Staggered clamping structure of upper wheel vibration disc
By designing a dislocation clamping structure of the upper wheel vibration disc including a stable fixed structure and a rubber contact, the dislocation clamping structure on the market is solved, and the problem of excessive movement and inconvenience in disassembly disassembly when clamping the upper wheel is solved, and the convenience of better protection and maintenance of the upper wheel is achieved.
Patent Information
- Application Number
- CN202422001981.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-19
- Publication Date
- 2025-06-10
- Estimated Expiration
- 2034-08-19
AI Technical Summary
The common upper wheel vibration disc misalignment clamping structure on the market is prone to excessive movement when clamping the upper wheel, resulting in collisions and scratches on the outer edge of the upper wheel, and is inconvenient to disassemble and repair.
A dislocation clamping structure of the upper wheel vibration disc is designed, and the main body is fixed by the insertion between the main body and the fixing member and the magnet adsorption and fixing of the main body to ensure the stable fixation. The clamping head adopts rubber contacts and spring structure to avoid hard contact and eliminate collision force. At the same time, the slide bar and the control bar are designed to make the main body easy to disassemble and repair when needed.
It improves the protection effect of the previous wheel, avoids external damage and scratches of the previous wheel, and simplifies the disassembly and repair process of the main body, improving work efficiency and maintainability of the equipment.
Smart Images

Figure CN222957906U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of misaligned clamping, in particular to a misaligned clamping structure for an upper wheel vibrating disc. Background Art
[0002] When assembling the upper wheel and the lower wheel, an assembling machine is needed to assemble the upper wheel and the lower wheel together. An upper wheel feeding vibrating disc is arranged on the side of the assembling machine. After feeding the upper wheel, a misaligned clamping structure is needed to control the movement and assembly of the upper wheel. The main function of the misaligned clamping structure is to ensure the accuracy and consistency of processing, prevent the workpiece from being damaged or deformed during the processing, improve the work efficiency, and protect the workpiece. The misaligned clamping structure can improve the work efficiency because it can make the workpiece more stable and reliable during the processing. The misaligned clamping structure can improve the processing accuracy because it can ensure the stability of the position and posture of the workpiece. The misaligned clamping structure can limit the movement of the workpiece in a specific position and direction, so as to ensure the accuracy of the processing operation. However, for the common misaligned clamping structure of the upper wheel vibrating disc on the market, when clamping the upper wheel, the clamping structure is easy to move excessively downward during the downward movement, which will cause collision, and the protection effect on the upper wheel is limited, which is easy to cause scratches on the outside of the upper wheel. When the misaligned clamping structure fails, the disassembly and repair are not convenient enough and are rather laborious. Summary of the Utility Model
[0003] An embodiment of the present disclosure relates to a misaligned clamping structure for an upper wheel vibrating disc. Its main body is inserted and fixed inside a fixing member, and at the same time, a fitting member is fixed by magnetic adsorption, so that the sliding rod is inserted into the positioning head and the side groove at the same time to firmly fix the main body. When it is necessary to disassemble and repair the main body, the sliding rod can be directly controlled to slide directionally through the control rod, the fitting member is no longer adsorbed and fixed to the fixing member, the sliding rod disengages from the inside of the side groove and the positioning head, so that the fixing of the sliding rod to the main body is released, and then the main body is directly pulled up to separate the bottom end of the main body from the inside of the fixing member, which is convenient for disassembly and repair.
[0004] In the first aspect of the present disclosure, a misaligned clamping structure for an upper wheel vibrating disc is provided, which specifically includes: a main body; a driving structure that can move up and down, left and right, and rotate is installed at the top end of the main body. The bottom end of the main body is inserted into a fixing member, and the fixing member is fixed above the upper wheel assembling machine by bolts. The fixing member is slidably installed with a sliding rod through a control board. A fitting member is fixed above the two sliding rods with a rectangular frame structure. The fitting member is attached to the side of the fixing member, and a magnet is fixed to the side of the fitting member; a clamping head; the clamping head is installed at the bottom front end of the main body. The clamping head is connected to a force-receiving head through a moving block and a positioning rod. A contact member made of rubber is clamped inside the force-receiving head. A square groove is penetrated and opened inside the contact member. The two contact members are arranged staggeredly. A convex block is arranged above the outer end of the contact member. A connecting head made of flexible rubber is fixed to the outer side of the bottom end of the contact member. The outer side of the hollow connecting head is an inclined structure.
