Compression-resistant clamp for constructional engineering detection

By designing a load-bearing mechanism that provides buffering and clamping mechanism rotation functions, the problem of damage to clamps on building materials is solved, achieving convenient multi-position detection and protective effect.

CN224137029UActive Publication Date: 2026-04-17YIHUA TRAFFIC ENG INSPECTION CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
YIHUA TRAFFIC ENG INSPECTION CO LTD
Filing Date
2025-04-22
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

Existing clamps do not provide cushioning when applied to building materials, which can easily lead to damage to the clamps or materials, and they cannot be rotated after clamping for testing at different positions.

Method used

A pressure-resistant fixture for building engineering testing is designed, comprising a load-bearing mechanism and a clamping mechanism. The load-bearing mechanism provides cushioning, and the clamping mechanism can rotate to clamp building materials for testing purposes.

Benefits of technology

It achieves protection of the fixture and material during the clamping process, and can perform multi-position detection. It is simple to operate and highly practical.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of constructional engineering, in particular to a compression-resistant clamp for constructional engineering detection, which comprises a stabilizing seat and a support plate, one end of the support plate is fixed on the stabilizing seat, the other end of the support plate is fixedly connected with a platform, and the platform is provided with a long-strip opening; the bearing mechanism is fixedly mounted on the platform and is used for placing a building material to be detected; and the clamping mechanism is installed on the stabilizing base and the platform and used for clamping the building materials on the bearing mechanism, and the building materials can rotate on the clamping mechanism so that detection can be conveniently conducted. According to the compression-resistant clamp for constructional engineering detection, a building material can be clamped, buffering can be provided when the building material is placed on the clamp, the clamp and the building material are effectively protected, meanwhile, after the building material is clamped, the building material can be rotated, and the clamping effect is good. Therefore, different positions of the building material can be detected, operation is simple, and practicability is high.
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Description

Technical Field

[0001] This utility model relates to the field of building engineering, and in particular to a pressure-resistant clamp for building engineering testing. Background Technology

[0002] During construction, in order to ensure the quality of building materials, technical testing of building materials is often required. To ensure the stability of building material testing, building materials often need to be clamped.

[0003] While existing clamps can hold building materials, they still have some problems. First, current clamps do not provide cushioning when the building materials are placed on the clamps, which can easily lead to damage to the clamps or the building materials. Second, current clamps cannot rotate the building materials after clamping them, making it difficult to test different positions of the building materials. Therefore, a pressure-resistant clamp for building engineering testing is needed to solve the above problems. Utility Model Content

[0004] The purpose of this utility model embodiment is to provide a pressure-resistant clamp for building engineering testing, which aims to solve the following problems: existing clamps do not provide cushioning when building materials are on them and cannot rotate the building materials after clamping them.

[0005] This utility model embodiment is implemented as follows: a pressure-resistant clamp for building engineering testing includes: a stabilizing base and a support plate, one end of the support plate being fixed to the stabilizing base and the other end of the support plate being fixedly connected to a platform, the platform having an elongated opening; a bearing mechanism, which is fixedly installed on the platform for placing the building materials to be tested; and a clamping mechanism, which is installed on the stabilizing base and the platform for clamping the building materials on the bearing mechanism, the building materials being able to rotate on the clamping mechanism for testing.

[0006] Preferably, the bearing mechanism includes: a guide sleeve, which is fixedly installed on the platform, a guide rod is slidably disposed on the guide sleeve, and a bearing groove is fixedly disposed on the guide rod; and a compression spring, whose two ends are fixedly connected to the bearing groove and the guide sleeve respectively, for providing cushioning for the building materials placed on the bearing groove.

[0007] Preferably, the clamping mechanism includes: a control component fixedly mounted on a stabilizing base, a threaded column fixedly mounted on the control component, the threaded column being rotatably connected to the platform; a lifting plate threadedly fitted onto the threaded column, pull rods hinged to both sides of the lifting plate, a connecting rod hinged to the end of the pull rod away from the lifting plate, the connecting rod passing through a long slot and fixedly connected to a support ring; a guide component fixedly mounted on the platform, two of which are provided, the two guide components being fixedly connected to the support ring; and a rotating block rotatably disposed within the support ring, a clamping block for clamping building materials fixedly mounted on the rotating block.

[0008] Preferably, the control component includes: a support box, which is fixedly mounted on a stabilizer, a rotatable handle is rotatably mounted on the support box, and a first bevel gear rotatably mounted inside the support box is fixed on the rotatable handle; and a rotating column, which is rotatably mounted on the support box and fixedly connected to a threaded column, and a second bevel gear meshing with the first bevel gear is fixed on the rotating column.

