CN223446737U - A mesh reinforcement structure for the lateral bearing capacity of a transmission tower - Google Patents

A mesh reinforcement structure for the lateral bearing capacity of a transmission tower

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Publication number
CN223446737U
CN223446737U CN202422960867.3U CN202422960867U CN223446737U CN 223446737 U CN223446737 U CN 223446737U CN 202422960867 U CN202422960867 U CN 202422960867U CN 223446737 U CN223446737 U CN 223446737U
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CN
China
Prior art keywords
box body
bolted
fixing plate
sliding
inner cavity
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Application number
CN202422960867.3U
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Chinese (zh)
Inventor
黄俊彬
黄克娜
郑安哲
黄伟彬
黄富标
李代荣
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Guangdong Deyuan Power Equipment Co ltd
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Guangdong Deyuan Power Equipment Co ltd
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Priority to CN202422960867.3U priority Critical patent/CN223446737U/en
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Publication of CN223446737U publication Critical patent/CN223446737U/en
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Abstract

本实用新型属于输电塔技术领域,具体的说是一种输电塔侧向承载力的网状加固结构,包括加固板;所述加固板的底部从左至右依次栓接有第一固定板和第二固定板,所述第一固定板和第二固定板相向一侧的顶部栓接有箱体,所述箱体顶部的两侧均栓接有加固块,所述加固块的顶部与加固板的底部栓接,所述箱体的内腔设置有固定组件;通过正反丝杆、螺纹套、侧板和把手的结构设计,使用者通过转动把手即可带动侧板进行移动,使侧板与第一固定板、第二固定板将输电塔支撑杆抵接,操作简单,便于安装,通过盒体、卡杆、移动块和弹簧的结构设计,安装好后,对把手固定,避免使用过程中,把手转动导致侧板发生移动,提高了稳定性。

The utility model belongs to the technical field of transmission towers, specifically a mesh reinforcement structure for the lateral bearing capacity of a transmission tower, comprising a reinforcement plate; a first fixing plate and a second fixing plate are bolted to the bottom of the reinforcement plate in sequence from left to right, the tops of the first fixing plate and the second fixing plate facing each other are bolted to a box body, both sides of the top of the box body are bolted to reinforcement blocks, the tops of the reinforcement blocks are bolted to the bottoms of the reinforcement plates, and a fixing assembly is provided in the inner cavity of the box body; through the structural design of positive and negative screw rods, threaded sleeves, side plates and handles, a user can drive the side plates to move by rotating the handle, so that the side plates and the first fixing plate and the second fixing plate abut against the support rods of the transmission tower, the operation is simple and the installation is convenient, and through the structural design of the box body, the clamping rod, the moving block and the spring, the handle is fixed after installation to avoid movement of the side plates due to rotation of the handle during use, thereby improving stability.

