WO2009093563A1 - Dispositif de serrage - Google Patents

Dispositif de serrage Download PDF

Info

Publication number
WO2009093563A1
WO2009093563A1 PCT/JP2009/050735 JP2009050735W WO2009093563A1 WO 2009093563 A1 WO2009093563 A1 WO 2009093563A1 JP 2009050735 W JP2009050735 W JP 2009050735W WO 2009093563 A1 WO2009093563 A1 WO 2009093563A1
Authority
WO
WIPO (PCT)
Prior art keywords
drive sleeve
annular
sleeve
taper
clamping device
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/JP2009/050735
Other languages
English (en)
Japanese (ja)
Inventor
Keitaro Yonezawa
Yosuke Haruna
Kenta Kaji
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Kosmek KK
Original Assignee
Kosmek KK
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Kosmek KK filed Critical Kosmek KK
Priority to JP2009550515A priority Critical patent/JP5227341B2/ja
Publication of WO2009093563A1 publication Critical patent/WO2009093563A1/fr
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Images

Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23BTURNING; BORING
    • B23B31/00Chucks; Expansion mandrels; Adaptations thereof for remote control
    • B23B31/02Chucks
    • B23B31/10Chucks characterised by the retaining or gripping devices or their immediate operating means
    • B23B31/12Chucks with simultaneously-acting jaws, whether or not also individually adjustable
    • B23B31/16Chucks with simultaneously-acting jaws, whether or not also individually adjustable moving radially
    • B23B31/16233Jaws movement actuated by oblique surfaces of a coaxial control rod
    • B23B31/16254Jaws movement actuated by oblique surfaces of a coaxial control rod using fluid-pressure means to actuate the gripping means

