Built-in reinforcing structure of building

By combining internal and external reinforcement components with wind-powered rotation components, the stability and aesthetic appeal of old industrial chimneys under extreme weather conditions have been addressed. This enables dynamic adjustment of chimney stability and lighting landscape, ensuring safety and timely response for scenic area management.

CN121760554APending Publication Date: 2026-03-31HENAN WENBO CONSTR ENG CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-30
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

Existing technologies struggle to effectively reinforce industrial heritage structures without altering their appearance, especially since chimneys in old industrial sites are unstable under extreme weather conditions and have poor aesthetic appeal.

Method used

The system employs internal and external reinforcement components combined with wind-powered rotation and adjustment components. By rotating the wind-powered rotation component and adjusting the hydraulic cylinder, the stability of the chimney and the lighting effect can be dynamically adjusted. An electronic gyroscope is used to monitor wind changes to control the stability of the reinforced structure.

Benefits of technology

To ensure the stability and safety of the chimney under extreme weather conditions, while providing dynamic lighting effects, timely evacuation of tourists, and extending the service life of the connecting steel cables.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of existing building transformation, in particular to a building built-in reinforcing structure which comprises a chimney, a base is arranged at the bottom of the chimney, an inner reinforcing assembly is arranged in the chimney, an outer reinforcing assembly is arranged outside the chimney, and a wind power rotating assembly is further arranged at the top of the chimney. An adjusting assembly is arranged at the joint of the outer reinforcing assembly and the chimney, a light outlet hole is formed in the chimney, the adjusting assembly comprises a stabilizing sleeve, a limiting groove is formed in the chimney, and a stabilizing rod is arranged in the center in the chimney. And along with the increase of the wind power, the rotating speed of the wind power rotating assembly can be increased, and the upper end of the chimney generates a light flickering effect through the rotation of the wind power rotating assembly and the cooperation of the annular lamp, the light blocking sleeve and the light outlet hole.
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Description

Technical Field

[0001] This invention relates to the technical field of existing structure renovation, and in particular to a building-integrated reinforcement structure. Background Technology

[0002] Industrial heritage serves as a vital record of human industrialization, containing historical information from different periods of industrial development and possessing significant historical, artistic, and scientific value. Industrial heritage includes abandoned buildings, sites, and facilities of industrial and mining enterprises such as factory workshops, chimneys, water towers, kiln sites, warehouses, and smelting plants. Chimneys and water towers are among the most common industrial heritage structures. Before protecting and developing these structures, necessary reinforcement measures are required. Industrial heritage protection should adhere to the principle of "not altering the original state of the cultural relic" during reinforcement and renovation. Existing tall structures such as chimneys and water towers are mainly made of brick and concrete. Traditional reinforcement methods involve using cement composite mortar and steel mesh, concrete steel mesh, flat steel sleeves, and reinforced concrete ring beams and columns on the outer walls of chimneys or water towers. However, these methods alter the appearance of the structures and are therefore unsuitable for the reinforcement and renovation of industrial heritage chimneys and water towers. Traditional reinforcement methods are inadequate for industrial heritage structures, necessitating a reinforcement method that can both preserve the external characteristics of industrial heritage structures and ensure their safe use.

[0003] Chinese patent application CN201811533364.0 discloses a building-integrated reinforcement structure and method, comprising a reinforcement frame installed inside the building and integrally connected to the building's interior wall; the reinforcement frame includes at least three vertical rods connected to each other via connecting units; multiple sets of connecting units are respectively arranged on the vertical rods along the height direction. Each connecting unit includes a horizontal rod whose two ends are respectively connected to adjacent vertical rods; the connecting unit also includes a ring support, which is located on the outside of the vertical rod and connected to it.

[0004] In the process of renovating chimneys in old industrial bases, although the above-mentioned devices and methods can strengthen the chimneys, some chimneys have external connecting steel cables. When the connecting steel cables are in a state of tension for a long time, their service life will be reduced. In addition, in the event of extreme weather, the chimneys need more stable reinforcement. Relying solely on the above-mentioned internal reinforcement structures is difficult to achieve the desired effect. Furthermore, in the process of transforming the chimneys of old industrial bases into cultural scenic spots, the landscape effect also needs to be considered. Summary of the Invention

[0005] To address the aforementioned technical problems, this invention provides a building-integrated reinforcement structure.

