Fixed supporting leg capable of preventing equipment from moving
Through the combined structure of the anti-slip base plate group and the clamping member, the rubber anti-slip layer and hydraulic shock absorber are used to solve the problem of insufficient sliding and structural stability caused by impact force of the pad punching table equipment, and the stable clamping and vibration damping effect of the equipment is achieved.
Patent Information
- Application Number
- CN202422377453.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-27
- Publication Date
- 2025-08-05
- Estimated Expiration
- 2034-09-27
AI Technical Summary
The existing pad punching equipment slides the bottom of the equipment due to impact force during the stamping process, which affects normal operation, and the adjustable support foot design has the problem of insufficient structural stability.
The combination structure of anti-slip base plate group, clamping member 1 and clamping member 2 is adopted. The clamping member is equipped with a limiting groove and clamping groove, which combines the rubber anti-slip layer and hydraulic shock absorber to enhance friction and vibration damping effect and ensure the stability of the equipment.
Effectively prevent the equipment from moving during vibration, improve the stability and structural strength of the equipment, and reduce the displacement caused by vibration of the equipment.
Smart Images

Figure CN223187087U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of supporting devices, and in particular relates to a fixed supporting foot capable of preventing equipment from moving. Background Art
[0002] The gasket punching equipment (also called gasket punching machine or gasket stamping equipment) is a special mechanical equipment used to manufacture and process gaskets. Its main function is to perform corresponding stamping on the gasket material in order to obtain the required shape and size. When the gasket punching equipment is stamping the gasket raw material, the equipment will be subjected to a large impact force. These forces will be transmitted to the bottom of the equipment, causing it to slide on the ground, thereby affecting the normal stamping work of the equipment. The conventional response method is to use an adjustable support foot design so that it can better adapt to different ground conditions. However, the technical disadvantage of this method is that although the design of the adjustable support foot can improve adaptability, it will increase the complexity of installation. Secondly, the adjustable support foot can flexibly adjust its own components, resulting in insufficient structural stability. Material fatigue is prone to occur after long-term use, resulting in insufficient material strength of the support foot. Therefore, it is hoped to propose a new structure to solve the above problems. Utility Model Content
[0003] In view of the deficiencies in the prior art, the present invention aims to provide a fixed support foot that can prevent equipment from moving.
[0004] The utility model is realized by the following technical solution: a fixed support foot with the function of preventing equipment from moving, comprising: an anti-skid bottom plate group, a first clamping member, and a second clamping member; the anti-skid bottom plate group comprises a first anti-skid plate and a second anti-skid plate; the anti-skid bottom plate group is characterized in that a first anti-skid layer is glued to the bottom of the anti-skid bottom plate group, and a second anti-skid layer is glued between the first anti-skid plate and the second anti-skid plate;
[0005] A limiting groove is provided on the right side of the inner portion of the clamping member 1, an annular clamping groove 1 is provided on the inner wall of the clamping member 1, the clamping groove 1 is connected to the limiting groove, and a mounting base 1 is provided on the front and rear sides of the clamping member 1 respectively;
[0006] The inner wall of the second clamping part is provided with a second clamping groove, and the front and rear sides of the second clamping part are respectively provided with a mounting base. The first clamping part and the second clamping part are internally provided with docking pillars, and the outer side of the docking pillar is provided with a stabilizing protrusion, and the right side of the stabilizing protrusion is provided with a limit strip. The anti-slip layer 1 and the anti-slip layer 2 are both made of rubber. The anti-slip layer can increase the friction between the anti-slip plate group and the ground. The anti-slip layer 2 can increase the friction between the anti-slip plate 1 and the anti-slip plate 2, and at the same time can reduce the vibration transmitted from the anti-slip plate 1, thereby improving the stability of the anti-slip plate group and preventing the anti-slip plate group from moving during vibration.
[0007] As a preferred embodiment, the inner radius length of the clamping member 1 is the same as the inner radius length of the clamping member 2, the clamping member 1 and the clamping member 2 have the same height, and a shock absorber is installed between the clamping member 1 and the clamping member 2.