Description

Netted reinforced structure of transmission tower side direction bearing capacity
Technical Field
The utility model relates to the technical field of power transmission towers, in particular to a net-shaped reinforcing structure for lateral bearing capacity of a power transmission tower.
Background
The power transmission tower is a supporting point of an overhead line, one loop is erected on the power transmission tower and is a single loop power transmission tower, two loops are erected on the power transmission tower and are double loop power transmission towers, the single loop is a loop with one power supply load, the double loop is a loop with 2 power supplies load, and generally, enterprises with high requirements on power supply reliability or important substations in areas all adopt double loop power supply.
Through retrieval, bulletin number CN212105337U discloses a grid reinforcing structure for improving the lateral bearing capacity of a power transmission tower, which comprises additionally arranged reinforcing plates, wherein connecting pieces are respectively arranged at two ends of each reinforcing plate and are connected with supporting rods of the power transmission tower, and positioning pieces are arranged on one side of each reinforcing plate, which faces the power transmission tower, and are connected with connecting rods of the power transmission tower.
The grid reinforcing structure still has the following defects that the movable plate is driven to move by rotating the threaded rod, the fixed plate and the movable plate are enabled to abut against the power transmission tower supporting rod, but a plurality of threaded rods and bolts are needed to be screwed in sequence to abut against the power transmission tower supporting rod, the installation is complicated, meanwhile, the threaded rods are not provided with the fixing structure, and the threaded rods are easy to rotate due to the influence of other factors in the use process, so that the abutting effect is poor, and therefore, the grid reinforcing structure for the lateral bearing capacity of the power transmission tower is provided for the problems.
Disclosure of utility model
The utility model aims to solve the technical problems that in the prior art, the installation is complicated, the threaded rod is easy to rotate due to the influence of other factors, and therefore, the utility model provides a net-shaped reinforcing structure for the lateral bearing capacity of a power transmission tower.
The technical scheme includes that the net-shaped reinforcing structure for lateral bearing capacity of the power transmission tower comprises a reinforcing plate, wherein a first fixing plate and a second fixing plate are sequentially bolted from left to right to the bottom of the reinforcing plate, a box body is bolted to the tops of opposite sides of the first fixing plate and the second fixing plate, reinforcing blocks are bolted to the two sides of the top of the box body, the top of the reinforcing blocks is bolted to the bottom of the reinforcing plate, a fixing assembly is arranged in an inner cavity of the box body, a first anti-slip pad is adhered to opposite sides of the first fixing plate and the second fixing plate, and a reinforcing net is arranged on the top of the reinforcing plate.
Preferably, the fixed subassembly includes positive anti-lead screw, thread bush, curb plate and handle, the both sides of box inner chamber all are connected with positive and negative lead screw through the bearing rotation, equal threaded connection has the thread bush on positive screw and the reverse screw of positive and negative lead screw, logical groove has been seted up to the bottom of box, the bottom of thread bush runs through the groove and the bolt has the curb plate, the right side of positive and negative lead screw runs through the second fixed plate and the bolt has the handle, a plurality of draw-in holes have been seted up on the surface of handle, the opposite one side of curb plate bonds there is the second slipmat.
Preferably, the center department bolt of box bottom has fixed frame, the bottom of fixed frame is connected with the threaded rod through screw thread piece screw thread, the top of threaded rod is connected with the kicking block through the bearing rotation.
Preferably, the top bolt on second fixed plate right side has the box body, first spout has all been seted up to the both sides of box body inner chamber, the inner chamber sliding connection of first spout has first slider, and one side bolt in opposite directions of first slider has the movable block, the draw-in lever is installed to the inner chamber of movable block, the top of draw-in lever runs through the box body and upwards extends, the bottom of draw-in lever runs through the box body and with the draw-in hole joint, the surface cover of draw-in lever is equipped with the spring, and the top of spring and the top fixed connection in box body inner chamber, the top of movable block and the bottom fixed connection of spring.
Preferably, the tops of two sides of the inner cavity of the box body are respectively bolted with a sliding column, the surfaces of the sliding columns are respectively connected with a sliding sleeve in a sliding manner from left to right, and the bottoms of the sliding sleeves are respectively bolted with the tops of the threaded sleeves.
Preferably, a second sliding groove is formed in the back of the inner cavity of the fixed frame, a second sliding block is connected to the inner cavity of the second sliding groove in a sliding mode, and the front face of the second sliding block is bolted to the back face of the top block.
The beneficial effects of the utility model are as follows:
1. According to the utility model, through the structural design of the positive and negative screw rod, the threaded sleeve, the side plate and the handle, a user can drive the side plate to move by rotating the handle, so that the side plate is abutted with the first fixing plate and the second fixing plate to support the power transmission tower, the operation is simple, and the installation is convenient;
2. According to the utility model, through the structural design of the box body, the clamping rod, the moving block and the spring, after the installation, the handle is fixed, so that the side plate is prevented from moving due to the rotation of the handle in the use process, and the stability is improved.
Drawings
In order to more clearly illustrate the embodiments of the utility model or the technical solutions in the prior art, the drawings that are required in the embodiments or the description of the prior art will be briefly described, it being obvious that the drawings in the following description are only some embodiments of the utility model, and that other drawings may be obtained according to these drawings without inventive effort for a person skilled in the art.
FIG. 1 is a schematic diagram of the overall structure of the present utility model;
FIG. 2 is a cross-sectional view of the case and case structure of the present utility model;
