Anti-cracking concrete pole

By installing fastening, protection, and support components on the surface of cement poles, the problem of cracking caused by temperature differences and transportation is solved, enhancing their stability and protective effect.

CN224260009UActive Publication Date: 2026-05-19SHANDONG SHENGHUI ELECTRIC POWER EQUIPMENT CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHANDONG SHENGHUI ELECTRIC POWER EQUIPMENT CO LTD
Filing Date
2025-05-06
Publication Date
2026-05-19

AI Technical Summary

Technical Problem

Cement poles are prone to cracking due to temperature changes and collisions and compression during transportation, affecting their load-bearing capacity and durability.

Method used

Fastening components, protective components, and support components are installed on the surface of the cement pole. The fastening components are fixed by fastening sleeves, bolts, and nuts, the protective components are protected by anti-collision strips, and the support components are supported by L-shaped plates and support rods to enhance structural stability.

Benefits of technology

It effectively prevents cement poles from cracking due to sun exposure, rain, and temperature changes, and avoids collisions and squeezing during transportation, thus improving the stability and practicality of cement poles.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of cement electric poles, and discloses an anti-cracking cement electric pole which comprises a cement electric pole body, fastening assemblies used for preventing the cement electric pole body from cracking are arranged on the surface of the cement electric pole body at equal intervals, and protection assemblies used for protecting the cement electric pole body are arranged on the surfaces of the multiple sets of fastening assemblies at equal intervals. Supporting assemblies used for supporting the cement electric pole body are arranged at the bottom end of the set of fastening assemblies on the lowest side at equal intervals, and the anti-cracking cement electric pole is provided with the multiple sets of fastening assemblies, so that the stability of the structure of the cement electric pole body can be enhanced; according to the cement electric pole, the cement electric pole body is arranged, so that the possibility that the cement electric pole body is cracked after being exposed to the sun and rain and temperature difference changes when installed outdoors is reduced, meanwhile, the cement electric pole body can be protected by arranging a plurality of sets of protection assemblies, and therefore the problem that the cement electric pole body is cracked due to collision and extrusion during carrying can be better avoided.
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Description

Technical Field

[0001] This utility model relates to the field of cement pole technology, specifically to a crack-resistant cement pole. Background Technology

[0002] Cement poles, also known as reinforced concrete poles, are widely used support structures in power and communication line projects. They are made of cement, sand, and steel bars as the main materials and are manufactured through centrifugal or vibration molding processes. They have advantages such as high strength, good durability, and low cost.

[0003] Cement poles are typically installed outdoors, where they are exposed to sun, rain, and temperature fluctuations for extended periods, which can cause them to crack. Furthermore, expansion and compression during transportation can also lead to cracking. Cracked cement poles suffer from reduced load-bearing capacity and durability, significantly diminishing the practicality of the installation. Therefore, we have developed a crack-resistant cement pole to address these issues. Utility Model Content

[0004] The purpose of this invention is to provide a crack-resistant cement pole, which solves the problem that existing cement poles may crack due to changes in weather temperature and collisions and compression during transportation.

[0005] This utility model provides the following technical solution: a crack-resistant cement pole, comprising a cement pole body, fastening components for preventing cracking of the cement pole body are equidistantly arranged on the surface of the cement pole body, protective components for protecting the cement pole body are equidistantly arranged on the surface of several sets of fastening components, and support components for supporting the cement pole body are equidistantly arranged at the bottom end of the lowest set of fastening components.

[0006] As a preferred embodiment of the above technical solution, each set of fastening components includes two sets of fastening sleeves. Each set of two sets of fastening sleeves is fitted onto the surface of the cement pole body. Each set of fastening sleeves has a connecting plate connected to both ends. Each set of connecting plates has a through hole on its side. Bolts are inserted into the interior of each set of two corresponding sets of through holes. A nut is threaded onto one side of the surface of each bolt. Each set of protective components is disposed on the outer wall of several sets of fastening sleeves.

