Settlement data identification device
By combining embedded parts with wedge-shaped blocks and supporting components, the problem of concrete cracking caused by expansion bolts during the installation of settlement data identification equipment was solved, achieving efficient and stable equipment installation.
Patent Information
- Application Number
- CN202520007935.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-03
- Publication Date
- 2025-12-16
- Estimated Expiration
- 2035-01-03
AI Technical Summary
Existing settlement data identification equipment is prone to concrete cracking when installed using expansion bolts, which affects the stability and safety of the equipment.
The system employs a combination structure of embedded parts and wedge-shaped blocks, along with support and connection components, including support plates, mounting pins, bolts, and tapered structures. A stable connection is achieved through the engagement of wedge-shaped blocks with slots and locking blocks with locking grooves.
It improves the connection strength and stability of the installation structure, simplifies the installation process, increases installation efficiency, avoids concrete cracking, and ensures the stable installation of the equipment.
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Figure CN223678493U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to settlement data recognition equipment installation technical field especially relates to a settlement data recognition device. BACKGROUND
[0002] The settlement data recognition equipment is a kind of equipment for construction, civil engineering and other fields, to monitor and identify the settlement of structure or foundation. These devices usually measure the settlement change of building, road, bridge and other structures, provide data support for engineering construction, structure safety monitoring, maintenance, settlement data recognition equipment usually needs to be monitored in fixed position for a long time, to ensure that the equipment is not disturbed by external interference in the working process, avoid affecting the measurement result due to vibration or position change, so it needs to use settlement data recognition equipment installation structure.
[0003] The settlement data recognition equipment installation structure can be divided into many types, such as ground fixed type installation structure, wall or column hanging type installation structure and underground installation structure, and the installation structure type of settlement data recognition equipment is various according to installation site, equipment property, monitoring demand and other factors, the appropriate installation method can be selected to ensure that the equipment is stable and accurate in settlement data collection, wherein the ground fixed type installation structure is usually used for the case that the equipment needs to be fixed on the ground, and is suitable for ordinary ground, hardened ground or cement ground, etc., the concrete foundation is poured on the ground, and the equipment is fixed on the foundation by bolt.
[0004] In the prior art, when the equipment is installed into concrete by using expansion bolt, the concrete is prone to crack due to excessive expansion force, especially when the strength of concrete material is uneven or there is gap in construction, which will affect the stability and safety of the equipment. Therefore, how to solve the problem of concrete cracking caused by expansion bolt through more stable fixing method is a difficult problem to be solved in current installation structure design. UTILITY MODEL CONTENTS
[0005] In order to make up for the above shortcomings, the utility model provides a settlement data recognition device, which aims to improve the problem that the settlement data recognition equipment is directly installed into concrete by expansion bolt, which is easy to cause concrete cracking.
[0006] In order to achieve the above purpose, the utility model adopts the following technical scheme: a settlement data recognition device, comprising concrete, the top of the concrete is provided with a sensor, the bottom of the sensor is provided with a support assembly, the inside of the concrete is provided with a connecting assembly.
[0007] The connecting assembly comprises a pre-embedded part, the outer wall of the pre-embedded part is fixedly connected with a wedge-shaped clamping block, an installation groove and a clamping groove are arranged in the interior of the concrete, the pre-embedded part is slidably connected in the installation groove, and the wedge-shaped clamping block is embedded with the clamping groove.
[0008] As a further description of the above technical solution:
[0009] The support assembly comprises a support plate, the top of the support plate is fixedly connected with the bottom of the sensor, the outer wall of the support plate is fixedly connected with an installation tongue piece, and the installation tongue piece is internally provided with a connecting assembly.
[0010] As a further description of the above technical solution:
[0011] The connecting assembly comprises an installation pin, the outer wall of the installation pin is fixedly connected with a limiting plate, and the installation pin is slidably connected in the installation tongue piece.
[0012] As a further description of the above technical solution:
[0013] The pre-embedded part is internally provided with a locking groove and a positioning groove.
[0014] As a further description of the above technical solution:
[0015] The outer wall of the installation pin is fixedly connected with a positioning block, and the positioning block is slidably connected in the positioning groove.
[0016] As a further description of the above technical solution:
[0017] The installation pin is internally threadedly connected with a bolt, and one end of the bolt is fixedly connected with an outer taper column.
[0018] As a further description of the above technical solution:
[0019] The installation pin is internally slidably connected with an inner taper piece, and one side of the inner taper piece is fixedly connected with a locking block.
[0020] As a further description of the above technical solution:
[0021] The inner taper piece is matched with the inner wall of the outer taper column, and the locking block is embedded with the locking groove.
[0022] The utility model has the advantages of the following:
[0023] 1、the utility model discloses, first, the pre-embedded part of pre-embedded part outer wall sets up a plurality of, makes pre-embedded part insert installation groove, subsequently wedge-shaped clamping block and clamping groove are embedded and fixed in concrete and are pre-embedded, reached the effect that improved the connecting strength, solved the problem that when installing settlement data identification equipment, directly through expansion bolt and hit in concrete, easy to cause concrete cracking, improved the practicality of installation structure.