FIG. 3 is a cross-sectional view of a mounting frame structure of the present utility model;
Fig. 4 is an enlarged view of the structure of fig. 2 a according to the present utility model.
The device comprises a first fixing plate 1, a reinforcing plate 2, a second fixing plate 4, a box body 5, a reinforcing block 6, a fixing assembly 61, a positive and negative screw rod 62, a threaded sleeve 63, a side plate 64, a handle 7, a fixing frame 8, a threaded rod 9, a top block 10, a box body 11, a first sliding groove 12, a moving block 13, a clamping rod 14, a sliding column 15 and a second sliding groove.
Detailed Description
The following description of the embodiments of the present utility model will be made clearly and completely with reference to the accompanying drawings, in which it is apparent that the embodiments described are only some embodiments of the present utility model, but not all embodiments. All other embodiments, which can be made by those skilled in the art based on the embodiments of the utility model without making any inventive effort, are intended to be within the scope of the utility model.
The application will be described in further detail with reference to figures 1-4,
The embodiment of the application discloses a net-shaped reinforcing structure for lateral bearing capacity of a power transmission tower. Referring to fig. 1 and 2, a netlike reinforcing structure for lateral bearing capacity of a power transmission tower comprises a reinforcing plate 1, wherein a first fixing plate 2 and a second fixing plate 3 are sequentially bolted to the bottom of the reinforcing plate 1 from left to right, a box body 4 is bolted to the top of one side of the first fixing plate 2 and the second fixing plate 3 opposite to each other, reinforcing blocks 5 are bolted to the two sides of the top of the box body 4, the top of the reinforcing blocks 5 are bolted to the bottom of the reinforcing plate 1, a fixing assembly 6 is arranged in an inner cavity of the box body 4, a first anti-slip pad is adhered to one side of the first fixing plate 2 and the second fixing plate 3 opposite to each other, and a reinforcing net is arranged at the top of the reinforcing plate 1.
Referring to fig. 2 and 4, the fixing assembly 6 comprises a positive and negative screw rod 61, a threaded sleeve 62, a side plate 63 and a handle 64, wherein both sides of the inner cavity of the box body 4 are respectively connected with the positive and negative screw rod 61 through bearings in a rotating way, the positive threads and the negative threads of the positive and negative screw rod 61 are respectively connected with the threaded sleeve 62 in a threaded way, the bottom of the box body 4 is provided with a through groove, the bottom of the threaded sleeve 62 penetrates through the through groove and is bolted with the side plate 63, the right side of the positive and negative screw rod 61 penetrates through the second fixing plate 3 and is bolted with the handle 64, the surface of the handle 64 is provided with a plurality of clamping holes, one side opposite to the side plate 63 is adhered with a second anti-skid pad, and a user can drive the side plate 63 to move through rotating the handle 64, so that the operation is simple and the installation is convenient.
Referring to fig. 1 and 3, a fixed frame 7 is bolted to the center of the bottom of the box 4, the bottom of the fixed frame 7 is connected with a threaded rod 8 through a threaded block, the top of the threaded rod 8 is connected with a top block 9 through a bearing in a rotating manner, and the top block 9 moves upwards to abut against a connecting rod of the power transmission tower.
Referring to fig. 4, a box body 10 is bolted to the top of the right side of the second fixing plate 3, first sliding grooves 11 are formed in two sides of the inner cavity of the box body 10, first sliding blocks are connected to the inner cavity of the first sliding grooves 11 in a sliding mode, moving blocks 12 are bolted to opposite sides of the first sliding blocks, clamping rods 13 are installed in the inner cavity of the moving blocks 12, the tops of the clamping rods 13 penetrate through the box body 10 and extend upwards, bottoms of the clamping rods 13 penetrate through the box body 10 and are clamped with clamping holes, springs are sleeved on the surfaces of the clamping rods 13, the tops of the springs are fixedly connected with the tops of the inner cavities of the box body 10, the tops of the moving blocks 12 are fixedly connected with the bottoms of the springs, and the handles 64 are fixed to avoid the side plates 63 from moving due to rotation of the handles 64 in the use process.
Referring to fig. 2, the tops of two sides of the inner cavity of the box body 4 are respectively bolted with a sliding column 14, the surfaces of the sliding columns 14 are respectively and sequentially connected with a sliding sleeve in a sliding manner from left to right, the bottoms of the sliding sleeves are bolted with the tops of the threaded sleeves 62, the threaded sleeves 62 are limited, the threaded sleeves 62 are assisted to move, the threaded sleeves 62 are prevented from rotating along with the positive and negative screw rods 61, and the side plates 63 are assisted to move.
Referring to fig. 3, a second sliding groove 15 is formed in the back of the inner cavity of the fixed frame 7, a second sliding block is slidably connected in the inner cavity of the second sliding groove 15, the front surface of the second sliding block is bolted with the back surface of the top block 9, the top block 9 is limited, the top block 9 is assisted to move, and the stability of the top block 9 is improved.
The working principle is that a user moves the clamping rod 13 upwards, the clamping rod 13 drives the movable block 12 to move the extrusion spring upwards, then the user rotates the handle 64, the handle 64 drives the positive and negative screw rod 61 to rotate, the positive and negative screw rod 61 drives the threaded sleeve 62 to move reversely, the threaded sleeve 62 drives the side plate 63 to move reversely, the first fixing plate 2 and the second fixing plate 3 are matched to abut against the connecting rod of the power transmission tower, the clamping rod 13 is inserted into the clamping hole to fix the handle 64, then the user rotates the threaded rod 8, the threaded rod 8 drives the top block 9 to move upwards, and the connecting rod of the power transmission tower is abutted against the connecting rod to complete all installation.
The foregoing has shown and described the basic principles, principal features and advantages of the utility model. It will be understood by those skilled in the art that the present utility model is not limited to the embodiments described above, and that the above embodiments and descriptions are merely illustrative of the principles of the present utility model, and various changes and modifications may be made without departing from the spirit and scope of the utility model, which is defined in the appended claims.

