A shock-absorbing device for an electrical automation device
By designing an electrical automation equipment shock absorbing device that includes a multi-directional shock absorbing mechanism and azimuth control mechanism, the problem that existing shock absorbing devices can only be shock absorbed in one direction and are difficult to install is solved, and the stable operation and flexible operation of the equipment are achieved.
Patent Information
- Application Number
- CN202510212951.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-26
- Publication Date
- 2025-05-27
- Estimated Expiration
- 2045-02-26
AI Technical Summary
Existing shock absorbers can only absorb shocks in one direction and it is difficult to install different electrical automation equipment.
An electrical automation equipment shock absorbing device including a base plate, support legs, support plate, shock absorbing mechanism, orientation control mechanism, snap-in mechanism and fixing mechanism is designed. The device absorbs shock in multiple directions through a shock absorbing mechanism, and realizes the installation and operation of different equipment through an azimuth control mechanism and a snap-in mechanism.
It realizes multi-directional shock absorption of electrical automation equipment, ensures the stable operation of the equipment, and can easily install and operate different equipment, improving the flexibility and practicality of use.
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Figure CN119712779B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of automation equipment, and particularly relates to a shock absorption device for electrical automation equipment. Background Art
[0002] Electrical automation equipment is a highly comprehensive specialty that involves multiple fields such as electric power, electronics, and computer technology. Through means such as automation technology, computer technology, and communication technology, it realizes the automatic control and monitoring of electrical systems, thereby improving the operating efficiency, safety, and reliability of the systems, reducing energy consumption and labor costs. Electrical automation equipment will vibrate during operation. In order to ensure the stable operation of electrical automation equipment, it is necessary to shock-absorb the electrical automation equipment.
[0003] Although the existing shock absorption devices can shock-absorb electrical automation equipment, there are still some problems. First, the current shock absorption devices can only shock-absorb in one direction, making it difficult to ensure the stable operation of electrical automation equipment. Second, the current shock absorption devices are difficult to install on different electrical automation equipment and inconvenient to operate the electrical automation equipment after installation. Therefore, a shock absorption device for electrical automation equipment is needed to solve the above problems. Summary of the Invention
[0004] The purpose of the embodiments of the present invention is to provide a shock absorption device for electrical automation equipment, aiming to solve the following problems: the existing shock absorption devices can only shock-absorb in one direction and are difficult to install on different electrical automation equipment.
[0005] The embodiments of the present invention are implemented as follows. A shock absorption device for electrical automation equipment includes: a bottom plate and support legs. The bottom plate is fixed on the support legs. A support plate is fixedly arranged on the bottom plate. The support plate is provided with a cavity and a strip-shaped opening. One end of the support plate away from the bottom plate is fixedly connected to a top plate; a shock absorption mechanism is installed on the support plate. The mutually approaching ends of the two shock absorption mechanisms are fixedly connected to a connecting steel block. The connecting steel block is provided with a circular opening and a stable groove. The stable groove is opened on the inner wall of the circular opening; an azimuth adjustment mechanism is rotatably installed on the connecting steel block. The azimuth adjustment mechanism can stably rotate on the connecting steel block. A limited rotation disc is fixedly connected to the azimuth adjustment mechanism. The limited rotation disc is provided with a limited rotation opening, and multiple limited rotation openings are opened; a clamping mechanism is fixedly installed on the connecting steel block. The clamping mechanism is used to be clamped into the limited rotation holes opened in the limited rotation disc to limit the rotation of the azimuth adjustment mechanism; a fixing mechanism is provided with two and is fixedly installed on both sides of the azimuth adjustment mechanism for installing and fixing the automation equipment.
[0006] Preferably, the shock absorption mechanism includes: a stable sliding column, both ends of which are fixedly connected to the inner wall of the cavity opened in the support plate. A stable sliding block is sleeved on the stable sliding column. Longitudinal shock absorption springs are fixedly arranged between both ends of the stable sliding block and the inner wall of the cavity. An extension plate is fixed on the stable sliding block, and the extension plate passes through the strip-shaped opening and extends outside the cavity; a U-shaped groove, which is fixedly connected to the extension plate. A shock absorption sliding column is fixedly arranged in the U-shaped groove. A partition block is fixedly arranged in the middle of the shock absorption sliding column. Shock absorption sliding blocks sleeved on the shock absorption sliding column are arranged on both sides of the partition block. A transverse shock absorption spring is fixedly connected between the shock absorption sliding block and the partition block; a connecting rod, one end of which is hinged to the shock absorption sliding block, and the other end of the connecting rod is hinged to a connecting block. Both ends of the connecting steel block are fixedly connected to the connecting block.
