Metal roof flexible support system integrating health monitoring and functional facilities

By integrating health monitoring and functional facilities, the flexible support system for metal roofs utilizes multiple buffering and limiting components to achieve multi-segment buffering and self-adjustment, solving the problem of insufficient buffering of metal roofs under multi-directional forces and ensuring roof stability and service life.

CN122428718APending Publication Date: 2026-07-21SHANXI NO 3 CONSTR ENG
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
SHANXI NO 3 CONSTR ENG
Filing Date
2026-06-22
Publication Date
2026-07-21

AI Technical Summary

Technical Problem

Existing flexible connection bases for metal roofs lack sufficient buffering capacity when subjected to various natural environmental forces, leading to roof deformation and damage, which affects waterproofing and service life.

Method used

The flexible support system for metal roofs, which integrates health monitoring and functional facilities, includes locking and limiting blocks, multiple buffer components, and matching and limiting components. Through multi-segment buffering and self-adjustment, it achieves stable buffering of the roof under multi-directional forces.

Benefits of technology

It effectively avoids excessive overall stretching of the roof due to various external forces, ensures the stability of the roof waterproofing and sealing, extends service life, and improves installation speed and stability.

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Abstract

The application discloses a metal roof flexible support system integrated with health monitoring and functional facilities, relates to the technical field of roof waterproof installation, and is characterized in that a plurality of pressure relief spring sheets are equidistantly arranged on the inner side of a clamping limiting block, a plurality of alignment sliding frames are slidingly arranged on the inner side of the clamping limiting block, a plurality of pressure alignment springs are equidistantly welded at the bottom end of the alignment sliding frame, a plurality of guide fixed balls are rotationally connected to the bottom of the clamping limiting block, and a plurality of protective operation pads are equidistantly bonded to the side end of the alignment sliding frame. The application utilizes multi-stage step-by-step energy-absorbing buffering, cooperates with small-amplitude swing energy absorption and vertical lifting energy absorption processing, so that when the roof is subjected to multi-directional forces applied by various external natural environments, buffering can be effectively performed, the whole is prevented from being excessively pulled to cause large deformation of the roof, the stability of the whole roof waterproof and sealing is ensured, and the service life of the roof is prolonged.
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Description

Technical Field

[0001] This invention relates to the field of roof waterproofing installation technology, specifically to a flexible support system for metal roofs that integrates health monitoring and functional facilities. Background Technology

[0002] Metal roofing refers to a roofing system that uses metal sheets as the roofing material, combining the structural layer and waterproofing layer into one. Due to its lightweight, high strength, durability, environmental friendliness, and excellent design capabilities, it is widely used in various types of buildings, from large public buildings to industrial plants and residences. Flexible metal roofing supports refer to flexible connecting bases that have the ability to slide or shift.

[0003] However, existing flexible connection bases, due to their relatively singular flexible connection positions, are prone to insufficient buffering capacity when subjected to forces from various natural environments simultaneously. This can lead to excessive overall tension, causing roof deformation and damage, and affecting the roof's waterproofing and service life. Summary of the Invention

[0004] This invention provides a flexible support system for metal roofs that integrates health monitoring and functional facilities. It can effectively solve the problem mentioned in the background art that existing flexible connection bases, due to their relatively singular flexible connection positions, are prone to insufficient buffering capacity when subjected to multiple forces from different natural environments, resulting in excessive overall tension, roof deformation and damage, and affecting the waterproofing and service life of the roof.

[0005] To achieve the above objectives, the present invention provides the following technical solution: a flexible support system for metal roofs integrating health monitoring and functional facilities, including a locking and limiting block, wherein multiple buffer components are provided on the side end of the locking and limiting block; The multi-pressure relief component includes a pressure-relieving spring sheet; A number of pressure-relieving spring plates are equidistantly installed on the inner side of the positioning limiting block, and an alignment sliding frame is slidably installed on the inner side of the positioning limiting block; The bottom end of the alignment sliding frame is welded with several pressure springs at equal intervals, and the bottom end of each pressure spring is equipped with a pressure locking block. The bottom of the pressing and positioning block is equidistantly connected to a guide fixing ball; Several protective operating pads are equidistantly bonded to the side end of the alignment sliding frame, and a hard pressure energy-absorbing pad is installed at the position of the pressure-relieving spring plate on the side end of the alignment sliding frame. The top of the alignment sliding frame is snapped with a coupling fixing box, and a number of combined spring plates are installed at equal intervals on the top of the coupling fixing box; The top of the assembly fixing box is equipped with a pressure relief operating frame, and both the top of the alignment sliding frame and the top of the pressure relief operating frame are equipped with lifting spring rods.