[0006] The present invention provides a building internal reinforcement structure, including a chimney, a base at the bottom of the chimney, an internal reinforcement component inside the chimney, an external reinforcement component outside the chimney, a wind-driven rotating component at the top of the chimney, an adjusting component at the connection between the external reinforcement component and the chimney, and a light-emitting hole on the chimney. The adjustment assembly includes a stabilizing sleeve, a limiting groove on the chimney, a stabilizing rod at the center inside the chimney, a connecting plate between the stabilizing rod and the stabilizing sleeve, the connecting plate sliding within the limiting groove, a rotating sleeve at the upper end of the stabilizing rod, the upper end of the rotating sleeve being connected to a wind-driven rotating assembly for transmission, a light-blocking sleeve on the outer side of the rotating sleeve on the inner wall of the chimney, a ring light on the stabilizing rod, and an electronic gyroscope inside the stabilizing rod.

[0007] Preferably, the external reinforcement component includes a connecting and fixing base, on which a connecting steel cable is provided, and a reinforcing plate is provided on the outside of the stabilizing sleeve, with the upper end of the connecting steel cable connected to the reinforcing plate.

[0008] Preferably, three external reinforcement components are provided, and the three external reinforcement components are arranged in a triangular pattern.

[0009] Preferably, the wind-powered rotating assembly includes a rotating shaft, a mounting bracket is provided at the top of the chimney, the rotating shaft is rotatably mounted on the mounting bracket, a wind cup is provided at the upper end of the rotating shaft, a limit block is provided at the lower end of the rotating shaft, a limit hole is provided at the upper end of the rotating sleeve, and the lower end of the rotating shaft is slidably inserted into the limit hole.

[0010] Preferably, the position of the light-blocking sleeve matches the light-emitting hole. The light-blocking sleeve is divided into upper and lower parts. The upper light-blocking sleeve is a solid ring, and the lower light-blocking sleeve is provided with an opening, and the openings are arranged in an array. There are multiple light-emitting holes, and the multiple light-emitting holes are arranged in an array.

[0011] Preferably, the internal reinforcement component includes anchor holes, which are disposed on the inner wall of the chimney. An anchor bolt is disposed in the anchor hole, and the anchor bolt is fixed in the anchor hole by welding. A connecting frame is disposed on the inner wall of the chimney at the anchor bolt. Each set of the internal reinforcement component has three anchor holes, three anchor bolts, and three connecting frames.

[0012] Preferably, the three connecting frames are provided with crossbars between each other, and the three connecting frames are also provided with ring supports between each other. A support rod is provided between the upper and lower sets of the inner reinforcement components, and the inner reinforcement components are located in the lower middle part of the chimney.

[0013] Preferably, a climbing frame is provided on the outside of the chimney, a protective frame is provided on the chimney on the outside of the climbing frame, and anchor rods and reinforcing ribs are provided on the base at the lower end of the chimney.

[0014] Preferably, a hydraulic cylinder is installed inside the chimney, and the output end of the hydraulic cylinder is connected to the lower end of the stabilizer bar.