[0005] Further, a positioning head is respectively fixed on both sides of the bottom end of the main body. An inner plate is welded and fixed inside the fixing member, and the inner plate is inserted into the bottom end inside of the main body. A side groove is respectively provided on both sides of the top end of the fixing member, and the inside of the side groove is communicated with the inside of the fixing member. A sliding rod penetrates and inserts into the side groove and the positioning head. A control plate with a cross-shaped structure is fixed on the side of the fixing member, and a control rod is welded and fixed above the rear end of each sliding rod.
[0006] Further, two staggered moving blocks are provided at the bottom of the clamping head to drive the displacement of the moving blocks. An outer plate is welded and fixed on the outside of each moving block. A guide rod penetrates and inserts into the outer plate. A spring is sleeved outside the guide rod with a T-shaped shaft structure. The top end of the spring contacts the bottom of the outer plate, and the bottom end of the guide rod is welded and fixed to the force-receiving head. The convex block is inserted into the top end of the force-receiving head. Two positioning rods are fixed at the top end of the force-receiving head, and the positioning rods are inserted into the bottom end inside of the moving block for free drawing. A limiting hole with a T-shaped shaft structure is opened at the bottom end of the force-receiving head, and a connecting head is inserted into the inside of the limiting hole.
[0007] The utility model provides an upper wheel vibrating disk misalignment clamping structure, which has the following beneficial effects:
[0008] When the clamping head drives the moving block to drive the force-receiving head to stagger and clamp the upper wheel, the force-receiving head moves downward. If it contacts and collides with an object, the force-receiving head moves upward, and at the same time, the spring outside the guide rod is compressed. With the elasticity of the spring, the collision force is eliminated. Then, control the force-receiving head to drive the contact member to stagger and move to clamp the upper wheel. Since the contact member is made of rubber and has a square groove inside, when clamping the upper wheel, it improves the protection effect on the upper wheel and avoids hard contact with the upper wheel, resulting in damage or scratches on the outside of the upper wheel.
[0009] The main body is inserted and fixed inside the fixing member, and at the same time, the fitting is fixed by magnetic adsorption. The sliding rod is inserted into the positioning head and the side groove at the same time to firmly fix the main body. When it is necessary to disassemble and repair the main body, the sliding rod can be directly controlled by the control rod to guide and slide. The fitting is no longer adsorbed and fixed to the fixing member, and the sliding rod disengages from the inside of the side groove and the positioning head, so that the fixing of the sliding rod to the main body is released. Then, directly pull the main body upward to separate the bottom end of the main body from the inside of the fixing member, which is convenient for disassembly and repair. Description of the Drawings
[0010] In order to more clearly illustrate the technical solutions of the embodiments of the present utility model, the drawings of the embodiments will be briefly introduced below.
[0011] The drawings in the following description only relate to some embodiments of the present utility model and do not limit the present utility model.
[0012] In the drawings:
[0013] Figure 1 Shows a three - dimensional structural schematic diagram of the present application;
[0014] Figure 2 Shows a bottom - view structural schematic diagram of the present application;
[0015] Figure 3 Shows an exploded bottom - view structural schematic diagram of the present application;
[0016] Figure 4 Shows an exploded three - dimensional structural schematic diagram of the main body of the present application;
[0017] Figure 5 Shows an exploded three - dimensional structural schematic diagram of the clamping head of the present application;
[0018] Figure 6 Shows an exploded bottom - view structural schematic diagram of the clamping head of the present application;
[0019] List of reference numerals
[0020] 1. Main body; 101. Positioning head; 102. Fixing member; 103. Inner plate; 104. Side groove; 105. Control board; 106. Slide bar; 107. Fitting member; 108. Control rod;
[0021] 2. Clamping head; 201. Moving block; 202. Outer plate; 203. Guide rod; 204. Force - receiving head; 205. Positioning rod; 206. Limiting hole; 207. Contact member; 208. Connecting head. Detailed implementation manners
[0022] To make the objectives, technical solutions and advantages of the embodiments of the present utility model clearer, the technical solutions of the embodiments of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are some but not all of the embodiments of the present utility model. All other embodiments obtained by those of ordinary skill in the art based on the described embodiments of the present utility model without creative efforts shall fall within the protection scope of the present utility model.