[0006] According to the above technical solution, the guide fixing ball side end is slidably attached to the bottom inner side of the locking and limiting block, the pressing and locking block is slidably installed on the inner side of the alignment sliding frame, and one end of the hard pressure energy absorption pad is attached to one end of the pressure relief spring sheet.

[0007] According to the above technical solution, a combined sliding plate is installed at the top of one of the lifting spring rods, and a locking frame is installed at the top of multiple lifting spring rods. The card slot is welded to the top of the frame with a card slot limiting frame, and torsion springs are symmetrically installed at both ends of the card slot limiting frame; There are four of each type of pressure-relieving spring sheet and combined spring sheet.

[0008] According to the above technical solution, a rotating alignment sleeve is welded to one end of the torsion spring, and a locking and closing frame is installed at one end of the rotating alignment sleeve by a fixing bolt. The side end of the locking and closing frame is welded with several support guide plates at equal intervals, and the top of the several support guide plates is welded with a combined fixing plate; The top of the combined sliding plate is slidably connected to the bottom of the connecting fixing box.

[0009] According to the above technical solution, the side end of the combined spring sheet is attached to the side end of the pressure relief operation frame, and the locking and alignment frame is sleeved and connected to the side end of the coupling and fixing box.

[0010] According to the above technical solution, the side end of the rotating alignment sleeve is fitted with the side end of the locking and closing frame, the longitudinal section of the locking and closing frame is arc-shaped, and there are two combined fixing plates.

[0011] According to the above technical solution, a limiting component is provided on the side end of the locking block; The limiting assembly includes a combined screw; The side end of the locking block is fitted with a combined screw, and the bottom end of the combined screw is welded with a fixed locking plate; The side end of the combined screw is connected to a limit nut via a threaded connection. The top of the fixed plate is equidistantly fitted with several buffer spring rods, and the top of the several buffer spring rods is fitted with a hollow buffer plate. A hollow positioning plate is slidably connected to the top of the hollow buffer plate, and guide positioning posts are welded at equal intervals to the bottom of the hollow positioning plate; A buffer slotting sleeve is installed on the inner side of the hollow slotting plate, and energy-absorbing damping strips are equidistantly bonded to the inner side of the buffer slotting sleeve.

[0012] According to the above technical solution, a compression elastic sheet is bonded to one end of the energy-absorbing damping strip; The top of the hollow positioning plate and both ends of the positioning frame are equipped with guide universal joints, and a guide positioning frame is installed at one end of each guide universal joint. The bottom end of the card-positioning limiting block is attached to the top end of the fixed card fixing plate, and the guide card-positioning post is inserted and installed inside the hollow buffer plate.

[0013] According to the above technical solution, a guide fixing block is rotatably connected to the inner side of the guide positioning frame, and a guide spring rod is installed between the two guide fixing blocks; There are four hollow buffer plates, and the inner side of the buffer slot sleeve is fitted to the side end of the connecting fixing box.

[0014] According to the above technical solution, the cross-section of the energy-absorbing damping strip is U-shaped, there are two energy-absorbing damping strips, and the longitudinal section of the guide positioning frame is C-shaped.