[0024] 2、The utility model discloses, rotation bolt drives outer taper column to drop, and outer taper column drives locking block to extend mounting pin through inner taper piece, and locking block is embedded in locking groove and is locked, has reached the effect that it is convenient to install, has solved the problem that the operator needs to use large force to tighten when installing, has improved the installation efficiency of installation structure. BRIEF DESCRIPTION OF DRAWINGS
[0025] Figure 1 A three-dimensional view of a settlement data recognition device is provided for the utility model;
[0026] Figure 2 A pre-embedded part structure schematic view of a settlement data recognition device is provided for the utility model;
[0027] Figure 3 An internal structure schematic view of a mounting pin of a settlement data recognition device is provided for the utility model.
[0028] LEGEND:
[0029] 1, concrete;2, support plate;3, mounting tongue piece;4, sensor;5, pre-embedded part;6, wedge-shaped clamping block;7, mounting groove;8, clamping groove;9, positioning groove;10, locking groove;11, mounting pin;12, limiting plate;13, bolt;14, outer taper column;15, inner taper piece;16, locking block;17, positioning block. DETAILED DESCRIPTION
[0030] The technical solutions in the embodiments of the utility model will be described clearly and completely in combination with the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the utility model.
[0031] REFERENCE Figure 1 and Figure 2The utility model provides a kind of embodiment: a settlement data recognition device, including concrete 1, sensor 4 is arranged at the top of concrete 1, support assembly is arranged at the bottom of sensor 4, and connecting assembly is arranged in concrete 1;Connecting assembly includes embedded part 5, and wedge-shaped clamping block 6 is fixedly connected on the outer wall of embedded part 5, and mounting groove 7 and clamping groove 8 are set in concrete 1, embedded part 5 is slidably connected in mounting groove 7, and wedge-shaped clamping block 6 is embedded with clamping groove 8, to fix the position of embedded part 5, and ensure that embedded part 5 is stably kept in fixed state in concrete 1.The design can effectively prevent the displacement of embedded part 5 in the hardening process of concrete 1, and ensure the stability when equipment is installed.Support assembly includes support plate 2, and support plate 2 top is fixedly connected at the bottom of sensor 4, and provides stable support for sensor 4, to ensure that it does not displace or tilt during operation.Support plate 2 outer wall is fixedly connected with mounting tongue piece 3, and connecting assembly is arranged in mounting tongue piece 3, and connecting assembly includes mounting pin 11, and limit plate 12 is fixedly connected on the outer wall of mounting pin 11, and mounting pin 11 is slidably connected in mounting tongue piece 3, and mounting pin 11 is connected with support plate 2 and sensor 4 by sliding connection, to facilitate the installation, disassembly or position adjustment of sensor 4;
[0032] Specifically, when embedded part 5 is accurately placed in concrete 1, a plurality of protrusions are designed on the outer wall of embedded part 5 to ensure that it is firmly inserted into the pre-provided mounting groove 7, forming a stable connection. Subsequently, wedge-shaped clamping block 6 is cleverly embedded with clamping groove 8, thereby being fixed inside concrete 1, ensuring that embedded part 5 is firmly embedded during construction and preventing any loosening or displacement. This embedding method not only enhances the stability of the connection but also improves the overall compressive strength of the structure. Then, sensor 4 is stably placed on concrete 1 through mounting tongue piece 3 on both sides of support plate 2, and precise connection is achieved through mounting pin 11, ensuring that the installation of sensor 4 is not affected by external environment. Through this series of precise connection measures, not only the installation accuracy of the equipment is ensured, but also the connection strength is significantly improved, enhancing the durability and stability of the structure, achieving the expected efficient installation effect.
[0033] Refer to Figure 3The locking groove 10 is designed to cooperate with the locking block 16 to ensure that the connecting assembly can be firmly locked during installation to prevent loosening caused by external force or vibration. The pre-embedded part 5 also has a positioning groove 9 inside for providing an accurate installation position to ensure accurate docking and fixing of each component. The positioning block 17 is fixedly connected to the outer wall of the mounting pin 11 and is slidably connected inside the positioning groove 9. During installation, the mounting pin 11 can be guided to be positioned correctly and avoid deviation, thereby improving the accuracy and stability of installation. The mounting pin 11 is internally threaded with a bolt 13, and the outer tapered column 14 is fixedly connected to one end of the bolt 13. The outer tapered column 14 provides additional mechanical support through its tapered structure to enhance the stability of the entire installation structure. The inner tapered piece 15 is slidably connected inside the mounting pin 11, and the locking block 16 is fixedly connected to one side of the inner tapered piece 15. The locking block 16 can be tightly fitted with the locking groove 10 inside the pre-embedded part 5, thereby achieving firm locking of the structure. The inner tapered piece 15 is in close contact with the inner wall of the outer tapered column 14, and the contact surface of the tapered structure is used to provide stable compression force to ensure that the fitting state of the locking block 16 in the locking groove 10 remains unchanged, achieving firm fixing effect.