[0015] Compared with the prior art, the beneficial effects of the present invention are as follows: By installing wind-powered rotating and adjusting components, after the old industrial base is transformed into an industrial heritage scenic area, the wind-powered rotating components will rotate due to external weather conditions. As the wind force increases, the rotation speed of the wind-powered rotating components will also increase. The rotation of the wind-powered rotating components, in conjunction with the ring light, the light-blocking sleeve, and the light-emitting hole, will create a flashing light effect at the top of the chimney. As the wind force increases, the change in the rotation speed of the wind-powered rotating components will alter the flashing frequency of the chimney's lights, and the swaying of the chimney caused by the wind will intensify. When the sway amplitude is detected by an electronic gyroscope to exceed a first threshold, the hydraulic cylinder will be activated. The system is activated, causing the stabilizing sleeve to move upwards. This tightens the connecting steel cable, providing better stability for the chimney. Simultaneously, more light outlets are exposed, altering the intensity of the chimney's light flashing. When the electronic gyroscope detects a sway amplitude exceeding the second threshold, indicating excessive wind and unsuitability for visitors to the industrial heritage site, the hydraulic cylinder's output end moves more, causing the chimney's light to flash with the lower end constantly lit and the upper end flashing. When this lighting effect occurs, staff at the industrial heritage site must promptly evacuate visitors to ensure the safety of everyone in the area. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the structure of the present invention; Figure 2 This is the present invention. Figure 1 A magnified schematic diagram of the partial structure at point A in the middle; Figure 3 This is the present invention. Figure 1 A magnified view of the structure at point B in the middle; Figure 4 This is a schematic diagram of the connection and fixing base of the present invention; Figure 5 This is a schematic diagram of the structure of the adjustment component of the present invention; Figure 6 This is a schematic diagram of the internal reinforcement component of the present invention; Figure 7 This is the present invention. Figure 6 A magnified schematic diagram of the structure at point C.

[0017] Reference numerals: 1. Chimney; 2. Base; 3. External reinforcement component; 4. Wind-powered rotation component; 5. Adjustment component; 6. Light outlet; 8. Climbing frame; 9. Protective frame; 301. Connecting and fixing base; 302. Connecting steel cable; 401. Rotating shaft; 402. Mounting frame; 403. Wind cup; 501. Stabilizing sleeve; 502. Limiting groove; 503. Stabilizing bar; 504. Connecting plate; 505. Rotating sleeve; 506. Light blocking sleeve; 507. Ring light; 508. Reinforcing plate; 509. Limiting hole; 510. Opening; 511. Hydraulic cylinder; 701. Anchor hole; 702. Anchor bolt; 703. Connecting frame; 704. Crossbar; 705. Ring support. Detailed Implementation

[0018] To facilitate understanding of the present invention, a more complete description will be given below with reference to the accompanying drawings. The present invention can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided so that this disclosure will be thorough and complete.

[0019] Example 1 With the expansion of urban scale, industrial upgrading, and adjustment of industrial layout planning, old industrial bases have closed or moved out of the city, leaving behind many industrial cultural heritages. In the process of transforming old industrial bases, the reinforcement of towering chimneys is particularly important.

[0020] like Figures 1 to 4 As shown, this invention discloses a building-integrated reinforcement structure, including a chimney 1, a base 2 at the bottom of the chimney 1, an internal reinforcement component inside the chimney 1, and an external reinforcement component 3 on the outside of the chimney 1. During the renovation of the chimney 1 in the old factory area, the base 2 is installed at the bottom of the chimney 1 to reinforce and fix the bottom of the chimney 1. The internal reinforcement component makes the chimney 1 more stable, while the external reinforcement component 3 keeps the chimney 1 stable under severe weather conditions.

[0021] The external reinforcement component 3 includes a connecting and fixing base 301, on which a connecting steel cable 302 is provided. The connecting steel cable 302 is connected to the upper middle part of the chimney 1. The connecting steel cable 302, the ground, and the chimney 1 form a stable triangular structure, making the chimney 1 more stable under stress. There are three external reinforcement components 3, which are arranged in a triangular pattern to ensure that the chimney 1 is evenly stressed in all directions, ensuring that the chimney 1 can maintain a stable state even under severe weather conditions, and making the modification and use of the chimney 1 more stable.

[0022] The internal reinforcement component includes an anchor hole 701, which is set on the inner wall of the chimney 1. An anchor bolt 702 is installed in the anchor hole 701, and the anchor bolt 702 is fixed in the anchor hole 701 by welding. A connecting frame 703 is set on the inner wall of the chimney 1 at the anchor bolt 702. Each set of internal reinforcement components has three anchor holes 701, three anchor bolts 702, and three connecting frames 703. First, the anchor hole 701 is processed at the corresponding position of the chimney 1 using a drilling tool. Then, the anchor bolt 702 is inserted into the anchor hole 701. The anchor bolt 702 is connected to the chimney 1 by welding, and the anchor hole 701 is sealed to ensure that the anchor bolt 702 is more stable when in use.