[0015] Compared with the prior art, the beneficial effects of the present invention are as follows: 1. It is equipped with multiple buffer components. The roof is rigidly supported by a combination of fixed plate, support guide plate and locking closing frame. The pressure relief operation frame compresses and restricts the combined spring sheet. The connecting fixed box drives the alignment sliding frame and hard pressure energy absorption pad to compress the pressure relief spring sheet. When the roof swings back and forth, it can be buffered by multiple sections of energy absorption from top to bottom, so as to achieve small-amplitude flexible swing buffering of the roof. The torsion spring and rotating alignment sleeve drive the locking and closing frame to rotate slightly. The lifting spring rod presses and absorbs energy from the locking and aligning frame and the pressure relief frame. Through the combination of small-amplitude lifting and left-right swinging buffers, the roof can be actively corrected when under load. The multi-stage, layer-by-layer energy absorption buffer, combined with small-amplitude swinging and vertical lifting energy absorption, effectively buffers the roof when it is subjected to multiple forces from different external natural environments. This prevents excessive overall tension and large deformation of the roof, ensuring the overall waterproofing and sealing stability of the roof and extending its service life.

[0016] 2. Equipped with a limiting component, the locking closing frame is inserted into the inner side of the rotating alignment sleeve, and the locking closing frame and rotating alignment sleeve are limited by the fixing bolts. The combination fixing plate is welded to the metal roof, and the fixed fixing plate is welded to the support structure. The locking limiting block and the fixed fixing plate are pressed and fixed by the combination screw and the limiting nut, so as to realize the rapid combination and installation of the roof and the support structure. The rapid combination through the integrated installation structure improves the overall installation speed. By guiding the universal joint to restrict the steering of the two sets of guide brackets, and cooperating with the guide spring rod for buffering and damping, the overall energy absorption and buffering of the swing is achieved. The buffer spring rod and the hollow buffer plate are used to absorb and press the hollow bracket plate for energy absorption and buffering. In conjunction with the buffer bracket sleeve, energy absorption damping strip and pressing elastic sheet, the side swing is damped and energy absorbed. Through the three-stage treatment of lifting energy absorption, angle tilting energy absorption and external support energy absorption, the flexible support can improve the overall force pulling and flexible buffering effect, enhance the stability of the support force, and extend the service life of the flexible support seat when the metal roof is under different stress environment.

[0017] In summary, by cooperating with multiple buffer components and limiting components, and utilizing multi-segment swing elastic support from top to bottom, along with universal joints and elastic buffers on both sides for auxiliary elastic support, and through quick-locking limiting and welding combination at both ends, the roof and the supporting structure can be quickly connected and stably limited, ensuring the overall stability of the support during roof buffering, improving the stability of roof buffer protection, and extending the overall service life. Attached Figure Description

[0018] The accompanying drawings are provided to further illustrate the invention and form part of the specification. They are used together with the embodiments of the invention to explain the invention and do not constitute a limitation thereof.

[0019] In the attached diagram: Figure 1 This is a three-dimensional structural schematic diagram of the present invention; Figure 2 This is a schematic diagram of the structure of the multi-pause component of the present invention; Figure 3 This is a schematic diagram of the mounting structure of the card slot to the rack of the present invention; Figure 4 This is a schematic diagram of the installation structure of the combined sliding plate of the present invention; Figure 5 This is a schematic diagram of the installation structure of the pressing and locking block of the present invention; Figure 6 This is a schematic diagram of the installation structure of the rotating alignment sleeve of the present invention; Figure 7 This is a schematic diagram of the structure of the limiting component of the present invention; Figure 8 This is a schematic diagram of the installation structure of the guide card holder of the present invention; Numbered in the diagram: 1. Positioning limit block; 2. Multi-component buffer; 201. Pressure-relieving spring sheet; 202. Alignment sliding frame; 203. Pressure spring; 204. Pressure locking block; 205. Guide fixing ball; 206. Protective operating pad; 207. Hard pressure energy-absorbing pad; 208. Interlocking fixing box; 209. Combined spring sheet; 210. Pressure-relieving operating frame; 211. Lifting spring rod; 212. Combined sliding sheet; 213. Locking and alignment frame; 214. Locking and limiting frame; 215. Torsion spring; 216. Rotating alignment sleeve; 217. Fixing bolt; 218. Locking and closing frame; 219. Support guide plate; 220. Combined fixing plate; 3. Limiting components; 301. Combined screw; 302. Fixed clamping plate; 303. Limiting nut; 304. Buffer spring rod; 305. Hollow buffer plate; 306. Hollow clamping plate; 307. Guide clamping post; 308. Buffer clamping sleeve; 309. Energy-absorbing damping strip; 310. Pressing elastic sheet; 311. Guide universal joint; 312. Guide clamping frame; 313. Guide fixing block; 314. Guide spring rod. Detailed Implementation

[0020] The preferred embodiments of the present invention will be described below with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are for illustration and explanation only and are not intended to limit the present invention.

