Side clamping type mobile auxiliary equipment for electric power facility installation and use method of side clamping type mobile auxiliary equipment

By designing cross beams, side plates and motor-driven screw gear systems, stable clamping and lifting of power equipment is achieved, collision damage problems of existing equipment during placement is solved, and the safety and stability of power facilities installation are ensured.

CN120270925APending Publication Date: 2025-07-08STATE GRID ZHEJIANG ELECTRIC POWER CO LTD NINGBO POWER SUPPLY CO
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202510477822.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-16
Publication Date
2025-07-08

AI Technical Summary

Technical Problem

The existing side clamped mobile auxiliary equipment for installation of power facilities does not have the function of placing power equipment, which leads to prone to collision and damage when placing power equipment.

Method used

A side clamping mobile auxiliary equipment including cross beams, side plates, motors, bidirectional screws, limit grooves and lifting rods is designed. The clamping and lifting of the power equipment is achieved through the motor-driven screws and gear systems, and the stability of the equipment is ensured by combining the limit and fixing mechanism.

Benefits of technology

It avoids collision damage between the power equipment and the auxiliary installation device during the placement process, ensures the stability and safety of the transportation process, and improves the stability and safety of the equipment.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120270925A_ABST
    Figure CN120270925A_ABST
Patent Text Reader

Abstract

The invention discloses side clamping type moving auxiliary equipment for electric power facility installation and a using method thereof, and relates to the technical field of side clamping type moving auxiliary equipment.The side clamping type moving auxiliary equipment comprises a cross beam, a side plate A and a side plate B are slidably connected to the surface of the cross beam, a motor A is fixedly installed on the side face of the cross beam, and a two-way lead screw A is installed at the output end of the motor A; a limiting groove A and a limiting groove C are formed in the surface of the cross beam, a limiting groove B is formed in the surface of the cross beam in a penetrating mode, and a bottom plate is slidably connected into the limiting groove B. A motor A drives a bidirectional screw rod A to rotate, so that a side plate A and a side plate B clamp power equipment, a motor B drives a bevel gear A to rotate, so that a lifting rod lifts the power equipment, and the power equipment is moved to the top surface of a bottom plate; and the situation that the electrical equipment is damaged due to the fact that the electrical equipment collides with the auxiliary installation device when the electrical equipment is placed by means of hoisting equipment is avoided.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of side-clamping mobile assistance devices, and particularly to a side-clamping mobile assistance device for power facility installation and its usage method. Background Technique

[0002] The side-clamping mobile assistance device for power facility installation is a mobile device specifically designed for power engineering construction to assist in the installation and maintenance of power facilities (such as power lines, substation equipment, etc.). Such devices usually have adjustable, supporting, and mobile functions, which can improve construction efficiency and safety and reduce the risks of manual operations.

[0003] For example, in "An auxiliary device for power equipment installation and its usage method" with the publication number CN115028104A, it includes a base, a lifting mechanism, an operation platform, an auxiliary component, and a controller; the lifting mechanism is arranged on the base; the operation platform is arranged on the lifting mechanism; the auxiliary component is arranged on the operation platform. The device in the present invention realizes the integration of functions of movement, installation, and assistance. By adjusting the height, angle, and position of the power equipment, it meets the installation requirements. At the same time, it ensures the stability of the power equipment during the movement and installation processes. The installation operation is simple and convenient, liberating the hands of the staff, reducing labor consumption, and improving the installation efficiency.

[0004] However, in the prior art, although this kind of power equipment auxiliary installation device has the advantages of simple and convenient installation operation, liberating the hands of the staff, reducing labor consumption, and improving the installation efficiency, it is lacking in moving the power equipment to the power equipment auxiliary installation device. Since this kind of power equipment auxiliary installation device does not have the function of lifting the power equipment, it will lead to the need to use other lifting tools to move the power equipment onto the auxiliary installation device when placing the power equipment on the auxiliary installation device. During this process, not only does the operator need to precisely control the power equipment, but it is also easy to occur the situation that the power equipment collides with the auxiliary installation device and is damaged.

[0005] Therefore, we propose a side-clamping mobile assistance device for power facility installation and its usage method to solve the problems raised above. Summary of the Invention

[0006] The purpose of the present invention is to provide a side-clamping mobile assistance device for power facility installation and its usage method to solve the problem that the side-clamping mobile assistance device for power facility installation in the above background technique does not have the function of placing the power equipment, resulting in the power equipment colliding with the auxiliary installation device and being damaged when placing the power equipment.