[0023] The three connecting frames 703 are provided with crossbars 704 between each other, and the three connecting frames 703 are also provided with ring supports 705 between each other. Support rods are provided between the upper and lower sets of internal reinforcement components. The internal reinforcement components are located in the middle and lower part of the chimney 1. The three crossbars 704 form a stable triangular structure, which makes the mutual support more stable. The upper and lower sets of internal reinforcement components are connected by support rods, so that multiple internal reinforcement components form a stable whole, which is used to make the reinforcement of chimney 1 more stable.

[0024] A climbing frame 8 is installed on the outside of the chimney 1, and a protective frame 9 is installed on the chimney 1 outside the climbing frame 8. Anchor rods and reinforcing ribs are installed on the base 2 at the lower end of the chimney 1. Using the external climbing frame 8, maintenance workers can inspect the condition of the chimney 1 at different heights and record and repair any abnormalities in a timely manner. During the climbing process, the maintenance workers are protected by the protective frame 9 to ensure their safety.

[0025] During the renovation of chimney 1 in the old industrial base, in order to achieve a better reinforcement effect, the insulation and inner lining of the abandoned chimney 1 can be removed first and then reinforced. First, drilling tools are used to process anchor holes 701 at the corresponding positions of chimney 1, and then anchor bolts 702 are inserted into anchor holes 701. The anchor bolts 702 are connected to chimney 1 by welding and the anchor holes 701 are sealed to ensure that the anchor bolts 702 are more stable when in use.

[0026] Furthermore, a support rod is provided between the upper and lower sets of internal reinforcement components. The internal reinforcement components are located in the lower middle part of the chimney 1. The three horizontal bars 704 form a stable triangular structure, making the mutual direct support more stable. The upper and lower sets of internal reinforcement components are connected by the support rod, so that multiple internal reinforcement components form a stable whole, which is used to make the reinforcement of the chimney 1 more stable.

[0027] The connecting steel cable 302, the ground, and the chimney 1 form a stable triangular structure, making the chimney 1 more stable under stress. In addition, there are three external reinforcement components 3, which are arranged in a triangular pattern to ensure that the chimney 1 is subjected to uniform stress in all directions, ensuring that the chimney 1 can maintain a stable state even in severe weather, and making the renovation and use of the chimney 1 more stable.

[0028] During regular maintenance, maintenance workers can use the external climbing frame 8 to inspect the status of the chimney 1 at different heights and record and repair any abnormalities in a timely manner. During the climbing process, maintenance workers are protected by the safety frame 9 to ensure their safety.

[0029] Example 2 While the building-integrated reinforcement structure of Embodiment 1 can reinforce chimney 1 during its renovation in the old industrial base, the long-term tension of the connecting steel cable 302 will reduce its service life. Furthermore, chimney 1 requires more stable reinforcement during extreme weather conditions. Relying solely on the building-integrated reinforcement structure of Embodiment 1 is insufficient to achieve the desired effect. Moreover, the landscape effect must be considered during the transformation of chimney 1 from the old industrial base into a cultural scenic area. Therefore, the following technical solution is proposed: like Figures 1 to 7 As shown, a wind-powered rotating component 4 is also installed at the top of the chimney 1, and an adjusting component 5 is installed at the connection between the external reinforcement component 3 and the chimney 1. The wind-powered rotating component 4 can rotate with the wind, and the adjusting component 5 can make a small adjustment to the connection position between the external reinforcement component 3 and the chimney 1, thereby changing the triangular structure formed by the external reinforcement component 3, the chimney 1 and the ground, and changing the reinforcement effect of the chimney 1.

[0030] The adjusting component 5 includes a stabilizing sleeve 501, a limiting groove 502 on the chimney 1, a stabilizing rod 503 at the center inside the chimney 1, a connecting plate 504 between the stabilizing rod 503 and the stabilizing sleeve 501, the connecting plate 504 sliding within the limiting groove 502, a reinforcing plate 508 on the outside of the stabilizing sleeve 501, the upper end of the connecting steel cable 302 connected to the reinforcing plate 508, the stabilizing sleeve 501 can move up and down with the assistance of the connecting plate 504 and the limiting groove 502, and the movement of the stabilizing sleeve 501 can drive the movement of the middle stabilizing rod 503, and the movement of the stabilizing sleeve 501 can move the reinforcing plate 508, thereby changing the triangle formed by the connecting steel cable 302, the chimney 1 and the ground, and changing the tension of the connecting steel cable 302.