[0007] Preferably, the orientation adjustment mechanism includes: a central sleeve, which is arranged in the middle of the circular opening opened in the connecting steel block. A central rod is rotatably arranged on the central sleeve; a first round rod, which is fixed on the central sleeve and there are multiple of them. A first pulley slidably arranged in the stable groove opened in the connecting steel block is installed on multiple of the first round rods; a second round rod, which is fixed on the central rod and there are multiple of them. A second pulley slidably arranged in the stable groove opened in the connecting steel block is installed on multiple of the second round rods; a rotating block, there are two of them and they are respectively fixedly connected to the central sleeve and the central rod. A limit turntable is fixed on the periphery of the rotating block. The fixing mechanism is fixedly connected to the rotating block.
[0008] Preferably, the clamping mechanism includes: a guide block, which is fixedly installed on the connecting steel block. A pull rod is slidably arranged on the guide block. One end of the pull rod is fixedly connected to a clamping plate. A clamping opening is opened in the clamping plate. A pull handle is fixedly arranged on the clamping plate; a limit rotating column, which is fixedly connected to the pull rod. A push spring for pushing the limit rotating column into the limit rotating opening opened in the limit turntable is fixed between the limit rotating column and the guide block; a middle connecting plate, which is fixedly installed in the middle of the connecting steel block. A locking component for clamping into the clamping opening opened in the clamping plate is fixed on the middle connecting plate.
[0009] Preferably, the locking component includes: a sleeve rod, which is fixedly installed on the middle connecting plate. A sleeve is sleeved on the sleeve rod. A clamping block is fixedly arranged on the sleeve. A compression spring for pushing the clamping block into the clamping opening is fixed between the sleeve and the middle connecting plate; a handle, which is fixedly arranged on the sleeve and is used for pulling the clamping block out of the clamping opening opened in the clamping plate.
[0010] Preferably, the fixing mechanism includes: a protective box fixedly installed on the azimuth adjustment mechanism. The protective box is provided with a long slot, and a turning handle is rotatably arranged on the protective box. One end of the turning handle inside the protective box is fixedly connected with a first bevel gear; two hexagonal rods, the remote ends of which are rotatably connected to the inner wall of the protective box. The proximal ends of the two hexagonal rods are fixedly connected with a linkage rod, and a second bevel gear meshing with the first bevel gear is fixed on the linkage rod; a position adjustment component installed on the protective box. A moving hollow block sleeved on the hexagonal rod is fixed on the position adjustment component, and a chute is arranged on the inner wall of the moving hollow block; a third bevel gear is provided with a hexagonal hole and is sleeved on the hexagonal rod through the hexagonal hole. A pulley slidably arranged in the chute is installed on the third bevel gear; a fourth bevel gear is rotatably installed on the moving hollow block and meshes with the third bevel gear. An extension rod is fixed on the fourth bevel gear, and the extension rod passes through the long slot and is fixedly connected with a bolt for installing the automation equipment.
[0011] Preferably, the position adjustment component includes: a support fixedly installed in the protective box. A threaded rod is rotatably connected between the support and the inner wall of the protective box, and a control handle arranged outside the protective box is fixed on the threaded rod; a guide rod, the two ends of which are respectively fixedly connected with the inner wall of the protective box and the support. A guide sleeve is sleeved on the guide rod, and a threaded block threadedly connected with the threaded rod is fixed on the guide sleeve. The moving hollow block is fixedly connected with the threaded block.
