Support hanger device installed on non-planar structure floor slab

By integrating the deformation detection mechanism, pressure sensing detection mechanism and vertical displacement detection components in the support hanger device, the force and deformation of the support hanger is monitored in real time, and the problem of deformation and damage caused by long-term use of the existing support hanger is solved, which improves safety and detection accuracy.

CN119934311APending Publication Date: 2025-05-06CHINA CONSTRUCTION EIGHTH ENGINEERING GROUP (SICHUAN) NEW ENERGY TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202411889572.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2024-12-20
Publication Date
2025-05-06

AI Technical Summary

Technical Problem

The existing support hangers are deformed and damaged due to stress during long-term use, making it difficult for staff to discover problems in time, and there are safety risks of falling from high altitudes.

Method used

A support hanger device installed on a non-planar structure floor slab is designed, equipped with a deformation detection mechanism, a pressure sensing detection mechanism and a vertical displacement detection component, through which the stress and deformation of the support hanger are monitored in real time.

Benefits of technology

This device can promptly detect the deformation and stress of the support hanger, avoid safety hazards of high altitude falls caused by failure to replace the support hanger in time, and ensure the accuracy and timeliness of detection.

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Abstract

The invention provides a supporting and hanging bracket device installed on a non-planar structure floor slab, and relates to the technical field of supporting and hanging brackets, the supporting and hanging bracket device installed on the non-planar structure floor slab comprises a supporting rod, two supporting blocks and two arc-shaped frames, the two supporting blocks are fixed to the two ends of the supporting rod respectively, and the two arc-shaped frames are fixed to the two ends of the supporting rod respectively. The two arc-shaped frames are respectively fixed at the bottoms of the two supporting blocks, and the device is characterized by further comprising deformation detection mechanisms used for detecting deformation of the arc-shaped frames, the number of the deformation detection mechanisms is two, and the two deformation detection mechanisms are respectively installed on the two arc-shaped frames; the device has the beneficial effects that the stress condition of a node part supported by the support and hanger device can be tested in real time, and whether displacement is generated or not, namely whether deformation is generated or not, so that a worker can find that the support and hanger device is deformed in time and replace the support and hanger device in time, and the deformed support and hanger device is effectively prevented from falling from high altitude.
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Description

Technical Field

[0001] The invention relates to the technical field of supports and hangers, in particular to a support and hanger device installed on a non-planar structural floor. Background Art

[0002] The support and hanger device can bear and disperse the weight of equipment, pipes, cables and other accessories and their media installed on the non-planar structure floor, ensuring the stability and safety of these equipment and pipes. This is the most basic and important function of the support and hanger device.

[0003] In the existing public documents, the patent publication number CN112393677A discloses a low-cost and high-reliability intelligent seismic support and hanger system based on the Internet of Things. The monitoring module is installed on the seismic frame, and the deformation of the seismic frame in different directions can be detected by introducing bare wires and graphite sheets, so as to automatically determine whether the support and hanger can continue to be used, thereby solving the technical problem of time-consuming and labor-intensive inspection of existing pipeline support and hanger. However, the support and hanger has the following defects:

[0004] The supports and hangers will suspend supported objects when in use. During the long-term suspension support process, the supports and hangers will be subjected to long-term stress, and the supported node parts will experience tension changes and displacement, which will cause the supports and hangers to be deformed and damaged to a certain extent. It is difficult for staff to promptly know if there are quality problems with the supports and hangers. If they are not replaced in time, there is a safety hazard of falling from a height. For this purpose, a support and hanger device installed on a non-planar structure floor is provided. Summary of the invention

[0005] In view of the above technical problems existing in the prior art, a support and hanger device installed on a non-planar structural floor is provided.