Definitions

  • This invention relates to an apparatus for positioning and clamping a substantially circular clamp target part in a sectional view.
  • FIG. 10A to FIG. 12 (or FIG. 20A and FIG. 20B or FIG. 29) of Patent Document 1 describe the following technique.
  • a drive sleeve (annular socket) as a movable member is inserted into a housing as a fixed side member so as to be movable up and down.
  • a substantially circular clamping target portion can be inserted into the drive sleeve in a sectional view.
  • a plurality of support holes are provided in the upper portion of the drive sleeve at intervals in the circumferential direction, and a lock member is supported in each support hole so as to be movable in the radial direction.
  • the lock member supported by the drive sleeve can be moved radially inward by the taper sleeve to position the clamp target portion. Excellent in terms.
  • the locking member is slid in the axial direction with respect to the portion to be clamped. There is a problem that it is required to increase the length of the portion to be clamped in the axial direction.
  • the clamping device is configured as follows.
  • a plurality of support holes 14 penetrating in the direction is provided.
  • the lock member 15 is supported in the support holes 14 so as to be movable in the radial direction.
  • An annular drive sleeve 18 is inserted into the annular space 12 so as to be movable in the axial direction, and the drive sleeve 18 engages with the plurality of lock members 15 so that the lock member 15 is radially inward. It is configured to move to the lock position X.
  • An annular taper space 46 is formed between the outer peripheral wall 45 of the annular space 12 and the drive sleeve 18 so as to become narrower in one axial direction.
  • An annular taper sleeve 47 inserted into the taper space 46 is configured to be able to expand and contract in the diameter direction.
  • the taper sleeve 47 is configured to be capable of taper engagement with either one of the outer peripheral wall 45 of the annular space 12 and the drive sleeve 18 and is axially oriented with respect to the other. It is configured to be able to move relative to More specifically, the lock member 15, the drive sleeve 18, and the taper sleeve 47 are arranged in order from the inside in the radial direction to the outside.
  • the present invention operates as follows, for example, as shown in FIGS. 1 to 4 (or FIG. 6).
  • the drive sleeve 18 is lowered, and the plurality of locking members 15 are retracted to the radially outward release position Y.
  • the pushing means 49 reduces the diameter of the taper sleeve 47 to eliminate the radial gap between the outer peripheral wall 45 and the taper sleeve 47 and the radius between the taper sleeve 47 and the drive sleeve 18. There are no gaps in the direction.
  • the clamp target portion 10 is inserted into the receiving hole 11 of the housing 2 in the released state.
  • the drive sleeve 18 When switching from the released state to the locked state, as shown in FIG. 4, the drive sleeve 18 is raised by the drive means such as the piston 19. Then, the straight outer peripheral surface 18a of the drive sleeve 18 slides with respect to the straight inner peripheral surface 47b of the tapered sleeve 47 without the above-described radial gap (in FIG. 6, in FIG. The straight outer peripheral surface 47a of the taper sleeve 47 slides with respect to the inner peripheral surface 45a), and the drive sleeve 18 advances the plurality of lock members 15 to the lock position X in the radial direction.
  • each lock member 15 aligns the axis of the clamp target portion 10 with the axis of the housing 2 and grips the clamp target portion 10 in the concentric state.
  • the clamping reaction force acting on the locking member 15 from the clamping target portion 10 is received by the outer peripheral wall 45 via the drive sleeve 18 and the taper sleeve 47.
  • the lock member of the present invention is moved in the radial direction with respect to the portion to be clamped, and does not need to be slid in the axial direction with respect to the portion to be clamped. For this reason, there is no possibility that the outer peripheral surface of the clamp target part will have a sliding scratch, and the length of the clamp target part in the axial direction can be shortened. Further, since the locking operation can be performed in a state where there is no radial gap between adjacent members of the outer peripheral wall of the annular space and the tapered sleeve and the driving sleeve, the repeated positioning accuracy of the clamping target portion is high.
  • the force for reducing the diameter of the tapered sleeve can be set to a small value. For this reason, the positioning force and the clamping force are not changed irregularly, and a stable value can be maintained.
  • the wear of the inner and outer peripheral surfaces of the taper sleeve and the surfaces contacting the peripheral surfaces is reduced, and the life of the clamping device is reduced. Becomes longer. Further, even if the amount of wear increases due to long-term use, the push means can follow the wear by pushing the taper sleeve, so that maintenance is not time-consuming.
  • the support holes 14 are spaced substantially equal in the circumferential direction in the annular partition wall 13 constituting a part of the housing 2 as a stationary member. Open three. Thereby, positioning accuracy improves with a simple configuration.
  • the shaft extends toward the distal end toward the inner periphery of the drive sleeve 18 and the outer periphery of the lock member 15.
  • Inclined surfaces 40 and 41 that are far from the center are provided, the inclined surfaces 40 and 41 are engaged with each other, and the drive sleeve 18 is moved in the distal direction, whereby the lock member 15 is locked in the radially inward lock position X. It is preferable to move to.
  • the drive sleeve can be prevented from projecting toward the distal end with respect to the lock member, so that the height of the housing is reduced and the clamp device can be made compact.
  • the lock member 15 is engaged with the drive sleeve 18 so as to be capable of relative movement in the axial direction and relative movement in the radial direction. It is preferable that the lock member 15 is switched between a radially inward lock position X and a radially outward release position Y by reciprocating the sleeve 18 in the axial direction.