[0012] The shock absorption device for electrical automation equipment provided by the present invention can not only shock-absorb the electrical automation equipment, but also shock-absorb in multiple directions, thereby ensuring the stable operation of the electrical automation equipment. Further, different electrical automation equipment can be installed, which is convenient for operating the electrical automation equipment. The operation is simple and the practicability is strong. BRIEF DESCRIPTION OF THE DRAWINGS
[0013] Figure 1 It is a schematic diagram of the shock absorption device for electrical automation equipment.
[0014] Figure 2 It is a partial three-dimensional schematic diagram of the shock absorption device for electrical automation equipment.
[0015] Figure 3 It is a schematic diagram of the azimuth adjustment mechanism of the shock absorption device for electrical automation equipment.
[0016] Figure 4 It is a schematic diagram of the clamping mechanism of the shock absorption device for electrical automation equipment.
[0017] Figure 5 It is a partial three-dimensional view of the clamping mechanism of the shock absorption device for electrical automation equipment.
[0018] Figure 6Schematic diagram of the fixing mechanism of the shock absorber device for electrical automation equipment.
[0019] In the drawings: 1 - bottom plate, 2 - support leg, 3 - support plate, 4 - top plate, 5 - shock absorption mechanism, 6 - connecting steel block, 7 - azimuth adjustment mechanism, 8 - limit turntable, 9 - clamping mechanism, 10 - fixing mechanism, 51 - stable sliding column, 52 - stable sliding block, 53 - longitudinal shock absorption spring, 54 - extension plate, 55 - U-shaped groove, 56 - shock absorption sliding column, 57 - partition block, 58 - shock absorption sliding block, 59 - transverse shock absorption spring, 510 - connecting rod, 511 - connecting block, 71 - central sleeve, 72 - central rod, 73 - first round rod, 74 - first pulley, 75 - second round rod, 76 - second pulley, 77 - rotating block, 91 - guiding block, 92 - pull rod, 93 - clamping plate, 94 - pull handle, 95 - rotation limiting column, 96 - pushing spring, 97 - middle connecting plate, 98 - locking assembly, 981 - sleeve rod, 982 - sleeve, 983 - clamping block, 984 - compression spring, 985 - handle, 101 - protective box, 102 - screwing handle, 103 - first bevel gear, 104 - hexagonal rod, 105 - linkage rod, 106 - second bevel gear, 107 - position adjustment assembly, 108 - moving hollow block, 109 - third bevel gear, 1010 - pulley, 1011 - fourth bevel gear, 1012 - extension rod, 1013 - bolt, 1071 - support, 1072 - threaded rod, 1073 - control handle, 1074 - guiding rod, 1075 - guiding sleeve, 1076 - threaded block. Detailed implementation manners
[0020] In order to make the objectives, technical solutions and advantages of the present invention clearer and more understandable, the present invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and do not limit the present invention.
[0021] The following describes in detail the specific implementation of the present invention with reference to specific embodiments.
[0022] Please refer to Figure 1 , a shock absorber device for electrical automation equipment provided by an embodiment of the present invention, the shock absorber device for electrical automation equipment includes:
[0023] A bottom plate 1 and support legs 2, the bottom plate 1 is fixed on the support legs 2, a support plate 3 is fixedly arranged on the bottom plate 1, the support plate 3 is provided with a cavity and a strip-shaped opening, and one end of the support plate 3 away from the bottom plate 1 is fixedly connected with a top plate 4; a shock absorption mechanism 5, which is installed on the support plate 3, and the mutually approaching ends of the two shock absorption mechanisms 5 are fixedly connected with a connecting steel block 6, the connecting steel block 6 is provided with a circular opening and a stable groove, and the stable groove is arranged on the inner wall of the circular opening; an azimuth adjustment mechanism 7, which is rotatably installed on the connecting steel block 6, the azimuth adjustment mechanism 7 can stably rotate on the connecting steel block 6, and a limit turntable 8 is fixedly connected to the azimuth adjustment mechanism 7, the limit turntable 8 is provided with a limit rotation opening, and a plurality of limit rotation openings are arranged; a clamping mechanism 9, which is fixedly installed on the connecting steel block 6, and the clamping mechanism 9 is used for clamping into the limit rotation holes arranged in the limit turntable 8 to limit the rotation of the azimuth adjustment mechanism 7; a fixing mechanism 10, which has two and is fixedly installed on both sides of the azimuth adjustment mechanism 7, and is used for installing and fixing the automation equipment.