[0021] Example: Figure 1-8 As shown, the present invention provides a technical solution, a flexible support system for metal roofs that integrates health monitoring and functional facilities, including a locking and limiting block 1, and multiple buffer components 2 are provided on the side of the locking and limiting block 1; The multi-pressure relief assembly 2 includes a pressure relief spring plate 201, an alignment sliding frame 202, a pressure spring 203, a pressure locking block 204, a guide fixing ball 205, a protective operating pad 206, a hard pressure energy-absorbing pad 207, a connecting fixing box 208, a combined spring plate 209, a pressure relief operating frame 210, a lifting spring rod 211, a combined sliding plate 212, a locking alignment frame 213, a locking limiting frame 214, a torsion spring 215, a rotating alignment sleeve 216, a fixing bolt 217, a locking closing frame 218, a support guide plate 219, and a combined fixing plate 220. Several pressure-relieving spring plates 201 are equidistantly installed on the inner side of the locking and limiting block 1, and an alignment sliding frame 202 is slidably installed on the inner side of the locking and limiting block 1. Several pressure springs 203 are welded at equal intervals to the bottom end of the alignment sliding frame 202, and pressure locking blocks 204 are installed at the bottom end of the pressure springs 203. The bottom of the pressing and positioning block 204 is equidistantly rotatably connected to a guide fixing ball 205. The side end of the guide fixing ball 205 slides against the bottom inner side of the positioning limiting block 1. The pressing and positioning block 204 is slidably installed on the inner side of the alignment sliding frame 202 to realize alignment sliding guidance. Several protective operating pads 206 are equidistantly bonded to the side end of the alignment slide frame 202. A hard pressure energy-absorbing pad 207 is installed at the position of the pressure-relieving spring plate 201 on the side end of the alignment slide frame 202. One end of the hard pressure energy-absorbing pad 207 is attached to one end of the pressure-relieving spring plate 201 to ensure the stability of the compression buffer and the limiting buffer. The top of the alignment slide frame 202 is snapped with a coupling fixing box 208, and a number of combined spring plates 209 are installed at equal intervals on the top of the coupling fixing box 208; The top of the assembly fixing box 208 is equipped with a pressure relief operating frame 210, and the top of the alignment sliding frame 202 and the top of the pressure relief operating frame 210 are both equipped with lifting spring rods 211. One of the lifting spring rods 211 has a combined sliding plate 212 installed at its top, and multiple lifting spring rods 211 have a locking and alignment frame 213 installed at their tops. There are four pressure-relieving spring plates 201 and four combined spring plates 209. The top of the combined sliding plate 212 is slidably connected to the bottom of the connecting and fixing box 208, the side of the combined spring plate 209 is attached to the side of the pressure-relieving operating frame 210, and the locking and alignment frame 213 is fitted and connected to the side of the connecting and fixing box 208 to achieve steady alignment and locking and elastic limiting treatment. A positioning limit frame 214 is welded to the top of the positioning frame 213, and torsion springs 215 are symmetrically installed at both ends of the positioning limit frame 214. A rotating alignment sleeve 216 is welded to one end of the torsion spring 215, and a locking and closing frame 218 is installed on one end of the rotating alignment sleeve 216 by a fixing bolt 217. Several support guide plates 219 are welded at equal intervals on the side end of the locking and closing frame 218. A combined fixing plate 220 is welded to the top of the support guide plates 219. The side end of the rotating alignment sleeve 216 fits against the side end of the locking and closing frame 218. The longitudinal section of the locking and closing frame 218 is arc-shaped. There are two combined fixing plates 220 to achieve arc-shaped alignment and locking restriction guidance.

