve in the axial direction. That is, an opening is formed in the circumferential wall of the sleeve over a predetermined range in the axial direction, and a threaded hole is formed in the grinding member holder so as to penetrate in a direction perpendicular to the axial direction. A fixing screw is tightened from the opening side so that the tip part of the fixing screw comes into contact with the inner circumferential surface of the circumferential wall part, whereby the grinding member holder is pressed against the inner circumferential surface of the circumferential wall, and fixed.
Patent Literature 1: Japanese Unexamined Patent Application Publication No. 2009-50967 (JP 2009-50967 A)
Grinding members are worn out during processing operation. Therefore, it is necessary to adjust the protruding amount of grinding members in accordance with the degree of wear. Here, in the polishing tool unit described in Patent Literature 1, for the purpose of adjusting the protruding amount of grinding members, it is necessary to loosen a fixing screw and move a grinding member holder in the axial direction, and then, tighten the fixing screw again and fix the grinding member holder to a sleeve, and thus, such adjustment work takes time and effort.
In view of these problems, an object of the present invention is to provide a tool holder that allows the protruding amount of grinding members from a sleeve to be easily adjusted. Furthermore, an object of the present invention is to provide a polishing tool unit including such tool holder and a polishing tool. Furthermore, an object of the present invention is to provide a polishing tool suitable for being held by such tool holder. Furthermore, an object of the present invention is to provide a method of adjusting the protruding amount of grinding members, the method being capable of easily adjusting the protruding amount of grinding members from a sleeve.
To solve the problems, the present invention provides a tool holder including: a shank; a sleeve positioned forward of the shank in an axial direction of the shank; a shaft positioned forward of the shank and extending coaxially with the shank; a bolt portion provided in the shaft inside the sleeve; a nut screwed onto the bolt portion; and a nut moving mechanism configured to move the nut along the bolt portion in the axial direction, in which a polishing tool including a grinding member is movably held together with the nut in a state that at least part of the grinding member protrudes from a front end opening of the sleeve.
According to the present invention, the grinding member protruding amount of the grinding member from the sleeve in the polishing tool can be adjusted by moving the nut along the bolt part. Accordingly, compared with a case in which, when the protruding amount of the grinding member is adjusted, a fixing screw is loosened or tightened, the adjustment work can be more easily carried out. Furthermore, the movement amount of the nut in the axial direction is precisely regulated by the angle of relative rotation of the shaft and the nut. Accordingly, the protruding amount of the grinding member in the polishing tool can be adjusted with high accuracy.
In the present invention, the shaft may be rotatable relative to the shank and the sleeve about the axis, the shank and the sleeve may be relatively unrotatably connected to each other, and the nut moving mechanism may include a nut rotation regulating mechanism configured to regulate the rotation of the nut relative to the sleeve. With this configuration, the rotation of the shaft relative to the shank brings about the rotation of the shaft relative to the nut. Accordingly, when the shaft is rotated in a state that the shank is fixed to a machine tool or the like, the nut is moved in the axial direction, whereby the protruding amount of the grinding member can be adjusted.
In this case, the shaft may be movable between a first position and a second position spaced backward from the first position in the axial direction, and the nut moving mechanism may include: a biasing member that provides biasing force to bias the shaft toward the first position when the shaft moves from the first position toward the second position; and a motion converting mechanism configured to convert a linear reciprocating motion of the shaft from the first position via the second position back to the first position into a rotational motion of the shaft to rotate about the axis at a certain angle in a single direction. With this configuration, when a pushing operation of pushing the shaft backward is performed, the shaft is rotated, whereby the protruding amount of the grinding member can be adjusted. Furthermore, with this configuration, when the force of pushing the polishing tool into the sleeve from a process-target workpiece side acts during processing operation, the polishing tool is made to move backward in the axial direction, whereby breakage of the polishing tool and wear of the grinding member can be reduced.
Furthermore, in this case, the shank may include a coolant inlet hole that penetrates the shank. The nut moving mechanism may include: a moving member relatively unrotatably supported by the shaft in a state of being movable between a first position and a second position spaced backward from the first position in the axial direction; a biasing member that biases the moving member to the second position; and a motion converting mechanism configured to convert a linear reciprocating motion of the moving member from the second position via the first position back to the second position into a rotational motion of the moving member to rotate about the axis at a certain angle in a single direction. When a coolant is fed into the coolant inlet hole, fluid pressure of the coolant may allow the moving member to move from the second position to the first position against the biasing force of the biasing member. With this configuration, when a coolant is fed into the shank from a machine tool, the shaft is rotated, whereby the protruding amount of the grinding member can be adjusted.
Furthermore, in this case, the nut moving mechanism may include an operating mechanism configured to rotate the shaft relative to the shank. With this configuration, the shaft is rotated by the operation of an operating member, whereby the protruding amount of the grinding member can be adjusted.
In the present invention, the shank may be formed integrally with the shaft, the sleeve may be rotatable relative to the shank and the shaft about the axis, and the nut moving mechanism may include a nut rotation regulating mechanism configured to regulate the rotation of the nut relative to the sleeve. With this configuration, the rotation of the sleeve relative to the shank brings about the rotation of the shaft relative to the nut. Accordingly, when the sleeve is rotated in a state that the shank is fixed to a machine tool or the like, the nut is moved in the axial direction, whereby the protruding amount of the grinding member can be adjusted.
In this case, the nut moving mechanism preferably includes an operating member configured to rotate the sleeve relative to the shank. With this configuration, the sleeve is rotated by operating the operating member, whereby the protruding amount of the grinding member can be adjusted.
In the present invention, for the purpose of making a polishing tool movable integrally with a nut, the nut may include a connecting part that attachably and detachably connects to the polishing tool.
In the present invention, for the purpose of making a polishing tool movable integrally with a nut, the nut may be provided integrally with the polishing tool.
Next, a polishing tool unit of the present invention includes the tool holder and a polishing tool that includes grinding member and is held by the tool holder.
With the polishing tool unit of the present invention, the grinding member protruding amount of the grinding member of the polishing tool that protrude from the sleeve of the tool holder is easily adjusted.
Furthermore, a polishing tool of the present invention includes a grinding member and an annular grinding member holder that holds the grinding member. A female thread is formed in an annular inner circumferential surface of the grinding member holder.
According to the present invention, when the polishing tool is held by the tool holder, the grinding member holder can be made to function as a nut of the tool holder.
Next, a method of adjusting a protruding amount of a grinding member according to the present invention employs a tool holder including a shank, a sleeve positioned forward of the shank in an axial direction of the shank, a shaft positioned forward of the shank and extending coaxially with the shank, a bolt portion provided in the shaft inside the sleeve, and a nut screwed onto the bolt portion. The method includes: holding a polishing tool including the grinding member by the tool holder, with the polishing tool movable integrally with the nut; and moving the nut along the bolt portion in the axial direction to adjust the grinding member protruding amount of the grinding member from the sleeve.
According to the present invention, the grinding member protruding amount of the grinding member from the sleeve in the polishing tool is adjusted by moving the nut along the bolt part. Accordingly, compared with a case in which, when the protruding amount of the grinding member is adjusted, a fixing screw is loosened or tightened, the adjustment work can be more easily carried out. Furthermore, the movement amount of the nut in the axial direction is precisely regulated by the angle of relative rotation of the shaft and the nut. Accordingly, the protruding amount of the grinding member in the polishing tool can be adjusted with high accuracy.
Hereinafter, polishing tool units to which the present invention is applied are described with reference to the drawings.
(Tool Holder)
The tool holder 2 includes a shank head 5 and a sleeve 6 coaxially in the axis L direction in order from the shank 2a side. The shank head 5 includes the shank 2a, a disk part 7, and a connecting disk part 8 that connects between the disk part 7 and the shank 2a. The outer diameter of the connecting disk part 8 is larger than the outer diameter of the shank 2a, and smaller than the outer diameter of the disk part 7. The disk part 7 is provided with two through holes 9 extending in the radial direction. The two through holes 9 are formed in 180-degree rotational symmetry about the axis L. Into each of the through holes 9, a biasing screw 10 is screwed. In the outer circumferential edge of the front end of the disk part 7, two arc-shaped walls 11 extending in the front and circumference direction are provided. The two arc-shaped walls 11 are formed in 180-degree rotational symmetry about the axis L. From a gap part 12 between the two arc-shaped walls 11, a gear screw operating gear 13 that is disposed on the inner circumferential side of the arc-shaped walls 11 is partially exposed.
The sleeve 6 includes a tube part 15 extending in the axis L direction, and an annular flange 16 spreading from the rear end of the tube part 15 toward the outer circumferential side. The flange 16 is formed coaxially with the tube part 15. The front ends of the arc-shaped walls 11 of the shank head 5 is fitted into the rear end portion of the outer circumferential edge of the flange 16. The outer circumferential surface of the tube part 15 includes: a large-diameter outer circumferential surface portion 15a being adjacent to the flange 16 and having a constant outer diameter; a tapered outer circumferential surface portion 15b being continuous to the front end of the large-diameter outer circumferential surface portion 15a and having an outer diameter becoming smaller toward the front; and a small-diameter outer circumferential surface portion 15c being continuous to the front end of the tapered outer circumferential surface portion 15b and extending with keeping a constant outer diameter. The tube part 15 is provided with two groove-shaped guide holes 17 extending from the large-diameter outer circumferential surface portion 15a via the tapered outer circumferential surface portion 15b to the small-diameter outer circumferential surface portion 15c. The two guide holes 17 each extend in the axis L direction and are formed in 180-degree rotational symmetry about the axis L. A connecting screw 18 is positioned inside the guide hole 17.