[0007] The above technical solutions enhance the stability of the cement pole structure, thereby reducing the likelihood of cracking when the cement pole is installed outdoors and exposed to sun, rain, and temperature changes, and greatly increasing the crack resistance of the cement pole.

[0008] As a preferred embodiment of the above technical solution, the inner wall of each set of fastening sleeves is glued with a rubber pad.

[0009] The above technical solution increases the friction between the inner wall of the fastening sleeve and the cement pole body, making the fastening sleeve installation more stable.

[0010] As a preferred embodiment of the above technical solution, each set of protective components includes a crash bar, and each set of crash bars has an mounting plate installed on the side of its surface closest to the concrete pole body. Each set of mounting plates is disposed on the outer wall of several sets of fastening sleeves.

[0011] The above technical solution enables the concrete pole body to be protected by setting several sets of anti-collision strips around its outer side, thereby better avoiding the problem of cracking caused by collision and squeezing during the handling of the concrete pole body.

[0012] As a preferred embodiment of the above technical solution, each set of mounting plates is connected to a plug rod at one end near the cement pole body, each set of fastening sleeves is connected to connecting blocks at equal intervals on the outer wall, each set of connecting blocks has a slot on its side end, and each set of plug rods is inserted into several sets of slots.

[0013] The above technical solution allows the installation of the anti-collision strip to be completed by inserting the plug connected to the mounting plate into several sets of slots corresponding to the longitudinal direction. Similarly, the anti-collision strip can be removed by pulling the plug out of the several sets of slots. This makes it more convenient to remove the anti-collision strip when it is damaged or no longer needed.

[0014] As a preferred embodiment of the above technical solution, each set of support components includes an L-shaped plate, each set of L-shaped plates is installed at the bottom end of the fastening sleeve, each set of L-shaped plates has a support rod connected to its inner wall, and each set of L-shaped plates has ground nails installed at equal intervals at its bottom end.

[0015] The above technical solution can provide support for the concrete pole body, thereby increasing the stability of the concrete pole body.

[0016] As a preferred embodiment of the above technical solution, each set of support rods is arranged at an angle, and each set of L-shaped plates and support rods can form a triangle.

[0017] Through the above technical solution, the triangle has stability, which makes the L-shaped plate and support rod more supportive.

[0018] Compared with the prior art, the beneficial effects of this utility model are:

[0019] This invention enhances the stability of the cement pole structure by incorporating several sets of fastening components, thereby reducing the likelihood of cracking when the cement pole is installed outdoors and exposed to sun, rain, and temperature changes. Simultaneously, the inclusion of several sets of protective components protects the cement pole, better preventing cracking caused by collisions and compression during transport. Furthermore, the presence of supporting components provides additional support, further increasing the stability of the cement pole. Attached Figure Description

[0020] Figure 1 A schematic diagram of the overall structure of a crack-resistant cement pole;

[0021] Figure 2 A schematic diagram of the disassembled structure of a crack-resistant cement pole;

[0022] Figure 3 A schematic diagram of the disassembled fastening assembly of a crack-resistant cement pole;

[0023] Figure 4 for Figure 2 An enlarged diagram of A in the diagram.

[0024] In the diagram: 1. Cement pole body; 2. Fastening assembly; 21. Fastening sleeve; 22. Connecting plate; 23. Through hole; 24. Bolt; 25. Nut; 26. Rubber pad; 27. Connecting block; 28. Slot; 3. Protective assembly; 31. Anti-collision strip; 32. Mounting plate; 33. Pole; 4. Support assembly; 41. L-shaped plate; 42. Support rod; 43. Ground nail. Detailed Implementation

[0025] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention.