  • the lock member 15 is switched between a radially inward lock position X and a radially outward release position Y by reciprocating the sleeve 18 in the axial direction.
  • the annular taper space 46 is configured to become narrower in the distal direction.
  • the tapered space 46 is configured to become narrower in the proximal direction.
  • the support hole 14 is provided near the tip of the annular partition wall 13 of the housing 2 and the tip near the tip of the annular cavity 12
  • the drive sleeve 18 is inserted, the fluid pressure piston 19 is inserted into the annular cavity 12 near the base end thereof so as to be able to move in the axial direction, and the drive sleeve 18 is connected to the piston 19. .
  • FIG. 3 is a sectional view of the clamp device according to the first embodiment of the present invention in a released state and corresponding to an elevation view taken along line II in FIG. 2. It is a schematic diagram of the clamp device in plan view.
  • FIG. 3 is a cross-sectional view corresponding to the view taken along line III-III in FIG. It is the fragmentary view which shows the locked state of the said clamp apparatus, and is equivalent to said FIG.
  • FIG. 2 shows a second embodiment of the present invention and is a partial view corresponding to FIG. 1 described above.
  • FIG. 6 shows a third embodiment of the present invention and is similar to FIG. 5 described above.
  • FIG. 6 shows a fourth embodiment of the present invention and is similar to FIG. 5 described above.
  • FIG. 6 shows a fifth embodiment of the present invention and is similar to FIG. 5 described above.
  • FIG. 6 shows a sixth embodiment of the present invention and is similar to FIG. 5 described above.
  • FIG. 10 shows a seventh embodiment of the present invention and is similar to FIG. 5 described above.
  • FIG. 10 shows an eighth embodiment of the present invention and is similar to FIG. 5 described above.
  • FIG. 1 is a sectional view of an elevation view corresponding to the view taken along the line II in FIG.
  • FIG. 2 is a schematic diagram of the clamp device in plan view.
  • FIG. 3 is a cross-sectional view corresponding to the view taken along the line III-III in FIG.
  • FIG. 4 shows a locked state of the clamp device and is a partial view corresponding to FIG.
  • the housing 2 is fixed to the upper part of the table 1 by a plurality of mounting bolts 3.
  • the housing 2 includes a lower housing 2a, an upper housing 2b, and an annular partition wall 13 to be described later.
  • the lower housing 2a and the annular partition wall 13 are positioned with respect to each other by a knock pin 4 and fixed with a connecting bolt 5.
  • the upper housing 2b is fixed to the table 1 together with the lower housing 2a by the mounting bolt 3 described above.
  • a housing hole 11 into which a portion 10 to be clamped provided in the work 9 is inserted is passed through the central portion of the housing 2 in the horizontal direction.
  • the clamping target portion 10 is formed in a substantially circular shape when viewed in cross section.
  • the accommodation hole 11 is formed in a substantially circular shape in plan view, and an annular space 12 is disposed in the housing 2 on the outer side in the radial direction.
  • the annular space 12 and the accommodation hole 11 are partitioned by an annular partition wall 13.
  • the annular partition wall 13 constitutes a part of the housing 2 as a fixed side member.
  • Three support holes 14 are arranged at approximately equal intervals in the circumferential direction on the upper portion (tip portion) of the annular partition wall 13.
  • the support hole 14 penetrates the annular partition wall 13 in the radial direction.
  • the lock members 15 are supported by the plurality of support holes 14 so as to be movable in the radial direction.
  • the annular drive sleeve 18 is inserted into the upper half of the annular cavity 12 so as to be movable in the vertical direction (axial direction). Further, the fluid pressure piston 19 is inserted into the lower half of the annular space 12 same as above through the inner sealing tool 20 and the outer sealing tool 21 so as to be able to move in a vertical direction.
  • the drive sleeve 18 and the piston 19 are integrally formed through a connection sleeve 22.
  • an intermediate sleeve 25 is attached to the middle height portion of the annular space 12.
  • the outer periphery of the intermediate sleeve 25 and the lower housing 2a are sealed with another sealing tool 26.
  • the intermediate sealing member 27 keeps the space between the inner periphery of the intermediate sleeve 25 and the outer periphery of the drive sleeve 18.
  • a lock chamber 29 formed on the lower side of the piston 19 is communicated with the lock port 30, and a release chamber 32 formed on the upper side of the piston 19 is communicated with the release port 33.
  • the inner peripheral portion of the drive sleeve 18 and the outer peripheral portion of the lock member 15 are engaged so as to be relatively movable in the vertical direction and relatively movable in the radial direction. That is, a T-shaped fitting groove 36 is formed in the inner peripheral portion of the drive sleeve 18 in a plan view. Further, a T-shaped protrusion 38 protrudes from the outer periphery of the main body 37 of the lock member 15, and the protrusion 38 is fitted into the fitting groove 36. An inclined surface 40 is formed at the bottom of the fitting groove 36 so as to move away from the axis as it goes upward. An inclined surface 41 provided on the outer peripheral portion of the projection 38 is in contact with the inclined surface 40.
  • the lock surface 43 formed on the inner periphery of the main body 37 of the lock member 15 is machined into an arc shape based on the inclined surface 41.
  • the radial dimension of the arcuate lock surface 43 is preferably set to a value that is the same as or slightly larger than the radial dimension of the clamping target portion 10 having the maximum diameter that can be inserted into the receiving hole 11.
  • annular taper space 46 is narrowed upward (toward the tip). Formed.
  • An annular taper sleeve 47 is inserted into the taper space 46.