[0024] When using this shock absorption device for electrical automation equipment, first, two fixing mechanisms 10 can be used to fix two kinds of automation equipment on both sides of the connecting steel block 6. After the fixing is completed, the automation equipment can be used. For the convenience of operation, the automation equipment can be toggled. The automation equipment can stably rotate on the connecting steel block 6 through the azimuth adjustment mechanism 7, so as to facilitate the operation of the functions in different orientations of the automation equipment. If it is necessary to limit the rotation of the automation equipment, the control end of the clamping mechanism 9 is pulled, and the clamping mechanism 9 can be clamped into the limit rotation openings arranged in the limit turntable 8, so that the rotation of the azimuth adjustment mechanism 7 can be limited, and the automation equipment can be maintained in use in one orientation. When the automation equipment is in use, vibrations will occur. By setting the shock absorption mechanism 5, the vibrations of the automation equipment can be reduced, and the service life of the automation equipment can be extended.
[0025] As Figure 1 shown, as a preferred embodiment of the present invention, the shock absorption mechanism 5 includes: a stable sliding column 51, the two ends of which are fixedly connected with the inner wall of the cavity opened by the support plate 3, a stable sliding block 52 is sleeved on the stable sliding column 51, and longitudinal shock absorption springs 53 are fixedly arranged between the two ends of the stable sliding block 52 and the inner wall of the cavity. An extension plate 54 is fixed on the stable sliding block 52, and the extension plate 54 passes through the strip-shaped opening and extends outside the cavity; a U-shaped groove 55, which is fixedly connected with the extension plate 54, a shock absorption sliding column 56 is fixedly arranged in the U-shaped groove 55, a partition block 57 is fixedly arranged in the middle of the shock absorption sliding column 56, shock absorption sliding blocks 58 are arranged on both sides of the partition block 57 and sleeved on the shock absorption sliding column 56, and transverse shock absorption springs 59 are fixedly connected between the shock absorption sliding blocks 58 and the partition block 57; a connecting rod 510, one end of which is hinged with the shock absorption sliding block 58, and the other end of the connecting rod 510 is hinged with a connecting block 511, and both ends of the connecting steel block 6 are fixedly connected with the connecting block 511.
[0026] When the automation equipment vibrates in the up and down directions, the longitudinal shock-absorbing springs 53 on both sides of the stabilizing slider 52 can be used to absorb the vibrations of the automation equipment in the longitudinal direction. When the automation equipment vibrates in the left and right directions, the transverse shock-absorbing springs 59 on both sides of the partition block 57 can be used to absorb the vibrations of the automation equipment in the transverse direction. This can effectively reduce the vibration of the automation equipment and extend the service life of the automation equipment.
[0027] like Figure 2 and Figure 3 As shown, as a preferred embodiment of the present invention, the orientation control mechanism 7 includes: a center sleeve 71, which is arranged in the middle of the circular opening opened by the connecting steel block 6, and a center rod 72 is rotatably arranged on the center sleeve 71; a first wheel rod 73, which is fixed on the center sleeve 71 and is provided with a plurality of, and the plurality of first wheel rods 73 are installed with a first pulley 74 slidably arranged in a stable groove opened by the connecting steel block 6; a second wheel rod 75, which is fixed on the center rod 72 and is provided with a plurality of, and the plurality of second wheel rods 75 are installed with a second pulley 76 slidably arranged in a stable groove opened by the connecting steel block 6; a rotating block 77, which is provided with two and is respectively fixedly connected to the center sleeve 71 and the center rod 72, the limit turntable 8 is fixed on the periphery of the rotating block 77, and the fixing mechanism 10 is fixedly connected to the rotating block 77.
[0028] When adjusting the position of the automation equipment on the upper side of the connecting steel block 6, the automation equipment on the upper side is moved, and the automation equipment can drive the center rod 72 to rotate on the center sleeve 71 through the rotating block 77, and at the same time drive the first pulley 74 on the first wheel rod 73 to rotate in the stable groove, thereby ensuring the stability of the position control of the upper automation equipment; when adjusting the position of the automation equipment on the lower side of the connecting steel block 6, the automation equipment on the lower side is moved, and the automation equipment can drive the center sleeve 71 to rotate on the center rod 72 through the rotating block 77, and at the same time drive the second pulley 76 on the second wheel rod 75 to rotate in the stable groove, thereby ensuring the stability of the position control of the lower automation equipment.