[0026] like Figure 1 and Figure 3As shown, this utility model provides a technical solution: a crack-resistant cement pole, including a cement pole body 1. Fastening components 2 for preventing cracking of the cement pole body 1 are equidistantly arranged on the surface of the cement pole body 1. Each set of fastening components 2 includes two sets of fastening sleeves 21. Each pair of fastening sleeves 21 is fitted onto the surface of the cement pole body 1. Connecting plates 22 are connected to both ends of each set of fastening sleeves 21. Through holes 23 are opened on the side ends of each set of connecting plates 22. Bolts 24 are inserted into the interior of each pair of corresponding through holes 23. Nuts 25 are threaded onto one side of the surface of each bolt 24. Each set of protective components 3 is disposed on the outer wall of several sets of fastening sleeves 21. This structure allows two sets of fastening sleeves 21 to be symmetrically fitted onto the surface of the cement pole body 1 in sequence, so that both sets of fastening sleeves 21 are protected. The connecting plates 22 on both sides move closer to each other, so that the two sets of connecting plates 22 on each side drive the two sets of through holes 23 to correspond. At this time, the bolts 24 can be inserted into the corresponding two sets of through holes 23. Finally, the nuts 25 are put on one side of the bolts 24 and tightened, so that the two sets of fastening sleeves 21 are tightly fitted on the surface of the cement pole body 1 until several sets of fastening components 2 are installed. This can enhance the structural stability of the cement pole body 1, thereby reducing the possibility of the cement pole body 1 cracking when installed outdoors and subjected to sun, rain and temperature changes. It greatly increases the crack resistance of the cement pole body 1. The inner wall of each set of fastening sleeves 21 is glued with rubber pads 26, which can increase the friction between the inner wall of the fastening sleeve 21 and the cement pole body 1, making the fastening sleeves 21 more stable.

[0027] As one implementation method in this embodiment, such as Figure 2 , Figure 3 and Figure 4As shown, protective components 3 for protecting the concrete pole body 1 are equidistantly arranged on the surface of several sets of fastening components 2. Each set of protective components 3 includes a crash bar 31, and an mounting plate 32 is installed on the side of each crash bar 31 closest to the concrete pole body 1. Each mounting plate 32 is set on the outer wall of several sets of fastening sleeves 21, so that by surrounding the concrete pole body 1 with several sets of crash bars 31, the concrete pole body 1 is protected, thereby better avoiding the problem of cracking caused by collision and squeezing during the handling of the concrete pole body 1. Each set of mounting plates 32 is close to the concrete pole body 1. One end of each is connected to a rod 33, and each set of fastening sleeves 21 has connecting blocks 27 equidistantly connected to its outer wall. Each set of connecting blocks 27 has a slot 28 on its side end, and each set of rods 33 is inserted into several sets of slots 28. This structure allows the installation of the anti-collision strip 31 to be completed by inserting the rods 33 connected to the mounting plate 32 into several sets of slots 28 corresponding to the longitudinal direction. Similarly, the anti-collision strip 31 can be disassembled by pulling the rods 33 out of several sets of slots 28. This makes it more convenient to remove the anti-collision strip 31 when it is damaged or no longer needed.

[0028] As one implementation method in this embodiment, such as Figure 1 and Figure 2 As shown, the bottom of the lowest set of fastening components 2 is provided with support components 4 for supporting the cement pole body 1 at equal intervals. Each set of support components 4 includes an L-shaped plate 41, which is installed at the bottom of the fastening sleeve 21. The inner wall of each set of L-shaped plates 41 is connected to a support rod 42, and the bottom of each set of L-shaped plates 41 is provided with ground nails 43 at equal intervals. This structure allows the fastening sleeves 21 to be fitted onto the surface of the cement pole body 1, while the fastening sleeves 21 drive several sets of L-shaped plates 41 and support rods 42 to be installed around the cement pole body 1. Several sets of ground nails 43 installed at the bottom of the L-shaped plates 41 are inserted into the ground, which can support the cement pole body 1 and increase its stability. Each set of support rods 42 is set at an inclination, and each set of L-shaped plates 41 and support rods 42 can form a triangle. The triangle has stability, which makes the support of the L-shaped plates 41 and support rods 42 better.