[0022] A limiting component 3 is provided on the side of the locking block 1; The limiting assembly 3 includes a combination screw 301, a fixed clamping plate 302, a limiting nut 303, a buffer spring rod 304, a hollow buffer plate 305, a hollow clamping plate 306, a guide clamping post 307, a buffer clamping sleeve 308, an energy-absorbing damping strip 309, a compression elastic sheet 310, a guide universal joint 311, a guide clamping frame 312, a guide fixing block 313, and a guide spring rod 314; A combination screw 301 is sleeved on the side end of the locking and limiting block 1, and a fixed locking plate 302 is welded to the bottom end of the combination screw 301. The side end of the combined screw 301 is connected to a limit nut 303 via a thread; The top of the fixed plate 302 is equidistantly connected to several buffer spring rods 304, and the top of the buffer spring rods 304 is equipped with a hollow buffer plate 305. The bottom of the locking block 1 is attached to the top of the fixed plate 302. The guide locking post 307 is inserted and installed inside the hollow buffer plate 305. There are four hollow buffer plates 305 to realize hollow buffer restriction and alignment locking restriction. A hollow buffer plate 305 is slidably connected to a hollow positioning plate 306 at its top end, and guide positioning posts 307 are welded at equal intervals to the bottom end of the hollow positioning plate 306. A buffer positioning sleeve 308 is installed inside the hollow positioning plate 306. The inner side of the buffer positioning sleeve 308 fits against the side end of the coupling fixing box 208 to achieve a matching and fitting connection. Energy-absorbing damping strips 309 are equidistantly bonded to the inner side of the buffer positioning sleeve 308. The cross-section of the energy-absorbing damping strips 309 is U-shaped. There are two energy-absorbing damping strips 309 to achieve alignment and energy absorption. One end of the energy-absorbing damping strip 309 is bonded with a compression elastic sheet 310; The top of the hollow positioning plate 306 and both ends of the positioning alignment frame 213 are equipped with guide universal joints 311. One end of the guide universal joint 311 is equipped with a guide positioning frame 312. The longitudinal section of the guide positioning frame 312 is U-shaped, which realizes the alignment guidance and locking. A guide fixing block 313 is rotatably connected to the inner side of the guide positioning frame 312, and a guide spring rod 314 is installed between the two guide fixing blocks 313.