[0006] The purpose and effect of the present invention are achieved by the following specific technical means:

[0007] A support and hanger device installed on a non-planar structural floor comprises a support rod, two support blocks and two arc-shaped frames, wherein the two support blocks are respectively fixed to the two ends of the support rod, and the two arc-shaped frames are respectively fixed to the bottoms of the two support blocks, and characterized in that it also comprises:

[0008] A deformation detection mechanism for detecting deformation of the arc frame, wherein two deformation detection mechanisms are provided and are respectively installed on the two arc frames, and the deformation detection mechanism comprises:

[0009] A support block, wherein the support block is fixed to one side of the arc frame;

[0010] A linkage pull block, wherein the linkage pull block is fixed to the other side of the arc frame;

[0011] A tensile test piece, which is installed between the support block and the linkage pull block, and includes:

[0012] A sliding frame, the sliding frame is located on one side of the supporting block and the linked pulling block;

[0013] A sleeve slider, wherein the sleeve slider is slidably connected in the slide frame, and the sleeve slider is fixedly connected to the support block, and a connecting block is fixed on the sleeve slider;

[0014] A guide slide bar, one end of which is slidably connected to the sleeve slide block, and the other end of which is fixed to the inner wall of the slide frame;

[0015] A linkage sleeve block, wherein the linkage sleeve block is slidably sleeved on the guide slide rod, and a connecting support block distributed on the same side as the connecting block is fixed on the linkage sleeve block;

[0016] A tension sensor is fixed between the connecting block and the connecting support block.

[0017] A further preferred solution is that the support block is slidably connected to the slide frame, and the inner wall of the slide frame and the outer wall of the sleeve slide block are both smooth surfaces.

[0018] A further preferred solution is that the outer wall of the linkage block is slidably connected to the inner wall of the sliding frame, and the outer wall of the linkage block is a smooth surface.

[0019] A further preferred solution also includes: a pressure sensing detection mechanism for detecting the pressure on the bottom of the arc frame, the pressure sensing detection mechanism includes:

[0020] A bracket, the bracket being fixed to the bottom of the two arc-shaped frames;

[0021] A pressure detection component, wherein two pressure detection components are provided and are respectively fixed on both sides of the bracket;

[0022] A mounting hanger plate is located below the bracket and fixed between the two pressure detection members.

[0023] A further preferred embodiment: the support comprises:

[0024] Support rods, two of which are respectively fixed to one side of the lower ends of the two arc-shaped frames;

[0025] A reinforcing rod, the reinforcing rod is fixed at the arcs of the two arc-shaped frames, and connecting rods are fixed at both ends of the reinforcing rod;

[0026] The reinforcement block is provided with two pieces, and the reinforcement blocks are fixed on the adjacent support rods and connecting rods, and the two pressure detection components are respectively fixed on the two reinforcement blocks.

[0027] Further preferred solution: the pressure detection element includes:

[0028] A guide slide frame, wherein the guide slide frame is fixed on the outer wall of the reinforcement block, and a guide column is fixedly connected to the top of the inner wall of the guide slide frame;

[0029] A sleeve support plate, the upper end of which extends into the guide slide frame and is slidably connected to the guide column, and the lower end is located below the guide slide frame and is fixedly connected to the mounting hanger plate;

[0030] A pressure rod is vertically fixed to the inner side of the sleeve support plate, a pressure sensor is fixed to the lower end of the pressure rod, and the pressure sensor is fixedly connected to the bottom of the inner wall of the guide slide frame.

[0031] A further preferred solution: the outer wall of the guide column and the inner wall of the guide slide frame are both smooth surfaces.

[0032] A further preferred solution further comprises: a vertical displacement detection component for detecting the vertical displacement of the arc frame, wherein the vertical displacement detection component comprises:

[0033] An installation support shaft, wherein the installation support shaft is fixed between the lower ends of the two arc-shaped frames;

[0034] The induction sleeve block is sleeved on the mounting support shaft.

[0035] A mounting frame, the mounting frame is fixed on the two supporting blocks, and the mounting frame has a hole located above the induction sleeve block;

[0036] The distance sensor is installed in the hole and is electrically connected to the sensing sleeve block.

[0037] A further preferred solution is that two limiting rings are threadedly connected to the mounting support shaft, and the sensing sleeve is located between the two limiting rings and fits therewith.