[0007] To achieve the above object, the present invention provides the following technical solution: A side-clamping mobile auxiliary device for power facility installation, comprising: a cross beam, on the surface of which a side plate A and a side plate B are slidably connected; a motor A fixedly installed on the side surface of the cross beam, the output end of the motor A being equipped with a bidirectional lead screw A; a limiting groove A and a limiting groove C are opened on the surface of the cross beam, and a limiting groove B is penetrated through the surface of the cross beam, a bottom plate is slidably connected inside the limiting groove B; a connecting block and a limiting block are fixedly installed on the surface of the side plate A, a limiting groove D is penetrated through the surface of the side plate A; a chute is opened on the bottom surface of the bottom plate, a slider is fixedly installed inside the limiting groove B; an insertion bar is inserted into the cross beam, a clamping groove A is opened on the top surface of the bottom plate; a motor B is fixedly installed on the surface of the side plate A, the output end of the motor B being equipped with a helical gear A; a helical gear B is rotatably connected inside the side plate A, a lead screw B is fixedly installed on the bottom surface of the helical gear B; a connecting plate is slidably connected inside the side plate A, a limiting rod is fixedly installed inside the side plate A, and a lifting rod is fixedly installed on the surface of the connecting plate.

[0008] Preferably, a push handle is fixedly installed on the top surface of the cross beam, universal self-locking wheels are fixedly installed on the bottom surfaces of the cross beam, the side plate A and the side plate B, and a baffle A is fixedly installed on the top surface of the cross beam.

[0009] Preferably, the bidirectional lead screw A is rotatably connected to the cross beam, the connecting block is threadedly connected to the bidirectional lead screw A, the limiting block is slidably connected to the limiting groove C, the slider is slidably connected to the chute, the insertion bar is slidably connected to the bottom plate, the insertion bar is threadedly connected to the cross beam, and the bottom plate is slidably connected to the limiting groove D.

[0010] Preferably, the helical gear A is rotatably connected to the side plate A, the lead screw B is rotatably connected to the side plate A, the helical gear A meshes with the helical gear B, the connecting plate is threadedly connected to the lead screw B, the connecting plate is slidably connected to the limiting rod, the shape of the lifting rod is L-shaped, and the lifting rod is slidably connected to the clamping groove A.

[0011] Preferably, a clamping groove B is opened inside the side plate B, a rotating rod is rotatably connected inside the side plate B, a torsion spring is sleeved on the surface of the rotating rod, a baffle B is fixedly installed at one end of the rotating rod, a sliding rod is slidably connected inside the baffle B, a spring is sleeved on the surface of the sliding rod, a ejector rod is fixedly installed at one end of the sliding rod, a pulling handle is fixedly installed on the surface of the ejector rod, and a receiving groove is opened on the surface of the baffle B.

[0012] Preferably, one end of the torsion spring is connected to the side surface of the baffle B, and the other end is connected to the inner surface of the side plate B; one end of the spring is connected to the surface of the ejector rod, and the other end is connected to the inner surface of the baffle B.

[0013] Preferably, the ejector rod is slidably connected to the slot B, the baffle B is slidably connected to the side plate B, the pull handle is slidably connected to the receiving groove, and the baffle B is provided inside both the side plate A and the side plate B.

[0014] Preferably, side frames A and B are fixedly installed at both ends of the cross beam. An insertion rod A is slidably connected inside the side frame A, and an insertion rod B is slidably connected inside the side frame B. A fixing block is fixedly installed on the surface of the insertion rod A, and a fixing hole is formed on the surface of the insertion rod B.

[0015] Preferably, the insertion rod A is slidably connected to the side plate A, the insertion rod B is slidably connected to the side plate B, and the fixing block and the fixing hole are threadedly connected.