The two through holes 9 provided in the disk part 7 each communicate with the circular recess part 23. That is, the inner opening of each of the through holes 9 is formed in the annular wall surface of the circular recess part 23. In the front end surface of the disk part 7, a head-side annular groove 24 that coaxially surrounds the circular recess part 23 is formed. A first O-ring 25 is inserted into the head-side annular groove 24.
The inner diameter of the sleeve 6 is constant. The rear end surface of the flange 16 is provided with a sleeve-side annular groove 26 that coaxially surrounds the center hole of the sleeve 6. The sleeve-side annular groove 26 and the head-side annular groove 24 are formed so as to overlap each other when viewed from the axis L direction. A second O-ring 27 is inserted into the sleeve-side annular groove 26.
As illustrated in
The gear screw 30 includes a pair of parallel surfaces 33a extending in parallel with the axis L on both sides of the axis L, and a pair of arc-shaped surfaces 33b arranged between the pair of the parallel surfaces 33a and being continuous to the parallel surfaces 33a in the circumferential direction, in the outer circumferential surface of the large-diameter portion 33. As illustrated in
The gear screw operating gear 13 includes a fitting hole which has an elliptical plane shape and into which the large-diameter portion 33 is fitted when viewed from the axis L direction. The elliptical plane shape means a shape having two parallel sides and arc-shaped surfaces connecting the two sides. As illustrated in
As illustrated in
The gear screw holding gear 32 of the gear screw 30 is inserted into the circular recess part 23. Here, as illustrated in
The small-diameter portion 31 of the gear screw 30 is inserted into the shank 2a. A coil spring 45 is disposed between the annular screw 22 held in the head center hole 21 and the rear end surface of the small-diameter portion 31 of the gear screw 30.
The coil spring 45 supports the gear screw 30 at a first position 30A, illustrated in
The front end of the gear screw 30, that is, the front end of the bolt portion 34 is positioned backward of a front end opening 6a of the sleeve 6. The front end side of the nut 36 screwed onto the bolt portion 34 is connected to the brush-shaped grinding stone 4.
As illustrated in
(Brush-Shaped Grinding Stone)
As illustrated in
The grinding member holder 61 has the same outer diameter as that of the large-diameter tubular portion 51 of the nut 36. As illustrated in
The linear grinding members 3 are obtained by impregnating aggregate yarn of inorganic filaments, such as aluminum filaments, with a binder resin, and curing the resultant. Here, in the front face of the holder body part 62, a plurality of linear grinding member holding holes 66 is formed to be spaced from each other in the circumference of the spindle hole 62a. The plurality of the linear grinding member holding holes 66 are annularly arranged at equiangular intervals so as to surround the spindle hole 62a. Bundles of a plurality of the linear grinding members 3 each are formed, and the rear end of the bundle is inserted into the linear grinding member holding hole 66, and fixed to the grinding member holder 61 with an adhesive.
At the time of making the brush-shaped grinding stone 4 held by the tool holder 2, first, the nut 36 is screwed onto the bolt portion 34 of the gear screw 30 and disposed inside the sleeve 6. Next, the brush-shaped grinding stone 4 is inserted into the sleeve 6 from the grinding member holder 61 side, and the small-diameter tubular portion 52 of the nut 36 is fitted into the recess part formed on the inner circumferential side of the nut connecting part 63. Thereafter, the connecting screw 18 is made to penetrate each of the guide holes 17 from the outer circumferential side of the sleeve 6, and furthermore, made to penetrate the holder-side through hole 64 and screwed into the nut-side threaded hole 53. With this configuration, the grinding member holder 61 is connected to the nut 36 inside the sleeve 6.
Here, in a state that the connecting screw 18 penetrates the guide hole 17 and the holder-side through hole 64 and is screwed into a nut-side threaded hole 53, a head part 18a of the connecting screw 18 (an end portion on the outer circumferential side of the connecting screw 18) is positioned inside the guide hole 17. Accordingly, if the nut 36 is about to rotate about the axis L, the head part 18a of each of the connecting screws 18 comes into contact with the inner circumferential wall of the guide hole 17 from the circumferential direction, thereby preventing the rotation. That is, the two guide holes 17 and the two connecting screws 18 that each connect the nut 36 to the grinding member holder 61 constitute a nut rotation regulating mechanism 71 configured to regulate the rotation of the nut 36 about the axis L. The nut rotation regulating mechanism 71 allows the movement of the nut 36 in the axis L direction.
(Adjustment Operation of the Protruding Amount of Grinding Members)
Here, when the wear amount of the linear grinding members 3 reaches a predetermined wear amount, the machining center is driven by the control program to move the polishing tool unit 1 to a position for adjusting the protruding amount of the grinding members, in which the rack gear 80 is disposed. The rack gear 80 includes a gear tooth part 80a capable of being engaged with the gear screw operating gear 13.
Next, an extension direction R of the gear tooth part 80a of the rack gear 80 and the axis L of the polishing tool unit 1 are made to intersect at right angles, and a gear tooth part of the gear screw operating gear 13 is made to be engaged with the gear tooth part 80a of the rack gear 80. Thereafter, the polishing tool unit 1 is moved in the extension direction R of the gear tooth part 80a. With this, the gear screw operating gear 13 is rotated only by a predetermined rotation amount. Note that, instead of moving the polishing tool unit 1 in the extension direction R, the rack gear 80 may be moved in the extension direction R to rotate the gear screw operating gear 13 only by a predetermined rotation amount. Furthermore, the gear screw operating gear 13 may be rotated only by a predetermined rotation amount by moving both the polishing tool unit 1 and the rack gear 80 and thereby causing a relative movement between the polishing tool unit 1 and the rack gear 80 in the extension direction R.
When the gear screw operating gear 13 rotates, the gear screw 30 rotates integrally with the gear screw operating gear 13. Here, rotation of the nut 36 about the axis L is regulated by the nut rotation regulating mechanism 71. Accordingly, the nut 36 moves in the axis L direction with rotation of the gear screw 30, whereby the brush-shaped grinding stone 4 is moved in the axis L direction. Thus, the linear grinding members 3 can protrude from the front end opening 6a of the sleeve 6 only by a movement amount corresponding to the rotation amount of the gear screw operating gear 13.
Note that, when the direction of the relative movement between the polishing tool unit 1 and the rack gear 80 is made into the opposite direction, the linear grinding members 3 can be returned inside the front end opening 6a of the sleeve 6 only by a movement amount corresponding to the rotation amount of the gear screw operating gear 13.
According to the present embodiment, the grinding member protruding amount of the linear grinding members 3 in the polishing tool unit 1 can be adjusted by rotating the gear screw operating gear 13 exposed outside from between the shank 2a and the sleeve 6. Thus, the protruding amount of the grinding members can be easily adjusted. Furthermore, the brush-shaped grinding stone 4 is connected to the nut 36, and the movement amount of the nut 36 in the axis L direction is precisely regulated by the angle of rotation of the gear screw 30. Accordingly, the protruding amount of the grinding members can be adjusted with high accuracy.
In the present embodiment, the gear screw 30 is movable between the first position 30A and the second position 30B, and supported at the first position 30A in the front by the coil spring 45. Accordingly, when the force of pushing the brush-shaped grinding stone 4 into the sleeve 6 from the process-target workpiece side works during processing operation, the brush-shaped grinding stone 4 is moved backward in the axis L direction, whereby breakage of the brush-shaped grinding stone 4 and wear of the grinding members can be reduced. That is, when the force of pushing the brush-shaped grinding stone 4 toward the tool holder 2 side works during processing operation, the force is conveyed to the gear screw 30 via the nut 36. Accordingly, the gear screw 30 moves backward in the axis L direction against the biasing force of the coil spring 45, whereby the force from the workpiece side is released.
Furthermore, in the present embodiment, the grinding member holder 61 includes the spindle hole 62a that is penetrated by the gear screw 30, with the grinding member holder 61 connected to the nut 36. Therefore, the grinding member holder 61 does not lean inside the sleeve 6 even if the dimensional tolerance between the outer diameter of the grinding member holder 61 and the inner diameter of the sleeve 6 is not strictly determined. Consequently, variance in the protruding amount of the grinding members does not occur. Furthermore, the gear screw 30 is inserted into the spindle hole 62a of the grinding member holder 61, and hence, even if the dimensional tolerance between the outer diameter of the grinding member holder 61 and the inner diameter of the sleeve 6 is not strictly determined, the center axis of the grinding member holder 61 can be easily made to coincide with the center axis of the sleeve 6. Hence, during processing by rotating the polishing tool unit 1, the occurrence of the swing of run-out of the brush-shaped grinding stone 4 can be reduced.
In the present embodiment, the grinding member holder 61 is disposed inside the sleeve 6, and a plurality of the linear grinding members 3 held by the grinding member holder 61 surrounds, about the axis L, the gear screw 30 penetrating the spindle hole 62a and extending. Accordingly, during processing by rotation of the polishing tool unit 1, even when the linear grinding members 3 are about to escape to the outer circumferential side, the linear grinding members 3 abut on the inner surface of the circumferential wall of the sleeve 6, so that the escape can be prevented, meanwhile, even when the linear grinding members 3 is about to escape to the inner circumferential side, the linear grinding members 3 abut on the outer circumferential surface of the gear screw 30, so that the escape can be prevented. This leads to no difference in ease of escape between the linear grinding members 3 positioned on the outer circumferential side and the linear grinding members 3 positioned on the inner circumferential side. As a result, no difference in rigidity is made between the linear grinding members 3 positioned on the outer circumferential side and the linear grinding members 3 positioned on the inner circumferential side, and consequently, a situation can be avoided in which the linear grinding members 3 positioned on the inner circumferential side is less worn than the linear grinding members 3 positioned on the outer circumferential side, and thus, the linear grinding members 3 are uniformly worn.
