Clamping position automatic adjusting device used in retainer demagnetizing process
Technical Field
The utility model relates to the technical field of retainer demagnetization, in particular to an automatic clamping position adjusting device used in a retainer demagnetization process.
Background
With the rapid development of modern industrial manufacturing technology, the retainer demagnetizing procedure is an important ring of magnetic material processing, and the precision and efficiency of the retainer demagnetizing procedure directly affect the quality and production efficiency of products.
When the traditional retainer is demagnetized, the retainer is not fixed and clamped, and is easy to move during demagnetization, so that the demagnetization effect is affected, and when the traditional retainer is demagnetized, the retainer is demagnetized only through a demagnetizer for a single time, and the demagnetization effect is possibly uneven, so that the automatic clamping position adjusting device for the retainer in the demagnetization process is necessary to design.
Disclosure of utility model
The utility model aims to solve the defects in the prior art, and provides an automatic clamping position adjusting device for a retainer in a demagnetizing process.
In order to achieve the above purpose, the present utility model adopts the following technical scheme: the utility model provides a clamping position automatic regulating apparatus for keeping ware demagnetizing in-process, includes the operation panel, operation panel fixedly connected with motor, the output fixedly connected with gear two of motor, gear two meshing has gear three, fixedly connected with pivot one, pivot one fixedly connected with half gear four, half gear four meshing has rack two, rack two fixedly connected with sliding block, sliding block fixedly connected with slider two, gear two meshing has gear five, gear five fixedly connected with pivot two, pivot two fixedly connected with half gear six, half gear six meshing has rack two.
As a further description of the above technical solution:
The sliding block is fixedly connected with a fixed shell, the fixed shell is fixedly connected with a hydraulic telescopic rod, the hydraulic telescopic rod is fixedly connected with a first rack, the first rack is meshed with a first gear, the first gear is fixedly connected with a rotating shaft, the rotating shaft is fixedly connected with a rotating plate, the rotating plate is hinged with a connecting rod, the connecting rod is hinged with a first sliding block, and the first sliding block is fixedly connected with a fixing clamp.
As a further description of the above technical solution:
The fixed shell is provided with a first sliding groove, and the first sliding groove is connected with a first sliding block in a sliding mode.
As a further description of the above technical solution:
the operation panel fixedly connected with demagnetizer, operation panel fixedly connected with fixed plate, be equipped with spout two on the fixed plate, sliding connection has slider two in the spout two.
As a further description of the above technical solution:
the rotation shaft is rotatably connected to the fixing shell, four groups of connecting rods are arranged, and four groups of fixing clamps are arranged.
As a further description of the above technical solution:
Two groups of teeth are symmetrically arranged on the second rack, and the third gear and the fifth gear are symmetrically arranged.
As a further description of the above technical solution:
The first rotating shaft is rotationally connected to the operation table, the first rotating shaft is rotationally connected to the fixed plate, the second rotating shaft is rotationally connected to the operation table, and the second rotating shaft is rotationally connected to the fixed plate.
The utility model has the following beneficial effects:
1. According to the utility model, the rack I is driven to stretch and retract through the hydraulic telescopic rod, the rack I stretches and contracts to drive the gear I to rotate, the gear I rotates to drive the rotating plate to rotate through the rotating shaft, the rotating plate rotates to drive the sliding block I on the connecting rod to slide in the sliding groove I, the sliding block I drives the fixing clamp to fix and clamp the retainer which needs to be demagnetized, the stability of the retainer in the demagnetizing process can be ensured through fixing and clamping the retainer, and the stable position and posture of the retainer in the whole demagnetizing process can be ensured, so that a more accurate demagnetizing effect is obtained.