[0016] A method for using a side-clamping mobile auxiliary device for installing power facilities includes the following steps: S1. By rotating the insertion strip, after the insertion strip is withdrawn from the cross beam, the bottom plate can be pulled outwards. At this time, the slider will slide in the chute. After the bottom plate is pulled out, the cross beam, the side plate A and the side plate B are pushed to the power equipment through the push handle. After the power equipment is in the middle of the side plate A and the side plate B, the bidirectional lead screw A is driven to rotate by the motor A. When the bidirectional lead screw A rotates, it will drive the connecting block to move in the limit groove A, thereby driving the side plate A and the side plate B to move, so as to clamp the power equipment. S2. After the lifting rod is at the bottom of the power equipment, turn on the motor B. The motor B will drive the helical gear A to rotate. When the helical gear A rotates, it will drive the lead screw B to rotate through the helical gear B, so that the connecting plate slides inside the side plate A. At the same time, the connecting plate will also slide on the surface of the limiting rod, thereby driving the lifting rod to move upwards. After the lifting rod moves the power equipment to the top of the bottom plate, the bottom plate can be inserted into the cross beam. After the bottom plate is inserted into the cross beam, the insertion strip can be inserted into the bottom plate, and then the insertion strip is threadedly connected to the cross beam to complete the operation of moving the power equipment to the mobile equipment. S3. Before pushing the side plate A and the side plate B to the power equipment, first pull the pull handle towards the baffle B. After the pull handle is pulled into the receiving groove, rotate the baffle B. After the baffle B rotates into the side plate B, release the pull handle. At this time, the spring will drive the ejector rod to insert into the slot B, thereby completing the fixation of the baffle B. At this time, the side plate A and the side plate B can be pushed to the power equipment. After the power equipment is placed on the bottom plate, the pull handle can be pulled into the receiving groove. After the ejector rod slides out of the slot B, the baffle B will be rotated by the torsion force of the torsion spring. After the baffle B is turned open, the limitation of the power equipment can be completed. S4. Before moving the movable side plates A and B, first rotate the insertion rod A. When the insertion rod A rotates, it will drive the fixed block to rotate. After the fixed block rotates out of the fixing hole, the insertion rod A and the insertion rod B can be pulled to both sides. After the insertion rod A and the insertion rod B are separated, the side plates A and B can be pushed to the power equipment. When it is necessary to clamp the power equipment, first slide the insertion rod A and the insertion rod B towards the middle. After the fixed block moves to the fixing hole, the fixed block can be connected to the fixing hole by threads. At this time, when the side plates A and B move, they will also slide on the surfaces of the insertion rod A and the insertion rod B, thus completing the limiting effect on the side plates A and B.

[0017] Compared with the prior art, the beneficial effects of the present invention are: 1. During use, by rotating the insertion strip, after the insertion strip rotates out of the cross beam, the bottom plate can be pulled outwards. At this time, the slider will slide in the chute. After the bottom plate is pulled out, the cross beam, the side plate A and the side plate B are pushed to the power equipment by the push handle. After the power equipment is in the middle of the side plate A and the side plate B, the bidirectional lead screw A is driven to rotate by the motor A. When the bidirectional lead screw A rotates, it will drive the connecting block to move in the limiting groove A, thereby driving the side plate A and the side plate B to move, so as to clamp the power equipment. After the lifting rod is at the bottom of the power equipment, turn on the motor B. The motor B will drive the helical gear A to rotate. When the helical gear A rotates, it will drive the lead screw B to rotate through the helical gear B, so that the connecting plate slides inside the side plate A. At the same time, the connecting plate will also slide on the surface of the limiting rod, thereby driving the lifting rod to move upwards. After the lifting rod moves the power equipment to the top of the bottom plate, the bottom plate can be inserted into the inside of the cross beam. After the bottom plate is inserted into the cross beam, the insertion strip can be inserted into the bottom plate, and then the insertion strip can be connected to the cross beam by threads to complete the operation of moving the power equipment to the mobile equipment, avoiding the damage of the power equipment caused by the collision between the power equipment and the auxiliary installation device when placing the power equipment with the help of a lifting device; 2. During use, before pushing the side plates A and B to the power equipment, first pull the pull handle towards the baffle B. After the pull handle is pulled into the receiving groove, rotate the baffle B. After the baffle B rotates into the side plate B, release the pull handle. At this time, the spring will drive the ejector rod to insert into the card slot B, thereby completing the fixation of the baffle B. At this time, the side plates A and B can be pushed to the power equipment. After the power equipment is placed on the bottom plate, the pull handle can be pulled towards the receiving groove. After the ejector rod slides out of the card slot A, the baffle B will be rotated by the torsion force of the torsion spring. After the baffle B rotates away, the limiting of the power equipment can be completed, thus preventing the situation that the power equipment slips off the bottom plate due to inertia when pushing the power equipment to move, ensuring the stability of transporting the power equipment; 3. When in use, before moving the movable side plate A and side plate B, first rotate the insertion rod A. When the insertion rod A rotates, it will drive the fixed block to rotate. After the fixed block rotates out of the fixing hole, the insertion rod A and the insertion rod B can be pulled to both sides. After the insertion rod A and the insertion rod B are separated, the side plate A and the side plate B can be pushed to the power equipment. When it is necessary to clamp the power equipment, first slide the insertion rod A and the insertion rod B towards the middle. After the fixed block moves to the fixing hole, the fixed block can be connected to the fixing hole by threads. At this time, when the side plate A and the side plate B move, they will also slide on the surfaces of the insertion rod A and the insertion rod B, thus completing the limiting effect on the side plate A and the side plate B. The design of the insertion rod A and the insertion rod B not only plays a limiting role in the movement of the side plate A and the side plate B, but also improves the stability of the cross beam, the side plate A, the side plate B and the bottom plate. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 FIG. is a three-dimensional structural schematic diagram of a side clamping type mobile auxiliary device for installing a power facility according to the present invention; Figure 2 FIG. is an exploded structural schematic diagram of the side plate A, the side plate B and the bottom plate in a side clamping type mobile auxiliary device for installing a power facility according to the present invention; Figure 3 FIG. is a side clamping type mobile auxiliary device for installing a power facility according to the present invention Figure 2 enlarged view of part A; Figure 4 FIG. is an exploded structural schematic diagram of the bottom plate and the insertion strip in a side clamping type mobile auxiliary device for installing a power facility according to the present invention; Figure 5 FIG. is an exploded structural schematic diagram of the lifting rod in a side clamping type mobile auxiliary device for installing a power facility according to the present invention; Figure 6 FIG. is a side clamping type mobile auxiliary device for installing a power facility according to the present invention Figure 5 enlarged view of part B; Figure 7 FIG. is an exploded structural schematic diagram of the baffle B and the ejector rod in a side clamping type mobile auxiliary device for installing a power facility according to the present invention; Figure 8 FIG. is a side clamping type mobile auxiliary device for installing a power facility according to the present invention Figure 7 enlarged view of part C; Figure 9 FIG. is an exploded structural schematic diagram of the insertion rod A and the insertion rod B in a side clamping type mobile auxiliary device for installing a power facility according to the present invention; Figure 10 FIG. is a side clamping type mobile auxiliary device for installing a power facility according to the present invention Figure 9 enlarged view of part D.