[0038] A further preferred solution also includes a controller installed on the support and hanger device.

[0039] Compared with the prior art, the present invention has the following beneficial effects:

[0040] This type of support and hanger device installed on a non-planar structural floor slab can test the stress conditions of the node parts supported by the support and hanger device in real time, whether the node parts have been displaced, that is, whether deformation has occurred, by the joint use of the pressure sensing detection mechanism, the deformation detection mechanism and the vertical displacement detection component. The staff can promptly understand the status of the support and hanger device so as to take relevant measures in time to effectively prevent the deformed support and hanger device from falling from a high altitude. Even if one of the pressure sensing detection mechanism, the deformation detection mechanism and the vertical displacement detection component is damaged during long-term use, it will not affect the deformation detection of the support and hanger device, thereby ensuring the accuracy of the deformation detection. BRIEF DESCRIPTION OF THE DRAWINGS

[0041] Figure 1 It is a schematic diagram of the overall structure of the support and hanger device installed on a non-planar structural floor slab of the present invention;

[0042] Figure 2 It is a schematic diagram of a partial structure of the connection between the arc frame and the support block of the present invention;

[0043] Figure 3 For the present invention Figure 2 The enlarged structural diagram at A in the middle;

[0044] Figure 4 It is a schematic diagram of a partial structure of the connection between the reinforcement rod and the connecting rod of the present invention;

[0045] Figure 5 It is a schematic diagram of the local structure of the connection between the guide sliding frame and the guide column of the present invention;

[0046] Figure 6 It is a schematic diagram of a partial structure of the connection between the support block and the support rod of the present invention;

[0047] Figure 7 It is a schematic diagram of the local structure of the connection between the induction sleeve block and the limit ring of the present invention;

[0048] Figure 8 It is a bottom view structural schematic diagram of the support and hanger device of the present invention installed on a non-planar structural floor.

[0049] Markings in the figure: 1. Support rod; 2. Support block; 3. Arc frame; 4. Support block; 5. Slide frame; 6. Sliding block; 7. Guide slide rod; 8. Connecting block; 9. Tension sensor; 10. Connecting support block; 11. Linkage sleeve block; 12. Linkage pulling block; 13. Support rod; 14. Reinforcement rod; 15. Connecting rod; 16. Reinforcement block; 17. Guide slide frame; 18. Guide column; 19. Sliding support plate; 20. Pressure rod; 21. Pressure sensor; 22. Mounting hanger plate; 23. Mounting block; 24. Reinforcement support block; 25. Controller; 26. Support bar; 27. Sleeve rod; 28. Tilt rod; 29. ​​Distance sensor; 30. Induction sleeve block; 31. Limiting ring; 32. Mounting support shaft. DETAILED DESCRIPTION

[0050] See also Figure 1-8 , further illustrate the embodiments of the present invention;

[0051] like Figure 1 As shown, a support and hanger device installed on a non-planar structural floor comprises a support rod 1, two support blocks 2 and two arc frames 3, wherein the two support blocks 2 are respectively fixed to the two ends of the support rod 1, and the two arc frames 3 are respectively fixed to the bottoms of the two support blocks 2, and is characterized in that it also comprises: a deformation detection mechanism for detecting deformation of the arc frame 3, a pressure sensing detection mechanism for detecting pressure on the bottom of the arc frame 3, a vertical displacement detection component for detecting vertical displacement of the arc frame 3, and a controller 25, wherein the controller 25 is electrically connected to the deformation detection mechanism, the pressure sensing detection mechanism and the vertical displacement detection component, and controls The device 25 is connected to the terminal equipment such as a mobile phone or a computer signal. The controller 25 is used to receive the data measured by the deformation detection mechanism, the pressure sensing detection mechanism and the vertical displacement detection component. These data are transmitted to the terminal equipment through the controller 25 so that the staff can know the stress condition of the support and hanger device and whether deformation occurs in time. In order to remind the staff conveniently, a prompting device such as an alarm, an alarm, a prompter, etc. can be set to promptly remind the staff when the support and hanger device is deformed. After the staff obtains the deformation information of the support and hanger device, the support and hanger device can be replaced in time to avoid the hidden danger of falling from a high altitude.