[0031] A hydraulic cylinder 511 is installed inside the chimney 1. The output end of the hydraulic cylinder 511 is connected to the lower end of the stabilizer bar 503. When the hydraulic cylinder 511 is started, the output end of the hydraulic cylinder 511 drives the stabilizer bar 503 to move. The stabilizer bar 503 is moved by the hydraulic cylinder 511, so that its movement is stable and controllable.

[0032] A rotating sleeve 505 is provided at the upper end of the stabilizer bar 503. The upper end of the rotating sleeve 505 is connected to the wind-powered rotating assembly 4 for transmission. The wind-powered rotating assembly 4 includes a rotating shaft 401. A mounting bracket 402 is provided at the top of the chimney 1. The rotating shaft 401 is rotatably mounted on the mounting bracket 402. A wind cup 403 is provided at the upper end of the rotating shaft 401. A limit block is provided at the lower end of the rotating shaft 401. A limit hole 509 is provided at the upper end of the rotating sleeve 505. The lower end of the rotating shaft 401 is slidably inserted into the limit hole 509. When there is wind outside, the wind force acts on the wind cup 403, causing the rotating shaft 401 to rotate. The rotation of the rotating shaft 401 is limited by the limit block and the limit hole 509, causing the rotating sleeve 505 to rotate. A light-blocking sleeve 506 is provided on the outer side of the rotating sleeve 505 on the inner wall of the chimney 1. During the rotation of the rotating sleeve 505, the light-blocking sleeve 506 will rotate.

[0033] A light-emitting hole 6 is provided on the chimney 1, and a ring light 507 is provided on the stabilizer 503. The position of the light-blocking sleeve 506 matches the light-emitting hole 6. The light-blocking sleeve 506 is divided into upper and lower parts. The upper light-blocking sleeve 506 is a solid ring, and the lower light-blocking sleeve 506 is provided with an opening 510, and the openings 510 are arranged in an array. There are multiple light-emitting holes 6, and the multiple light-emitting holes 6 are arranged in an array. The ring light 507 will emit light when it is turned on. When the light-blocking sleeve 506 rotates, the opening 510 at the lower end of the light-blocking sleeve 506 will form a light-blocking strip at the lower end of the light-blocking sleeve 506. As the light-blocking sleeve 506 rotates, the light-blocking strip will block and release the light-emitting hole 6, so that the outside world perceives the light-emitting hole 6 as a flashing light effect.

[0034] An electronic gyroscope is installed inside the stabilizer bar 503. The electronic gyroscope can be used to detect the overall state of the chimney 1 and confirm whether the chimney 1 is in a balanced and stable state.

[0035] After the old industrial base was transformed into an industrial heritage scenic area, the wind force acts on the wind cup 403 due to the influence of external weather, causing the rotating shaft 401 to rotate. The rotation of the rotating shaft 401 is limited by the limiting block and the limiting hole 509, causing the rotating sleeve 505 to rotate. The outer side of the rotating sleeve 505 is provided with a light-blocking sleeve 506 on the inner wall of the chimney 1. During the rotation of the rotating sleeve 505, the light-blocking sleeve 506 will rotate as well.

[0036] During the rotation of the light-blocking sleeve 506, the opening 510 at the lower end of the light-blocking sleeve 506 will form a light-blocking strip at the lower end of the light-blocking sleeve 506. As the light-blocking sleeve 506 rotates, the light-blocking strip will block and release the light-emitting hole 6, thereby making the light-emitting hole 6 appear to be flashing to the outside world, so that the chimney 1 produces a flashing light effect at night.