[0029] like Figure 4 and Figure 5 As shown, as a preferred embodiment of the present invention, the snap-in mechanism 9 includes: a guide block 91, which is fixedly mounted on the connecting steel block 6, a pull rod 92 is slidably arranged on the guide block 91, one end of the pull rod 92 is fixedly connected to a clamping plate 93, the clamping plate 93 is provided with a clamping slot, and a pull handle 94 is fixedly arranged on the clamping plate 93; a rotation limiting column 95, which is fixedly connected to the pull rod 92, a push spring 96 is fixed between the rotation limiting column 95 and the guide block 91 for pushing the rotation limiting column 95 into the rotation limiting slot opened by the rotation limiting disk 8; a middle connecting plate 97, which is fixedly mounted in the middle part of the connecting steel block 6, and a locking component 98 for snapping into the clamping slot opened by the clamping plate 93 is fixed on the middle connecting plate 97.
[0030] like Figure 4As shown, as a preferred embodiment of the present invention, the locking assembly 98 includes: a sleeve rod 981 fixedly installed on the middle connection plate 97. A sleeve 982 is sleeved on the sleeve rod 981. A clamping block 983 is fixedly arranged on the sleeve 982. A compression spring 984 for pushing the clamping block 983 into the bayonet is fixed between the sleeve 982 and the middle connection plate 97; a handle 985 fixedly arranged on the sleeve 982 for pulling the clamping block 983 out of the bayonet opened on the clamping plate 93.
[0031] When locking the orientation of the automated device, pull the handle 985. The handle 985 drives the sleeve 982 and the clamping block 983 to slide along the sleeve rod 981 and compress the compression spring 984. After the clamping block 983 disengages from the bayonet, the push spring 96 can push the rotation limiting post 95 into the rotation opening opened on the rotation limiting disc 8, thereby restricting the rotation of the orientation adjustment mechanism 7, and thus locking the orientation of the automated device. If the orientation adjustment of the automated device is to be released, pull the pull handle 94. The pull handle 94 drives the clamping plate 93, the pull rod 92 and the rotation limiting post 95 to slide along the guide block 91. When the bayonet opened on the clamping plate 93 is flush with the clamping block 983, the compression spring 984 can push the clamping block 983 into the bayonet. At this time, the rotation limiting post 95 has disengaged from the rotation opening opened on the rotation limiting disc 8, thereby releasing the orientation adjustment of the automated device.
[0032] As Figure 2 and Figure 6 As shown, as a preferred embodiment of the present invention, the fixing mechanism 10 includes: a protective box 101 fixedly installed on the orientation adjustment mechanism 7. The protective box 101 is provided with a long strip opening. A turning handle 102 is rotatably arranged on the protective box 101. One end of the turning handle 102 arranged inside the protective box 101 is fixedly connected with a first bevel gear 103; there are two hexagonal rods 104, and the mutually remote ends are rotatably connected to the inner wall of the protective box 101. The mutually approaching ends of the two hexagonal rods 104 are fixedly connected with a linkage rod 105. A second bevel gear 106 meshing with the first bevel gear 103 is fixed on the linkage rod 105; a position adjustment assembly 107 is installed on the protective box 101. A moving hollow block 108 sleeved on the hexagonal rod 104 is fixed on the position adjustment assembly 107. A chute is opened on the inner wall of the moving hollow block 108; a third bevel gear 109 is provided with a hexagonal hole. The third bevel gear 109 is sleeved on the hexagonal rod 104 through the hexagonal hole. A pulley 1010 slidably arranged in the chute is installed on the third bevel gear 109; a fourth bevel gear 1011 is rotatably installed on the moving hollow block 108 and meshes with the third bevel gear 109. An extension rod 1012 is fixed on the fourth bevel gear 1011. The extension rod 1012 passes through the long strip opening and is fixedly connected with a bolt 1013 for installing the automated device.