[0023] Embodiment 1: Please refer to Figures 1 to 6 :
[0024] The utility model provides a misaligned clamping structure for an upper wheel vibrating disk, comprising: a main body 1; a driving structure capable of moving up and down, left and right, and rotating is installed at the top end of the main body 1 to control the multi-angle movement of the clamping head 2. The bottom end of the main body 1 is inserted into a fixing member 102, and the fixing member 102 is fixed above the upper wheel assembling machine by bolts. A slide bar 106 is slidably installed on the fixing member 102 through a control board 105 to fix the fixing member 102 and the main body 1 together. Above the two slide bars 106 with a rectangular frame structure, a fitting member 107 is fixed. The fitting member 107 is attached to the side of the fixing member 102, and a magnet is fixed on the side of the fitting member 107 to adsorb and fix the fixing member 102, improving the fixing effect on the slide bar 106; a clamping head 2; the clamping head 2 is installed at the bottom of the front end of the main body 1. The clamping head 2 is connected to a stress head 204 through a moving block 201 and a positioning rod 205. A contact member 207 made of rubber is clamped inside the stress head 204. A square groove is formed through the inside of the contact member 207 to improve the flexibility of the contact member 207, avoid scratches when contacting the outside of the upper wheel, and at the same time, the square groove can be recessed to improve the fixing effect on the upper wheel. The two contact members 207 are arranged staggeredly. A convex block is arranged above the outer end of the contact member 207. A connecting head 208 made of flexible rubber is fixed on the outer side of the bottom end of the contact member 207. The outer side of the hollow connecting head 208 is of an inclined structure to drive the contact member 207 to be fixed together, so that the contact member 207 can be conveniently replaced after being damaged.
[0025] In the embodiment of the present disclosure, as Figure 3 with Figure 4 shown, two positioning heads 101 are respectively fixed on both sides of the bottom end of the main body 1 to be inserted into the slide bar 106, so that the main body 1 and the fixing member 102 are firmly connected. An inner plate 103 is welded and fixed inside the fixing member 102, and the inner plate 103 is inserted into the bottom end inside of the main body 1 to improve the positioning and fixing effect on the main body 1; two side grooves 104 are respectively arranged on both sides of the top end of the fixing member 102, and the positioning heads 101 are inserted into the inside of the side grooves 104. The inside of the side grooves 104 is communicated with the inside of the fixing member 102, and the slide bar 106 penetrates and inserts into the side grooves 104 and the positioning heads 101 to firmly fix the positioning heads 101; a cross-shaped control board 105 is fixed on the side of the fixing member 102 for guiding and sliding the slide bar 106. A control rod 108 is welded and fixed above the rear end of each slide bar 106 to conveniently pull the slide bar 106 to displace.
[0026] In the embodiment of the present disclosure, as Figure 5 with Figure 6As shown, two staggered moving blocks 201 are provided at the bottom of the clamping head 2, and the moving blocks 201 are driven to displace to generate staggered clamping force. An outer plate 202 is welded and fixed to the outside of each moving block 201 for guiding and pulling the support guide rod 203; a guide rod 203 is inserted through the inside of the outer plate 202, and a spring is sleeved outside the guide rod 203 with a T-shaped shaft structure. The top of the spring contacts the bottom of the outer plate 202. After the bottom of the force-receiving head 204 collides with an object, the spring is compressed, and the collision force is eliminated by the elasticity of the spring. The bottom end of the guide rod 203 is welded and fixed to the force-receiving head 204, and a convex block is inserted at the top of the force-receiving head 204 to improve the positioning effect on the contact part 207; two positioning rods 205 are fixed to the top of the force-receiving head 204, and the positioning rods 205 are inserted into the bottom inside of the moving block 201 for free pulling. A limiting hole 206 with a T-shaped shaft structure is opened at the bottom end of the force-receiving head 204, and a connecting head 208 is inserted into the inside of the limiting hole 206 to drive the contact part 207 to be fixedly used by the connecting head 208.
