Clamp position adjusting mechanism applied to stamping device
By introducing Y-axis and X-axis guide rails and drive components into the stamping device, combined with the design of the rotary seat and mounting plate, the precise adjustment of the fixture position is achieved, solving the problems of complex and low-precision adjustment of traditional fixtures, improving operating efficiency and adaptability, and meeting the requirements of precision machining.
Patent Information
- Application Number
- CN202520120037.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-20
- Publication Date
- 2026-01-02
- Estimated Expiration
- 2035-01-20
AI Technical Summary
Traditional fixture position adjustment methods are complex to operate, have low adjustment accuracy and low efficiency, and are difficult to meet the processing requirements of workpieces of different sizes and shapes.
The fixture employs components such as Y-axis guide rail, Y-axis slide, Y-axis drive assembly, X-axis guide rail, X-axis slide, X-axis drive assembly, and rotary seat. It achieves translation and rotation adjustment of the fixture through lead screw and motor drive, and achieves precise position adjustment by combining the threaded hole design of the mounting plate.
The fixture position adjustment mechanism is simple to operate, has high adjustment accuracy, and is highly adaptable. It can be adapted to various types and sizes of fixtures to meet precision machining needs.
Smart Images

Figure CN223748397U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to punch device technical field, concretely relates to a clamp position adjusting mechanism for punch device. BACKGROUND
[0002] In the punch processing, workpiece needs to be fixed on the worktable of the punch through the clamp. In order to adapt to workpieces of different sizes and shapes, and meet different processing requirements, the position adjustment of the clamp is necessary. But the traditional clamp position adjustment mode is often complex in operation, the adjustment precision is not high, and the efficiency is low. UTILITY MODEL CONTENTS
[0003] The utility model needs to solve the technical problem to provide a clamp position adjusting mechanism for punch device to solve the problem in the background art.
[0004] To solve the above technical problem, the technical scheme adopted by the utility model is as follows.
[0005] The clamp position adjusting mechanism for punch device, including two parallel settings and along Y direction horizontal setting Y direction guide rail, Y direction guide rail is slidably assembled with Y direction sliding seat, Y direction sliding seat is connected with Y direction drive assembly for driving Y direction sliding seat along Y direction guide rail sliding;The upper surface of Y direction sliding seat is provided with two parallel settings and along X direction horizontal setting X direction guide rail, X direction guide rail is slidably assembled with X direction sliding seat, and X direction sliding seat is connected with X direction drive assembly for driving X direction sliding seat along X direction guide rail sliding;The top of X direction sliding seat is rotatably arranged with the rotating seat that protrudes X direction sliding seat setting, and the rotating seat is connected with the rotating drive assembly for driving the horizontal rotation of the rotating seat, and the upper surface of the rotating seat is adjustably provided with the mounting plate for installing the clamp to realize the relative position adjustment of the clamp.
[0006] Preferably, the Y direction drive assembly includes Y direction screw rod, which is arranged parallel to the Y direction guide rail, rotatably arranged between the two Y direction guide rails and screw connected with the Y direction sliding seat, one end of the Y direction screw rod is connected with the Y direction drive motor for driving the Y direction screw rod to rotate to drive the Y direction sliding seat to slide along the Y direction guide rail.
[0007] Preferably, the X direction drive assembly includes X direction screw rod, which is arranged parallel to the X direction guide rail, rotatably arranged between the two X direction guide rails and screw connected with the X direction sliding seat, one end of the X direction screw rod is connected with the X direction drive motor for driving the X direction screw rod to rotate to drive the X direction sliding seat to slide along the X direction guide rail.
[0008] Preferably, the bottom of the rotating seat is rotatably connected with the X-direction sliding seat through a bearing, and the rotating driving assembly comprises a gear ring arranged on the top of the outer sidewall of the rotating seat and a rotating driving motor arranged on the X-direction sliding seat, and the rotating shaft of the rotating driving motor is arranged vertically upward and is connected with a gear engaged with the gear ring.
[0009] Preferably, the upper surface of the rotating seat is provided with a plurality of first threaded blind holes, the periphery of the mounting plate is provided with a plurality of counterbores matched with the first threaded blind holes, and the mounting plate is mounted on the rotating seat through bolts penetrating the counterbores and the first threaded blind holes.
[0010] Thanks to the above technical scheme, the present application has the following technical progress.