[0033] As Figure 2 andFigure 6 As shown, as a preferred embodiment of the present invention, the position adjustment assembly 107 includes: a support 1071 fixedly installed in the protection box 101. A threaded rod 1072 is rotatably connected between the support 1071 and the inner wall of the protection box 101. A control handle 1073 arranged outside the protection box 101 is fixed on the threaded rod 1072; a guide rod 1074, the two ends of which are respectively fixedly connected to the inner wall of the protection box 101 and the support 1071. A guide sleeve 1075 is sleeved on the guide rod 1074. A threaded block 1076 threadedly connected to the threaded rod 1072 is fixed on the guide sleeve 1075. The moving hollow block 108 is fixedly connected to the threaded block 1076.
[0034] Before installing the automation equipment, first, according to the positions of the pre-drilled threaded holes of the automation equipment, rotate the control handle 1073. The control handle 1073 drives the threaded rod 1072 to rotate. When the threaded rod 1072 rotates, it can drive the threaded block 1076 and the guide sleeve 1075 to slide along the guide rod 1074, thereby driving the third bevel gear 109, the fourth bevel gear 1011, the extension rod 1012, and the bolt 1013 in the moving hollow block 108 to move along the long slot, so as to adjust the position of the bolt 1013. Due to the limitation of the moving hollow block 108, the third bevel gear 109 and the fourth bevel gear 1011 can always remain in a meshed state. After the position adjustment of the bolt 1013 is completed, align the pre-drilled threaded hole of the automation equipment with the bolt 1013, and rotate the wrench 102. The wrench 102 drives the first bevel gear 103 to rotate, thereby driving the second bevel gear 106, the linkage rod 105, and the hexagonal rod 104 to rotate. The rotation of the hexagonal rod 104 drives the two third bevel gears 109 to rotate, thereby driving the pulley 1010 to rotate in the chute. When the third bevel gear 109 rotates, it drives the fourth bevel gear 1011 to rotate at the same time, thereby driving the bolt 1013 on the extension rod 1012 to rotate, so that the bolt 1013 can be screwed into the threaded hole, and then the fixation of the automation equipment is realized.
[0035] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent replacements, and improvements made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.
Claims
1. A shock absorbing device for electrical automation equipment, comprising a base plate and supporting legs, characterized in that: The bottom plate is fixed on the supporting legs, a support plate is fixedly arranged on the bottom plate, the support plate is provided with a cavity and a strip-shaped opening, and one end of the support plate away from the bottom plate is fixedly connected to the top plate; A shock absorbing mechanism is installed on the support plate, and the shock absorbing mechanisms on both sides are fixedly connected to each other at their ends close to each other with connecting steel blocks, and the connecting steel blocks are provided with a round opening and a stabilizing groove, and the stabilizing groove is provided on the inner wall of the round opening; The azimuth regulating mechanism is rotatably mounted on the connecting steel block. The azimuth regulating mechanism can stably rotate on the connecting steel block. The azimuth regulating mechanism is fixedly connected to a limited turntable, and the limited turntable is provided with a limited turntable, and a plurality of limited turntables are provided; A snap-in mechanism, which is fixedly mounted on the connecting steel block, and is used to snap into the rotation-limiting hole provided on the rotation-limiting disk to limit the rotation of the azimuth regulating mechanism; Two fixing mechanisms are provided and fixedly installed on both sides of the position control mechanism, and are used to install and fix the automation equipment; The fixing mechanism comprises: a protection box, which is fixedly mounted on the azimuth regulating mechanism, the protection box is provided with a long opening, a screw handle is rotatably provided on the protection box, and one end of the screw handle provided in the protection box is fixedly connected with a first bevel gear; Two hexagonal rods are provided, and the ends away from each other are rotatably connected to the inner wall of the protection box. The ends of the two hexagonal rods close to each other are fixedly connected to a linkage rod, and a second bevel gear meshing with the first bevel gear is fixed on the linkage rod; A position adjustment component is installed on the protection box, and a movable hollow block sleeved on the hexagonal rod is fixed on the position adjustment component, and a sliding groove is provided on the inner wall of the movable hollow block; A third bevel gear is provided with a hexagonal hole, the third bevel gear is sleeved on the hexagonal rod through the hexagonal hole, and a pulley slidably arranged in a slide groove is installed on the third bevel gear; A fourth bevel gear is rotatably mounted on the movable hollow block and meshes with the third bevel gear. An extension rod is fixed to the fourth bevel gear. The extension rod passes through the long strip opening and is fixedly connected with a bolt for installing the automation equipment. The position adjustment assembly comprises: a support, which is fixedly installed in the protection box, a threaded rod is rotatably connected between the support and the inner wall of the protection box, and a control handle arranged outside the protection box is fixed on the threaded rod; The two ends of the guide rod are respectively fixedly connected with the inner wall of the protection box and the support. A guide sleeve is sleeved on the guide rod. A threaded block threadedly connected with the threaded rod is fixed on the guide sleeve. The movable hollow block is fixedly connected with the threaded block.