Furthermore, in the present embodiment, rotation of the nut 36 can be regulated by making use of the connecting screw 18 that connects the grinding member holder 61 to the nut 36. Thus, the number of parts can be reduced. In the present embodiment, the end portion of the connecting screw 18 is positioned inside the guide hole 17 extending in the axis L direction, and accordingly, the screw is allowed to move in the axis L direction, and thus, movement of the nut 36 in the axis L direction is not hindered by interference of the screw and the sleeve 6.
In the present invention, the head center hole 21 of the shank head 5 and the screw center hole 30a of the gear screw 30 are coaxially disposed and communicate with each other. Accordingly, machining oil and air can be supplied via the head center hole 21 and the screw center hole 30a to perform cooling, lubrication, and washing of a processed part.
(Tool Holder)
The tool holder 102 includes a shank head 105 and a sleeve 106 coaxially in the axis L direction in order from the shank 102a side. The shank head 105 includes the shank 102a, a disk part 107, and a first connecting disk part 108 and a second connecting disk part 109 that have a circular shape and connect between the disk part 107 and the shank 102a. The first connecting disk part 108 is provided between the second connecting disk part 109 and the shank 102a. The outer diameter of the first connecting disk part 108 is larger than the outer diameter of the shank 102a, and smaller than the outer diameter of the second connecting disk part 109. The length of the first connecting disk part 108 in the axis L direction is smaller than the length of the second connecting disk part 109. The outer diameter of the second connecting disk part 109 is smaller than the outer diameter of the disk part 107.
The disk part 107 is provided with two cut-out parts 110 cut from the outer circumferential side. The two cut-out parts 110 are provided in 180-degree rotational symmetry about the axis L. A second gear 113 that is housed in the shank head 105 is partially exposed outside from each of the cut-out parts 110.
The sleeve 106 includes a tube part 115 extending in the axis L direction, and an annular flange 116 spreading from the rear end of the tube part 115 toward the outer circumferential side. The flange 116 is formed coaxially with the tube part 115. The rear end surface of the flange 116 is in contact with the front end surface of the disk part 107 of the shank head 105. The outer diameter of the flange 116 is the same as the outer diameter of the disk part 107. The outer circumferential surface of the tube part 115 includes: a rear-side tapered outer circumferential surface portion 115a being continuous to the front side of the flange 116 and having an outer diameter becoming smaller toward the front; a constant-diameter outer circumferential surface portion 115b being continuous to the front end of the rear-side tapered outer circumferential surface portion 115a and extending forward with a constant outer diameter; and a front-side tapered outer circumferential surface portion 115c being continuous to the front end of the constant-diameter outer circumferential surface portion 115b and having an outer diameter becoming smaller toward the front. The tube part 115 is provided with two groove-shaped guide holes 117 in the constant-diameter outer circumferential surface portion 115b. The two guide holes 117 each extend in the axis L direction and are formed in 180-degree rotational symmetry about the axis L. A connecting screw 118 is positioned inside the guide hole 117.
In the front end surface of the disk part 107, a pair of second circular recess parts 125 is formed on both sides of the first circular recess part 122, as illustrated in
As illustrated in
In each of the pair of the groove parts 127 provided on both sides of the first circular recess part 122, a metal ball 128 and a coil spring 129 are disposed in order from the inner circumferential side toward the outer circumferential side as illustrated in
As illustrated in
Here, as illustrated in
As illustrated in
As illustrated in
The first gear 112 includes a fitting hole which has an elliptical plane shape and into which the large-diameter portion 136 is fitted when the fitting hole is viewed from the axis L direction, and the first gear 112 is attached to the gear screw 135 in a state that the large-diameter portion 136 is inserted in this fitting hole. Accordingly, the first gear 112 is rotatable integrally with the gear screw 135. Furthermore, the first gear 112 is movable relative to the gear screw 135 in the axis L direction. Here, as illustrated in
The gear screw 135 includes a recess part 139 recessed forward in the rear end surface of the large-diameter portion 136. The coil spring 140 is disposed inside the recess part 139. The front end portion of the coil spring 140 comes into contact with the bottom (the front end surface) of the recess part 139, meanwhile, the rear end portion of the coil spring 140 comes into contact with the bottom (the rear end surface) of the small-diameter recess part 124 of the shank head 105.
The coil spring 140 supports the gear screw 135 at a first position 135A in the axis L direction illustrated in
The front end of the gear screw 135, that is, the front end of the bolt portion 137 is positioned backward of a front end opening 106a of the sleeve 106. The front end side of the nut 142 screwed onto the bolt portion 137 is connected to the brush-shaped grinding stone 104.
As illustrated in
(Brush-Shaped Grinding Stone)
The brush-shaped grinding stone 104 includes: linear grinding members 103; and an annular grinding member holder 150 that holds the rear end portions of the linear grinding members 103 in a bundle. The grinding member holder 150 is coaxially connected to the nut 142, whereby the brush-shaped grinding stone 104 is held by the tool holder 102. As illustrated in
As illustrated in
The linear grinding members 103 are obtained by impregnating aggregate yarn of inorganic filaments, such as aluminum filaments, with a binder resin, and curing the resultant. Here, in the front face of the grinding member holder 150, a linear grinding member holding hole 152 having an annular shape is formed in the circumference of the spindle hole 150a. The linear grinding members 103 are annularly arranged and bundled, and the rear ends of the bundled linear grinding members 103 are inserted into the linear grinding member holding hole 152, and fixed to the grinding member holder 150 with an adhesive.
At the time of making the brush-shaped grinding stone 104 held by the tool holder 102, first, the nut 142 is screwed onto the bolt portion 137 of the gear screw 135 and disposed inside the sleeve 106. Next, the brush-shaped grinding stone 104 is inserted into the sleeve 106 from the grinding member holder 150 side, and the grinding member holder 150 is inserted into the holder connecting part 144. Thereafter, the connecting screw 118 is screwed into the holder-side threaded hole 151 via each of the guide holes 117 of the sleeve 106 and each of the nut-side through holes 145, whereby the grinding member holder 150 and the nut 142 are connected inside the sleeve 106.
Here, in a state that each of the connecting screws 118 is screwed into a corresponding one of the holder-side threaded holes 151 via a corresponding one of the guide holes 117 and a corresponding one of the nut-side through holes 145, a head section 118a of the connecting screw 118 (the outer circumferential-side end portion of the connecting screw 118) is positioned inside the guide hole 117. Accordingly, if the nut 142 is about to rotate about the axis L, the head section 118a of each of the connecting screws 118 comes into contact with the inner circumferential wall of a corresponding one of the guide holes 117 from the circumferential direction, thereby preventing the rotation. That is, the two guide holes 117 and the two connecting screws 118 that connect the nut 142 to the grinding member holder 150 constitute a nut rotation regulating mechanism 155 configured to regulate rotation of the nut 142 about the axis L. The nut rotation regulating mechanism 155 allows movement of the nut 142 in the axis L direction.
(Adjustment Operation of the Protruding Amount of Grinding Members)
In the polishing tool unit 100, the shank 102a is connected to a head of a machining center via, for example, a tool holder (not illustrated). When the wear amount of the linear grinding members 103 reaches a predetermined wear amount, the machining center is driven by a control program to move the polishing tool unit 100 to a position for adjusting the protruding amount of the grinding members, in which the rack gear 80 is disposed. Then, as is the case illustrated in
When the second gear 113 rotates, the first gear 112 rotates, whereby the gear screw 135 rotates. Here, rotation of the nut 142 about the axis L is regulated by the nut rotation regulating mechanism 155. Accordingly, the nut 142 moves in the axis L direction with rotation of the gear screw 135, whereby the brush-shaped grinding stone 104 is moved in the axis L direction. Thus, the linear grinding member 103 can be made to protrude from the front end opening 106a of the sleeve 106 by a movement amount corresponding to the rotation amount of the first gear 112. Note that, when the direction of the relative movement between the polishing tool unit 100 and the rack gear 80 is made into the opposite direction, the linear grinding member 103 can be returned inside the front end opening 106a of the sleeve 106 by a movement amount corresponding to the rotation amount of the first gear 112.
Also in the present embodiment, the same advantageous effects as in the polishing tool unit 1 of Embodiment 1 can be achieved.
Furthermore, in the present embodiment, the first gear 112 disposed coaxially with the gear screw 135 is engaged with the second gear 113, whereby the inertia of the first gear 112 that is about to rotate integrally with the gear screw 135 can be reduced. Here, when the inertia acting on the first gear 112 is made smaller, it can be prevented that, at the time of the start and stop of rotation of the polishing tool unit 100, the first gear 112 and the gear screw 135 rotate due to the inertia acting on the first gear 112, whereby the nut 142 moves, and the protruding amount of the grinding members is changed.
Furthermore, in the present embodiment, the grinding member holder 150 can be connected to the nut 142 by just forming the holder-side threaded hole 151 in the grinding member holder 150 of the brush-shaped grinding stone 104. This allows the brush-shaped grinding stone 104 to be simpler, and accordingly, the cost of manufacture of the brush-shaped grinding stone 104 serving as consumable goods can be reduced.
In the above-described embodiment, for the purpose of preventing the accidental rotation of the gear screw 135, a mechanism configured to reduce rotation of the first gear 112 is incorporated. That is, a pair of the groove parts 127 is provided on both sides of the first circular recess part 122 of the disk part 107; the ball 128 and the coil spring 129 are disposed in each of the groove parts 127; and the ball 128 is pressed against the first gear 112 by the biasing force of the coil spring 129 to reduce rotation of the first gear 112. In place of such mechanism, a mechanism configured to reduce rotation of the second gear 113 engaged with the first gear 112 is incorporated, whereby accidental rotation of the gear screw 135 can be reduced.