[0019] In the figure: 100, cross beam; 101, push handle; 102, universal self-locking wheel; 103, baffle A; 104, side plate A; 105, side plate B; 106, motor A; 107, bidirectional lead screw A; 108, limit groove A; 109, limit groove B; 110, limit groove C; 111, bottom plate; 112, connecting block; 113, limit block; 114, limit groove D; 115, sliding groove; 116, inserting bar; 117, sliding block; 118, clamping groove A; 119, motor B; 120, helical gear A; 121, helical gear B; 122, lead screw B; 123, connecting plate; 124, limit rod; 125, lifting rod; 200, clamping groove B; 201, rotating rod; 202, torsion spring; 203, baffle B; 204, accommodating groove; 205, sliding rod; 206, spring; 207, ejector rod; 208, pulling handle; 300, side frame A; 301, side frame B; 302, inserting bar A; 303, inserting bar B; 304, fixing hole; 305, fixing block. Detailed implementation manner

[0020] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0021] Embodiment 1: Refer to Figures 1-6As shown: A side-clamping mobile auxiliary device for the installation of power facilities, comprising: a cross beam 100, on the surface of the cross beam 100, a side plate A 104 and a side plate B 105 are slidably connected. On the side of the cross beam 100, a motor A 106 is fixedly installed. At the output end of the motor A 106, a bidirectional lead screw A 107 is installed. On the surface of the cross beam 100, a limit groove A 108 and a limit groove C 110 are provided. Through the surface of the cross beam 100, a limit groove B 109 is provided. Inside the limit groove B 109, a bottom plate 111 is slidably connected. On the surface of the side plate A 104, a connecting block 112 and a limit block 113 are fixedly installed. Through the surface of the side plate A 104, a limit groove D 114 is provided. On the bottom surface of the bottom plate 111, a sliding groove 115 is provided. Inside the limit groove B 109, a slider 117 is fixedly installed. Inside the cross beam 100, an inserting bar 116 is inserted. On the top surface of the bottom plate 111, a clamping groove A 118 is provided. On the surface of the side plate A 104, a motor B 119 is fixedly installed. At the output end of the motor B 119, a bevel gear A 120 is installed. Inside the side plate A 104, a bevel gear B 121 is rotatably connected. At the bottom surface of the bevel gear B 121, a lead screw B 122 is fixedly installed. Inside the side plate A 104, a connecting plate 123 is slidably connected. Inside the side plate A 104, a limit rod 124 is fixedly installed. On the surface of the connecting plate 123, a lifting rod 125 is fixedly installed. On the top surface of the cross beam 100, a push handle 101 is fixedly installed. On the bottom surfaces of the cross beam 100, the side plate A 104 and the side plate B 105, universal self-locking wheels 102 are fixedly installed. On the top surface of the cross beam 100, a baffle A 103 is fixedly installed. The bidirectional lead screw A 107 is rotatably connected with the cross beam 100. The connecting block 112 is threadedly connected with the bidirectional lead screw A 107. The limit block 113 is slidably connected with the limit groove C 110. The slider 117 is slidably connected with the sliding groove 115. The inserting bar 116 is slidably connected with the bottom plate 111. The inserting bar 116 is threadedly connected with the cross beam 100. The bottom plate 111 is slidably connected with the limit groove D 114. The bevel gear A 120 is rotatably connected with the side plate A 104. The lead screw B 122 is rotatably connected with the side plate A 104. The bevel gear A 120 is meshed with the bevel gear B 121. The connecting plate 123 is threadedly connected with the lead screw B 122. The connecting plate 123 is slidably connected with the limit rod 124. The shape of the lifting rod 125 is L-shaped. The lifting rod 125 is slidably connected with the clamping groove A 118.