[0011] The Y-direction guide rail, the Y-direction sliding seat, the Y-direction driving assembly, the X-direction guide rail, the X-direction sliding seat, the Y-direction driving assembly, the rotating seat, the rotating driving assembly and the mounting plate are arranged, so that the present application has high adaptability, can be matched with various types and sizes of clamps, is simple to operate, has high adjustment precision and can meet the requirement of precision machining. BRIEF DESCRIPTION OF DRAWINGS
[0012] Figure 1 Fig. 1 is a structural schematic view of the present application;
[0013] Figure 2 Fig. 4 is an assembling schematic view of the rotating seat and the mounting plate of the present application.
[0014] Wherein: 1. Y-direction guide rail, 2. Y-direction sliding seat, 3. Y-direction screw rod, 4. Y-direction driving motor, 5. X-direction guide rail, 6. X-direction sliding seat, 7. X-direction screw rod, 8. X-direction driving motor, 9. Rotating seat, 10. Gear ring, 11. Rotating driving motor, 12. Gear, 13. First threaded blind hole, 14. Mounting plate, 15. Counterbore, 16. Bolt, 17. Second threaded blind hole. DETAILED DESCRIPTION
[0015] The present application will be further described in detail below in combination with the drawings and specific embodiments.
[0016] A clamp position adjusting mechanism applied to a punching device, in combination with Figure 1As shown, it comprises two parallel Y guide rails 1, and the Y guide rails 1 are horizontally arranged along the Y axis direction, a Y sliding seat 2 is slidingly assembled on the Y guide rails 1, the Y sliding seat 2 is connected with a Y driving assembly, and the Y driving assembly is used for driving the Y sliding seat 2 to slide along the Y guide rails 1. The upper surface of the Y sliding seat 2 is provided with two parallel X guide rails 5, and the X guide rails 5 are horizontally arranged along the X axis direction, an X sliding seat 6 is slidingly assembled on the X guide rails 5, the X sliding seat 6 is connected with an X driving assembly, and the X driving assembly is used for driving the X sliding seat 6 to slide along the X guide rails 5. The top of the X sliding seat 6 is horizontally rotatably provided with a rotating seat 9, the rotating seat 9 is connected with a rotating driving assembly, and the rotating driving assembly is used for driving the rotating seat 9 to horizontally rotate. The top of the rotating seat 9 protrudes from the X sliding seat 6, and the upper surface of the rotating seat 9 is adjustably provided with a mounting plate 14, and the mounting plate 14 is used for mounting a clamp. In use, the relative position between the clamps is adjusted through the rotating seat 9 and the mounting plate 14; the position of the clamp relative to the stamping device is adjusted by driving the Y sliding seat 2 and the X sliding seat 6 to translate and the rotating seat 9 to rotate.
[0017] Specifically, the Y driving assembly comprises a Y lead screw 3, the Y lead screw 3 is parallel to the Y guide rails 1 and is rotatably arranged between the two Y guide rails 1, and the Y lead screw 3 is threadedly connected with the Y sliding seat 2. One end of the Y lead screw 3 is connected with a Y driving motor 4, the Y driving motor 4 drives the Y lead screw 3 to rotate, thereby driving the Y sliding seat 2 to slide along the Y guide rails 1, realizing the translation of the Y sliding seat 2 along the Y axis direction, and further realizing the translation of the clamp along the Y axis direction.
[0018] The X driving assembly comprises an X lead screw 7, the X lead screw 7 is parallel to the X guide rails 5 and is rotatably arranged between the two X guide rails 5, and the X lead screw 7 is threadedly connected with the X sliding seat 6. One end of the X lead screw 7 is connected with an X driving motor 8, the X driving motor 8 drives the X lead screw 7 to rotate, thereby driving the X sliding seat 6 to slide along the X guide rails 5, realizing the translation of the X sliding seat 6 along the X axis direction, and further realizing the translation of the clamp along the X axis direction.
[0019] The bottom of the rotating seat 9 is rotatably connected with the X sliding seat 6 through a bearing, and the rotating driving assembly comprises a gear ring 10 and a rotating driving motor 11. The gear ring 10 is arranged on the outer side wall of the rotating seat 9, and the rotating driving motor 11 is arranged on the X sliding seat 6 and located on one side of the rotating seat 9. The rotating shaft of the rotating driving motor 11 is vertically upwardly arranged and connected with a gear 12, and the gear 12 is engaged with the gear ring 10. When the rotating driving motor 11 drives the gear 12 to rotate, the gear 12 drives the gear ring 10 to rotate, and the gear ring 10 drives the rotating seat 9 to horizontally rotate.