Claims (6)

1. A net-shaped reinforcing structure for lateral bearing capacity of a power transmission tower is characterized by comprising a reinforcing plate (1), wherein a first fixing plate (2) and a second fixing plate (3) are sequentially bolted from left to right to the bottom of the reinforcing plate (1), a box body (4) is bolted to the tops of opposite sides of the first fixing plate (2) and the second fixing plate (3), reinforcing blocks (5) are respectively bolted to the two sides of the top of the box body (4), the top of each reinforcing block (5) is bolted to the bottom of the reinforcing plate (1), a fixing assembly (6) is arranged in an inner cavity of the box body (4), a first anti-slip pad is adhered to one opposite sides of the first fixing plate (2) and the second fixing plate (3), and a reinforcing net is arranged on the top of the reinforcing plate (1).
2. The grid-shaped reinforcing structure for lateral bearing capacity of power transmission tower according to claim 1, wherein the fixing component (6) comprises a positive and negative screw rod (61), a threaded sleeve (62), side plates (63) and a handle (64), the positive and negative screw rod (61) is rotatably connected to two sides of an inner cavity of the box body (4) through bearings, the threaded sleeve (62) is connected to positive threads and negative threads of the positive and negative screw rod (61), a through groove is formed in the bottom of the box body (4), the side plates (63) are penetrated through the bottom of the threaded sleeve (62) and are bolted, the right side of the positive and negative screw rod (61) penetrates through the second fixing plate (3) and is bolted with the handle (64), a plurality of clamping holes are formed in the surface of the handle (64), and a second anti-slip pad is adhered to one side opposite to the side of the side plates (63).
3. The reticular reinforcing structure for lateral bearing capacity of power transmission tower according to claim 1, wherein a fixed frame (7) is bolted at the center of the bottom of the box body (4), a threaded rod (8) is connected with the bottom of the fixed frame (7) through a thread block thread, and a top block (9) is connected with the top of the threaded rod (8) through a bearing rotation.
4. The grid-shaped reinforcing structure for lateral bearing capacity of power transmission tower according to claim 1, wherein the top of the right side of the second fixing plate (3) is bolted with a box body (10), two sides of an inner cavity of the box body (10) are provided with first sliding grooves (11), the inner cavity of the first sliding grooves (11) is slidably connected with first sliding blocks, one opposite sides of the first sliding blocks are bolted with moving blocks (12), the inner cavity of each moving block (12) is provided with a clamping rod (13), the top of each clamping rod (13) penetrates through the box body (10) and extends upwards, the bottom of each clamping rod (13) penetrates through the box body (10) and is clamped with a clamping hole, a spring is sleeved on the surface of each clamping rod (13), the top of each spring is fixedly connected with the top of the inner cavity of the box body (10), and the top of each moving block (12) is fixedly connected with the bottom of each spring.
5. The grid-shaped reinforcing structure for lateral bearing capacity of power transmission tower according to claim 1, wherein sliding columns (14) are bolted to the tops of two sides of the inner cavity of the box body (4), sliding sleeves are sequentially and slidably connected to the surfaces of the sliding columns (14) from left to right, and bottoms of the sliding sleeves are bolted to the tops of the threaded sleeves (62).
6. The grid-shaped reinforcing structure for lateral bearing capacity of power transmission tower according to claim 3, wherein the back surface of the inner cavity of the fixed frame (7) is provided with a second sliding groove (15), the inner cavity of the second sliding groove (15) is slidably connected with a second sliding block, and the front surface of the second sliding block is bolted with the back surface of the top block (9).
CN202422960867.3U 2024-12-02 2024-12-02 A mesh reinforcement structure for the lateral bearing capacity of a transmission tower Active CN223446737U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202422960867.3U CN223446737U (en) 2024-12-02 2024-12-02 A mesh reinforcement structure for the lateral bearing capacity of a transmission tower

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202422960867.3U CN223446737U (en) 2024-12-02 2024-12-02 A mesh reinforcement structure for the lateral bearing capacity of a transmission tower

Publications (1)

Publication Number Publication Date
CN223446737U true CN223446737U (en) 2025-10-17

Family

ID=97336915

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202422960867.3U Active CN223446737U (en) 2024-12-02 2024-12-02 A mesh reinforcement structure for the lateral bearing capacity of a transmission tower

Country Status (1)

Country Link
CN (1) CN223446737U (en)

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