Tool pot
10092988 ยท 2018-10-09
Assignee
Inventors
Cpc classification
Y10T483/1864
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B23Q3/15553
PERFORMING OPERATIONS; TRANSPORTING
B23Q2003/15527
PERFORMING OPERATIONS; TRANSPORTING
B23Q2003/15532
PERFORMING OPERATIONS; TRANSPORTING
Y10T483/1836
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B23Q3/15526
PERFORMING OPERATIONS; TRANSPORTING
Y10T483/1891
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
A tool pot includes a resin-made pot body and a metallic reinforcing member embedded in the pot body by insert molding. The reinforcing member is provided with a reinforcing plate embedded in a portion including a horizontal pin insertion portion in the pot body. The reinforcing plate is provided with a lightening hole so as to avoid the horizontal pin insertion portion.
Claims
1. A tool pot comprising; a resin-made pot body; and a metallic reinforcing member embedded in the pot body by insert molding, wherein the pot body includes a through hole in a vertical axial direction, and a portion of one end side of the through hole constitutes an insertion hole portion in which a shank of the tool is inserted, and a portion of the other end side of the through hole constitutes a retaining hole portion that retains a distal end portion of the shank, and the reinforcing member consists of a pair of reinforcing plates embedded in the pot body so as to face each other in the fore-and-aft direction with the retaining hole portion interposed therebetween, and an entire surface of each of the reinforcing plates is covered by the pot body, and at least on portion to reduce generation of thermal stress is formed in each of the reinforcing plates, the portion is formed of a thickness cut-off hole, and a portion around the thickness cut-off hole is resiliently deformable without hindering thermal contraction of the pot body at the time of cooling after the insert molding, a horizontal pin is inserted in the pot body so as to penetrate through the pair of reinforcing plates and avoid the retaining hole portion, the reinforcing member further comprises a reinforcing ring embedded in the pot body so that an inner peripheral surface of the reinforcing ring is exposed to the retaining hole portion, the reinforcing ring is joined at part of opposing surfaces of the pair of the reinforcing plates, a plurality of holes each for housing a ball that retain a distal end portion of the shank are formed therethrough at the reinforcing ring and a portion of each of the reinforcing plates joined to the reinforcing ring at regular intervals in the circumferential direction of the reinforcing ring, the portion to reduce generation of thermal stress is formed on the each of the reinforcing plates so as to avoid a portion that the horizontal pin penetrates through and the portion joined to the reinforcing ring, the thickness cut-off hole constituting the portion to reduce generation of thermal stress is provided in proximity to a required corner portion of each reinforcing plate, and the thickness cut-off hole has the shape of a square including two intersecting edges respectively extending in parallel to corresponding two intersecting edges of the reinforcing plate, and the two intersecting edges of the reinforcing plate constitute the comer portion.
2. The tool pot according to claim 1, wherein a horizontal pin is inserted in the pot body so as to penetrate through the pair of reinforcing plates and avoid the retaining hole portion, and the portion to reduce generation of thermal stress is formed on each of the reinforcing plates so as to avoid a portion that the horizontal pin penetrates through.
3. The tool pot according to claim 1, wherein the reinforcing member further comprises a reinforcing ring embedded in the pot body so that an inner peripheral surface of the reinforcing ring is exposed to the retaining hole portion, the reinforcing ring is joined at part of opposing surfaces of the pair of the reinforcing plates, and a plurality of holes each for housing a ball that retain a distal end portion of the shank are formed therethrough at the reinforcing ring and a portion of each of the reinforcing plates joined to the reinforcing ring at regular intervals in the circumferential direction of the reinforcing ring, and the portion to reduce generation of thermal stress is formed on the each of the reinforcing plates so as to avoid the portion joined to the reinforcing ring.
4. The tool pot according to claim 1, wherein the portion to reduce generation of thermal stress is formed, in each reinforcing plate, at a position overlapping the retaining hole portion when seen from the direction in which the reinforcing plates face each other.