[0008] As a preferred embodiment, the shock absorber is embedded in the top of the anti-slip base plate group. The shock absorber is located at the center of the circular area surrounded by clamping part 1 and clamping part 2. The shock absorber is a hydraulic shock absorber. The shock absorber model is ZD type. The top of the shock absorber contacts the bottom of the docking pillar and squeezes each other. When vibration occurs, the vibration is transmitted downward along the docking pillar to the shock absorber. The shock absorber absorbs the vibration and weakens the vibration, thereby reducing the impact of the vibration on the anti-slip base plate group, and then preventing the anti-slip base plate group from moving.
[0009] As a preferred embodiment, the top of the anti-slip base plate assembly is welded and fixed to the bottom of the clamping member 1, and the radius length of the circle enclosed by the clamping member 1 and the clamping member 2 matches the radius length of the docking pillar.
[0010] As a preferred embodiment, the docking pillar and the limiting protrusion are an integrated structure, the radius length of the limiting protrusion matches the radius length of the clamping groove one, the radius length of the clamping groove one is the same as the radius length of the clamping groove two, and the stabilizing protrusion is an annular structure. The left side of the stabilizing protrusion is inside the clamping groove two, and the right side is inside the clamping groove one. Therefore, the stabilizing protrusion can be stably clamped by the clamping groove one and the clamping groove two, thereby improving the stability of the docking pillar.
[0011] As a preferred embodiment, the length of the limit strip is the same as the length of the limit slot, the width and thickness of the limit strip match the width and depth of the limit slot, and the limit strip is installed in an interlocking manner with the limit slot, thereby increasing the stability of the docking support between clamping member 1 and clamping member 2.
[0012] As a preferred embodiment, the first mounting hole is formed through-through on both sides of the first mounting base, and an internal thread is provided inside the first mounting hole; the second mounting hole is formed through-through on both sides of the second mounting base;
[0013] The specifications of the second mounting hole are the same as those of the first mounting hole. A screw is provided on the left side of the second mounting hole, and an external thread matching the internal thread specification is provided on the outside of the screw. A nut is provided on the right side of the first mounting hole, and the specifications of the screw and the nut match. The first mounting base and the second mounting base are fixed by two sets of screws and two sets of nuts, which facilitates the disassembly and assembly of the clamping part 2 and thus facilitates maintenance.
[0014] As a preferred embodiment, a plurality of groups of anti-slip grooves are equidistantly provided on the bottom of the anti-slip layer 1. The anti-slip grooves are isosceles triangle structures, and the vertices of the anti-slip grooves are parallel to the long sides of the anti-slip layer 1.
[0015] After adopting the above technical scheme, the beneficial effects of the utility model are as follows: by arranging the clamping part 1 and the clamping part 2, the clamping part 2 can be installed and fixed on the left side of the clamping part 1 by two sets of screws and two sets of nuts, thereby facilitating disassembly and assembly, and then facilitating maintenance; by arranging the clamping groove 1, the clamping groove 2, the limiting groove, the limiting strip and the stabilizing protrusion, the docking pillar is placed between the clamping part 1 and the clamping part 2, and the stabilizing protrusion is respectively embedded in the clamping groove 1 and the clamping groove 2, and at the same time, the limiting strip is engaged with the limiting groove, and the clamping groove 1 and the clamping groove 2 can stably clamp the docking pillar therein, so that the up and down displacement of the docking pillar is more stable; at the same time, the shock absorber can absorb and weaken the vibration, thereby preventing the anti-slip base plate group from displacing during vibration; the anti-slip layer at the bottom of the anti-slip base plate group can increase the friction between the anti-slip base plate group and the ground, thereby improving the stability of the anti-slip base plate group. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative labor.
[0017] Figure 1 This is a schematic diagram of a fixed support leg that prevents equipment from moving according to the present invention.
[0018] Figure 2 This is a top schematic diagram of a fixed support leg that prevents equipment from moving according to the present invention.
[0019] Figure 3 This is a structural schematic diagram of a stabilizing protrusion, a limiting strip and a limiting groove in a fixed support foot that prevents equipment from moving according to the present invention.
[0020] Figure 4 This is a schematic diagram of a second clamping groove in a fixed support foot that prevents equipment from moving according to the present invention.
[0021] Figure 5 This is a structural schematic diagram of the anti-slip layer 1 and the anti-slip layer 2 in a fixed support foot that prevents equipment from moving in the present utility model.