[0052] like Figure 1-3 As shown, two deformation detection mechanisms are provided and are respectively installed on two arc frames 3, and the deformation detection mechanism includes: a support block 4, a linkage pull block 12 and a tension test piece, the support block 4 is fixed on one side of the arc frame 3, the linkage pull block 12 is fixed on the other side of the arc frame 3, and the tension test piece is installed between the support block 4 and the linkage pull block 12.

[0053] Furthermore, the tension test piece includes: a sliding frame 5, a sleeve slider 6, a guide slide rod 7, a linkage sleeve block 11 and a tension sensor 9. The sliding frame 5 is located on one side of the support block 4 and the linkage pull block 12, and the support block 4 is slidingly connected to the sliding frame 5. The sleeve slider 6 is slidingly connected in the sliding frame 5. The inner wall of the sliding frame 5 and the outer wall of the sleeve slider 6 are both smooth surfaces, and the sleeve slider 6 is fixedly connected to the support block 4. A connecting block 8 is fixed on the sleeve slider 6. One end of the guide slide rod 7 is slidingly connected in the sleeve slider 6, and the other end is fixed on the inner wall of the sliding frame 5. The linkage sleeve block 11 is slidingly sleeved on the guide slide rod 7. The outer wall of the linkage sleeve block 11 is slidingly connected to the inner wall of the sliding frame 5, and the outer wall of the linkage sleeve block 11 is a smooth surface. A connecting support block 10 distributed on the same side as the connecting block 8 is fixed on the linkage sleeve block 11. The tension sensor 9 is fixed between the connecting block 8 and the connecting support block 10.

[0054] like Figure 1 , 4 As shown in 5, the pressure sensing detection mechanism includes: a bracket, a pressure detection component and a mounting hanger 22. The bracket is fixed to the bottom of the two arc-shaped frames 3. Two pressure detection components are provided and are respectively fixed on both sides of the bracket. The mounting hanger 22 is located below the bracket and fixed between the two pressure detection components.

[0055] Among them, the bracket includes: a support rod 13, a reinforcement rod 14 and a reinforcement block 16. Two support rods 13 are provided and are respectively fixed to one side of the lower end of the two arc-shaped frames 3. The reinforcement rod 14 is fixed to the arc of the two arc-shaped frames 3, and connecting rods 15 are fixed at both ends of the reinforcement rod 14. Two reinforcement blocks 16 are provided, and the reinforcement blocks 16 are fixed on the adjacent support rods 13 and connecting rods 15. The two pressure detection components are respectively fixed on the two reinforcement blocks 16.

[0056] In addition, the pressure detection component includes: a guide slide frame 17, a sleeve support plate 19 and a pressure rod 20. The guide slide frame 17 is fixed on the outer wall of the reinforcement block 16. The top of the inner wall of the guide slide frame 17 is fixedly connected with a guide column 18. The upper end of the sleeve support plate 19 extends into the guide slide frame 17 and is slidably connected with the guide column 18. The outer wall of the guide column 18 and the inner wall of the guide slide frame 17 are both smooth surfaces. The lower end is located below the guide slide frame 17 and is fixedly connected to the mounting hanger 22. The pressure rod 20 is vertically fixed to the inner side of the sleeve support plate 19. The lower end of the pressure rod 20 is fixed with a pressure sensor 21, and the pressure sensor 21 is fixedly connected to the bottom of the inner wall of the guide slide frame 17.