As illustrated in
Note that the polishing tool unit 100 of Embodiment 2 and the polishing tool unit 100A of the modification of Embodiment 2 each include two gears as the second gear 113, but, the number of the second gears 113 may be one.
(Tool Holder)
The tool holder 202 includes a shank head 205 and a sleeve 206 coaxially in the axis L direction in order from the shank 202a side. The shank head 205 includes the shank 202a, a disk part 207, and a first connecting disk part 208 and a second connecting disk part 209 that connect between the disk part 207 and the shank 202a. The first connecting disk part 208 is provided between the second connecting disk part 209 and the shank 202a. The outer diameter of the first connecting disk part 208 is larger than the outer diameter of the shank 202a, and smaller than the outer diameter of the second connecting disk part 209. The length of the first connecting disk part 208 in the axis L direction is larger than the length of the second connecting disk part 209. The outer diameter of the second connecting disk part 209 is smaller than the outer diameter of the disk part 207.
The disk part 207 is provided with two threaded holes 210 extending in the radial direction. The two threaded holes 210 are formed in 180-degree rotational symmetry about the axis L. A cam pin 211 including a threaded part is screwed into each of the threaded holes 210.
The sleeve 206 includes a tube part 215 extending in the axis L direction, and an annular flange 216 spreading from the rear end of the tube part 215 toward the outer circumferential side. The flange 216 is formed coaxially with the tube part 215. The rear end surface of the flange 216 is in contact with the front end surface of the disk part 207 of the shank head 205. The outer diameter of the flange 216 is slightly smaller than the outer diameter of the disk part 207. The flange 216 is provided with four sleeve-side threaded holes 217 extending in the radial direction. The four sleeve-side threaded holes 217 are formed in 90-degree rotational symmetry about the axis L. A shank head fixing screw 218 is screwed into each of the sleeve-side threaded holes 217.
The outer circumferential surface of the tube part 215 includes: a rear-side tapered outer circumferential surface portion 215a being continuous to the front end of the flange 216 and having an outer diameter becoming smaller toward the front; a constant-diameter outer circumferential surface portion 215b being continuous to the front end of the rear-side tapered outer circumferential surface portion 215a and extending forward with a constant outer diameter; and a front-side tapered outer circumferential surface portion 215c being continuous to the front end of the constant-diameter outer circumferential surface portion 215b and having an outer diameter becoming smaller toward the front. The tube part 215 is provided with two groove-shaped guide holes 219 from the rear-side tapered outer circumferential surface portion 215a to the constant-diameter outer circumferential surface portion 215b. The two guide holes 219 extend in the axis L direction and are formed in 180-degree rotational symmetry about the axis L. A connecting screw 220 is positioned inside the guide hole 219.
An annular wall 224 protrudes forward from the front end surface of the disk part 207. In a state of surrounding the circular recess part 223 at the opening edge of the circular recess part 223, the annular wall 224 is formed coaxially with the disk part 207. The inner diameter of the annular wall 224 is the same as the inner diameter of the circular recess part 223, and the annular inner circumferential surface of the circular recess part 223 and the annular inner circumferential surface of the annular wall 224 are continued. The outer diameter of the annular wall 224 is smaller than the outer diameter of the disk part 207.
The annular front end surface of the annular wall 224 is provided with an annular groove 225. An O-ring 226 is inserted into the annular groove 225. Furthermore, the annular wall 224 is provided with four head-side threaded holes 227 extending in the radial direction. The four head-side threaded holes 227 are formed in 90-degree rotational symmetry about the axis L.
The sleeve 206 includes a sleeve-side circular recess part 231 in the rear end surface of the flange 216, the sleeve-side circular recess part 231 being coaxial with a center hole 206b of the sleeve 206 and recessed forward. The inner diameter of the sleeve-side circular recess part 231 is larger than the inner diameter of the center hole 206b. Accordingly, the bottom of the sleeve-side circular recess part 231 is an annular surface 231a facing backward. An annular plate 232 including a spindle hole 232a is inserted into the sleeve-side circular recess part 231 from the rear.
The annular wall 224 of the shank head 205 is inserted into the sleeve-side circular recess part 231. Here, the inner diameter of the sleeve-side circular recess part 231 corresponds to the outer diameter of the annular wall 224, and the annular wall 224 is fitted into the sleeve-side circular recess part 231. The shank head fixing screw 218 is screwed into each of the four head-side threaded holes 227 of the annular wall 224 via a corresponding one of the sleeve-side threaded holes 217 of the sleeve 206. With this configuration, the shank head 205 is connected to the sleeve 206.
In a state that the shank head 205 is connected to the sleeve 206, the rear surface of the annular plate 232 comes into contact with the circular front end surface of the annular wall 224 of the shank head 205 via the O-ring 226. With this configuration, a cam housing 234 is divided by the annular wall 224 and the circular recess part 223 of the shank head 205, and the annular plate 232. As illustrated in
As illustrated in
As illustrated in
The cam portion 238 includes a cam 241 in the outer circumferential surface, the cam 241 being such that the tip part of the cam pin 211 screwed into the threaded hole 210 of the disk part 207 of the shank head 205 slides. The bolt portion 239 includes a male thread 239a in the outer circumferential surface. As illustrated in
As illustrated in
The coil spring 240 biases the cam screw 235 to a first position 235A, illustrated in
Next, with reference to
The side surface of each of the rear-side protruding parts 245, the side surface facing forward in the circumferential direction, is a rear-side cam surface 247 in which the cam pin 211 slides. The rear-side cam surface 247 includes: a rear-side first cam surface portion 247a extending in the axis L direction; a rear-side inclined cam surface portion 247b inclined from the tip of the rear-side first cam surface portion 247a toward the front in a single circumferential direction; and a rear-side second cam surface portion 247c extending backward from an end of the rear-side inclined cam surface portion 247b in the axis L direction, the end being on the opposite side to the rear-side first cam surface portion 247a. The rear-side inclined cam surface portion 247b is inclined backward toward the outer circumferential side. A rear-side arc-shaped surface 247d opened forward is formed between a rear-side protruding part 245 and another rear-side protruding part 245 adjacent to each other in the circumferential direction.
Meanwhile, the side surface of each of the front-side protruding parts 246, the side surface protruding from the outer circumferential surface toward the outer circumferential side, is a front-side cam surface 248 in which the cam pin 211 slides. The front-side cam surface 248 includes: a front-side first cam surface portion 248a extending in the axis L direction; a front-side inclined cam surface portion 248b inclined from the tip of the front-side first cam surface portion 248a toward the front in a single circumferential direction; and a front-side second cam surface portion 248c extending forward from an end of the front-side inclined cam surface portion 248b in the axis L direction, the end being on the opposite side to the front-side first cam surface portion 248a. The front-side inclined cam surface portion 248b is inclined forward toward the outer circumferential side. A front-side arc-shaped surface 248d opened forward is formed between a front-side protruding part 246 and another front-side protruding part 246 adjacent to each other in the circumferential direction.
Here, the formation position of the rear-side protruding part 245 is displaced from the formation position of the front-side protruding part 246 in the circumferential direction. With this configuration, the rear-side inclined cam surface portion 247b of the rear-side cam surface 247 is opposed to the front-side arc-shaped surface 248d between two of the front-side protruding parts 246. Furthermore, the front-side inclined cam surface portion 248b of the front-side cam surface 248 is opposed to the rear-side arc-shaped surface 247d between two of the rear-side protruding parts 245.
In a state that the cam portion 238 is disposed inside the cam housing 234, a motion converting mechanism 250 is configured such that, by the cam portion 238 and the cam pin 211, a linear reciprocating motion of the cam screw 235 in the axis L direction is converted into a rotational motion of the cam screw 235 at a certain angle about the axis L in a single direction. Note that the cam screw 235 is usually biased to the first position 235A by the coil spring 240. Accordingly, the cam pin 211 is usually in contact with the rear-side arc-shaped surface 247d between the rear-side protruding parts 245.
As illustrated in
The nut 242 includes, from the rear toward the front in the axis L direction, an annular nut body part 251, and a holder connecting part (a connecting part) 252. The holder connecting part 252 is formed of an annular wall protruding forward from the outer circumferential edge of the front end of the nut body part 251. The outer diameters of the nut body part 251 and the holder connecting part 252 each correspond to the inner diameter of the constant-diameter inner circumferential surface 206c of the sleeve 206. In a state of being movable inside the sleeve 206 in the axis L direction, the nut 242 is inserted into the sleeve 206. In the inner circumferential surface of the nut body part 251, a female thread 251a screwed onto the bolt portion 239 is formed. In the holder connecting part 252, two nut-side through holes 253 perpendicular to the axis L and penetrating in the radial direction are formed. The two nut-side through holes 253 are formed in 180-degree rotational symmetry about the axis L.
(Brush-Shaped Grinding Stone)
The brush-shaped grinding stone 204 includes: linear grinding members 203; and an annular grinding member holder 255 that holds the rear end portions of the linear grinding members 203 in a bundle. The grinding member holder 255 is coaxially connected to the nut 242, whereby the brush-shaped grinding stone 204 is held by the tool holder 202. As illustrated in
As illustrated in
The linear grinding members 203 are obtained by impregnating aggregate yarn of inorganic filaments, such as aluminum filaments, with a binder resin, and curing the resultant. Here, in the front face of the grinding member holder 255, a plurality of linear grinding member holding holes 257 is formed so as to be spaced from each other in the circumference of the spindle hole 255a. The plurality of the linear grinding member holding holes 257 are annularly arranged so as to surround the spindle hole 255a. Bundles of a plurality of the linear grinding members 203 each are formed, and the rear end of the bundle is inserted into the holding hole, and fixed to the grinding member holder 255 with an adhesive.