  • the taper sleeve 47 is configured to be able to expand and contract in the diametrical direction by its own elastic force by forming one slit 48 opened on the upper and lower surfaces of the peripheral wall.
  • a plurality of compression coil springs (pushing means) 49 are arranged at predetermined intervals in the circumferential direction between the taper sleeve 47 and the intermediate sleeve 25.
  • the three lock members 15, the annular drive sleeve 18 and the annular taper sleeve 47 supported by the annular partition wall 13 constituting a part of the housing 2 are radially inward. They are arranged in order outward and operate as follows.
  • the pressure oil in the release chamber 32 is discharged and the pressure oil is supplied to the lock chamber 29 as shown in FIG. Thereby, the piston 19 raises the drive sleeve 18. Then, as described above, the drive sleeve with respect to the straight inner peripheral surface 47b of the taper sleeve 47 without any radial gap between adjacent members of the outer peripheral wall 45, the taper sleeve 47, and the drive sleeve 18.
  • the 18 straight outer peripheral surfaces 18a slide, and the drive sleeve 18 advances the plurality of lock members 15 to the lock position X inward in the radial direction.
  • each lock member 15 aligns the axis of the clamp target portion 10 with the axis of the housing 2 and grips the clamp target portion 10 in the concentric state.
  • the clamping reaction force acting on the locking member 15 from the clamping target portion 10 is received by the outer peripheral wall 45 via the drive sleeve 18 and the taper sleeve 47.
  • the drive sleeve 18 is linearly moved without the aforementioned radial gap, and the inclined surface 40 of the T groove 36 of the drive sleeve 18 radiates the inclined surface 41 of the protrusion 38 of the lock member 15. Since the portion 10 to be clamped is pressed by pushing inward in the direction, the positioning accuracy of the portion 10 to be clamped is high. In order to ensure the above advantages, it is preferable to increase the rigidity of the drive sleeve 18. That is, the drive sleeve 18 is less stiff in the radial direction during lock driving by increasing the rigidity.
  • the sliding resistance of the drive sleeve 18 with respect to the taper sleeve 47 is reduced, and the drive sleeve 18 can be moved smoothly.
  • the tapered sleeve 47 is configured to be able to expand and contract in the diameter direction, the force for reducing the diameter of the tapered sleeve 47 can be set to a small value. For this reason, the positioning force and the clamping force are not changed irregularly, and a stable value can be maintained.
  • the lock member 15 is moved in the radial direction with respect to the clamping target portion 10 and does not need to be slid in the axial direction with respect to the clamping target portion 10. For this reason, there is no possibility that the outer peripheral surface of the clamp target portion 10 is slidable and the length of the clamp target portion 10 in the axial direction can be shortened. Further, since the locking member 15 is advanced in the radial direction by the vertical movement of the inclined surface 40 of the drive sleeve 18, the advancement stroke of the locking member 15 is large. For this reason, it is hard to receive to the influence of the dimension error of the outer diameter of the clamped part 10, and the unevenness
  • the support structure of the lock member 15 It is preferable to clean the support structure of the lock member 15 with a cleaning fluid such as compressed air at the time of locking or releasing. That is, when compressed air is supplied to the blow port 51 opened in the upper part of the annular space 12, the compressed air is fitted into the gap between the peripheral wall of the support hole 14 and the outer peripheral surface of the lock member 15. It is discharged to the outside through. For this reason, it is possible to prevent foreign matter such as cutting oil and chips during cutting of the workpiece 9 from entering the housing 2. According to the present invention, the gap between the inside and the outside of the housing 2 can be made only the fitting gap between the support hole 14 and the lock member 15, so that the entry of the foreign matter can be prevented. It can be surely prevented.
  • a cleaning fluid such as compressed air
  • the inclination angle of the taper outer peripheral surface 47a is within a range of about 5 degrees to about 15 degrees ( The taper angle is preferably set within a range of about 10 degrees to about 30 degrees.
  • the inner peripheral surface 47b of the taper sleeve 47 and the outer peripheral surface 18a of the drive sleeve 18 are preferably lubricated or surface-treated so as to reduce the friction coefficient when sliding, and are combined with materials that reduce the friction coefficient. It is preferable. This also applies to the relationship between the outer peripheral surface 47a of the tapered sleeve 47 and the inner peripheral surface 45a of the outer peripheral wall 45 described above.
  • the first embodiment described above can be modified as follows.
  • the T groove and the protrusion can be arranged opposite to the example illustrated in FIG. 3.
  • a through hole 53 may be formed in the table 1 as shown in a two-dot chain diagram in FIG. Thereby, it becomes possible to hold
  • the housing 2 may be fixed to a rotating member instead of being fixed to the table 1.
  • FIGS. 5 to 11 show second to eighth embodiments of the present invention, which are similar to the partial view of FIG. In these other embodiments, the same members (or similar members) as the constituent members of the first embodiment will be described with the same reference numerals in principle.
  • the second embodiment shown in FIG. 5 differs from the first embodiment shown in FIG. 1 in the following points.
  • An annular taper space 46 is formed between the tapered inner peripheral surface 45a of the outer peripheral wall 45 of the annular space 12 and the straight outer peripheral surface 18a of the drive sleeve 18 so as to narrow downward (base direction).
  • the A taper sleeve 47 inserted into the taper space 46 is pushed downward by a compression coil spring (pushing means) 49.
  • the third embodiment shown in FIG. 6 differs from the second embodiment shown in FIG. 5 in the following points.
