A high formwork frame body stress performance monitoring device

By introducing clamping, heat dissipation, and dust removal mechanisms into the high formwork support monitoring device, the problem of dust affecting heat dissipation is solved, achieving efficient heat dissipation and dust removal, and ensuring monitoring accuracy.

CN224535380UActive Publication Date: 2026-07-21NANJING CHEM CONSTR
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
NANJING CHEM CONSTR
Filing Date
2025-08-08
Publication Date
2026-07-21

AI Technical Summary

Technical Problem

In dusty construction environments, the heat dissipation mechanism of high formwork frames is prone to dust accumulation, affecting heat dissipation efficiency.

Method used

A monitoring device including clamping, heat dissipation and dust removal mechanisms was designed. The clamping mechanism is used to fix the monitoring instrument, and the heat dissipation mechanism filters dust through a fan and an electrostatic dust removal mechanism, thereby improving heat dissipation efficiency and reducing dust accumulation.

Benefits of technology

It effectively removes dust, improves the heat dissipation efficiency and installation convenience of the monitoring device, and ensures monitoring accuracy.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model provides a kind of stress performance monitoring device for high formwork support body, it is related to stress performance monitoring technical field, including stand, monitoring instrument is installed in the stand, clamping mechanism is arranged in the stand, heat dissipation mechanism is arranged in the stand, dust removal mechanism is arranged in the heat dissipation mechanism;Among them, the clamping mechanism is used to clamp fixed monitoring instrument, the heat dissipation mechanism is used for monitoring instrument heat dissipation, the dust removal mechanism is used to remove dust inhaled in air by heat dissipation mechanism;The utility model first installs monitoring instrument in stand to monitor the stress performance of stand, and monitoring instrument is clamped and fixed by clamping mechanism, to reduce the possibility that monitoring instrument position deviates and influences monitoring accuracy, the heat dissipation speed of monitoring instrument is increased by heat dissipation mechanism, and dust inhaled in air in device is filtered by dust removal mechanism simultaneously, to reduce the possibility that dust is continuously accumulated in device interior.
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Description

Technical Field

[0001] This utility model relates to the field of stress performance monitoring technology, specifically to a stress performance monitoring device for high formwork support structures. Background Technology

[0002] In the construction of buildings with high floor heights, it is usually necessary to erect high-support formwork to pour the upper beam and slab structure. High-support formwork is a support system for large buildings with high floor heights, large spans, and high risks, formed by connecting several scaffolding pipes. With the development of my country's economy and technology, large structures such as high-rise buildings, bridges, and TV towers are constantly emerging and developing rapidly, and the requirements for the design and construction of scaffolding projects are becoming increasingly higher. Therefore, the stability monitoring of scaffolding projects is particularly important.

[0003] In the existing technology, a heat dissipation mechanism is set up to dissipate heat from the high formwork frame. However, there is a lot of dust on the construction site, so the heat dissipation mechanism is prone to accumulating a lot of dust inside, which can affect the efficiency of the heat dissipation mechanism.

[0004] This utility model proposes a stress performance monitoring device for high formwork support frames to solve the problem that while high formwork support frames can be cooled by setting up a heat dissipation mechanism, there is a lot of dust on construction sites, so the heat dissipation mechanism is prone to accumulate a lot of dust, which can affect the efficiency of the heat dissipation mechanism. Utility Model Content

[0005] The purpose of this invention is to overcome the problem in the above-mentioned background technology that high formwork supports use heat dissipation mechanisms to heat the device, but there is a lot of dust on the construction site, so the heat dissipation mechanism is prone to accumulate a lot of dust, which can affect the efficiency of the heat dissipation mechanism.

[0006] Based on the above technical concept, the technical solution adopted by this utility model is as follows:

[0007] A stress performance monitoring device for a high formwork support frame includes a vertical frame, a monitoring instrument installed inside the vertical frame, a clamping mechanism provided inside the vertical frame, a heat dissipation mechanism provided inside the vertical frame, and a dust removal mechanism provided inside the heat dissipation mechanism.

[0008] The clamping mechanism is used to clamp and fix the monitoring instrument, the heat dissipation mechanism is used to dissipate heat from the monitoring instrument, and the dust removal mechanism is used to remove dust from the air drawn in by the heat dissipation mechanism.

[0009] Further defining the above technical solution, the frame includes a column and a mounting cabinet, the mounting cabinet is fixedly mounted on the top of the column, the column is provided with a number of positioning bolts, and a sealing plate is hinged to the front side of the mounting cabinet.