5. A tool pot comprising: a resin-made pot body; and a metallic reinforcing member embedded in the pot body by insert molding, wherein the pot body includes a through hole in a vertical axial direction, and a portion of one end side of the through hole constitutes an insertion hole portion in which a shank of the tool is inserted, and a portion of the other end side of the through hole constitutes a retaining hole portion that retains a distal end portion of the shank, and the reinforcing member consists of a pair of reinforcing plates embedded in the pot body so as to face each other in the fore-and-aft direction with the retaining hole portion interposed therebetween, and at least one portion to reduce generation of thermal stress is formed in each of the reinforcing plates, the portion is formed of a thickness cut-off hole, and a portion around the thickness cut-off hole is resiliently deformable without hindering thermal contraction of the pot body at the time of cooling after the insert molding, a horizontal pin is inserted in the pot body so as to penetrate through the pair of reinforcing plates and avoid the retaining hole portion, the reinforcing member further comprises a reinforcing ring embedded in the pot body so that an inner peripheral surface of the reinforcing ring is exposed to the retaining hole portion, the reinforcing ring is joined at part of opposing surfaces of the pair of the reinforcing plates, a plurality of holes each for housing a ball that retain a distal end portion of the shank are formed therethrough at the reinforcing ring and a portion of each of the reinforcing plates joined to the reinforcing ring at regular intervals in the circumferential direction of the reinforcing ring, the portion to reduce generation of thermal stress is formed on the each of the reinforcing plates so as to avoid a portion that the horizontal pin penetrates through and the portion joined to the reinforcing ring, the thickness cut-off hole constituting the portion to reduce generation of thermal stress is provided in proximity to a required corner portion of each reinforcing plate, and the thickness cut-off hole has the shape of a square including two intersecting edges respectively extending in parallel to corresponding two intersecting edges of the reinforcing plate, and the two intersecting edges of the reinforcing plate constitute the comer portion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAIL DESCRIPTION OF THE INVENTION
(8) Subsequently, embodiments of the invention will be described with reference to
(9)
(10) In the following description, an upper side of
(11) The automatic tool replacing apparatus illustrated in
(12) Grippers (4) configured to grip the tools (T) are provided at both end portions of the tool replacement arm (3).
(13) The tool magazine (2) includes a pair of front and rear sprockets (5) configured to be rotatable about the vertical axes, an endless chain (6) extending between the both sprockets (5) so as to be wound therearound, and a plurality of tool pots (7) mounted to the chain (6) at a distance in a longitudinal direction thereof and configured to retain the tool (T) downward.
(14) As illustrated in
(15) The automatic tool replacing apparatus described above includes a pivoting apparatus (10) configured to cause the two each of the tool pots (7) at both the front and rear sides of the tool pot (7) allocated at a tool handing over position (P) to pivot between an interference position (the position illustrated by solid lines in Figs . 1 and 2) located on a turning orbit (O) of the tool replacement arm (3) and a retracted position (the position illustrated by chain lines in
(16) The pivoting apparatus (10) includes two rotating members (12) arranged at both front and rear sides of the tool handing over position (P) and configured to be rotatable about a pivotal center of the tool pot (7) allocated at the tool handing over position (P), an air cylinder (13) configured to rotate the rotating members (12), and movable engaging plates (14) mounted on the respective rotating members (12) and configured to engage the engaging portion (712) of the two tool pots (7) on both front and rear sides of the tool pot (7) allocated at the tool handing over position (P).
(17) The fixing apparatus (11) includes the two rotating members (12), the air cylinder (13), and a fixed engaging plate (15) provided in a fixed manner so as to engage the engaging portion (712) of the tool pot (7) allocated at the tool handing over position (P), and a gripping member (16) fixed so as to extend between the both rotating members (12) and configured to grip the tool pot (7) allocated at the tool handing over position (P).
(18) In the automatic tool replacing apparatus described above, when the tool pot (7) that retains a next tool (T) is allocated at the tool handing over position (P) during machining with the main shaft (1), a piston rod (131) of the air cylinder (13) advances and the both rotating members (12) rotate clockwise indicated by an arrow in
(19) Then, the movable engaging plates (14) engaging the engaging portions (712) of the each two tool pots (7) at the both front and rear side of the tool handing over position (P) also move in the same direction, and these four tool pots (7) pivot to the retracted positions where the tools (T) retained by the respective tool pots are retracted from the turning orbit (O) of the tool replacement arm (3) (See
(20) Simultaneously, the gripping member (16) also moves in the same direction, and the tool pot (7) allocated at the tool handing over position (P) is fixed by the gripping member (16) (see
(21) When machining by the tool (T) mounted to the main shaft (1) is terminated, the main shaft (1) moves to the tool replacement position, and then the tool replacement arm (3) is rotated from the waiting position to the tool gripping position by 90 degrees, the used tool (T) of the main shaft (1) is gripped by one of the grippers (4), and the next tool (T) of the tool pot (7) allocated at the tool handing over position (P) is gripped by the other gripper (4).
(22) Subsequently, the tool replacement arm (3) is moved downward, and the used tool (T) is pulled out from the main shaft (1) and the next tool (T) is pulled out from the tool pot (7). Subsequently, the tool replacement arm (3) is rotated by 180 degrees and then is moved upward again, the next tool (T) is inserted into the main shaft (1) and the used tool (T) is inserted into the tool pot (7). The tool replacement arm (3) is subsequently rotated by 90 degrees and returns the waiting position. The replacement of the tool is terminated in this manner.