At the time of making the brush-shaped grinding stone 204 held by the tool holder 202, first, the nut 242 is screwed onto the bolt portion 239 of the cam screw 235 and disposed inside the sleeve 206. Next, the brush-shaped grinding stone 204 is inserted into the sleeve 206 from the grinding member holder 255 side, and the grinding member holder 255 is fitted into the annular wall of the holder connecting part 252. Thereafter, the connecting screw 220 is screwed into the holder-side threaded hole 256 via each of the guide holes 219 and the nut-side through holes 253 of the sleeve 206, whereby the grinding member holder 255 and the nut 242 are connected inside the sleeve 206.
Here, in a state that the connecting screw 220 is screwed into the holder-side threaded hole 256 via the guide hole 219 and the nut-side through hole 253, the head part 220a of each of the connecting screws 220 (an end portion on the outer circumferential side of the connecting screw 220) is positioned inside the guide hole 219. Accordingly, if the nut 242 is about to rotate about the axis L, the head section 220a of each of the connecting screws 220 comes into contact with the inner circumferential wall of a corresponding one of the guide holes 219 from the circumferential direction, thereby preventing the rotation. That is, the two guide holes 219 and the two connecting screws 220 that each connect the nut 242 to the grinding member holder 255 constitute a nut rotation regulating mechanism 259 configured to regulate the rotation of the nut 242 about the axis L. The nut rotation regulating mechanism 259 allows movement of the nut 242 in the axis L direction.
(Adjustment Operation of the Protruding Amount of Grinding Members)
In the polishing tool unit 200, the shank 202a is connected to a head of a machining center via, for example, a tool holder (not illustrated). When the wear amount of the linear grinding members 203 reaches a predetermined wear amount, the machining center is driven by a control program to move the polishing tool unit 200 to a position for adjusting the protruding amount of the grinding members, in which the protruding amount adjusting member 81 is disposed.
Here, as illustrated in
The polishing tool unit 200 disposed at a position for adjusting the protruding amount of the grinding members is disposed coaxially with the boss 81b of the protruding amount adjusting member 81 by the machining center. Next, the polishing tool unit 200 is moved forward by the machining center so as to come closer to the protruding amount adjusting member 81. With this, the boss 81b is inserted into the sleeve 206 from the front in the axis L direction, and the tip surface of the boss 81b comes into contact with the front end of the cam screw 235, as illustrated in
Thereafter, the polishing tool unit 200 is further pushed forward by the machining center by a predetermined distance. The predetermined distance means the distance between the first position 235A and the second position 235B, and the distance between the rear-side arc-shaped surface 247d and the front-side arc-shaped surface 248d in the cam portion 238. Here, when the polishing tool unit 200 is pushed forward by the predetermined distance in a state that the front ends of the linear grinding members 203 are in contact with the boss 81b, the cam screw 235 moves relative to the shank head 205 and the sleeve 206. That is, as illustrated in
Thereafter, when the cam screw 235 is disposed at the second position 235B as illustrated in
Next, the polishing tool unit 200 is moved by the machining center in a direction so as to become more distant from the protruding amount adjusting member 81. That is, the state of the polishing tool unit 200 illustrated in
Here, as the polishing tool unit 200 becomes more distant from the protruding amount adjusting member 81, the cam screw 235 moves from the second position 235B toward the first position 235A in the axis L direction by the biasing force of the coil spring 240. Accordingly, as illustrated in
With this, the cam pin 211 moves from the front-side arc-shaped surface 248d to the rear-side protruding part 245 side, and comes into contact with the rear-side inclined cam surface portion 247b of the rear-side protruding part 245. Thereafter, as illustrated in
With these operations, the cam screw 235 rotates only by the distance between the rear-side protruding parts 245 in a single direction. Here, rotation of the nut 242 about the axis L is regulated by the nut rotation regulating mechanism 259. Accordingly, the nut 242 moves in the axis L direction with rotation of the cam screw 235, thereby causing the brush-shaped grinding stone 204 to move forward in the axis L direction. Thus, the linear grinding members 203 can be made to protrude from the front end opening 206a of the sleeve 206 only by the movement amount of the nut 242 (grinding member protruding amount P) that corresponds to the rotation amount of the cam screw 235.
According to the present embodiment, a pushing operation of pushing-in the polishing tool unit 200 by pressing the unit 200 against the protruding amount adjusting member 81 allows the protruding amount of the grinding members to be adjusted, and thus, the operation of adjustment can be easily performed.
Also in the present embodiment, the same advantageous effects as in the polishing tool unit 1 of Embodiment 1 can be achieved. That is, also in the present embodiment, the cam screw 235 is movable between the first position 235A and the second position 235B spaced from each other in the axis L direction, and is biased to the first position 235A in the front by the biasing force of the coil spring 240. Accordingly, when the force of pushing the brush-shaped grinding stone 204 from the side of a process-target workpiece into the sleeve 206 works during processing operation, the brush-shaped grinding stone 204 is moved backward in the axis L direction, whereby breakage of the brush-shaped grinding stone 204 and wear of the grinding members can be reduced. That is, when the force of pushing the brush-shaped grinding stone 204 toward the tool holder 202 side works during processing operation, the force is conveyed to the cam screw 235 via the nut 242. Thus, the cam screw 235 moves backward in the axis L direction against the biasing force of the coil spring 240, whereby the force from the workpiece side is released.
Furthermore, in the present embodiment, as is the case with the polishing tool unit 200 of Embodiment 2, only the formation of the holder-side threaded hole 256 in the grinding member holder 255 of the brush-shaped grinding stone 204 allows the grinding member holder 255 to be connected to the nut 242. With this, the brush-shaped grinding stone 204 can be made simpler, and thus, the cost of manufacture of the brush-shaped grinding stone 204 serving as consumable goods can be reduced.
Note that the protruding amount of the grinding members can be adjusted in such a manner that a flat-plate-shaped member is disposed as the protruding amount adjusting member, and the tips of the linear grinding members 203 are made to come into contact with the protruding amount adjusting member in the axis L direction, whereby the cam screw 235 is moved relative to the cam pin 211 to adjust the protruding amount.
(Tool Holder)
The rear end portion of the screw rod 305 serves as the shank 301. The front side of the screw rod 305 serves as a bolt portion 311 having a male thread 311a formed therein. A large-diameter portion 312 and a flange portion 314 having an outer diameter larger than that of the large-diameter portion 312 are provided, from the rear toward the front, between the shank 301 and the bolt portion 311 in the screw rod 305. The large-diameter portion 312 has an outer diameter slightly larger than those of the shank 301 and the bolt portion 311. The threaded part 312a is formed in the rear end part of the outer circumferential surface of the large-diameter portion 312. The bolt portion 311 includes a pair of groove-shaped flat surfaces 313 extending in the axis L direction in a region in which the male thread 311a is formed. The groove-shaped flat surfaces 313 are provided in 180-degree rotational symmetry about the axis L.
As illustrated in
The sleeve 306 is positioned forward of the gear 307. As illustrated in
A center hole 306b of the sleeve 306 has a constant inner diameter. Inside the sleeve 306, the bolt portion 311 of the screw rod 305 extends in the front and rear direction. The front end of the bolt portion 311, that is, the front end of the screw rod 305 is positioned backward of a front end opening 306a of the sleeve 306.
A nut 341 is screwed onto the bolt portion 311. In the annular inner circumferential surface of the nut 341, a female thread 341a screwed onto the bolt portion 311 is formed. The nut 341 has a circular annular outer circumferential surface. The outer diameter of the nut 341 corresponds to the inner diameter of the sleeve 306, and the nut 341 is fitted to the inner circumferential side of the sleeve 306 in a state that the nut 341 is movable in the axis L direction. As illustrated in
The front end surface of the nut 341 is provided with a circular recess part 343 recessed backward coaxially with the nut 341. At some midpoint of the circular recess part 343 in the axis L direction, an annular groove 345 recessed toward the outer circumferential side is provided, and an O-ring 346 is disposed in this annular groove 345. Furthermore, a coil spring 347 is inserted into the circular recess part 343.
Furthermore, as illustrated in
Two groove-shaped guide holes 352 are formed in the peripheral wall of the sleeve 306. The two guide holes 352 each extend in the axis L direction and are formed in 180-degree rotational symmetry about the axis L. Here, a rotation regulating screw 353 is screwed into the nut-side threaded hole 342 of the nut 341 via each of the guide holes 352 of the sleeve 306. Furthermore, an end portion on the outer circumferential side of the rotation regulating screw 353 is positioned inside the guide hole 352 of the sleeve 306. Accordingly, if the nut 341 is about to rotate about the axis L, each of the rotation regulating screws 353 comes into contact with the inner circumferential wall of a corresponding one of the guide holes 352 from the circumferential direction, thereby preventing the rotation. That is, the two rotation regulating screws 353 and the two guide holes 352 constitute a nut rotation regulating mechanism 354 configured to regulate rotation of the nut 341 relative to the sleeve 306 about the axis L. The nut rotation regulating mechanism 354 allows movement of the nut 341 in the axis L direction.
As illustrated in
The sleeve balancer 308 is positioned so as to cover the rear-side of the sleeve 306 and the sleeve connecting part 334 from the outer circumferential side, and the inner circumferential surface of the protruding portion 356 in the upper end portion comes into contact with the sleeve connecting part 334 via the O-ring 336. Furthermore, the protruding portion 357 in the lower end portion comes into contact with the outer circumferential surface portion of the sleeve 306 via the O-ring 359.