[0029] Working principle: If several sets of fastening components 2 need to be installed on the surface of the cement pole body 1, simply put two sets of fastening sleeves 21 symmetrically on the surface of the cement pole body 1 in sequence, so that the two sets of fastening sleeves 21 drive the connecting plates 22 on both sides to move closer to each other, so that the two sets of connecting plates 22 on each side drive the two sets of through holes 23 to correspond. Then, the bolts 24 can be inserted into the corresponding two sets of through holes 23. Finally, the nuts 25 are put on one side of the bolts 24 and tightened, so that the two sets of fastening sleeves 21 are tightly fitted on the surface of the cement pole body 1 until all the fastening components 2 are installed. This can enhance the structural stability of the cement pole body 1, thereby reducing the possibility of the cement pole body 1 cracking when installed outdoors and subjected to sun, rain and temperature changes, and greatly increasing the crack resistance of the cement pole body 1.

[0030] If it is necessary to move the cement pole body 1, simply insert the plug 33 connected to the mounting plate 32 into the corresponding slots 28 in sequence. This way, several sets of anti-collision strips 31 can be set around the outside of the cement pole body 1 to protect the cement pole body 1, thereby better avoiding the problem of cracking caused by collision and squeezing during the handling of the cement pole body 1.

[0031] Finally, when installing the bottommost set of fastening components 2, while the two sets of fastening sleeves 21 are fitted onto the surface of the cement pole body 1, the fastening sleeves 21 drive several sets of L-shaped plates 41 and support rods 42 to be installed around the cement pole body 1, and several sets of ground nails 43 installed at the bottom of the L-shaped plates 41 are inserted into the ground. This can support the cement pole body 1, thereby increasing the stability of the cement pole body 1 and greatly increasing the practicality of the device.

[0032] The above embodiments are only used to illustrate the technical solution of this utility model, and are not intended to limit it.

Claims

1. A crack-resistant cement pole, comprising a cement pole body (1), characterized in that: The surface of the cement pole body (1) is provided with fastening components (2) at equal intervals to prevent the cement pole body (1) from cracking. The surfaces of several sets of fastening components (2) are provided with protective components (3) at equal intervals to protect the cement pole body (1). The bottom end of the lowest set of fastening components (2) is provided with supporting components (4) at equal intervals to support the cement pole body (1). Each set of fastening components (2) includes two sets of fastening sleeves (21). Each two sets of fastening sleeves (21) are fitted onto the surface of the cement pole body (1). Each set of fastening sleeves (21) has a connecting plate (22) connected to both ends. Each set of connecting plates (22) has a through hole (23) on its side. Each set of two corresponding sets of through holes (23) has a bolt (24) inserted inside. Each set of bolts (24) has a nut (25) threaded onto one side of its surface. Each set of protective components (3) is set on the outer wall of several sets of fastening sleeves (21). Each set of protective components (3) includes a crash bar (31), and each set of crash bars (31) has an mounting plate (32) installed on the side of its surface near the cement pole body (1). Each set of mounting plates (32) is set on the outer wall of several sets of fastening sleeves (21).

2. The crack-resistant cement pole according to claim 1, characterized in that: Each set of fastening sleeves (21) has a rubber pad (26) glued to its inner wall.

3. The crack-resistant cement pole according to claim 1, characterized in that: Each set of mounting plates (32) is connected to a plug rod (33) at one end near the cement pole body (1). Each set of fastening sleeves (21) has connecting blocks (27) equidistantly connected to its outer wall. Each set of connecting blocks (27) has a slot (28) on its side end. Each set of plug rods (33) is inserted into several sets of slots (28).

4. A crack-resistant cement pole according to claim 1, characterized in that: Each set of support components (4) includes an L-shaped plate (41), each set of L-shaped plates (41) is installed at the bottom end of the fastening sleeve (21), each set of L-shaped plates (41) has a support rod (42) connected to the inner wall, and each set of L-shaped plates (41) has ground nails (43) installed at equal intervals at the bottom end.

5. A crack-resistant cement pole according to claim 4, characterized in that: Each set of support rods (42) is arranged at an angle, and each set of L-shaped plates (41) and support rods (42) can form a triangle.