[0010] Further defining the above technical solution, the monitoring instrument includes a monitor and a monitoring end, the monitoring end being movably inserted into the column, and the monitor being movably disposed in the mounting cabinet and connected to the top of the monitoring end.

[0011] Further defining the above technical solution, the clamping mechanism includes a rotating rod and two clamping plates. The rotating rod has two external threads, and the two clamping plates are threaded onto the rotating rod. The opposite sides of the two clamping plates abut against the side wall of the monitor. A steel cable is wound around the rotating rod, and the end of the steel cable away from the rotating rod is fixedly connected to the sealing plate. Both ends of the rotating rod are connected to the inner wall of the installation cabinet by torsion springs.

[0012] Further defining the above technical solution, the clamping plate includes an internal threaded ring and a T-shaped plate. The internal threaded ring is threadedly sleeved on the rotating rod and is adapted to the external thread. The T-shaped plate is fixedly mounted on the internal threaded ring and slides in cooperation with the inner wall of the mounting cabinet.

[0013] Further defining the above technical solution, the heat dissipation mechanism includes an air inlet and a fan. The air inlet is located on the side wall of the mounting cabinet and communicates with the inner wall of the mounting cabinet. The fan is located inside the air inlet. The air inlet includes a pretreatment chamber and an electrostatic dust removal area. The inner bottom wall of the pretreatment chamber is a beveled surface.

[0014] Further defining the above technical solution, the dust removal mechanism includes several guide plates and electrostatic dust collection plates. The guide plates are arranged alternately at a 30° angle in the pretreatment chamber, and the electrostatic dust collection plates are arranged in the electrostatic dust removal area. A vibration motor is installed on the electrostatic dust collection plates.

[0015] As a further limitation of the above technical solution, a collection box is movably inserted into the front side of the installation cabinet, and the collection box is located below the electrostatic dust collection plate.

[0016] Compared with the prior art, the beneficial effects of this utility model are:

[0017] The device has a better dust removal effect: the heat dissipation mechanism increases the heat dissipation speed of the monitor, and the dust removal mechanism filters the dust in the air drawn into the device to reduce the possibility of dust accumulating inside the device.

[0018] The device is easier to install: First, the monitor is installed in the frame to monitor the stress performance of the frame, and then the monitor is clamped and fixed by the clamping mechanism to reduce the possibility of the monitor shifting and affecting the accuracy of the monitoring. Attached Figure Description

[0019] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0020] Figure 1 This is a three-dimensional structural diagram of a stress performance monitoring device for a high formwork support frame according to the present invention;

[0021] Figure 2 This is a partial three-dimensional cross-sectional view of a stress performance monitoring device for a high formwork support frame according to this utility model;

[0022] Figure 3 This is a partial three-dimensional unfolded cross-sectional view of a stress performance monitoring device for a high formwork support frame according to this utility model.

[0023] The components include: 1. Frame; 11. Column; 12. Mounting cabinet; 13. Positioning bolt; 14. Sealing plate; 15. Collection box; 2. Monitor; 21. Monitor; 22. Monitoring end; 3. Clamping mechanism; 31. Rotating rod; 32. Clamping plate; 321. Internal threaded ring; 322. T-shaped plate; 33. Steel cable; 34. Torsion spring; 4. Heat dissipation mechanism; 41. Air inlet; 411. Pretreatment chamber; 412. Electrostatic dust removal area; 42. Fan; 5. Dust removal mechanism; 51. Guide plate; 52. Electrostatic dust collection plate; 53. Vibration motor. Detailed Implementation

[0024] The following is in conjunction with the appendix Figures 1-3 The present invention will be described in further detail below.

[0025] Please refer to the attached diagram in the instruction manual. Figure 1 , Figure 2 and Figure 3 The present invention provides an embodiment of a stress performance monitoring device for a high formwork support frame, comprising a support frame 1, the support frame 1 including a column 11 and a mounting cabinet 12, the mounting cabinet 12 being fixedly mounted on the top of the column 11, the column 11 being provided with a plurality of positioning bolts 13, and a sealing plate 14 being hinged to the front side of the mounting cabinet 12. The column 11 facilitates the support of the mounting cabinet 12, the positioning bolts 13 facilitate the fixing of the column 11 to the ground, and the sealing plate 14 facilitates the sealing of the mounting cabinet 12.