2. According to the utility model, the gear II is driven to rotate by the motor, the gear III is driven to rotate by the gear II, so that the gear IV is driven to rotate by the rotating shaft I, the gear II is driven to move by the rotation of the half gear IV, the sliding block II on the sliding block is driven to slide in the sliding groove II, the gear II is driven to rotate by the rotation of the gear V, the sliding block II on the sliding block is driven to slide in the sliding groove II in the reverse direction, the retainer clamped above is driven to move back and forth frequently to pass through the demagnetizer to demagnetize the retainer, and the retainer can be exposed to the magnetic field of the demagnetizer for many times by passing through the demagnetizer, so that the possibility of non-uniform demagnetization is reduced, the demagnetizing effect of the whole retainer is more uniform, and a more thorough demagnetizing effect is achieved.
Drawings
Fig. 1 is a schematic perspective view of an automatic clamping position adjusting device for a retainer demagnetizing process according to the present utility model;
FIG. 2 is a schematic diagram showing a part of an automatic clamping position adjusting device for a retainer demagnetizing process according to the present utility model;
FIG. 3 is a schematic diagram showing a part of an automatic clamping position adjusting device for use in a retainer demagnetizing process;
Fig. 4 is an exploded view of a part of a device for automatically adjusting a clamping position in a retainer demagnetizing process according to the present utility model.
Legend description:
1. An operation table; 2. a demagnetizer; 3. a fixing plate; 5. a fixed case; 6. a first chute; 7. a hydraulic telescopic rod; 8. a first rack; 9. a first gear; 10. a rotating shaft; 11. a rotating plate; 12. a connecting rod; 13. a first sliding block; 14. a fixing clamp; 15. a second chute; 16. a motor; 17. a second gear; 18. a third gear; 19. a first rotating shaft; 20. a half gear IV; 21. a second rack; 22. a sliding block; 23. a second slide block; 24. a fifth gear; 25. a second rotating shaft; 26. and a half gear six.
Detailed Description
The following description of the embodiments of the present utility model will be made clearly and completely with reference to the accompanying drawings, in which it is apparent that the embodiments described are only some embodiments of the present utility model, but not all embodiments. All other embodiments, which can be made by those skilled in the art based on the embodiments of the utility model without making any inventive effort, are intended to be within the scope of the utility model.
Referring to fig. 1-4, one embodiment provided by the present utility model is: the utility model provides a clamping position automatic regulating apparatus for retainer demagnetization process, including operation panel 1, operation panel 1 fixedly connected with motor 16, motor 16's output fixedly connected with gear two 17, gear two 17 meshes there is gear three 18, fixedly connected with pivot one 19, pivot one 19 fixedly connected with half gear four 20, half gear four 20 meshes there is rack two 21, rack two 21 fixedly connected with sliding block 22, sliding block 22 fixedly connected with slider two 23, gear two 17 meshes there is gear five 24, gear five 24 fixedly connected with pivot two 25, pivot two 25 fixedly connected with half gear six 26, half gear six 26 meshes there is rack two 21, drive through hydraulic telescoping rod 7 and drive rack one 8 flexible, gear one 9 rotates and drives the rotor plate 11 through axis of rotation 10 and rotate, rotor plate 11 rotates and drives the slider one 13 on the connecting rod 12 and slide in spout one 6, slider one 13 slides and drives the retainer that the fixed clip 14 tightly needs the retainer of demagnetizing, can ensure the stability of retainer in the demagnetization process through with retainer fixed clip 14, can guarantee that the stability of retainer in the demagnetization process, can keep in the whole process stable position and stable effect in order to obtain more accurate and stable the demagnetization process.