[0022] In the figure, 100 - anti-slip bottom plate assembly, 110 - anti-slip layer 1, 111 - anti-slip pattern, 120 - anti-slip layer 2, 130 - anti-slip plate 1, 140 - anti-slip plate 2;
[0023] 200-clamping part 1, 201-limiting groove, 202-clamping groove 1, 210-mounting base 1, 220-shock absorber;
[0024] 300-clamping piece 2, 301-clamping slot 2;
[0025] 400- docking support, 401- stabilizing bump, 402- limiting strip. DETAILED DESCRIPTION
[0026] The following will be combined with the accompanying drawings of the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only one embodiment of the present invention, not a complete embodiment. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making any creative efforts shall fall within the scope of protection of the present invention.
[0027] See also Figures 1 to 4 A fixed support foot capable of preventing equipment from moving, comprising: an anti-skid base plate assembly 100, a first clamping member 200, and a second clamping member 300; the anti-skid base plate assembly 100 comprises a first anti-skid plate 130 and a second anti-skid plate 140; the anti-skid layer 110 is glued to the bottom of the anti-skid base plate assembly 100, and an anti-skid layer 2 is glued between the first anti-skid plate 130 and the second anti-skid plate 140;
[0028] A limiting groove 201 is provided on the right side of the inner portion of the clamping member 200, and an annular clamping groove 202 is provided on the inner wall of the clamping member 200. The clamping groove 202 is connected to the limiting groove 201 through-connected. A mounting base 210 is provided on the front and rear sides of the clamping member 200 respectively.
[0029] A clamping groove 2 301 is provided on the inner wall of the clamping part 2 300, and a mounting base 2 is provided on the front and rear sides of the clamping part 2 300 respectively. A docking pillar 400 is provided inside the clamping part 1 200 and the clamping part 2 300, and a stabilizing protrusion 401 is provided on the outer side of the docking pillar 400, and a limiting strip 402 is provided on the right side of the stabilizing protrusion 401. The anti-slip layer 1 10 and the anti-slip layer 2 120 are both made of rubber. The anti-slip layer 110 can increase the friction between the anti-slip plate group 100 and the ground, and the anti-slip layer 2 120 can increase the friction between the anti-slip plate 1 130 and the anti-slip plate 2 140, and at the same time can reduce the vibration transmitted from the anti-slip plate 1 130, thereby improving the stability of the anti-slip plate group 100 and preventing the anti-slip plate group 100 from moving during vibration.
[0030] The inner radius of the clamping member 1 200 is the same as the inner radius of the clamping member 2 300 . The heights of the clamping members 1 200 and 2 300 are the same. A vibration damper 220 is installed between the clamping members 1 200 and 2 300 .
[0031] The shock absorber 220 is embedded in the top of the anti-slip base plate group 100. The shock absorber 220 is located in the center of the circular area surrounded by the clamping member 200 and the clamping member 2 300. The shock absorber 220 is a hydraulic shock absorber. The top of the shock absorber 220 contacts the bottom of the docking support 400 and squeezes each other. When vibration occurs, the vibration is transmitted downward along the docking support 400 to the shock absorber 220. The shock absorber 220 absorbs the vibration and weakens the vibration, thereby reducing the impact of the vibration on the anti-slip base plate group 100, and then preventing the anti-slip base plate group 100 from moving.
[0032] The top of the anti-skid bottom plate assembly 100 is welded and fixed to the bottom of the clamping member 1 200 . The radius of the circle formed by the clamping member 1 200 and the clamping member 2 300 matches the radius of the docking support 400 .
[0033] The docking pillar 400 and the limiting protrusion are an integrated structure. The radius length of the limiting protrusion matches the radius length of the clamping groove 1 202. The radius length of the clamping groove 1 202 is the same as the radius length of the clamping groove 2 301. The stabilizing protrusion 401 is an annular structure. The left side of the stabilizing protrusion 401 is inside the clamping groove 2 301, and the right side is inside the clamping groove 1 202. Therefore, the stabilizing protrusion 401 can be stably clamped by the clamping groove 1 202 and the clamping groove 2 301, thereby improving the stability of the docking pillar 400.