[0026] A monitoring instrument 2 is installed inside the support frame 1. The monitoring instrument 2 includes a monitor 21 and a monitoring end 22. The monitoring end 22 is movably inserted into the column 11. The monitor 21 is movably installed inside the mounting cabinet 12 and connected to the top of the monitoring end 22. When the monitor 21 is installed inside the mounting cabinet 12, it is connected to the monitoring end 22, which facilitates the monitoring of the stress performance of the device through the cooperation of the monitor 21 and the monitoring end 22.

[0027] It should be noted that monitor 2 is existing equipment.

[0028] The stand 1 is equipped with a clamping mechanism 3, which includes a rotating rod 31 and two clamping plates 32. The rotating rod 31 has two external threads, and the two clamping plates 32 are threaded onto the rotating rod 31. The opposite side of the two clamping plates 32 abuts against the side wall of the monitor 21. A steel cable 33 is wound around the rotating rod 31. The end of the steel cable 33 away from the rotating rod 31 is fixedly connected to the sealing plate 14. The two ends of the rotating rod 31 are connected to the inner wall of the installation cabinet 12 by torsion springs 34. When the operator opens the sealing plate 14, the steel cable 33 is pulled to move synchronously. Then, the rotating rod 31 is rotated by the steel cable 33, and the two clamping plates 32 are expanded, thereby causing the monitor 2 to lose its limit, which makes it easy for the operator to disassemble the monitor 2. When the operator closes the sealing plate 14, the rotating rod 31 is rotated by the torsion springs 34 to wind up the steel cable 33.

[0029] The clamping plate 32 includes an internal threaded ring 321 and a T-shaped plate 322. The internal threaded ring 321 is threaded onto the rotating rod 31 and is adapted to the external thread. The T-shaped plate 322 is fixedly mounted on the internal threaded ring 321 and slides in cooperation with the inner wall of the mounting cabinet 12. When the rotating rod 31 rotates, the internal threaded ring 321 causes the T-shaped plate 322 to move in the opposite direction along the axial direction of the rotating rod 31, and the two clamping plates 32 move in opposite directions. When the two clamping plates 32 contract, it is convenient to clamp and fix the monitor 2. When the two clamping plates 32 expand, it causes the monitor 2 to lose its limit, which makes it convenient for the operator to disassemble the monitor 2.

[0030] The support frame 1 is equipped with a heat dissipation mechanism 4, which includes an air inlet 41 and a fan 42. The air inlet 41 is located on the side wall of the mounting cabinet 12 and communicates with the inner wall of the mounting cabinet 12. The fan 42 is located inside the air inlet 41. The air inlet 41 includes a pretreatment chamber 411 and an electrostatic dust removal area 412. The bottom wall of the pretreatment chamber 411 is a beveled surface. The fan 42 facilitates the intake of external air into the mounting cabinet 12 through the air inlet 41, thereby increasing the heat dissipation speed of the monitor 2 inside the mounting cabinet 12. The pretreatment chamber 411 is used to initially reduce the gas flow rate and stabilize the airflow. At the same time, larger particles can be deposited due to inertial collision, and the beveled surface allows the deposited dust to slide off automatically.

[0031] The heat dissipation mechanism 4 is equipped with a dust removal mechanism 5, which includes several guide plates 51 and electrostatic dust collection plates 52. The guide plates 51 are arranged at a 30° angle and staggered in the pretreatment chamber 411. The electrostatic dust collection plates 52 are arranged in the electrostatic dust removal area 412. A vibration motor 53 is installed on the electrostatic dust collection plate 52. When air enters the pretreatment chamber 411, the air comes into contact with the guide plates 51. The guide plates 51 reduce the gas flow rate to improve the subsequent filtration efficiency. Larger particles are deposited due to inertial collision. Then, the dust is electrostatically adsorbed by the electrostatic dust collection plate 52. The vibration motor 53 causes the electrostatic dust collection plate 52 to vibrate, which facilitates the shaking off of the dust attached to its surface.

[0032] A collection box 15 is movably inserted into the front side of the mounting cabinet 12. The collection box 15 is located below the electrostatic dust collection plate 52, and the collection box 15 facilitates the collection of dust shaken off from the electrostatic dust collection plate 52.