As illustrated in
The ratchet cover 309 is fixed to the sleeve balancer 308 from the rear so as to cover the gear 307 and the rear-side of the sleeve balancer 308. A state that the ratchet cover 309 is fixed to the sleeve balancer 308 brings about a state that the annular protruding part 307b of the gear 307 is inserted into the circular recess part 367 in the front end surface of the large-diameter disk part 361, and the rear end surface of the gear 307 is in contact with the front end surface of the large-diameter disk part 361 via the O-ring 369. Furthermore, as illustrated in
As illustrated in
The unlocking nut 310 is fixed to the screw rod 305 by making the screw rod 305 penetrate the spindle hole 375a of the annular plate part 375 and screwing the threaded part 375b of the spindle hole 375a onto the threaded part 312a of the screw rod 305. A state that the unlocking nut 310 is fixed to the screw rod 305 brings about a state that the unlocking nut 310 covers the annular rear end surfaces of the small-diameter disk part 360 and the large-diameter disk part 361 of the ratchet cover 309, and the annular plate part 375 is in contact with the small-diameter disk part 360, as illustrated in
(Brush-Shaped Grinding Stone)
As illustrated in
The linear grinding members 303 are obtained by impregnating aggregate yarn of inorganic filaments, such as aluminum filaments, with a binder resin, and curing the resultant. Here, in the front face of the grinding member holder 381, a plurality of linear grinding member holding holes 386 is formed to be spaced from each other in the circumference of the spindle hole 381a (a center hole). The plurality of the linear grinding member holding holes 386 are circularly arranged so as to surround the spindle hole 381a of the holder body 382. Bundles of a plurality of the linear grinding members 303 each are formed, and the rear end of each of the bundles is inserted into a corresponding one of the linear grinding member holding holes 386, and fixed to the grinding member holder 381 with an adhesive.
In the holder body 382, two threaded holes 382a extending in the radial direction are provided backward of the linear grinding member holding holes 386. The two threaded holes 382a are formed in 180-degree rotational symmetry about the axis L. Furthermore, each of threaded holes 382a is formed at the same angle position as that of a corresponding one of the nut-side threaded holes 342 provided in the nut. Each of the threaded holes 382a penetrates the holder body 382 in the radial direction. As illustrated in
At the time of making the brush-shaped grinding stone 304 held by the tool holder 302, the nut 341 is positioned in the front end of the tool holder 302, and the nut-side connecting part 350 is exposed outside from the front end opening 306a of the sleeve 306. Then, as illustrated in
Here, the height (a dimension in the axis L direction) of the connecting tubular part 384 is equivalent to the depth (a dimension in the axis L direction) of the groove part 348 of the nut-side connecting part 350, meanwhile the width (a dimension in the axis L direction) of the annular flange 385 is smaller than the groove width (a dimension in the axis L direction) of the lateral groove part 349 of the nut-side connecting part 350. Hence, the brush-shaped grinding stone 304 is movable in the axis L direction by a distance equivalent to the difference between the width of the annular flange 385 and the groove width of the lateral groove part 349. That is, as illustrated in
Furthermore, as illustrated in
Next, the screw rod 305 and the sleeve 306 are moved relative to each other, and the grinding member holder of the brush-shaped grinding stone 304 is positioned inside the sleeve 306 together with the nut 341. This configuration brings the screw rod 305 into a state of being inserted into the spindle hole 381a of the grinding member holder 381. Here, the outer diameter of the screw rod 305 corresponds to the inner diameter of the spindle hole 381a of the grinding member holder 381, and the screw rod 305 is fitted to the spindle hole 381a in a state that the grinding member holder 381 is movable in the axis L direction.
Thereafter, the screw 344 for regulating rotation of the grinding member holder is screwed into each of the threaded holes 382a of the grinding member holder 381 via a corresponding one of the guide holes 352 of the sleeve 306. Then, as illustrated in
Furthermore, a state that the tip surface of each of the screws 344 for regulating rotation of the grinding member holder faces a corresponding one of the groove-shaped flat surfaces 313 of the screw rod 305 with a clearance left therebetween brings the brush-shaped grinding stone 304 into a state of being allowed to move in the axis L direction along the screw rod 305 by making the screw rod 305 serve as a guide.
Note that an end portion on the outer circumferential side of each of the screws 344 for regulating rotation of the grinding member holder is positioned inside each of the threaded holes 382a of the grinding member holder 381, and does not protrude toward the outer circumferential side of the grinding member holder 381. Furthermore, in the present embodiment, each of the screws 344 for regulating rotation of the grinding member holder is fixed to the threaded hole 382a with an adhesive, and the movement in the radial direction of each of the screws 344 for regulating rotation of the grinding member holder is regulated.
(Adjustment Operation of the Protruding Amount of Grinding Members)
Here, when the wear amount of the linear grinding members 303 reaches a predetermined wear amount, the machining center is driven by the control program to move the polishing tool unit 300 to a position for adjusting the protruding amount of the grinding members, in which the rack gear 80 is disposed. The rack gear 80 includes a gear tooth part 80a capable of being engaged with the gear 307 connected to the sleeve 306.
Next, the extension direction R of the gear tooth part 80a of the rack gear 80 and the axis L of the polishing tool unit 300 are made to intersect at right angles, and a gear tooth part of the gear 307 is engaged with the gear tooth part 80a of the rack gear 80. Thereafter, the polishing tool unit 300 is moved in the extension direction R of the gear tooth part 80a. With this, the gear 307 is rotated only by a predetermined rotation amount. Note that, instead of moving the polishing tool unit 300 in the extension direction R, the rack gear 80 may be moved in the extension direction R to rotate the gear 307 only by a predetermined rotation amount. Furthermore, the gear 307 may be rotated only by a predetermined rotation amount by moving both the polishing tool unit 300 and the rack gear 80 and thereby causing a relative movement between the polishing tool unit 1 and the rack gear 80 in the extension direction R.
When the gear 307 rotates, the gear 307 rotates integrally with the sleeve 306. Here, rotation of the nut 341 relative to the sleeve 306 about the axis L is regulated by the nut rotation regulating mechanism 354. Meanwhile, the screw rod 305 is held by the machining center, whereby the rotation of the screw rod 305 is regulated. Accordingly, the nut 341 moves in the axis L direction with rotation of the sleeve 306, whereby the brush-shaped grinding stone 304 is moved in the axis L direction. Thus, the linear grinding members 303 can protrude from the front end opening 306a of the sleeve 306 only by a movement amount corresponding to the rotation amount of the gear 307.
Here, rotation of the brush-shaped grinding stone 304 about the axis L is regulated by the tip surface of the screw 344 for regulating rotation of the grinding member holder and the groove-shaped flat surface 313 of the screw rod 305 facing each other. Accordingly, while rotating relative to the nut 341, the brush-shaped grinding stone 304 is moved along the screw rod 305 in the axis L direction.
Note that, when the direction of the relative movement between the polishing tool unit 300 and the rack gear 80 is made into the opposite direction, the linear grinding members 303 can be returned inside the front end opening 306a of the sleeve 306 only by a movement amount corresponding to the rotation amount of the gear 307.
Also in the present embodiment, the same advantageous effects as in the polishing tool unit 1 of Embodiment 1 can be achieved.
Furthermore, in the present embodiment, the brush-shaped grinding stone 304 is movable between the first position 304A and the second position 304B on the nut 341, and supported at the first position 304A in the front by the coil spring 364. Accordingly, when the force of pushing the brush-shaped grinding stone 304 into the sleeve 306 from a process-target workpiece side works during processing operation, the brush-shaped grinding stone 304 is moved backward in the axis L direction, whereby breakage of the brush-shaped grinding stone 304 and wear of the grinding members can be reduced.
Note that, in the present embodiment, the formation of a rod through hole penetrating the screw rod 305 in the axis L direction allows machining oil and air to be supplied via the rod through hole, whereby a processed part can be cooled, for example.
(Tool Holder)
The tool holder 502 includes a shank head 505 and a sleeve 506 coaxially in the axis L direction in order from the shank 502a side. The shank head 505 includes the shank 502a, a disk part 507, and a first connecting disk part 508 and a second connecting disk part 509 that connect between the disk part 507 and the shank 502a. The first connecting disk part 508 is provided between the second connecting disk part 509 and the shank 502a. The outer diameter of the first connecting disk part 508 is larger than the outer diameter of the shank 502a, and smaller than the outer diameter of the second connecting disk part 509. The length of the first connecting disk part 508 in the axis L direction is larger than the length of the second connecting disk part 509. The outer diameter of the second connecting disk part 509 is smaller than the outer diameter of the disk part 507.
The second connecting disk part 509 is provided with two threaded holes 510 extending in the radial direction. The two threaded holes 510 are formed in 180-degree rotational symmetry about the axis L. A cam pin 511 including a threaded part is screwed into each of the threaded holes 510.
The sleeve 506 includes a tube part 515 extending in the axis L direction. The diameter of the tube part 515 is constant. The rear end portion of the tube part 515 is provided with four sleeve-side through holes 517. The four sleeve-side through holes 517 are formed in 90-degree rotational symmetry about the axis L.
Here, an annular member 524 is coaxially fixed to the front end portion of the shank head 505. The annular member 524 includes a protruding portion 524a protruding forward from the disk part 507 by a constant width. The rear end portion of the sleeve 506 is fitted into the outer circumferential side of the protruding portion 524a. The sleeve 506 is fixed to the annular member 524 by a fixing screw 518 penetrating each of the sleeve-side through holes 517.
A long hole 519 extending in the circumferential direction is provided forward of each of the sleeve-side through holes 517. The tube part 515 is provided with two guide holes 520 having a groove shape and extending in the axis L direction. The two guide holes 520 are formed in 180-degree rotational symmetry about the axis L. Any of the guide holes 520 is formed forward of the long hole 519. Accordingly, each of the two long holes 519 and a corresponding one of the guide holes 520 overlap each other when viewed from the axis L direction. A rotation regulating screw 521 is positioned inside the guide hole 520.