[0057] like Figure 1 , 6As shown in 7, the vertical displacement detection component includes: a mounting shaft 32, a sensing sleeve 30, a mounting frame and a distance sensor 29. The mounting shaft 32 is fixed between the lower ends of the two arc-shaped frames 3, the sensing sleeve 30 is sleeved on the mounting shaft 32, the mounting frame is fixed on the two support blocks 2, and the mounting frame has a hole located above the sensing sleeve 30. The distance sensor 29 is installed in the hole and is electrically connected to the sensing sleeve 30. Two limit rings 31 are threadedly connected to the mounting shaft 32, and the sensing sleeve 30 is located between the two limit rings 31 and fits therewith.

[0058] The mounting frame includes: a mounting block 23, a support bar 26, a sleeve rod 27 and a tilting rod 28. The mounting block 23 is provided with two pieces and fixed on the two support blocks 2 respectively. The support bar 26 is fixed between the two mounting blocks 23. The sleeve rod 27 is vertically fixed on the side of the support bar 26. There are two tilting rods 28 and they are fixed on both sides of the sleeve rod 27 respectively. The end of the tilting rod 28 is fixed on the support bar 26. The support bar 26, the sleeve rod 27 and the tilting rod 28 form a triangle to enhance the stability of the sleeve rod 27. The hole on the mounting frame is opened at the end of the sleeve rod 27. The controller 25 is installed on one of the mounting blocks 23. In order to reinforce this mounting block 23, a reinforcing support block 24 is welded on its rear side.

[0059] The working principle of the support and hanger device installed on the non-planar structure floor of the present invention is as follows:

[0060] During installation and use, a groove is made on the wall where the reinforcing support block 24 is installed, and two mounting blocks 23 are fixed to the wall using expansion bolts. The reinforcing support block 24 is located in the groove of the wall to ensure that the two mounting blocks 23 are flush. The reinforcing support block 24 plays a role of padding, which is conducive to the controller 25 being firmly installed on the mounting block 23, and then the suspended weight is installed on the mounting hanger plate 22 for fixation. The pressure value of the pressure sensor 21, the tension value of the tension sensor 9, and the displacement value of the distance sensor 29 are preset by the controller 25.

[0061] When the pressure sensing detection mechanism is working, the pressure sensor 21 will test the pressure applied by the pressure rod 20 to the pressure sensor 21 in real time. If the pressure value measured by the pressure sensor 21 is equal to the preset value, it means that the support and hanger device is under normal force; if the support and hanger device is under abnormal force, the installation hanger plate 22 will drive the two sleeve support plates 19 to move downward under gravity, and the sleeve support plates 19 will slide down along the outer wall of the guide column 18 and the inner wall of the guide slide frame 17. At the same time, the sleeve support plates 19 are squeezed on the pressure rod 20, and the bottom of the inner wall of the guide slide frame 17 supports the pressure sensor 21. The pressure sensor 21 supports the pressure rod 20, and the sleeve support plates 19 are squeezed downward on the pressure rod 20. The pressure rod 20 can sense the pressure value on the pressure sensor 21. When the pressure value sensed by the pressure sensor 21 exceeds the preset value of the controller 25, the abnormal pressure value measured by the pressure sensor 21 is transmitted to the terminal device through the controller 25, prompting the staff that the support and hanger device is under abnormal force.

[0062] When the deformation detection mechanism is working, the tension sensor 9 will test the tension value between the connecting block 8 and the support block 10 in real time. If the tension value measured by the tension sensor 9 is equal to the preset value, it means that the arc frame 3 in the support and suspension device is under normal force; if the arc frame 3 is under abnormal force, the falling of the guide slide frame 17 drives the reinforcement block 16 to move downward, the reinforcement block 16 drives the connecting rod 15 and the support rod 13 to move downward, the connecting rod 15 drives the reinforcement rod 14 to move downward, the reinforcement rod 14 and the support rod 13 drive the arc frame 3 to bend downward at the same time, and the arc frame 3 drives the linkage pull block 12 to move downward under force, the linkage pull block 12 drives the linkage sleeve block 11 to slide down, and the linkage sleeve block 11 slides down along the inner wall of the slide frame 5 and the outer wall of the guide slide rod 7. The linkage block 11 drives the connecting support block 10 to move downward, and the connecting support block 10 pulls on the tension sensor 9, and the tension sensor 9 pulls on the connecting block 8, and the connecting block 8 drives the sleeve slider 6 to slide down along the inner wall of the slide frame 5. At the same time, the sleeve slider 6 drives the force pulled on the support block 4, and the arc frame 3 supports the support block 4 to increase the stability of the support block 4. After the tension value sensed by the tension sensor 9 exceeds the predicted value, the controller 25 realizes remote alarm to promptly remind the staff that the support and hanger device has been deformed so that the staff can take corresponding measures in time.