[0034] Specifically, when tightening the sensor 4 and the concrete 1, first, the mounting pin 11 is inserted into the pre-embedded part 5 through the mounting tongue 3 on the support plate 2 to ensure that the mounting pin 11 is tightly fitted with the pre-embedded part 5, increasing the stability of the fixing. At the same time, the concrete 1 is precisely positioned by the positioning block 17 sliding on the outer wall of the positioning groove 9 to ensure that the position of the sensor 4 is correct. Then, the bolt 13 is rotated to slowly lower the outer tapered column 14, which cleverly pushes the locking block 16 out through the inner tapered piece 15 and accurately fixes the mounting pin 11. The locking block 16 is firmly embedded in the locking groove 10 to ensure that the mounting pin 11 is stable and immovable, further enhancing the firmness of the entire structure. The design of this process not only simplifies the installation steps, but also greatly improves the installation efficiency and reliability, ensuring the stable installation of the sensor 4 in the concrete 1 and avoiding the problem of looseness or instability, achieving a convenient and efficient installation effect.
[0035] Working principle: when using the settlement data recognition device installation structure, first, the pre-embedded part 5 is placed in the concrete 1, and the pre-embedded part 5 on the outer wall of the pre-embedded part 5 is provided with multiple pre-embedded parts 5 inserted into the installation groove 7, then the wedge-shaped clamping block 6 is embedded and fixed in the concrete 1 through the clamping groove 8 for pre-embedding, then the sensor 4 is placed on the concrete 1 through the mounting tongue 3 on both sides of the support plate 2 and connected through the mounting pin 11, achieving the effect of improving the connection strength;
[0036] When the sensor 4 is fastened with the concrete 1, the installation pin 11 is inserted into the embedded part 5 through the installation tongue 3, the concrete 1 is positioned by sliding on the outer wall of the positioning groove 9 through the positioning block 17, then the outer taper column 14 is lowered by rotating the bolt 13, the outer taper column 14 drives the locking block 16 to extend out of the installation pin 11 through the inner taper piece 15, the locking block 16 is embedded into the locking groove 10 to be locked, so the effect of facilitating the installation of the sensor 4 is achieved.
[0037] Finally, it should be noted that: the above only for the preferred embodiments of the present application, and not for limiting the present application, although the foregoing detailed description of the present application is made with reference to the foregoing embodiments, for those skilled in the art, it still can be modified, or part of the technical features of the equivalent replacement, any modification, equivalent replacement, improvement, etc., which are made within the spirit and principles of the present application, should be included in the scope of protection of the present application.
Claims
1. A settlement data recognition device comprising concrete (1), characterized in that: The concrete (1) top is provided with a sensor (4), the sensor (4) bottom is provided with a support assembly, the concrete (1) is provided with a connecting assembly inside; The connecting assembly includes a embedded part (5), the embedded part (5) outer wall is fixedly connected with a wedge-shaped block (6), the concrete (1) is provided with an installation slot (7) and a clamping groove (8) inside, the embedded part (5) is slidably connected in the installation slot (7), the wedge-shaped block (6) is embedded with the clamping groove (8).
2. The settling data recognition device of claim 1, wherein: The support assembly includes a support plate (2), the support plate (2) top is fixedly connected with the sensor (4) bottom, the support plate (2) outer wall is fixedly connected with an installation tongue (3), the installation tongue (3) is provided with a connecting assembly inside.
3. A sedimentation data recognition device according to claim 2, characterized in that The connecting assembly includes a mounting pin (11), the mounting pin (11) outer wall is fixedly connected with a limit plate (12), the mounting pin (11) is slidably connected in the installation tongue (3).
4. The settling data recognition device of claim 1, wherein: The embedded part (5) is provided with a locking groove (10) inside, and the embedded part (5) is provided with a positioning groove (9) inside.
5. The settling data identification apparatus of claim 3, wherein: The mounting pin (11) outer wall is fixedly connected with a positioning block (17), and the positioning block (17) is slidably connected in the positioning groove (9).
6. The settling data identification apparatus of claim 3, wherein: The mounting pin (11) is screwed with a bolt (13) inside, one end of the bolt (13) is fixedly connected with an outer tapered column (14).
7. A sedimentation data recognition apparatus according to claim 6, characterized in that The mounting pin (11) is slidably connected with an inner tapered piece (15) inside, one side of the inner tapered piece (15) is fixedly connected with a locking block (16).
8. A sedimentation data recognition apparatus according to claim 7, characterized in that The inner tapered piece (15) is fitted with the inner wall of the outer tapered column (14), and the locking block (16) is embedded with the locking groove (10).