  • An annular tapered space 46 is formed between the straight inner peripheral surface 45a of the outer peripheral wall 45 of the annular space 12 and the tapered outer peripheral surface 18a of the drive sleeve 18 so as to narrow downward (toward the base end). Is done.
  • the pushing means for pushing the taper sleeve 47 downward is constituted by a plurality of disc springs 49.
  • the disc spring 49 is received by a retaining ring 60 attached to the upper portion of the drive sleeve 18.
  • the straight outer peripheral surface 47a of the taper sleeve 47 slides with respect to the straight inner peripheral surface 45a of the outer peripheral wall 45 at the time of locking and releasing operation.
  • the fourth embodiment shown in FIG. 7 differs from the third embodiment shown in FIG. 6 in the following points.
  • an annular tapered space 46 is formed so as to be narrowed upward (toward the tip).
  • the disc spring 49 is received by the upper portion of the connecting sleeve 22 in order to push the tapered sleeve 47 upward.
  • the fifth embodiment shown in FIG. 8 differs from the first embodiment shown in FIG. 1 in the following points.
  • the inclined surface 40 of the T-groove 36 of the drive sleeve 18 and the inclined surface 41 of the protrusion 38 of the lock member 15 are formed so as to spread downward (base end direction).
  • the lock chamber 29 is formed above the piston 19 and the release chamber 32 is formed below the piston 19.
  • the annular taper space 46 is narrowed upward (toward the tip) between the tapered inner peripheral surface 45a of the outer peripheral wall 45 of the annular cavity 12 and the straight outer peripheral surface 18a of the drive sleeve 18. It is formed.
  • a taper sleeve 47 inserted into the taper space 46 is pushed upward by a compression coil spring (pushing means) 49.
  • the sixth embodiment shown in FIG. 9 differs from the fifth embodiment shown in FIG. 8 in the following points.
  • An annular taper space 46 formed between the tapered inner peripheral surface 45a of the outer peripheral wall 45 of the annular space 12 and the straight outer peripheral surface 18a of the drive sleeve 18 becomes narrower in the downward direction (base end direction). Formed as follows. A taper sleeve 47 inserted into the taper space 46 is pushed downward by a compression coil spring (pushing means) 49.
  • the seventh embodiment shown in FIG. 10 differs from the sixth embodiment shown in FIG. 9 in the following points.
  • An annular tapered space 46 is formed between the straight inner peripheral surface 45a of the outer peripheral wall 45 of the annular space 12 and the tapered outer peripheral surface 18a of the drive sleeve 18 so as to narrow downward (toward the base end). Is done.
  • the pushing means for pushing the taper sleeve 47 inserted into the taper space 46 downward is constituted by a superposed disc spring 49.
  • the disc spring 49 is received by a retaining ring 60 attached to the upper portion of the drive sleeve 18.
  • the eighth embodiment shown in FIG. 11 differs from the seventh embodiment shown in FIG. 10 in the following points.
  • an annular tapered space 46 is formed so as to be narrowed upward (toward the tip).
  • the disc spring 49 is received by the upper portion of the connecting sleeve 22 in order to push the tapered sleeve 47 upward.
  • each of the above embodiments can be modified as follows.
  • the lower part of the piston 19 is protruded downward, and another annular taper space that narrows in one axial direction is formed between the outer peripheral surface of the piston protrusion and the lower housing 2a.
  • Another tapered sleeve having the same configuration as the tapered sleeve 47 is inserted into the other annular tapered space.
  • the other taper sleeve is configured to be taper-engaged with either one of the lower housing 2a and the piston protrusion, and to be movable relative to the other in the axial direction.
  • the other taper sleeve is configured to be pushed in a direction in which the taper engagement becomes tight by another pushing means.
  • the support holes 14 and the lock members 15 may be arranged in two or four instead of three in the illustrated manner.
  • the drive sleeve 18 and the lock member 15 may be fitted in other shapes such as a V shape in place of the T shape when viewed in cross section.
  • the inclined surface 41 of the lock member 15 is brought into contact with the inclined surface 40 of the drive sleeve 18 by an elastic member such as a spring instead of the fitting. It may be as described above.
  • the lock surface 43 of the lock member 15 is not limited to the illustrated arc shape, and may be a flat surface, for example.
  • the taper sleeve 47 may be configured so that the outer peripheral surface 47a and the inner peripheral surface 47b expand and contract in the diameter direction.
  • a plurality of slits are provided at predetermined intervals in the circumferential direction so that the plurality of slits are formed in the taper sleeve. You may make it open alternately to the upper surface and lower surface of 47 surrounding walls.
  • a groove extending in the vertical direction may be formed on the inner periphery or outer periphery of the peripheral wall of the taper sleeve 47 at a predetermined interval in the circumferential direction.
  • the pushing means may be an elastic body such as rubber instead of the exemplified spring, and can further utilize the action force of a pressure fluid such as compressed air.
  • the drive sleeve 18, the piston 19, and the connection sleeve 22 may be assembled as an individual product instead of being formed integrally.
  • the piston 19 may be arranged outside the housing 2 instead of being arranged inside the housing 2.
  • a fluid pressure cylinder may be disposed below the housing 2 and the piston in the cylinder and the drive sleeve 18 may be connected by the connection sleeve 22.
  • the pressure fluid for driving the piston 19 may be a gas body such as compressed air instead of the exemplified liquid such as pressure oil.
  • the clamping device of the present invention may be locked with a pressure fluid and released with a spring force, or may be locked with a spring force and released with a pressure fluid, instead of the exemplified double acting type.
  • the means for driving the drive sleeve 18 may be an electric motor or human power instead of the illustrated fluid pressure actuator.