[0063] When the vertical displacement detection component is working, the distance sensor 29 will test the displacement between itself and the sensing sleeve block 30 in real time. If the displacement value measured by the distance sensor 29 is equal to the preset value, it means that the support and hanger device is under normal force and has not been deformed. If the support and hanger device is under abnormal force, a certain degree of deformation will occur. The two arc frames 3 respectively drive the two support blocks 2 to move downward, and the two support blocks 2 drive the support rod 1 to move downward at the same time. After the arc frame 3 is subjected to a large deformation force downward, the arc frame 3 drives the installation support shaft 32 to move downward and deform. The installation support shaft 32 drives the sensing sleeve block 30 to move downward and deform, and the sensing sleeve block 30 begins to move away from the distance sensor 29. When the displacement value sensed by the distance sensor 29 exceeds the displacement value set by the controller 25, a remote alarm is realized through the controller 25, so that the support and hanger device can be repaired, reinforced or replaced in time.

[0064] The present invention, by using the pressure sensing detection mechanism, the deformation detection mechanism and the vertical displacement detection assembly together, can test in real time the stress condition of the node parts supported by the support and hanger device, whether the node parts have been displaced, that is, whether deformation has occurred, so that the staff can timely understand the condition of the support and hanger device so as to take relevant measures in time to effectively avoid the deformed support and hanger device from falling from a high altitude; even if one of the pressure sensing detection mechanism, the deformation detection mechanism and the vertical displacement detection assembly is damaged after long-term use, it will not affect the deformation detection of the support and hanger device, thereby ensuring the accuracy of the deformation detection.

[0065] Finally, it should be noted that the above embodiments are only used to illustrate the technical solution of the present invention rather than to limit it. Although the present invention has been described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solution of the present invention can be modified or replaced by equivalents without departing from the purpose and scope of the technical solution of the present invention, which should be included in the scope of the claims of the present invention.

Claims

1. A support and hanger device installed on a non-planar structural floor, comprising a support rod (1), two support blocks (2) and two arc-shaped frames (3), wherein the two support blocks (2) are respectively fixed to the two ends of the support rod (1), and the two arc-shaped frames (3) are respectively fixed to the bottoms of the two support blocks (2), characterized in that: Also includes: A deformation detection mechanism for detecting deformation of the arc frame (3), wherein two deformation detection mechanisms are provided and are respectively installed on the two arc frames (3), and the deformation detection mechanism comprises: A support block (4), wherein the support block (4) is fixed to one side of the arc frame (3); A linkage pull block (12), wherein the linkage pull block (12) is fixed to the other side of the arc frame (3); A tensile test piece, the tensile test piece is installed between the support block (4) and the linked pull block (12), and the tensile test piece comprises: A sliding frame (5), wherein the sliding frame (5) is located on one side of the supporting block (4) and the linked pulling block (12); A sleeve sliding block (6), wherein the sleeve sliding block (6) is slidably connected in the sliding frame (5), and the sleeve sliding block (6) is fixedly connected to the supporting block (4), and a connecting block (8) is fixed on the sleeve sliding block (6); A guide slide bar (7), one end of which is slidably connected to the sleeve slide block (6) and the other end of which is fixed to the inner wall of the slide frame (5); A linkage sleeve block (11), wherein the linkage sleeve block (11) is slidably sleeved on the guide slide rod (7), and a connecting support block (10) distributed on the same side as the connecting block (8) is fixed on the linkage sleeve block (11); A tension sensor (9), wherein the tension sensor (9) is fixed between the connecting block (8) and the connecting support block (10).