[0027] The working principle of this embodiment: First, control the fixing part 102 to be fixed above the assembly machine by bolts, then pull the control rod 108 to drive the sliding rod 106 to move together, control the bottom end of the main body 1 to be inserted into the inside of the fixing part 102, push the control rod 108 and the sliding rod 106 to move, so that the sliding rod 106 is inserted into the side groove 104 and the positioning head 101 at the same time, and the main body 1 and the fixing part 102 are firmly fixed. When the upper wheel is conveyed and fed by the vibrating disk, the main body 1 operates to drive the clamping head 2 to move. The clamping head 2 drives the moving block 201 and the force-receiving head 204 to move together. When the force-receiving head 204 contacts the upper wheel, if excessive displacement occurs and a collision occurs, the collision force can be eliminated by the elasticity of the spring. Then the clamping head 2 drives the force-receiving head 204 to move horizontally together, so that the force-receiving head 204 clamps the upper wheel staggeredly through the contact part 207 to avoid damage to the upper wheel. When the main body 1 is damaged and needs to be repaired, the control rod 108 and the sliding rod 106 can be directly pulled to displace to release the fixation of the main body 1, and the main body 1 can be directly pulled up and removed for convenient repair.
[0028] In this article, the following points need to be noted:
[0029] 1. The drawings of the embodiments of the present disclosure only relate to the structures involved in the embodiments of the present disclosure, and other structures can refer to the general design.
[0030] 2. Without conflict, the embodiments of the present disclosure and the features in the embodiments can be combined with each other to obtain new embodiments.
[0031] The above are only specific embodiments of the present disclosure, but the protection scope of the present disclosure is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present disclosure can easily think of changes or substitutions, which should all be covered within the protection scope of the present disclosure. Therefore, the protection scope of the present disclosure shall be subject to the protection scope of the claims.
Claims
1. An upper wheel vibration plate dislocation clamping structure, characterized in that: include: A main body (1); a driving structure capable of moving up and down, left and right, and rotating is installed at the top of the main body (1); the bottom end of the main body (1) is plugged into a fixing member (102); the fixing member (102) is fixed to the top of the upper wheel assembly machine by bolts; the fixing member (102) is slidably installed with a slide bar (106) through a control panel (105); a fitting member (107) is fixed above the slide bars (106) of the two rectangular frame structures; the fitting member (107) is fitted to the side of the fixing member (102); a magnet is fixed to the side of the fitting member (107); a clamping head (2); the clamping head (2) is installed at the front bottom of the main body (1), the clamping head (2) is connected to the force-bearing head (204) through the moving block (201) and the positioning rod (205), the inner side of the force-bearing head (204) is clamped with a contact piece (207) made of rubber material, the inside of the contact piece (207) is penetrated by a square groove, the two contact pieces (207) are arranged alternately, a convex block is provided on the upper part of the outer end of the contact piece (207), a connector (208) made of flexible rubber material is fixed on the outer side of the bottom end of the contact piece (207), and the outer side of the hollow structure connector (208) is an inclined structure.
2. The upper wheel vibration plate dislocation clamping structure according to claim 1 is characterized in that: A positioning head (101) is fixed to both sides of the bottom end of the main body (1), and an inner plate (103) is welded and fixed inside the fixing member (102), and the inner plate (103) is inserted into the bottom end of the main body (1).
3. The upper wheel vibration plate dislocation clamping structure according to claim 2 is characterized in that: A side groove (104) is respectively provided on both sides of the top end of the fixing member (102); the interior of the side groove (104) is communicated with the interior of the fixing member (102); and the sliding rod (106) is inserted through the side groove (104) and the positioning head (101).
4. The upper wheel vibration plate dislocation clamping structure according to claim 3 is characterized in that: A cross-shaped control plate (105) is fixed on the side of the fixing member (102), and a control rod (108) is welded and fixed above the rear end of each sliding rod (106).
5. The upper wheel vibration plate dislocation clamping structure according to claim 4 is characterized in that: The bottom of the clamping head (2) is provided with two staggered movable blocks (201) which drive the movable blocks (201) to move, and an outer plate (202) is welded and fixed to the outer side of each movable block (201).
6. The upper wheel vibration plate dislocation clamping structure according to claim 5 is characterized in that: A guide rod (203) is inserted through the interior of the outer plate (202), a spring is sleeved on the outside of the guide rod (203) of the T-shaped shaft structure, the top end of the spring is in contact with the bottom of the outer plate (202), the bottom end of the guide rod (203) is welded and fixed to the force-bearing head (204), and a protrusion is inserted into the top end of the force-bearing head (204).
7. The upper wheel vibration plate dislocation clamping structure according to claim 6 is characterized in that: Two positioning rods (205) are fixed on the top of the force-bearing head (204), and the positioning rods (205) are inserted into the bottom end of the moving block (201) and can be freely pulled out. A limiting hole (206) with a T-shaped shaft structure is opened at the bottom end of the force-bearing head (204), and a connecting head (208) is inserted into the limiting hole (206).