(23) When the exchange of the tool is terminated, the piston rod (131) of the air cylinder (13) is retracted so that the both rotating members (12) rotate counterclockwise of
(24) As illustrated in
(25) The pot body (71) has a substantially square rod shape, and includes a through hole (711) formed therein so as to extend in the interior thereof in a vertical axial direction. A lower portion of the through hole (711) includes a large-diameter insertion hole portion (711a) in which a shank (not illustrated) of the tool (T) is inserted. An upper portion of the through hole (711) includes a small-diameter retaining hole portion (711b) that retains a distal end portion of the shank.
(26) An engaging portion (712) having an L-shaped cross section is provided at a lower end portion of the left side surface of the pot body (71) so as to be bent upward at a distal end thereof.
(27) Approximately a two-third of the left side including an upper end opening of the through hole (711) of an upper end surface of the pot body (71) is formed into an inclined surface having a leftward and downward gradient.
(28) As illustrated in
(29) The reinforcing ring (721) is embedded in the pot body (71) so that an inner peripheral surface is exposed to the retaining hole portion (711b) of the pot body (71). Vertical joint surfaces (not illustrated) are formed at both front and rear sides of an outer peripheral surface of the reinforcing ring (721).
(30) A pair of reinforcing plates (722) are joined at each left lower portion on one side thereof to the two front and rear vertical joint surfaces of the reinforcing ring (721) in advance by welding or the like. The both reinforcing plates (722) are completely embedded into an upper side portion of the pot body (71) by insert molding, and are arranged so as to face each other in the fore-and-aft direction with the retaining hole portion (711b) interposed therebetween. Parts of upper edges of the each reinforcing plates (722) are inclined in parallel to an inclined surface of an upper end of the pot body (71).
(31) The insert molded tool pot (7) is formed into a final product mode illustrated in
(32) In other words, a plurality of ball housing holes (73) extending in a radial direction from an outer surface of the tool pot (7) are formed therethrough toward the retaining hole portion (711b) at regular intervals in the circumferential direction at an intermediate position of a height corresponding to the reinforcing ring (721) of the tool pot (7). Each of the ball housing holes (73) inserts a stainless ball (75) for retaining a distal end portion of the shank and a spring (76) configured to bias the ball (75) so that part of the ball (75) projects into the retaining hole portion (711b), and a holding screw (77) for retaining the ball (75) and the spring (76) within the ball retaining hole (73) is retained with a screw.
(33) A horizontal pin insertion hole (74) extending in a fore-and-aft direction therethrough is formed at an upper end portion of the tool pot (7) so as to penetrate through right upper portions of the pair of reinforcing plates (722) so as to avoid the retaining hole portion (711b). The horizontal pin (8) for securing the tool pot (7) to the bracket (9) is inserted through the horizontal pin insertion hole (74).
(34) Each of the front and rear reinforcing plates (722) of the reinforcing member (72) is provided with a lightening hole (722a) so as to avoid the horizontal pin insertion hole (74). More specifically, the lightening holes (722a) are formed on an upper left portions of the pair of reinforcing plates (722) facing each other in the fore-and-aft direction with the retaining hole portion (711b) interposed therebetween. The lightening hole (722a) has a square shape, and an upper edge thereof is inclined so as to be parallel to an inclined portion at an upper edge of the reinforcing plates (722).
(35) In the related art, a portion where the lightening hole (722a) is formed is a portion where a thermal stress tends to be generated in the pot body (71) when the pot body (71) and the reinforcing member (72) are cooled to a normal temperature after the insert molding. In the tool pot (7) of this embodiment, the lightening holes (722a) are formed at the above-described portions of the pair of reinforcing plates (722) of the reinforcing member (72). Therefore, the portion around the lightening holes (722a) of the each reinforcing plates (722) is resiliently deformed easily and the thermal contraction of the pot body (71) is not hindered, whereby generation of the thermal stress is restricted. Since the lightening holes (722a) are formed respectively at portions of the both reinforcing plates (722) where the horizontal pin (8) is not inserted, a function of the reinforcing plates (722) that reinforces the horizontal pin insertion portions is not impaired. In addition, the lightening hole (722a) may be formed easily by applying press process on each of the reinforcing plates (722).
(36) The invention is not limited to those described in the above-described embodiment, and may be applied to the tool pot of various modes.
(37) In the above-described embodiment, generation of the thermal stress in the pot body is restrained by forming the lightening holes in the reinforcing members. However, the configuration other than the lightening hole, for example, lightening portions formed of depressions or notched portions may be formed at a required position on the reinforcing members.