[0009] Preferably, the guide assembly includes: a fixed plate, which is fixedly installed on the platform, a sliding sleeve is fixedly provided on the fixed plate, and a sliding rod that is slidably provided on the sliding sleeve and fixedly connected to the support ring.

[0010] The pressure-resistant clamp for building engineering testing provided by this utility model can not only clamp building materials, but also provide cushioning when the building materials are placed on the clamp, effectively protecting the clamp and the building materials. At the same time, after clamping the building materials, the building materials can be rotated, so that the building materials can be tested at different positions. It is simple to operate and highly practical. Attached Figure Description

[0011] Figure 1 This is a schematic diagram of a pressure-resistant fixture used for testing in building engineering.

[0012] Figure 2 This is a schematic diagram of the control components for a pressure-resistant clamp used in building engineering testing.

[0013] In the attached diagram: 1-stabilizing seat, 2-support plate, 3-platform, 4-bearing mechanism, 5-clamping mechanism, 41-guide sleeve, 42-guide rod, 43-bearing groove, 44-compression spring, 51-control component, 52-threaded column, 53-lifting plate, 54-pull rod, 55-connecting rod, 56-support ring, 57-guide component, 58-rotating block, 59-clamping block, 511-support box, 512-turn handle, 513-first bevel gear, 514-rotating column, 515-second bevel gear, 571-fixed plate, 572-sliding sleeve, 573-sliding rod. Detailed Implementation

[0014] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model 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 merely illustrative of the present utility model and do not limit the present utility model.

[0015] The specific implementation of this utility model will be described in detail below with reference to specific embodiments.

[0016] Please see Figure 1 This utility model provides a pressure-resistant clamp for building engineering testing, the pressure-resistant clamp for building engineering testing includes:

[0017] The system includes a stabilizing base 1 and a support plate 2. One end of the support plate 2 is fixed to the stabilizing base 1, and the other end of the support plate 2 is fixedly connected to a platform 3. The platform 3 has an elongated opening. A bearing mechanism 4 is fixedly installed on the platform 3 and is used to place the building materials to be tested. A clamping mechanism 5 is installed on the stabilizing base 1 and the platform 3 and is used to clamp the building materials on the bearing mechanism 4. The building materials can rotate on the clamping mechanism 5 to facilitate testing.

[0018] When using this pressure-resistant clamp for building engineering testing, first place the building material to be clamped on the bearing mechanism 4. The bearing mechanism 4 can provide a buffer when the building material is placed on it to avoid damage to the building material and the bearing mechanism 4. Then, rotate the control end of the clamping mechanism 5 so that the power output ends of the clamping mechanism 5 can approach each other, thereby clamping and fixing the building material on the bearing mechanism 4. After fixing, the building material can be tested.

[0019] like Figure 1 As shown, in a preferred embodiment of the present invention, the bearing mechanism 4 includes: a guide sleeve 41, which is fixedly installed on the platform 3, a guide rod 42 is slidably disposed on the guide sleeve 41, and a bearing groove 43 is fixedly disposed on the guide rod 42; and a compression spring 44, whose two ends are fixedly connected to the bearing groove 43 and the guide sleeve 41 respectively, for providing cushioning for the building materials placed on the bearing groove 43.

[0020] When building materials are placed on the bearing groove 43, under the pressure of the building materials, the building materials can push the bearing groove 43 and the guide rod 42 to slide along the guide sleeve 41 and compress the compression spring, thereby achieving buffering of the building materials and preventing damage to the building materials and the bearing mechanism 4.

[0021] like Figure 1 As shown, in a preferred embodiment of this utility model, the clamping mechanism 5 includes: a control component 51, which is fixedly installed on the stabilizing base 1, and a threaded post 52 is fixedly provided on the control component 51, the threaded post 52 being rotatably connected to the platform 3; a lifting plate 53, which is threadedly sleeved on the threaded post 52, and a pull rod 54 is hinged to both sides of the lifting plate 53, and a connecting rod 55 is hinged to one end of the pull rod 54 away from the lifting plate 53, the connecting rod 55 passing through the elongated opening and being fixedly connected to a support ring 56; a guide component 57, which is fixedly installed on the platform 3 and there are two of them, the two guide components 57 being fixedly connected to the support ring 56; and a rotating block 58, which is rotatably disposed within the support ring 56, and a clamping block 59 for clamping building materials is fixedly provided on the rotating block 58.