Landscapes

  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Jigs For Machine Tools (AREA)

Abstract

Selon l'invention, un boîtier (2) comporte un trou de réception (11) dans lequel est introduite une partie d'objet à serrer (10) ayant une section transversale circulaire. Un espace d'ébauche annulaire (12) est agencé sur l'extérieur radial du trou de réception (11), et une séparation annulaire (13), destinée à séparer l'espace d'ébauche annulaire (12) et le trou de réception (11), est constituée sous la forme d'une partie du boîtier (2). Une pluralité de trous de support (14) est agencée dans la séparation annulaire (13) à un intervalle régulier dans la direction circonférentielle, et chaque trou de support (14) supporte un élément de verrouillage (15) de façon mobile dans la direction radiale. Un manchon d'entraînement annulaire (18), introduit dans l'espace d'ébauche annulaire (12) de façon à pouvoir se déplacer verticalement, est amené à coopérer avec une pluralité d'éléments de verrouillage (15). Un espace annulaire effilé (46) est formé entre la paroi circonférentielle externe (45) de l'espace d'ébauche annulaire (12) et le manchon d'entraînement (18) pour se rétrécir en direction de la partie supérieure. Un manchon effilé (47) est introduit dans l'espace effilé (46) de telle sorte que le manchon effilé (47) est amené en contact conique avec la paroi circonférentielle externe (45).
PCT/JP2009/050735 2008-01-24 2009-01-20 Dispositif de serrage Ceased WO2009093563A1 (fr)

Priority Applications (1)

Application Number Priority Date Filing Date Title
JP2009550515A JP5227341B2 (ja) 2008-01-24 2009-01-20 クランプ装置

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
JP2008042151 2008-01-24
JP2008-042151 2008-01-24

Publications (1)

Publication Number Publication Date
WO2009093563A1 true WO2009093563A1 (fr) 2009-07-30

Family

ID=40901071

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/JP2009/050735 Ceased WO2009093563A1 (fr) 2008-01-24 2009-01-20 Dispositif de serrage

Country Status (2)

Country Link
JP (1) JP5227341B2 (fr)
WO (1) WO2009093563A1 (fr)