[0034] The length of the limiting strip 402 is the same as that of the limiting groove 201, and the width and thickness of the limiting strip 402 match the width and depth of the limiting groove 201. The limiting strip 402 is installed in an interlocking manner with the limiting groove 201, thereby increasing the stability of the docking pillar 400 between the clamping member 1 200 and the clamping member 2 300.
[0035] The first mounting hole 210 is formed on both sides of the mounting base 1, and the inner surface of the mounting hole 1 is provided with an internal thread. The second mounting base 2 is formed on both sides of the mounting base 2.
[0036] The specifications of mounting hole two are the same as those of mounting hole one. A screw is provided on the left side of mounting hole two, and an external thread matching the internal thread specification is provided on the outside of the screw. A nut is provided on the right side of mounting hole one, and the specifications of the screw and the nut match. Mounting base one 210 and mounting base two are fixed by two sets of screws and two sets of nuts, thereby facilitating the disassembly and assembly of clamping part two 300, and thus facilitating maintenance.
[0037] Several groups of anti-slip grooves 111 are equidistantly provided at the bottom of the anti-slip layer 110 . The anti-slip grooves 111 are isosceles triangle structures, and the vertices of the anti-slip grooves 111 are parallel to the long sides of the anti-slip layer 110 .
[0038] Example 1: Please refer to Figures 1 to 4In actual use, first lift the pad punching platform equipment and preliminarily install the four sets of docking pillars 400 at its bottom inside the four sets of clamping parts 1 200, so that the right side of the stabilizing protrusion 401 on the outside of the docking pillar 400 is temporarily placed inside the clamping groove 1 202, and the limiting strip 402 on the right side of the stabilizing protrusion 401 is engaged with the limiting groove 201 on the inside of the clamping part 1 200, then pick up the four sets of clamping parts 2 300 respectively, and respectively place the four sets of clamping parts 2 300 and the four sets of clamping parts 1 200. Docking, then use the screw to rotate into the inside of the second mounting hole and the first mounting hole respectively, the right side of the screw passes through the right side of the mounting hole, and then the nut is threadedly connected with the right side of the screw, so that each set of clamping parts 1 200 and clamping parts 2 300 are fixed by two sets of screws and two sets of nuts. After the four sets of clamping parts 1 200 and the four sets of clamping parts 2 300 are installed, the left side of the stabilizing protrusion 401 is inside the clamping groove 2 301, and the rear side is inside the clamping groove 1 202, and the limit bar 402 is in the limit groove 2 01 interlocking connection, so that the stabilizing protrusion 401 is limited in the clamping groove 1 202 and the clamping groove 2 301, so that it can only move up and down along the clamping groove 1 202 and the clamping groove 2 301. At the same time, the anti-skid layer 110 glued to the bottom of each anti-skid bottom plate group 100 is in contact with the ground. The anti-skid layer 110 is made of rubber, and the anti-skid layer 110 is provided with a plurality of groups of anti-skid grooves 111 at the bottom to increase the grip effect of the anti-skid groove 110. The anti-skid plate 1 130 and the anti-skid plate 2 140 are glued together. The connected anti-skid layer 2 120 can absorb and reduce the vibration transmitted from the anti-skid plate 1 130 (the rebound hysteresis of the rubber material and the friction between the rubber molecules can achieve a vibration reduction effect), thereby greatly increasing the friction between the anti-skid base plate group 100 and the ground. The anti-skid base plate group 100, the clamping member 1 200 and the clamping member 2 300 together form a group of supporting foot bodies. The final effect is to prevent the supporting foot body from being displaced when vibration occurs, thereby ensuring the stability of the supporting foot body.
[0039] Example 2: Please refer to Figure 3 When the stabilizing protrusion 401 is clamped in the clamping groove 1 202 and the clamping groove 2 301, the bottom of the docking support 400 and the top of the shock absorber 220 installed on the top of the anti-slip bottom plate group 100 squeeze each other. The shock absorber 220 is a hydraulic shock absorber, and the shock absorber 220 is located between the clamping groove 2 301 and the clamping groove 1 202. When vibration occurs, due to the limiting effect of the clamping groove 1 202, the clamping groove 2 301 and the limiting groove 201, the docking support 400 can only move up and down along the clamping groove 1 202 and the clamping groove 2 301. Therefore, the vibration is transmitted to the shock absorber 220 through the docking support 400. The shock absorber 220 weakens the vibration after absorbing the vibration, thereby buffering the impact force generated by the vibration, and then weakening the force on the supporting foot body, thereby ensuring the stability of the supporting foot body and preventing the supporting foot body from moving when vibration occurs.