[0020] As Figure 2As shown, the upper surface of the rotating seat 9 is provided with a plurality of first threaded blind holes 13, and the periphery of the mounting plate 14 is provided with a plurality of counterbores 15, the counterbores 15 are matched with the first threaded blind holes 13, the mounting plate 14 is mounted on the rotating seat 9 through the bolts 16 threaded in the counterbores 15 and the first threaded blind holes 13, and the bolt caps of the bolts 16 are seated in the counterbores 15. The upper surface of the mounting plate 14 is provided with a plurality of second threaded blind holes 17, the second threaded blind holes 17 are used for mounting clamps, and the density of the second threaded blind holes 17 is greater than that of the first threaded blind holes 13, so that the relative positions of the clamps mounted through the first threaded blind holes 13 and the second threaded blind holes 17 can be finely adjusted, and different shapes and sizes of workpieces can be clamped.
[0021] In use, the mounting plate 14 is mounted on the rotating seat 9 of the stamping device, and the relative positions of the clamps are adjusted; the driving Y sliding seat 2 and the X sliding seat 6 are translated, and the rotating seat 9 is rotated, so that the position of the clamp relative to the stamping device is adjusted, which not only has strong adaptability and can adapt to various types and sizes of clamps, but also is simple to operate, has high adjustment precision, and can meet the needs of precision machining.
Claims
1. A clamp position adjustment mechanism applied to a stamping device, characterized in that: The application relates to a horizontal rotary table, which comprises two Y-direction guide rails (1) arranged in parallel and horizontally along the Y-axis direction, a Y-direction sliding base (2) slidingly arranged on the Y-direction guide rails (1), a Y-direction driving assembly for driving the Y-direction sliding base (2) to slide along the Y-direction guide rails (1), an X-direction guide rail (5) arranged in parallel and horizontally along the X-axis direction on the upper surface of the Y-direction sliding base (2), an X-direction sliding base (6) slidingly arranged on the X-direction guide rail (5), an X-direction driving assembly for driving the X-direction sliding base (6) to slide along the X-direction guide rail (5), a rotary seat (9) horizontally rotatably arranged on the top of the X-direction sliding base (6) and protruding from the X-direction sliding base (6), a rotary driving assembly connected with the rotary seat (9) for driving the rotary seat (9) to horizontally rotate, and an installation plate (14) adjustably arranged on the upper surface of the rotary seat (9) and used for mounting a clamp to realize relative position adjustment of the clamp.
2. The jig position adjusting mechanism for a press device according to Claim 1, characterized in that: The Y-direction driving assembly comprises a Y-direction screw rod (3) arranged in parallel with the Y-direction guide rails (1), rotatably arranged between the two Y-direction guide rails (1) and threadedly connected with the Y-direction sliding base (2), and a Y-direction driving motor (4) connected with one end of the Y-direction screw rod (3) and used for driving the Y-direction screw rod (3) to rotate so as to drive the Y-direction sliding base (2) to slide along the Y-direction guide rails (1).
3. The jig position adjusting mechanism for a press device according to Claim 1, characterized in that: The X-direction driving assembly comprises an X-direction screw rod (7) arranged in parallel with the X-direction guide rail (5), rotatably arranged between the two X-direction guide rails (5) and threadedly connected with the X-direction sliding base (6), and an X-direction driving motor (8) connected with one end of the X-direction screw rod (7) and used for driving the X-direction screw rod (7) to rotate so as to drive the X-direction sliding base (6) to slide along the X-direction guide rail (5).
4. The jig position adjusting mechanism for a press device according to Claim 1, characterized in that: The bottom of the rotary seat (9) is rotatably connected with the X-direction sliding base (6) through a bearing, the rotary driving assembly comprises a gear ring (10) arranged on the top of the outer wall of the rotary seat (9) and a rotary driving motor (11) arranged on the X-direction sliding base (6), the rotary shaft of the rotary driving motor (11) is vertically upwardly arranged and connected with a gear (12) engaged with the gear ring (10).
5. The clamp position adjusting mechanism for a press device according to Claim 1, characterized in that: The upper surface of the rotary seat (9) is provided with a plurality of first threaded blind holes (13), the periphery of the installation plate (14) is provided with a plurality of counterbores (15) matched with the first threaded blind holes (13), and the installation plate (14) is mounted on the rotary seat (9) through bolts (16) penetrating the counterbores (15) and the first threaded blind holes (13); the upper surface of the installation plate (14) is provided with a plurality of second threaded blind holes (17) used for mounting clamps, and the density of the second threaded blind holes (17) is greater than that of the first threaded blind holes (13).