The sliding block 22 is fixedly connected with the fixed shell 5, the fixed shell 5 is fixedly connected with the hydraulic telescopic rod 7, the hydraulic telescopic rod 7 is fixedly connected with the first rack 8, the first rack 8 is meshed with the first gear 9, the first gear 9 is fixedly connected with the rotating shaft 10, the rotating shaft 10 is fixedly connected with the rotating plate 11, the rotating plate 11 is hinged with the connecting rod 12, the connecting rod 12 is hinged with the first sliding block 13, the first sliding block 13 is fixedly connected with the fixed clamp 14, the fixed shell 5 is provided with the first sliding groove 6, the first sliding block 13 is slidably connected with the first sliding block 6, the operating table 1 is fixedly connected with the demagnetizer 2, the operating table 1 is fixedly connected with the fixed plate 3, the fixed plate 3 is provided with the second sliding block 15, the second sliding block 23 is slidably connected with the second sliding block 15, the rotating shaft 10 is rotationally connected with the fixed shell 5, the connecting rod 12 is provided with four groups, the fixed clamp 14 is provided with four groups, the second rack 21 is symmetrically provided with two groups of teeth, the third gear 18 and the fifth gear 24 are symmetrically arranged, the first rotating shaft 19 is rotationally connected to the operation table 1, the first rotating shaft 19 is rotationally connected to the fixed plate 3, the second rotating shaft 25 is rotationally connected to the operation table 1, the second rotating shaft 25 is rotationally connected to the fixed plate 3, the second rotating shaft 17 is driven by the motor 16 to drive the second gear 17 to rotate, the third gear 18 is driven by the second gear 17 to rotate, the fourth half gear 20 is driven by the first rotating shaft 19 to rotate, the second rack 21 is driven by the fourth half gear 20 to move, the second slider 23 on the sliding block 22 is driven to slide in the second sliding groove 15, the fifth gear 24 is driven by the second gear 17 to rotate, the second slider 23 on the sliding block 22 is driven to slide in the second sliding groove 15 in a reverse direction, the retainer clamped above is driven to frequently reciprocate back and forth to demagnetize the retainer by the demagnetizer 2 through the reciprocation, the retainer can be exposed to the magnetic field of the demagnetizer 2 for many times, so that the possibility of non-uniform demagnetization is reduced, the demagnetization effect of the whole retainer is more consistent, and a more thorough demagnetization effect is achieved.
Working principle: firstly, when the retainer is demagnetized, the hydraulic telescopic rod 7 is started, the hydraulic telescopic rod 7 drives the rack I8 to stretch and retract, the rack I8 stretches and contracts to drive the gear I9 to rotate, the gear I9 rotates to drive the rotating plate 11 to rotate through the rotating shaft 10, the rotating plate 11 rotates to drive the sliding block I13 on the connecting rod 12 to slide in the sliding groove I6, the sliding block I13 slides to drive the fixing clamp 14 to fix the retainer which is needed to be demagnetized, the retainer fixing clamp 14 can be tightly fixed by the retainer, the retainer can be ensured to keep stable position and posture in the whole demagnetizing process, thereby obtaining more accurate demagnetizing results, then, the motor 16 is started, the motor 16 drives to drive the gear II 17 to rotate, the gear III 18 is driven to rotate, thereby driving the half gear IV 20 to rotate through the rotating shaft I19, the half gear IV 20 rotates to drive the gear IV 21 to move, and then the sliding block II 23 on the sliding block 22 slides in the sliding groove II 15, the gear IV 17 rotates to drive the gear IV 24 to rotate, the gear IV 24 rotates to drive the half gear IV 26 to rotate, the retainer is driven by the second 25 to rotate the half gear IV 26 to drive the sliding block II 26 to rotate, the retainer is driven by the half gear IV 26 to move the gear IV to drive the retainer to move the gear IV to the gear IV 21 to move more uniformly and the retainer 2 to be more thoroughly demagnetized, and the retainer can be more than the demagnetized 2 can be more equal in the whole demagnetizing effect can be more than required by moving back and more than the retainer to and more than the whole can be more completely moved by the carrier 2.
Finally, it should be noted that: the foregoing description is only illustrative of the preferred embodiments of the present utility model, and although the present utility model has been described in detail with reference to the foregoing embodiments, it will be apparent to those skilled in the art that modifications may be made to the embodiments described, or equivalents may be substituted for elements thereof, and any modifications, equivalents, improvements or changes may be made without departing from the spirit and principles of the present utility model.