Cited By (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP2777850A1 (fr) * 2013-03-14 2014-09-17 Schunk GmbH & Co. KG Spann- und Greiftechnik Dispositif de serrage ou de préhension
EP2777848A1 (fr) * 2013-03-14 2014-09-17 Schunk GmbH & Co. KG Spann- und Greiftechnik Dispositif de serrage ou de préhension
CN108145493A (zh) * 2018-02-28 2018-06-12 瑞庆汽车发动机技术有限公司 一种发动机缸体楔形定心夹具
WO2020196582A1 (fr) * 2019-03-27 2020-10-01 豊和工業株式会社 Mécanisme anti-poussière de mandrin et mandrin
JP2021070143A (ja) * 2019-11-01 2021-05-06 株式会社牧野フライス製作所 ワーク把持装置
CN113137525A (zh) * 2021-05-12 2021-07-20 海盐双赢管件制造有限公司 一种自密封防松管接头
CN114012194A (zh) * 2021-12-01 2022-02-08 通用技术集团机床工程研究院有限公司 一种电液伺服阀阀套精密加工夹具

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS61199327U (fr) * 1985-06-03 1986-12-13
JPS62123805U (fr) * 1986-01-29 1987-08-06
JPH1058213A (ja) * 1996-05-30 1998-03-03 Forkardt Gmbh 動力操作チヤツク

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS61199327U (fr) * 1985-06-03 1986-12-13
JPS62123805U (fr) * 1986-01-29 1987-08-06
JPH1058213A (ja) * 1996-05-30 1998-03-03 Forkardt Gmbh 動力操作チヤツク

Cited By (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP2777850A1 (fr) * 2013-03-14 2014-09-17 Schunk GmbH & Co. KG Spann- und Greiftechnik Dispositif de serrage ou de préhension
EP2777848A1 (fr) * 2013-03-14 2014-09-17 Schunk GmbH & Co. KG Spann- und Greiftechnik Dispositif de serrage ou de préhension
CN108145493A (zh) * 2018-02-28 2018-06-12 瑞庆汽车发动机技术有限公司 一种发动机缸体楔形定心夹具
WO2020196582A1 (fr) * 2019-03-27 2020-10-01 豊和工業株式会社 Mécanisme anti-poussière de mandrin et mandrin
JPWO2020196582A1 (ja) * 2019-03-27 2021-04-08 豊和工業株式会社 チャックの防塵機構およびチャック
JP2021070143A (ja) * 2019-11-01 2021-05-06 株式会社牧野フライス製作所 ワーク把持装置
CN113137525A (zh) * 2021-05-12 2021-07-20 海盐双赢管件制造有限公司 一种自密封防松管接头
CN114012194A (zh) * 2021-12-01 2022-02-08 通用技术集团机床工程研究院有限公司 一种电液伺服阀阀套精密加工夹具

Also Published As

Publication number Publication date
JP5227341B2 (ja) 2013-07-03
JPWO2009093563A1 (ja) 2011-05-26

Similar Documents

Publication Publication Date Title
JP5227341B2 (ja) クランプ装置
JP4260488B2 (ja) 調心駆動機構およびその機構を備えた位置決め装置
EP1961516B1 (fr) Dispositif de serrage et systeme de serrage l utilisant
CN102729030B (zh) 轴承压装装置
JP4864164B2 (ja) 流体カプラ付きクランピングシステム
CN105813803B (zh) 夹紧装置
CN1263582C (zh) 自动定位装置
EP2676766B1 (fr) Dispositif de positionnement
KR200498307Y1 (ko) 클램프 장치
JPWO2011089986A1 (ja) クランプ装置
US11498169B2 (en) Clamping apparatus
JP5474608B2 (ja) クランプ装置
JP4933380B2 (ja) 穴を有する素材の位置決め固定装置
CN119866255A (zh) 夹紧装置
JP4877787B2 (ja) 位置決め装置およびその装置を備えた位置決めシステム
JP5632902B2 (ja) 倍力機構付きシリンダ装置
JP5734264B2 (ja) 倍力機構付きシリンダ装置
JP7323181B2 (ja) シリンダ装置
JPWO2010140554A1 (ja) クランプ装置
JP6725919B2 (ja) クランプ装置
JP2012112532A (ja) 倍力機構付きシリンダ装置
JP5043243B2 (ja) 倍力機構付きシリンダ装置

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 09704610

Country of ref document: EP

Kind code of ref document: A1

WWE Wipo information: entry into national phase

Ref document number: 2009550515

Country of ref document: JP

NENP Non-entry into the national phase

Ref country code: DE

122 Ep: pct application non-entry in european phase

Ref document number: 09704610

Country of ref document: EP

Kind code of ref document: A1