[0022] In this embodiment, by rotating the insertion bar 116, after the insertion bar 116 is rotated out of the cross beam 100, the bottom plate 111 can be pulled outwards. At this time, the slider 117 will slide in the chute 115. After the bottom plate 111 is pulled out, the cross beam 100, the side plate A 104 and the side plate B 105 are pushed to the power equipment by the push handle 101. After the power equipment is located between the side plate A 104 and the side plate B 105, the bidirectional lead screw A 107 is driven to rotate by the motor A 106. When the bidirectional lead screw A 107 rotates, it will drive the connecting block 112 to move in the limit groove A 108, thereby driving the side plate A 104 and the side plate B 105 to move, so as to clamp the power equipment. After the lifting rod 125 is located at the bottom of the power equipment, the motor B 119 is turned on. The motor B 119 drives the bevel gear A 120 to rotate. When the bevel gear A 120 rotates, it drives the lead screw B 122 to rotate through the bevel gear B 121, so that the connecting plate 123 slides inside the side plate A 104. At the same time, the connecting plate 123 also slides on the surface of the limit rod 124, thereby driving the lifting rod 125 to move upward. After the lifting rod 125 moves the power equipment to the top of the bottom plate 111, the bottom plate 111 can be inserted into the cross beam 100. After the bottom plate 111 is inserted into the cross beam 100, the insertion bar 116 can be inserted into the bottom plate 111, and then the insertion bar 116 is connected to the cross beam 100 by threads, and the operation of moving the power equipment to the mobile device is completed, avoiding the damage of the power equipment caused by the collision between the power equipment and the auxiliary installation device when placing the power equipment with the help of a lifting device.

[0023] Embodiment Two: Figures 7-8 As shown in the figure, a slot B 200 is provided inside the side plate B 105. A rotating rod 201 is rotatably connected inside the side plate B 105. A torsion spring 202 is sleeved on the surface of the rotating rod 201. One end of the rotating rod 201 is fixedly installed with a baffle B 203. A sliding rod 205 is slidably connected inside the baffle B 203. A spring 206 is sleeved on the surface of the sliding rod 205. One end of the sliding rod 205 is fixedly installed with a ejector rod 207. A pull handle 208 is fixedly installed on the surface of the ejector rod 207. A receiving groove 204 is provided on the surface of the baffle B 203. One end of the torsion spring 202 is connected to the side of the baffle B 203, and the other end is connected to the inner surface of the side plate B 105. One end of the spring 206 is connected to the surface of the ejector rod 207, and the other end is connected to the inner surface of the baffle B 203. The ejector rod 207 is slidably connected with the slot B 200. The baffle B 203 is slidably connected with the side plate B 105. The pull handle 208 is slidably connected with the receiving groove 204. The baffle B 203 is provided inside both the side plate A 104 and the side plate B 105.

[0024] In this embodiment, before pushing the side plate A104 and the side plate B105 to the power equipment, first pull the handle 208 towards the baffle B203. After the handle 208 is pulled into the receiving groove 204, then rotate the baffle B203. After the baffle B203 is rotated into the side plate B105, the handle 208 can be released. At this time, the spring 206 will drive the ejector rod 207 to insert into the card slot B200, thereby completing the fixation of the baffle B203. At this time, the side plate A104 and the side plate B105 can be pushed to the power equipment. After the power equipment is placed on the bottom plate 111, the handle 208 can be pulled into the receiving groove 204. After the ejector rod 207 slides out of the card slot B200, the baffle B203 will be rotated by the torsion force of the torsion spring 202. After the baffle B203 is rotated open, the limitation of the power equipment can be completed, thus preventing the situation that the power equipment slips off the bottom plate 111 due to inertia when the power equipment is pushed to move, ensuring the stability during the transportation of the power equipment.