[0023] The working principle and usage process of this invention are as follows: When installing a metal roof, two locking closing frames 218 are inserted into the inner side of the rotating alignment sleeve 216, and the locking closing frames 218 and the rotating alignment sleeve 216 are limited and combined using fixing bolts 217. After the combination is completed, the workers use welding equipment to weld the combined fixing plate 220 to the installation position of the metal roof, and weld the fixing plate 302 to the support structure to achieve the welding and fixing installation of the connection position. After installation, insert the locking block 1 into the top of the fixed plate 302 along the combination screw 301. During the insertion process, insert the guide locking post 307 at the bottom of the hollow locking plate 306 into the top of the hollow buffer plate 305, so that the bottom of the hollow locking plate 306 fits against the top of the hollow buffer plate 305. After the fit is completed, use the limit nut 303 and the combination screw 301 to press the locking block 1 into the top of the fixed plate 302, so as to realize the rapid combination and installation of the roof and the supporting structure. The rapid combination through the integrated installation structure improves the overall installation speed. During use, when the metal roof sways due to wind, the metal roof causes the combined fixing plate 220, support guide plate 219, and locking closing frame 218 to swing simultaneously. During this swing, the locking closing frame 218 pulls the rotating alignment sleeve 216, locking limiting frame 214, locking alignment frame 213, and pressure-relieving operating frame 210 to swing synchronously. When the pressure-relieving operating frame 210 swings, its side end presses against the combined spring plate 209 for restriction. Simultaneously, the combined spring plate 209 is pressed against the connecting fixing box 208, pushing the connecting fixing box 208 to move. The alignment slide 202 moves along the locking block 1 via the connecting fixing box 208. At this time, the alignment slide 202 drives the hard pressure energy-absorbing pad 207 to squeeze the pressure-relieving spring sheet 201. Simultaneously, the pressure spring 203 drives the pressure locking block 204 to move downward along the alignment slide 202, so that the side end of the guide fixing ball 205 is in contact with the bottom inner side of the locking block 1. This allows the guide fixing ball 205 to slide and guide the alignment slide 202 to move, avoiding increased damage to the equipment due to sliding friction between the alignment slide 202 and the locking block 1. The system utilizes a pressure-relieving spring plate 201 to simultaneously compress and buffer the alignment sliding frame 202 at multiple positions, and a combination spring plate 209 to simultaneously compress and buffer the connecting fixing box 208 at multiple positions. Then, the energy-absorbing damping strip 309 inside the buffer locking sleeve 308 performs hard pressure energy absorption, and the pressing elastic plate 310 performs pressing energy absorption treatment, thereby achieving overall swing energy absorption and swing buffering treatment. Furthermore, during swinging, the guide universal joint 311 restricts the direction of the two sets of guide locking frames 312, and the guide spring rod 314 performs buffering damping treatment, thereby achieving overall energy absorption and swing buffering treatment. When the metal roof is compressed by snow, it pushes the combined fixing plate 220 downward. The combined fixing plate 220, under pressure, pushes the support guide plate 219 and the locking closing frame 218 downward. The torsion spring 215 absorbs energy and buffers the rotation of the rotating alignment sleeve 216 and the locking closing frame 218 to prevent the metal roof from collapsing due to unidirectional force. The lifting spring rod 211 presses and absorbs energy for the locking alignment frame 213 and the pressure relief operation frame 210. At this time, the buffer spring rod 304 at the bottom fixed fixing plate 302 is centered. The hollow positioning plate 306 and the hollow buffer plate 305 absorb energy and press together for cushioning. Together with the guide universal joint 311, guide positioning frame 312, guide fixing block 313 and guide spring rod 314, they provide multi-position tilting guidance and telescopic energy absorption treatment on both sides. This prevents the metal roof from tilting and being damaged due to force in a single position when it is squeezed by snow accumulation. Through multi-position elastic buffering and flexible energy absorption support, the roof can self-adjust and quickly align, improving its overall stability, ensuring the effectiveness of waterproofing and roof support, and extending the service life of the roof.

[0024] Finally, it should be noted that the above descriptions are merely preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A flexible support system for metal roofs integrating health monitoring and functional facilities, comprising a locking and limiting block (1), characterized in that: The side end of the locking block (1) is provided with a multi-slow component (2); The multi-pressure relief component (2) includes a pressure relief spring sheet (201); A plurality of pressure-relieving spring plates (201) are equidistantly installed on the inner side of the positioning limiting block (1), and an alignment sliding frame (202) is slidably installed on the inner side of the positioning limiting block (1). The bottom end of the alignment sliding frame (202) is welded with several pressure springs (203) at equal intervals, and the bottom end of the pressure springs (203) is equipped with pressure locking blocks (204). The bottom of the pressing and locking block (204) is equidistantly rotatably connected to a guide fixing ball (205). The alignment slide frame (202) has several protective operation pads (206) bonded at equal intervals on its side end, and a hard pressure energy-absorbing pad (207) is installed on the side end of the alignment slide frame (202) at the position corresponding to the pressure relief spring sheet (201). The top of the alignment slide frame (202) is snapped with a coupling fixing box (208), and a number of combined spring plates (209) are installed at equal intervals on the top of the coupling fixing box (208). The top of the assembly fixing box (208) is equipped with a pressure relief operation frame (210), and the top of the alignment sliding frame (202) and the top of the pressure relief operation frame (210) are both equipped with lifting spring rods (211).

2. The flexible support system for metal roofs integrating health monitoring and functional facilities according to claim 1, characterized in that, The side end of the guide fixing ball (205) is slidably attached to the bottom of the inner side of the locking block (1), the pressing locking block (204) is slidably installed on the inner side of the alignment sliding frame (202), and one end of the hard pressure energy absorption pad (207) is attached to one end of the pressure relief spring sheet (201).