[0040] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. A fixed support leg capable of preventing equipment from moving, comprising: An anti-skid bottom plate group (100), a clamping member 1 (200) and a clamping member 2 (300), wherein the anti-skid bottom plate group (100) includes an anti-skid plate 1 (130) and an anti-skid plate 2 (140), characterized in that: an anti-skid layer 1 (110) is glued to the bottom of the anti-skid bottom plate group (100), and an anti-skid layer 2 is glued between the anti-skid plate 1 (130) and the anti-skid plate 2 (140); A clamping member 1 (200) is provided on the right side of the top of the anti-slip bottom plate group (100), a clamping member 2 (300) is installed on the left side of the clamping member 1 (200), a limiting groove (201) is provided on the right side of the inside of the clamping member 1 (200), an annular clamping groove 1 (202) is provided on the inner wall of the clamping member 1 (200), the clamping groove 1 (202) is connected to the limiting groove (201), and a mounting base 1 (210) is provided on the front and rear sides of the clamping member 1 (200); The inner wall of the second clamping member (300) is provided with a second clamping groove (301), and the front and rear sides of the second clamping member (300) are respectively provided with a second mounting base, and the inside of the first clamping member (200) and the second clamping member (300) are provided with a docking pillar (400), and the outer side of the docking pillar (400) is provided with a stabilizing protrusion (401), and the right side of the stabilizing protrusion (401) is provided with a limiting strip (402).
2. The fixed support leg capable of preventing equipment from moving according to claim 1, wherein: The inner radius length of the clamping member 1 (200) is the same as the inner radius length of the clamping member 2 (300), the clamping member 1 (200) and the clamping member 2 (300) have the same height, and a vibration damper (220) is installed between the clamping member 1 (200) and the clamping member 2 (300).
3. The fixed support leg capable of preventing equipment from moving according to claim 2, wherein: The shock absorber (220) is embedded in the top of the anti-skid base plate assembly (100), and the shock absorber (220) is located at the center of a circular area surrounded by the first clamping member (200) and the second clamping member (300).
4. The fixed support leg capable of preventing equipment from moving according to claim 3, wherein: The top of the anti-slip base plate assembly (100) is welded to the bottom of the clamping member 1 (200), and the radius of the circle formed by the clamping member 1 (200) and the clamping member 2 (300) matches the radius of the docking support (400).
5. The fixed support leg capable of preventing equipment from moving according to claim 4, characterized in that: The docking support (400) and the limiting protrusion are an integrated structure, the radius length of the limiting protrusion matches the radius length of the clamping groove (202), and the radius length of the clamping groove (202) is the same as the radius length of the clamping groove (301).
6. The fixed support leg capable of preventing equipment from moving according to claim 1, characterized in that: The length of the limiting strip (402) is the same as the length of the limiting groove (201), and the width and thickness of the limiting strip (402) match the width and depth of the limiting groove (201).
7. The fixed support leg capable of preventing equipment from moving according to claim 1, wherein: The first mounting hole (210) is formed on both sides of the mounting base, and an internal thread is provided inside the first mounting hole. The second mounting hole (210) is formed on both sides of the mounting base; The specifications of the second mounting hole are the same as those of the first mounting hole. A screw is provided on the left side of the second mounting hole, and an external thread matching the internal thread specification is provided on the outside of the screw. A nut is provided on the right side of the first mounting hole, and the specifications of the screw and the nut match.
8. The fixed support leg capable of preventing equipment from moving according to claim 1, wherein: The bottom of the anti-slip layer 1 (110) is equidistantly provided with a plurality of anti-slip grooves (111), the anti-slip grooves (111) are isosceles triangle structures, and the directions of the vertices of the anti-slip grooves (111) are parallel to the long sides of the anti-slip layer 1 (110).