As illustrated in
As illustrated in
The first center hole portion 536 penetrates the shank 502a. The first center hole portion 536 is a coolant inlet hole into which a pressurized coolant is supplied from a machine tool connected to the shank 502a. Here, the threaded hole 510 formed in the second connecting disk part 509 penetrates the fourth center hole portion 539. Accordingly, the tip portion of the cam pin 511 screwed into the threaded hole 510 protrudes into the fourth center hole portion 539.
As illustrated in
The rear end portion of the annular member 524 is fitted into the recess part 531 of the shank head 505. Then, the annular member 524 is fixed to the shank head 505 by four screws 545 for fixing the annular member each of which is inserted into a corresponding one of the through holes 524c from the front and screwed into the threaded hole 534 for fixing the annular member in the shank head 505. When the annular member 524 is fixed to the shank head 505, the annular member 524 includes a protruding portion 524a protruding forward from the shank head 505. Furthermore, when the annular member 524 is fixed to the shank head 505, the space (the fourth center hole portion 539) between the third forward-facing annular surface 532c and the rear end surface of the annular member 524 is marked off as a the cam housing in which the lead cam 526 is disposed.
In the annular outer circumferential surface of the protruding portion 524a, four threaded holes 524b for fixing the sleeve are formed in 90-degree rotational symmetry about the axis L. The sleeve 506 is fixed to the annular member 524 by the fixing screw 518 that penetrates each of the sleeve-side through holes 517 and is screwed into the threaded hole 524b for fixing the sleeve.
As illustrated in
The cam supporting portion 551 includes a shaft-side coolant inlet hole 555 extending from the rear end surface of the cam supporting portion 551 in the axis L direction only by a predetermined length. The cam supporting portion 551 further includes a coolant outlet hole 556 extending in a direction perpendicular to the axis L and communicating with the front end portion of the shaft-side coolant inlet hole 555. As illustrated in
The flange portion 552 has a diameter larger than those of the cam supporting portion 551 and the bolt portion 553. Furthermore, as illustrated in
The lead cam 526 has a cylinder shape as a whole, and the outer diameter thereof is smaller than the inner diameter of the cam housing (the fourth center hole portion 539). The lead cam 526 includes a shaft insertion hole 561 at the center, the hole 561 penetrating in the axis L direction. The shaft insertion hole 561 includes, from the rear toward the front, a small-diameter hole portion 561a, and a large-diameter hole portion 561b having an inner diameter larger than that of the small-diameter hole portion 561a.
As illustrated in
Furthermore, the lead cam 526 includes a cam 562 in the outer circumferential surface.
When the annular member 524 is fixed to the shank head 505, the shaft 525 is inserted into the annular member 524 from the rear to create a state that the bolt portion 553 protrudes forward from the annular member 524. In this state, the flange portion 552 is positioned inside the annular member body part 541 and the tube part 542 of the annular member 524. Furthermore, when the annular member 524 is fixed to the shank head 505, the cam supporting portion 551 is inserted into the shaft insertion hole 561, and the lead cam 526 is supported by the shaft 525. Thereafter, the shaft 525 and the lead cam 526 are inserted into the head center hole 532, and the annular member 524 is fixed to the shank head 505.
In a state that the annular member 524 is fixed to the shank head 505, the rear end portion of the shaft 525 is inserted into the second center hole portion 537 of the head center hole 532, as illustrated in
In a state that the annular member 524 is fixed to the shank head 505, the lead cam 526 is disposed in the cam housing (the fourth center hole portion 539). Then, the lead cam 526 is biased by the coil spring 527 to a rear-side position (a second position) 526A that comes into contact with the third forward-facing annular surface 532c. Note that, after the lead cam 526 is positioned in the cam housing, the cam pin 511 is screwed into the lead cam 526, whereby the tip portion of the cam pin 511 is inserted into the cam 562 of the lead cam 526.
Here, the lead cam 526 is movable, along the cam supporting portion 551, between the rear-side position (the second position) 526A and a front-side position (a first position) 526B spaced forward from the rear-side position 526A in the axis L direction. The rear-side position 526A is a position at which the lead cam 526 comes into contact with the third forward-facing annular surface 532c, and a position at which the cam pin 511 comes into contact with the front-side protruding part 246. The front-side position 526B is a position at which the lead cam 526 comes into contact with the annular member 524, and a position at which the cam pin 511 comes into contact with the rear-side protruding part 245. Note that the lead cam 526 is usually biased to the rear-side position 526A by the coil spring 527. Accordingly, the cam pin 511 is usually in contact with the front-side arc-shaped surface 248d between the front-side protruding parts 246.
When a linear reciprocating motion of the lead cam 526 from the rear-side position 526A via the front-side position 526B back to the rear-side position 526A is made, the cam pin 511 slides in the front-side cam surface 248 and the rear-side cam surface 247 of the cam 562, whereby this reciprocating motion is converted into a rotational motion of the lead cam 526 at a certain angle about the axis L in a single direction. That is, the cam 562 and the cam pin 511 constitute a motion converting mechanism 565 configured to convert the linear reciprocating motion of the lead cam 526 into the rotational motion thereof. Here, when the lead cam 526 rotates, the shaft 525 rotates integrally with the lead cam 526.
(Brush-Shaped Grinding Stone)
As illustrated in
The grinding member holder 570 is tubular (annular), and includes a spindle hole 570a which the shaft 525 penetrates. In the front face of the grinding member holder 570, a plurality of linear grinding member holding holes 571 are formed in the circumference of the spindle hole 570a as illustrated in
As illustrated in
At the time of making such brush-shaped grinding stone 504 held by the tool holder 502, the grinding member holder 570 is screwed onto the bolt portion 553 of the shaft 525 and disposed inside the sleeve 506. Then, the rotation regulating screw 521 is screwed into the two threaded holes 573 via the guide hole 520.
In a state that the rotation regulating screw 521 is screwed into each of the threaded holes 573 from the outside of a corresponding one of the guide holes 520, the head part of the rotation regulating screw 521 (an end portion on the outer circumferential side of the rotation regulating screw 521) is positioned inside the guide hole 520. Accordingly, if the grinding member holder 570 (the nut 529) is about to rotate about the axis L, the head part of each of the rotation regulating screws 521 comes into contact with the inner circumferential wall of a corresponding one of the guide holes 520 from the circumferential direction, thereby preventing the rotation. That is, the two guide holes 520 and the two rotation regulating screws 521 screwed into the grinding member holder 570 constitute a nut rotation regulating mechanism 575 configured to regulate the rotation of the grinding member holder 570 (the nut 529) about the axis L. The nut rotation regulating mechanism 575 allows the movement of the grinding member holder 570 (the nut 529) in the axis L direction.
(Adjustment Operation of the Protruding Amount of Grinding Members)
When the wear amount of the linear grinding members 503 reaches a predetermined wear amount due to processing operation, the machining center is driven by a control program to supply a pressurized coolant C from the head to the polishing tool unit 500.
The coolant C supplied from the machining center is introduced into the head center hole 532 of the shank head 505. More specifically, the coolant C is introduced from the first center hole portion 536 (a coolant inlet hole) of the head center hole 532 via the shaft-side coolant inlet hole 555 and the coolant outlet hole 556 into the third center hole portion 538 and the fourth center hole portion 539. As illustrated in
At the time when the lead cam 526 moves to the front-side position 526B, as is the case with the adjustment operation of the grinding member protruding amount in Embodiment 3 illustrated in
Thereafter, when the supply of the coolant C is stopped, the introduced coolant C flows downward through a gap between parts, such as between the lead cam 526 and the cam housing (the fourth center hole portion 539), and is conveyed to the brush-shaped grinding stone 504. Furthermore, the coolant C is discharged from the guide hole 520 to the outside of the sleeve 506. Here, when the fluid pressure of the coolant C decreases, the lead cam 526 returns from the front-side position 526B (the first position) to the rear-side position 526A (the second position) by the biasing force of the coil spring 527 as illustrated in
At the time when the lead cam 526 returns to the rear-side position 526A, as is the case with the adjustment operation of the grinding member protruding amount in Embodiment 3 illustrated in
With these operations, the grinding member holder 570 (the nut 529) moves forward only by a movement amount corresponding to the rotation amount of the shaft 525 while the lead cam 526 returns from the rear-side position 526A via the front-side position 526B to the rear-side position 526A. Accordingly, the supply of the coolant C from the machining center to the polishing tool unit 500 allows the linear grinding members 503 to protrude from the front end opening 506a of the sleeve 506 only by a predetermined grinding member protruding amount P.
According to the present embodiment, it is not necessary to use a rack gear or a protruding amount adjusting member for the purpose of performing an operation of adjusting the protruding amount of grinding members. Furthermore, it is not necessary to move the polishing tool unit 500 to a position for adjusting the grinding member protruding amount at which the rack gear or the protruding amount adjusting member is disposed, for the purpose of performing an operation of adjusting the protruding amount of grinding members. Accordingly, in the machining center, after a tool is changed to the polishing tool unit 500 by an automatic tool changing apparatus, an operation of adjusting the protruding amount of grinding members can be performed while the polishing tool unit 500 is moved to a process starting position. Thus, the use of the polishing tool unit 500 of the present embodiment makes it possible to improve throughput of processing operation.
Note that an insertion screw may be used for forming the female thread 572 in the inner circumferential surface of the spindle hole 570a of the grinding member holder 570. Furthermore, in the case where the grinding member holder 570 is made of aluminum, and the shaft 525 (the bolt portion 553) is made of, for example, carbon steel, anodizing of the inner circumferential surface of the spindle hole 570a makes it possible to enhance the durability of the female thread 572.