3. The flexible support system for metal roofs integrating health monitoring and functional facilities according to claim 1, characterized in that, One of the lifting spring rods (211) has a combined sliding plate (212) installed at its top, and multiple lifting spring rods (211) have a locking frame (213) installed at their tops. The top of the card slot mounting frame (213) is welded with a card slot limiting frame (214), and torsion springs (215) are symmetrically installed at both ends of the card slot limiting frame (214). There are four of each of the pressure-relieving spring sheet (201) and the combined spring sheet (209).

4. The flexible support system for metal roofs integrating health monitoring and functional facilities according to claim 3, characterized in that, The torsion spring (215) has a rotating alignment sleeve (216) welded to one end, and a locking closure frame (218) is installed on one end of the rotating alignment sleeve (216) by a fixing bolt (217). The side end of the locking closure frame (218) is welded with a number of support guide plates (219), and the top of the number of support guide plates (219) is welded with a combined fixing plate (220). The top end of the combined sliding plate (212) is slidably connected to the bottom end of the connecting fixing box (208).

5. The flexible support system for metal roofs integrating health monitoring and functional facilities according to claim 4, characterized in that, The side end of the combined spring sheet (209) is attached to the side end of the pressure relief operation frame (210), and the locking frame (213) is fitted and connected to the side end of the coupling fixing box (208).

6. The flexible support system for integrated health monitoring and functional facilities for metal roofs according to claim 4, characterized in that, The side end of the rotating alignment sleeve (216) is in contact with the side end of the locking closure frame (218). The longitudinal section of the locking closure frame (218) is arc-shaped. There are two combined fixing plates (220).

7. The flexible support system for integrated health monitoring and functional facilities for metal roofs according to claim 1, characterized in that, The side end of the card position limiting block (1) is provided with a limiting component (3); The limiting component (3) includes a combined screw (301); The side end of the locking block (1) is fitted with a combination screw (301), and the bottom end of the combination screw (301) is welded with a fixed locking plate (302). The side end of the combined screw (301) is connected to a limit nut (303) via a threaded connection. The top of the fixed plate (302) is equidistantly connected to a number of buffer spring rods (304), and the top of the number of buffer spring rods (304) is equipped with a hollow buffer plate (305). The hollow buffer plate (305) is slidably connected to the top of the hollow buffer plate (305), and the hollow buffer plate (306) is welded with guide pins (307) at equal intervals at the bottom of the hollow buffer plate (306). A buffer slotting sleeve (308) is installed on the inner side of the hollow slotting plate (306), and an energy-absorbing damping strip (309) is equidistantly bonded to the inner side of the buffer slotting sleeve (308).

8. The flexible support system for metal roofs integrating health monitoring and functional facilities according to claim 7, characterized in that, One end of the energy-absorbing damping strip (309) is bonded with a compression elastic sheet (310). The top of the hollow positioning plate (306) and both ends of the positioning frame (213) are equipped with guide universal joints (311), and a guide positioning frame (312) is installed at one end of the guide universal joint (311). The bottom end of the card-positioning limiting block (1) is attached to the top end of the card-fixing plate (302), and the guide card-positioning post (307) is inserted and installed inside the hollow buffer plate (305).

9. The flexible support system for metal roofs integrating health monitoring and functional facilities according to claim 8, characterized in that, The inner side of the guide positioning frame (312) is rotatably connected to a guide fixing block (313), and a guide spring rod (314) is installed between the two guide fixing blocks (313). There are four hollow buffer plates (305), and the inner side of the buffer slot sleeve (308) is fitted with the side end of the coupling fixing box (208).

10. The flexible support system for integrated health monitoring and functional facilities for metal roofs according to claim 8, characterized in that, The cross-section of the energy-absorbing damping strip (309) is U-shaped, and there are two energy-absorbing damping strips (309). The longitudinal section of the guide bracket (312) is C-shaped.