[0025] Embodiment 3: According to Figures 9-10 As shown in the figure, side frames A300 and side frames B301 are respectively fixedly installed at both ends of the cross beam 100. An insertion rod A302 is slidably connected inside the side frame A300, and an insertion rod B303 is slidably connected inside the side frame B301. A fixing block 305 is fixedly installed on the surface of the insertion rod A302, and a fixing hole 304 is provided on the surface of the insertion rod B303. The insertion rod A302 is slidably connected to the side plate A104, and the insertion rod B303 is slidably connected to the side plate B105. The fixing block 305 is threadedly connected to the fixing hole 304.

[0026] In this embodiment, before moving the side plate A104 and the side plate B105, first rotate the insertion rod A302. When the insertion rod A302 rotates, it will drive the fixing block 305 to rotate. After the fixing block 305 rotates out of the fixing hole 304, the insertion rod A302 and the insertion rod B303 can be pulled to both sides. After the insertion rod A302 and the insertion rod B303 are separated, the side plate A104 and the side plate B105 can be pushed to the power equipment. When it is necessary to clamp the power equipment, first slide the insertion rod A302 and the insertion rod B303 towards the middle. After the fixing block 305 moves to the fixing hole 304, the fixing block 305 can be threadedly connected to the fixing hole 304. At this time, the side plate A104 and the side plate B105 will also slide on the surfaces of the insertion rod A302 and the insertion rod B303 when moving, thereby completing the limiting effect on the side plate A104 and the side plate B105. The design of the insertion rod A302 and the insertion rod B303 not only plays a limiting effect on the movement of the side plate A104 and the side plate B105, but also improves the stability of the cross beam 100, the side plate A104, the side plate B105 and the bottom plate 111.

[0027] Usage method and working principle of this device: When it is necessary to place the power equipment on the auxiliary installation device, first rotate the insert bar 116. After the insert bar 116 rotates out of the cross beam 100, the bottom plate 111 can be pulled outwards. At this time, the slider 117 will slide in the chute 115. After the bottom plate 111 is pulled out, push the cross beam 100, side plate A 104 and side plate B 105 to the power equipment through the push handle 101. After the power equipment is in the middle of side plate A 104 and side plate B 105, drive the bidirectional lead screw A 107 to rotate through the motor A 106. When the bidirectional lead screw A 107 rotates, it will drive the connecting block 112 to move in the limit groove A 108, thereby driving side plate A 104 and side plate B 105 to move, so as to clamp the power equipment; After the lifting rod 125 is at the bottom of the power equipment, turn on the motor B 119. The motor B 119 will drive the helical gear A 120 to rotate. When the helical gear A 120 rotates, it will drive the lead screw B 122 to rotate through the helical gear B 121, so that the connecting plate 123 slides inside the side plate A 104. At the same time, the connecting plate 123 will also slide on the surface of the limiting rod 124, thereby driving the lifting rod 125 to move upwards. After the lifting rod 125 moves the power equipment to the top of the bottom plate 111, the bottom plate 111 can be inserted into the cross beam 100. After the bottom plate 111 is inserted into the cross beam 100, the insert bar 116 can be inserted into the bottom plate 111, and then the insert bar 116 can be connected to the cross beam 100 by threads to complete the operation of moving the power equipment to the mobile device, avoiding the situation that the power equipment is damaged due to collision between the power equipment and the auxiliary installation device when placing the power equipment with the help of a lifting device; Before pushing the side plate A 104 and side plate B 105 to the power equipment, first pull the pull handle 208 towards the baffle B 203. After the pull handle 208 is pulled into the receiving groove 204, rotate the baffle B 203. After the baffle B 203 rotates into the side plate B 105, release the pull handle 208. At this time, the spring 206 will drive the ejector rod 207 to insert into the card slot B 200, so as to complete the fixation of the baffle B 203. At this time, the side plate A 104 and side plate B 105 can be pushed to the power equipment. After the power equipment is placed on the bottom plate 111, the pull handle 208 can be pulled into the receiving groove 204. After the ejector rod 207 slides out of the card slot B 200, the baffle B 203 will be rotated by the torsion force of the torsion spring 202. After the baffle B 203 rotates away, the limit of the power equipment can be completed, thus preventing the situation that the power equipment slips off the bottom plate 111 due to inertia when pushing the power equipment to move, ensuring the stability of transporting the power equipment; Before moving the movable side plate A104 and the side plate B105, first rotate the insertion rod A302. When the insertion rod A302 rotates, it will drive the fixed block 305 to rotate. After the fixed block 305 rotates out of the fixing hole 304, the insertion rod A302 and the insertion rod B303 can be pulled to both sides. After the insertion rod A302 and the insertion rod B303 are separated, the side plate A104 and the side plate B105 can be pushed to the power equipment. When it is necessary to clamp the power equipment, first slide the insertion rod A302 and the insertion rod B303 towards the middle. After the fixed block 305 moves to the fixing hole 304, the fixed block 305 can be connected to the fixing hole 304 by threads. At this time, when the side plate A104 and the side plate B105 move, they will also slide on the surfaces of the insertion rod A302 and the insertion rod B303, thereby completing the limiting effect on the side plate A104 and the side plate B105. The design of the insertion rod A302 and the insertion rod B303 not only plays a limiting effect on the movement of the side plate A104 and the side plate B105, but also improves the stability of the cross beam 100, the side plate A104, the side plate B105 and the bottom plate 111.