The polishing tool units 1, 100, and 200 of the respective Embodiments 1 to 3 may be configured such that the nuts 36, 142, and 242 of the respective tool holders 2, 102, and 202 are formed integrally with the grinding member holders 61, 150, and 255 of the respective brush-shaped grinding stones 4, 104, and 204, respectively, and the grinding member holders 61, 150, and 255 double as the nuts 36, 142, and 242, respectively. That is, in the polishing tool units 1, 100, and 200, the brush-shaped grinding stone 504 described in Embodiment 5 may be employed. Such employment allows the number of parts in the polishing tool units 1, 100, and 200 to be reduced. Furthermore, in the polishing tool unit 500 of Embodiment 5, as is the cases with Embodiments 1 to 3, the brush-shaped grinding stones 4, 104, and 204 are connected to the respective nuts 36, 142, and 242, and the resultant connected parts may be used in place of the brush-shaped grinding stone 504.
In Embodiments 1 to 4, a top member for regulating displacement of the linear grinding members may be attached to the tip portion of a shaft, such as the gear screw or the cam screw.
As illustrated in
As illustrated in
At the time of attaching the top member 401 to the gear screw 135, the top member 401 is inserted into the inner circumferential side of the linear grinding members 103 surrounding the gear screw 135. Then, the front end portion of the gear screw 135 is inserted into the rear-side recess part 403 of the top member 401. Thereafter, the threaded part of the headed screw 402 is made to penetrate the center hole 401a of the top member 401 from the front, and is screwed into the threaded part 138a formed in the inner circumferential surface of the front end portion of the screw center hole 138 of the gear screw 135. With this, the top member 401 is fixed to the front end portion of the gear screw 135, and the head part of the headed screw 402 is positioned inside the front-side recess part 405. Here, the top member 401 includes the rear-side tapered surface 404. Accordingly, even in the case where the linear grinding members 103 contain a broken one, the top member 401 can be inserted inside the linear grinding members 103 without being caught on the broken linear grinding member 103.
In a state that the top member 401 is attached to the gear screw 135, if the linear grinding members 103 are about to escape to the inner circumferential side during processing by rotation of the polishing tool unit 100, the linear grinding members 103 abut on the top member 401, so that the escape (displacement) can be prevented. By contrast, if the linear grinding members 103 are about to escape to the outer circumferential side, the linear grinding members 103 abut on the inner surface of the circumferential wall of the sleeve 106, so that the escape can be prevented. Accordingly, the difference in ease of escape between the linear grinding members 103 positioned on the inner circumferential side and the linear grinding members 103 positioned on the outer circumferential side is eliminated. As a result, no difference in rigidity is made between the linear grinding members 103 positioned on the inner circumferential side and the linear grinding members 103 positioned on the outer circumferential side, and consequently, a situation can be avoided in which the linear grinding members 103 positioned on the inner circumferential side is less worn than the linear grinding members 103 positioned on the outer circumferential side, and thus, the linear grinding members 103 are uniformly worn.
Note that, with the preparation of a plurality of members as the top members 401 that have front-side tapered surfaces 406 having different inclination and have front-side tapered surfaces 406 having different rear-end positions in the axis L direction, a position for controlling the motion of the linear grinding members 103 to the inner circumferential side can be adjusted by changing a top member 401 to another one.
At the time of attaching the top member 401A to the gear screw 135, each of the bundles of the linear grinding members 103 inserted into a corresponding one of the linear grinding member holding holes 152 of the grinding member holder 150 is made to penetrate a corresponding one of the through holes 401b, as illustrated in
In a state that the top member 401A is attached to the gear screw 135, if the linear grinding members 103 are about to escape to the inner circumferential side during processing by rotation of the polishing tool unit 100, the linear grinding members 103 abut on the opening edge portion and the circumferential wall surface portion on the inner circumference side of the through hole 401b in the top member 401A, so that the escape (displacement) can be prevented. By contrast, if the linear grinding members 103 are about to escape to the outer circumferential side, the linear grinding members 103 abut on the opening edge portion and the circumferential wall surface portion on the outer circumference side of the through hole 401b in the top member 401A, so that the escape (displacement) can be prevented. Accordingly, the difference in ease of escape between the linear grinding members 103 positioned on the inner circumferential side and the linear grinding members 103 positioned on the outer circumferential side is eliminated. As a result, no difference in rigidity is made between the linear grinding members 103 positioned on the inner circumferential side and the linear grinding members 103 positioned on the outer circumferential side, and consequently, a situation can be avoided in which the linear grinding members 103 positioned on the inner circumferential side is less worn than the linear grinding members 103 positioned on the outer circumferential side, and thus, the linear grinding members 103 are uniformly worn.
Next, in each of Embodiments 1 to 5, a linear grinding member made of nylon, abrasive-grain-containing nylon, abrasive-grain-containing rubber, stainless steel, or brass may be employed. Furthermore, the polishing tool unit may be configured such that a polishing tool including an annular grinding stone or the like held by the grinding member holder is held by a tool holder.
(Rack Gear Installation Jig)
Here, a rack gear installation jig is described.
A rack gear installation jig 85 is formed by bending a metal plate having a fixed thickness. As illustrated in
Here, the position for adjusting the grinding member protruding amount at which the rack gear 80 is disposed is present in a movable region of the head of the machining center connected to the polishing tool unit 100. Accordingly, cuttings and grinding member powder generated by workpiece processing using the polishing tool unit 100 connected to the head sometimes adhere to the rack gear 80. Furthermore, when an operation of adjusting the grinding member protruding amount is performed in a state that cuttings and grinding member powder adhere to the rack gear 80, the cuttings and the grinding member powder are stuck to the second gear 113 and the rack gear 80, thereby possibly bringing the second gear 113 and the rack gear 80 into a state of operation failure, such as a locked state. Here, if an operation of adjusting the grinding member protruding amount is continued when the second gear 113 and the rack gear 80 are in a state of operation failure, the polishing tool unit 100 and the rack gear 80 are damaged.
To solve such problem, the rack gear installation jig 85 is formed of a metal plate and has a low rigidity. Accordingly, in the case where the operation of adjusting the grinding member protruding amount is continued when the second gear 113 and the rack gear 80 are in a state of operation failure, the rack gear installation jig 85 bends, and the engagement of the second gear 113 with the rack gear 80 is canceled. That is, the rack gear installation jig 85 has a characteristic of escaping when an excessive force is applied between each of the polishing tool units 1, 100, and 300 and the rack gear 80, and therefore, in an operation of adjusting the grinding member protruding amount, each of the polishing tool units 1, 100, and 300 and the rack gear 80 are not damaged.
The rack gear installation jig 85 thus has the characteristic of escaping from an excessive force, and therefore, for example, when the gear tooth part 80a of the rack gear 80 is engaged with each of the gears (the gear screw operating gear 13, the second gear 113, the gear 307) of the respective polishing tool units 1, 100, and 300 in order to perform an operation of adjusting the grinding member protruding amount, even if the rack gear 80 interferes with the sleeves 6 and 106 of the respective polishing tool units 1 and 100 or the sleeve balancer 308 of the polishing tool unit 300, the rack gear 80 can be prevented or suppressed from damaging each of the polishing tool units 1, 100, and 300. Furthermore, since the rack gear installation jig 85 bends, even if the rack gear 80 interferes with the sleeves 6 and 106 of the respective polishing tool units 1 and 100 or the sleeve balancer 308 of the polishing tool unit 300 and escapes (is displaced) in a direction away from each of the polishing tool units 1, 100, and 300, once such interference is canceled, the rack gear 80 returns to the original state. Therefore, after the interference is canceled, the gear tooth part 80a of the rack gear 80 can be engaged with each of the gears (the gear screw operating gear 13, the second gear 113, the gear 307) of the respective polishing tool units 1, 100, and 300.
(Modification of Rack Gear)
Next, referring to
when an operation of adjusting the grinding member protruding amount is performed using the rack gear 80 including the electrodeposition grinding stone 80b, first, the tips of the linear grinding members 103 are brought into very-slight-contact with the electrodeposition grinding stone 80b in a state that the rack gear 80 and the axis L of the polishing tool unit 100 intersect at right angles, as illustrated in
With this, the linear grinding members 103 are trued up by the electrodeposition grinding stone 80b, and the tips of the linear grinding members 103 are aligned. Furthermore, the top face of the rack gear 80 is cleaned by rotation of the linear grinding members 103, and therefore, if cuttings and grinding member powder adhere to the rack gear 80, the cuttings and the grinding member powder are removed. Here, at the time of cleaning the top face of the rack gear 80 by the linear grinding members 103, in parallel with the cleaning, the tips of the linear grinding members 103 are aligned at the top surface of the electrodeposition grinding stone 80b positioned higher than the top surface of the rack gear 80. Accordingly, it can be prevented or suppressed that the rotating linear grinding members 103 come into contact with the gear tooth part 80a of the rack gear 80, thereby polishing the edge.
Then, as illustrated in
Here, if an operation of adjusting the grinding member protruding amount is performed in a state that cuttings and grinding member powder adhere to the rack gear 80, the cuttings and the grinding member powder are stuck to the second gear 113 and the rack gear 80, thereby possibly bringing the second gear 113 and the rack gear 80 into a state of operation failure, such as a locked state. By contrast, in the present embodiment, after cuttings and grinding member powder are removed from the rack gear 80 by the linear grinding members 103, the gear tooth part of the second gear 113 is engaged with the gear tooth part 80a of the rack gear 80. Therefore, it can be prevented or suppressed that the second gear 113 and the rack gear 80 are brought into a state of operation failure due to the cuttings or the grinding member powder, whereby the grinding member protruding amount cannot be adjusted.
Number | Date | Country | Kind |
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2014-106402 | May 2014 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2015/063775 | 5/13/2015 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2015/178273 | 11/26/2015 | WO | A |
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Number | Date | Country | |
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20170036323 A1 | Feb 2017 | US |