2. A support and hanger device installed on a non-planar structural floor according to claim 1, characterized in that: The support block (4) is slidably connected to the slide frame (5), and the inner wall of the slide frame (5) and the outer wall of the sleeve sliding block (6) are both smooth surfaces.

3. A support and hanger device installed on a non-planar structural floor according to claim 2, characterized in that: The outer wall of the linkage sleeve (11) is slidably connected to the inner wall of the sliding frame (5), and the outer wall of the linkage sleeve (11) is a smooth surface.

4. A support and hanger device installed on a non-planar structural floor according to claim 1, characterized in that: Also includes: A pressure sensing detection mechanism for detecting the pressure on the bottom of the arc frame (3), the pressure sensing detection mechanism comprising: A bracket, the bracket being fixed to the bottom of the two arc-shaped frames (3); A pressure detection component, wherein two pressure detection components are provided and are respectively fixed on both sides of the bracket; A mounting hanger plate (22) is located below the bracket and fixed between the two pressure detection components.

5. A support and hanger device installed on a non-planar structural floor according to claim 4, characterized in that: The support comprises: Support rods (13), wherein two support rods (13) are provided and are respectively fixed to one side of the lower ends of the two arc-shaped frames (3); A reinforcing rod (14), wherein the reinforcing rod (14) is fixed to the arcs of the two arc-shaped frames (3), and connecting rods (15) are fixed to both ends of the reinforcing rod (14); A reinforcement block (16), wherein two reinforcement blocks (16) are provided, and the reinforcement blocks (16) are fixed on the adjacent support rods (13) and connecting rods (15), and the two pressure detection components are respectively fixed on the two reinforcement blocks (16).

6. A support and hanger device installed on a non-planar structural floor according to claim 5, characterized in that: The pressure detection component comprises: A guide slide frame (17), wherein the guide slide frame (17) is fixed on the outer wall of the reinforcement block (16), and a guide column (18) is fixedly connected to the top of the inner wall of the guide slide frame (17); A sleeve support plate (19), wherein the upper end of the sleeve support plate (19) extends into the guide slide frame (17) and is slidably connected to the guide column (18), and the lower end is located below the guide slide frame (17) and is fixedly connected to the mounting hanger plate (22); A pressure rod (20), the pressure rod (20) is vertically fixed to the inner side of the sleeve support plate (19), a pressure sensor (21) is fixed to the lower end of the pressure rod (20), and the pressure sensor (21) is fixedly connected to the bottom of the inner wall of the guide slide frame (17).

7. A support and hanger device installed on a non-planar structural floor according to claim 6, characterized in that: The outer wall of the guide column (18) and the inner wall of the guide slide frame (17) are both smooth surfaces.

8. The support and hanger device installed on a non-planar structural floor according to claim 1, characterized in that: Also includes: A vertical displacement detection component for detecting the vertical displacement of the arc frame (3), the vertical displacement detection component comprising: A mounting support shaft (32), wherein the mounting support shaft (32) is fixed between the lower ends of the two arc-shaped frames (3); The induction sleeve block (30) is sleeved on the mounting support shaft (32). A mounting frame, the mounting frame being fixed on the two supporting blocks (2), and having a hole located above the induction sleeve block (30); A distance sensor (29) is installed in the hole and is electrically connected to the sensing sleeve (30).

9. A support and hanger device installed on a non-planar structural floor according to claim 8, characterized in that: Two limiting rings (31) are threadedly connected to the mounting support shaft (32), and the induction sleeve (30) is located between the two limiting rings (31) and fits closely thereto.

10. A support and hanger device installed on a non-planar structural floor according to claim 1, characterized in that: It also includes a controller (25) installed on the support and hanger device.

Citation Information

Patent Citations

  • Intelligent anti-seismic support and hanger system based on Internet of Things

    CN112393677A