[0028] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements on some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.

Claims

1. A side-clamping mobile auxiliary device for power facility installation, characterized in that Including: A cross beam (100), on the surface of which a side plate A (104) and a side plate B (105) are slidably connected. A motor A (106) is fixedly installed on the side of the cross beam (100). The output end of the motor A (106) is provided with a bidirectional lead screw A (107). On the surface of the cross beam (100), a limiting groove A (108) and a limiting groove C (110) are provided. A limiting groove B (109) is penetrated and provided on the surface of the cross beam (100). Inside the limiting groove B (109), a bottom plate (111) is slidably connected. On the surface of the side plate A (104), a connecting block (112) and a limiting block (113) are fixedly installed. A limiting groove D (114) is penetrated and provided on the surface of the side plate A (104). A sliding groove (115) is provided on the bottom surface of the bottom plate (111). A sliding block (117) is fixedly installed inside the limiting groove B (109). An inserting bar (116) is inserted into the cross beam (100). A clamping groove A (118) is provided on the top surface of the bottom plate (111). A motor B (119) is fixedly installed on the surface of the side plate A (104). The output end of the motor B (119) is provided with a helical gear A (120). Inside the side plate A (104), a helical gear B (121) is rotatably connected. On the bottom surface of the helical gear B (121), a lead screw B (122) is fixedly installed. Inside the side plate A (104), a connecting plate (123) is slidably connected. A limiting rod (124) is fixedly installed inside the side plate A (104). On the surface of the connecting plate (123), a lifting rod (125) is fixedly installed.

2. The side-clamping mobile auxiliary device for power facility installation according to claim 1, wherein: On the top surface of the cross beam (100), a push handle (101) is fixedly installed. On the bottom surfaces of the cross beam (100), the side plate A (104) and the side plate B (105), universal self-locking wheels (102) are fixedly installed. On the top surface of the cross beam (100), a baffle A (103) is fixedly installed.

3. The side-clamping mobile auxiliary device for power facility installation according to claim 1, characterized in that: The bidirectional lead screw A (107) is rotatably connected with the cross beam (100). The connecting block (112) is threadedly connected with the bidirectional lead screw A (107). The limiting block (113) is slidably connected with the limiting groove C (110). The sliding block (117) is slidably connected with the sliding groove (115). The inserting bar (116) is slidably connected with the bottom plate (111). The inserting bar (116) is threadedly connected with the cross beam (100). The bottom plate (111) is slidably connected with the limiting groove D (114).

4. The side-clamping mobile auxiliary device for power facility installation according to claim 1, wherein: The helical gear A (120) is rotatably connected with the side plate A (104). The lead screw B (122) is rotatably connected with the side plate A (104). The helical gear A (120) is meshed with the helical gear B (121). The connecting plate (123) is threadedly connected with the lead screw B (122). The connecting plate (123) is slidably connected with the limiting rod (124). The lifting rod (125) is in an L shape. The lifting rod (125) is slidably connected with the clamping groove A (118).

5. The side clamping type mobile auxiliary device for power facility installation according to claim 1, characterized in that: A clamping groove B (200) is formed inside the side plate B (105). A rotating rod (201) is rotatably connected inside the side plate B (105). A torsion spring (202) is sleeved on the surface of the rotating rod (201). A baffle B (203) is fixedly installed at one end of the rotating rod (201). A sliding rod (205) is slidably connected inside the baffle B (203). A spring (206) is sleeved on the surface of the sliding rod (205). A ejector rod (207) is fixedly installed at one end of the sliding rod (205). A pull handle (208) is fixedly installed on the surface of the ejector rod (207). A receiving groove (204) is formed on the surface of the baffle B (203).

6. The side-clamping mobile auxiliary device for power facility installation according to claim 5, characterized in that: One end of the torsion spring (202) is connected to the side surface of the baffle B (203), and the other end is connected to the inner surface of the side plate B (105). One end of the spring (206) is connected to the surface of the ejector rod (207), and the other end is connected to the inner surface of the baffle B (203).