2. The shock absorbing device for electrical automation equipment according to claim 1, characterized in that: The shock absorbing mechanism comprises: A stabilizing slide column, whose two ends are fixedly connected to the inner wall of the cavity opened by the support plate, a stabilizing slide block is sleeved on the stabilizing slide column, and longitudinal shock absorbing springs are fixedly arranged between the two ends of the stabilizing slide block and the inner wall of the cavity, and an extension plate is fixed on the stabilizing slide block, and the extension plate extends to the outside of the cavity through the strip-shaped opening; A U-shaped groove, which is fixedly connected to the extension plate, a shock-absorbing sliding column is fixedly arranged in the U-shaped groove, a partition block is fixedly arranged in the middle of the shock-absorbing sliding column, shock-absorbing sliding blocks sleeved on the shock-absorbing sliding column are arranged on both sides of the partition block, and a transverse shock-absorbing spring is fixedly connected between the shock-absorbing sliding block and the partition block; One end of the connecting rod is hinged to the damping slider, and the other end of the connecting rod is hinged to a connecting block, and the two ends of the connecting steel block are fixedly connected to the connecting block.
3. The shock absorbing device for electrical automation equipment according to claim 1, characterized in that: The position control mechanism comprises: A center sleeve is arranged in the middle of the circular opening of the connecting steel block, and a center rod is rotatably arranged on the center sleeve; A first wheel rod, which is fixed on the central sleeve and is provided in plurality, and a first pulley slidably arranged in a stable groove provided in the connecting steel block is installed on the plurality of the first wheel rods; A second wheel rod, which is fixed on the central rod and is provided in plurality, and a second pulley slidably arranged in a stable groove provided in the connecting steel block is installed on the plurality of the second wheel rods; The rotating blocks are provided with two and are respectively fixedly connected with the center sleeve and the center rod. The limiting rotating disk is fixed on the periphery of the rotating block, and the fixing mechanism is fixedly connected with the rotating block.
4. The shock absorbing device for electrical automation equipment according to claim 1, characterized in that: The card-in mechanism comprises: A guide block is fixedly mounted on the connecting steel block, a pull rod is slidably arranged on the guide block, one end of the pull rod is fixedly connected to a clamping plate, the clamping plate is provided with a clamping slot, and a pull handle is fixedly arranged on the clamping plate; A rotation-limiting column, which is fixedly connected to the pull rod, and a push spring is fixed between the rotation-limiting column and the guide block for pushing the rotation-limiting column into the rotation-limiting opening formed on the rotation-limiting disk; The middle connecting plate is fixedly installed on the middle part of the connecting steel block, and a locking component used for being inserted into a slot provided in the clamping plate is fixed on the middle connecting plate.
5. The shock absorbing device for electrical automation equipment according to claim 4, characterized in that: The locking assembly comprises: A sleeve rod is fixedly mounted on the middle connecting plate, a sleeve is sleeved on the sleeve rod, a clamping block is fixedly arranged on the sleeve, and a compression spring for pushing the clamping block into the clamping port is fixed between the sleeve and the middle connecting plate; The handle is fixedly arranged on the sleeve and is used for pulling the clamping block out of the clamping opening formed by the clamping plate.
Citation Information
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