[0033] Among them, the clamping mechanism 3 is used to clamp and fix the monitoring instrument 2, the heat dissipation mechanism 4 is used to dissipate heat from the monitoring instrument 2, and the dust removal mechanism 5 is used to remove dust from the air drawn in by the heat dissipation mechanism 4.

[0034] Working principle: When using the stress performance monitoring device for high formwork support frame, the monitor 2 is first installed in the support frame 1 to monitor the stress performance of the support frame 1. The monitor 2 is clamped and fixed by the clamping mechanism 3 to reduce the possibility of the monitor 2 shifting position and affecting the monitoring accuracy. The heat dissipation mechanism 4 increases the heat dissipation rate of the monitor 2. At the same time, the dust removal mechanism 5 filters the dust in the air drawn into the device to reduce the possibility of dust continuously accumulating inside the device.

[0035] The above description is a further detailed explanation of the present invention in conjunction with specific preferred embodiments, which is intended to enable those skilled in the art to understand and apply the present invention. However, it should not be assumed that the specific implementation of the present invention is limited to these descriptions.

Claims

1. A stress performance monitoring device for a high formwork support structure, comprising a vertical frame (1), characterized in that, The support frame (1) is equipped with a monitoring instrument (2), the support frame (1) is equipped with a clamping mechanism (3), the support frame (1) is equipped with a heat dissipation mechanism (4), and the heat dissipation mechanism (4) is equipped with a dust removal mechanism (5). The clamping mechanism (3) is used to clamp and fix the monitoring instrument (2), the heat dissipation mechanism (4) is used to dissipate heat from the monitoring instrument (2), and the dust removal mechanism (5) is used to remove dust from the air drawn in by the heat dissipation mechanism (4).

2. The stress performance monitoring device for high formwork support structures according to claim 1, characterized in that, The support frame (1) includes a column (11) and a mounting cabinet (12). The mounting cabinet (12) is fixedly installed on the top of the column (11). Several positioning bolts (13) are provided on the column (11). A sealing plate (14) is hinged to the front side of the mounting cabinet (12).

3. The stress performance monitoring device for high formwork support structures according to claim 2, characterized in that, The monitoring instrument (2) includes a monitor (21) and a monitoring terminal (22). The monitoring terminal (22) is movably inserted into the column (11), and the monitor (21) is movably installed in the mounting cabinet (12) and connected to the top of the monitoring terminal (22).

4. The stress performance monitoring device for high formwork support structures according to claim 3, characterized in that, The clamping mechanism (3) includes a rotating rod (31) and two clamping plates (32). The rotating rod (31) has two external threads. The two clamping plates (32) are threaded onto the rotating rod (31). The opposite side of the two clamping plates (32) abuts against the side wall of the monitor (21). A steel cable (33) is wound around the rotating rod (31). The end of the steel cable (33) away from the rotating rod (31) is fixedly connected to the sealing plate (14). The two ends of the rotating rod (31) are connected to the inner wall of the installation cabinet (12) by torsion springs (34).

5. The stress performance monitoring device for high formwork support structures according to claim 4, characterized in that, The clamp (32) includes an internal threaded ring (321) and a T-shaped plate (322). The internal threaded ring (321) is threaded onto the rotating rod (31) and is adapted to the external thread. The T-shaped plate (322) is fixedly mounted on the internal threaded ring (321) and slides in cooperation with the inner wall of the mounting cabinet (12).

6. The stress performance monitoring device for high formwork support structures according to claim 2, characterized in that, The heat dissipation mechanism (4) includes an air inlet (41) and a fan (42). The air inlet (41) is located on the side wall of the mounting cabinet (12) and communicates with the inner wall of the mounting cabinet (12). The fan (42) is located inside the air inlet (41). The air inlet (41) includes a pretreatment chamber (411) and an electrostatic dust removal area (412). The bottom wall of the pretreatment chamber (411) is a beveled surface.

7. The stress performance monitoring device for high formwork support structures according to claim 6, characterized in that, The dust removal mechanism (5) includes several guide plates (51) and electrostatic dust collection plates (52). The guide plates (51) are arranged in a staggered manner at a 30° angle in the pretreatment chamber (411). The electrostatic dust collection plates (52) are arranged in the electrostatic dust removal area (412). A vibration motor (53) is provided on the electrostatic dust collection plate (52).

8. The stress performance monitoring device for high formwork support structures according to claim 7, characterized in that, A collection box (15) is movably inserted into the front side of the installation cabinet (12), and the collection box (15) is below the electrostatic dust collection plate (52).