[0022] When clamping the building material, rotating the control component 51 causes the power output end of the control component 51 to drive the threaded column 52 to rotate. The rotation of the threaded column 52 causes the lifting plate 53 to move downward. The lifting plate 53 causes the pull rod 54 to pull the connecting rods 55 on both sides and the support ring 56 closer together, thereby driving the rotating blocks 58 and clamping blocks 59 on both sides to move closer together, thus pressing and fixing the building material on the bearing groove 43. During this process, the guide component 57 can guide the support ring 56. For easy inspection, the building material can be moved. The building material can control the clamping blocks 59 and rotating blocks 58 to rotate on the support ring 56, thereby allowing for inspection of the building material at different positions.

[0023] like Figure 2 As shown, in a preferred embodiment of the present invention, the control component 51 includes: a support box 511, which is fixedly mounted on the stabilizer 1, a handle 512 rotatably mounted on the support box 511, and a first bevel gear 513 rotatably mounted inside the support box 511 fixed on the handle 512; and a rotating column 514, which is rotatably mounted on the support box 511 and fixedly connected to the threaded column 52, and a second bevel gear 515 meshing with the first bevel gear 513 fixed on the rotating column 514.

[0024] When controlling the rotation of the threaded column 52, turn the handle 512. The handle 512 drives the first bevel gear 513 to rotate. The first bevel gear 513 drives the second bevel gear 515 and the rotating column 514 to rotate. The rotation of the rotating column 514 can drive the threaded column 52 to rotate.

[0025] like Figure 1 As shown, in a preferred embodiment of the present invention, the guide component 57 includes: a fixing plate 571, which is fixedly installed on the platform 3, a sliding sleeve 572 is fixedly provided on the fixing plate 571, and a sliding rod 573 that is slidably provided on the sliding sleeve 572 and fixedly connected to the support ring 56.

[0026] The support rings 56 on both sides approach each other, which can drive the slide rods 573 on both sides to slide along the slide sleeve 572, thereby ensuring the stability of the movement of the support rings 56 on both sides.

[0027] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A compression-resistant clamp for use in construction engineering testing, comprising a stabilizing seat and a support plate, characterized in that, One end of the support plate is fixed to the stabilizing seat, and the other end of the support plate is fixedly connected to a platform, which has an elongated opening. The supporting mechanism is fixedly installed on the platform and is used to place the building materials that need to be tested; The clamping mechanism, installed on the stabilizing base and platform, is used to clamp the building materials on the bearing mechanism. The building materials can rotate on the clamping mechanism for inspection.

2. The compression-resistant fixture for construction work inspection according to claim 1, characterized by, The bearing mechanism includes: A guide sleeve is fixedly installed on a platform, and a guide rod is slidably arranged on the guide sleeve, with a bearing groove fixedly arranged on the guide rod; Compression springs, whose two ends are fixedly connected to the bearing groove and the guide sleeve respectively, are used to provide cushioning for building materials placed on the bearing groove.

3. The compression-resistant fixture for construction work inspection according to claim 1, characterized by, The clamping mechanism includes: A control component is fixedly mounted on a stable base, and a threaded column is fixedly provided on the control component, which is rotatably connected to the platform. The lifting plate has its threads threaded onto a threaded post. Pull rods are hinged to both sides of the lifting plate. A connecting rod is hinged to the end of the pull rod away from the lifting plate. The connecting rod passes through a long slot and is fixedly connected to a support ring. A guide assembly is fixedly mounted on the platform, and two such guide assemblies are provided, with the two guide assemblies fixedly connected to the support ring; A rotating block is rotatably mounted inside a support ring, and clamping blocks for clamping building materials are fixedly mounted on the rotating block.

4. The compression-resistant fixture for construction work inspection according to claim 3, characterized by The control components include: A support box is fixedly installed on a stable base. A handle is rotatably provided on the support box, and a first bevel gear is fixedly installed on the handle and rotatably disposed inside the support box. The rotating column is rotatably mounted on the support box and fixedly connected to the threaded column. A second bevel gear that meshes with the first bevel gear is fixed on the rotating column.

5. The compression-resistant fixture for construction work inspection according to claim 3, characterized by The guiding component includes: A fixed plate is fixedly installed on the platform. A sliding sleeve is fixedly installed on the fixed plate, and a sliding rod that is fixedly connected to the support ring is slidably installed on the sliding sleeve.