7. The side-clamping mobile auxiliary device for installing power facilities according to claim 5, wherein: The ejector rod (207) is slidably connected to the clamping groove B (200). The baffle B (203) is slidably connected to the side plate B (105). The pull handle (208) is slidably connected to the receiving groove (204). Baffle Bs (203) are provided inside both the side plate A (104) and the side plate B (105).

8. The side-clamping mobile auxiliary device for power facility installation according to claim 7, wherein: Side frames A (300) and side frames B (301) are respectively fixedly installed at both ends of the cross beam (100). A plug rod A (302) is slidably connected inside the side frame A (300). A plug rod B (303) is slidably connected inside the side frame B (301). A fixing block (305) is fixedly installed on the surface of the plug rod A (302). A fixing hole (304) is formed on the surface of the plug rod B (303).

9. The side clamping type mobile auxiliary device for power facility installation according to claim 8, wherein: The plug rod A (302) is slidably connected to the side plate A (104). The plug rod B (303) is slidably connected to the side plate B (105). The fixing block (305) is threadedly connected to the fixing hole (304).

10. A method of using a side-clamping mobile auxiliary device for installing power facilities, characterized in that, When using the side clamping type mobile auxiliary equipment for installing power facilities according to any one of claims 1-9, the following steps are included: S1. By rotating the insertion strip (116), after the insertion strip (116) is rotated out of the cross beam (100), the bottom plate (111) can be pulled outwards. At this time, the slider (117) will slide in the chute (115). After the bottom plate (111) is pulled out, the cross beam (100), the side plate A (104) and the side plate B (105) are pushed to the power equipment through the push handle (101). After the power equipment is located between the side plate A (104) and the side plate B (105), the bidirectional lead screw A (107) is driven to rotate by the motor A (106). When the bidirectional lead screw A (107) rotates, it drives the connecting block (112) to move in the limit groove A (108), thereby driving the side plate A (104) and the side plate B (105) to move, so as to clamp the power equipment; S2. After the lifting rod (125) is at the bottom of the power equipment, turn on the motor B (119). The motor B (119) will drive the bevel gear A (120) to rotate. When the bevel gear A (120) rotates, it will drive the lead screw B (122) to rotate through the bevel gear B (121), so that the connecting plate (123) slides inside the side plate A (104). At the same time, the connecting plate (123) also slides on the surface of the limiting rod (124), thereby driving the lifting rod (125) to move upward. After the lifting rod (125) moves the power equipment to the top of the bottom plate (111), the bottom plate (111) can be inserted into the inside of the cross beam (100). After the bottom plate (111) is inserted into the cross beam (100), the insert bar (116) can be inserted into the bottom plate (111), and then the insert bar (116) can be connected to the cross beam (100) by threads to complete the operation of moving the power equipment to the mobile equipment; S3. Before pushing the side plate A (104) and the side plate B (105) to the power equipment, first pull the pull handle (208) towards the baffle B (203). After the pull handle (208) is pulled into the receiving groove (204), rotate the baffle B (203). After the baffle B (203) rotates into the side plate B (105), release the pull handle (208). At this time, the spring (206) will drive the ejector rod (207) to insert into the clamping groove B (200), thereby completing the fixation of the baffle B (203). At this time, the side plate A (104) and the side plate B (105) can be pushed to the power equipment. After the power equipment is placed on the bottom plate (111), the pull handle (208) can be pulled into the receiving groove (204). After the ejector rod (207) slides out of the clamping groove B (200), the baffle B (203) will be rotated by the torsion force of the torsion spring (202). After the baffle B (203) is turned open, the limitation of the power equipment can be completed; S4. Before moving the side plate A (104) and the side plate B (105), first rotate the plug rod A (302). When the plug rod A (302) rotates, it will drive the fixing block (305) to rotate. After the fixing block (305) rotates out of the fixing hole (304), the plug rod A (302) and the plug rod B (303) can be pulled to both sides. After the plug rod A (302) and the plug rod B (303) are separated, the side plate A (104) and the side plate B (105) can be pushed to the power equipment. When it is necessary to clamp the power equipment, first slide the plug rod A (302) and the plug rod B (303) towards the middle. After the fixing block (305) moves to the fixing hole (304), the fixing block (305) can be connected to the fixing hole (304) by threads. At this time, when the side plate A (104) and the side plate B (105) move, they also slide on the surfaces of the plug rod A (302) and the plug rod B (303), thereby completing the limiting effect on the side plate A (104) and the side plate B (105).

Citation Information

Patent Citations

  • Auxiliary device for electrical equipment installation and use method thereof

    CN115028104A