[0037] As the wind force increases, the rotation speed of the wind-driven rotating component 4 will also increase, thereby increasing the rotation speed of the light-blocking sleeve 506. At night, the frequency of the lights flashing on the chimney 1 when viewed from the outside will increase. Furthermore, the wind force is often variable, so the rotation speed of the light-blocking sleeve 506 will also change. Therefore, the frequency of the lights flashing on the chimney 1 will also change constantly, making the visual effect of the flashing lights landscape better.

[0038] When wind force acts on the wind-driven rotating component 4, it also acts on the chimney 1, causing the chimney 1 to vibrate slightly. The vibration changes of the chimney 1 are monitored by the electronic gyroscope. When the electronic gyroscope detects that the vibration amplitude of the chimney 1 increases beyond the first threshold, the hydraulic cylinder 511 is activated. The output end of the hydraulic cylinder 511 drives the stabilizing rod 503 to rise. After the stabilizing rod 503 rises, it drives the stabilizing sleeve 501 to rise through the connecting plate 504. After the stabilizing sleeve 501 moves upward, it will tighten the connecting steel cable 302, thereby providing a better fixation effect for the chimney 1 and making the use of the chimney 1 more stable.

[0039] When the stabilizer bar 503 moves upward, it also causes the light-blocking sleeve 506 to move upward. After the light-blocking sleeve 506 moves upward, the number of light-emitting holes 6 blocked decreases. At this time, the external perception of the flickering light of the chimney 1 is that the brightness of the flickering light increases.

[0040] When the electronic gyroscope detects that the vibration amplitude of chimney 1 has increased beyond the second threshold, it indicates that the external wind force is too strong. The output end of the equipment control hydraulic cylinder 511 drives the stabilizing rod 503 to rise more, which on the one hand makes the connecting steel cable 302 more taut to produce a stronger fixing effect on chimney 1, and on the other hand, the light-blocking sleeve 506 moves upward, and the upper part of the light-blocking sleeve 506 no longer blocks the light-emitting hole 6, and the light-blocking strip of the light-blocking sleeve 506 is located above the lowest light-emitting hole 6. At this time, the external perception of the flickering effect of the lights on chimney 1 is that the lower ring of lights is constantly lit, while the upper lights flicker. When this light effect occurs, the staff of the industrial heritage scenic area need to evacuate tourists in the scenic area in a timely manner to ensure the safety of all personnel in the scenic area.

[0041] When the electronic gyroscope detects a decrease in the vibration amplitude of the chimney 1, the output end of the hydraulic cylinder 511 is also controlled to decrease, so that the adjustment component 5 gradually returns to its initial state, and the connecting steel cable 302 returns to a slack state, thus extending its service life.

[0042] The main function achieved by this invention is as follows: By setting up a wind-driven rotating component 4 and an adjusting component 5, after the old industrial base is transformed into an industrial heritage scenic area, the wind-driven rotating component 4 will rotate due to the influence of external weather. As the wind force increases, the rotation speed of the wind-driven rotating component 4 will increase. The rotation of the wind-driven rotating component 4, the ring light 507, the light-blocking sleeve 506, and the light-emitting hole 6 work together to produce a flashing light effect at the top of the chimney 1. As the wind force increases, the rotation speed of the wind-driven rotating component 4 changes, causing the flashing frequency of the light on the chimney 1 to change, and the swaying of the chimney 1 caused by the wind force to intensify. The electronic gyroscope monitors that the swaying amplitude exceeds a first threshold. When the hydraulic cylinder 511 is activated, the stabilizing sleeve 501 moves upward, which tightens the connecting steel cable 302, providing better stability for the chimney 1. On the other hand, more light-emitting holes 6 are exposed, causing the intensity of the chimney 1's light to change. When the electronic gyroscope detects that the sway amplitude is greater than the second threshold, the wind force is too strong, and the industrial heritage scenic area is no longer suitable for tourists. At this time, the output end of the hydraulic cylinder 511 moves more, causing the chimney 1's light to change to a constant light at the bottom and a flashing light at the top. When this light effect occurs, the staff of the industrial heritage scenic area must evacuate the tourists in time to ensure the safety of all personnel in the scenic area.

[0043] The present invention provides a building-integrated reinforcement structure, the installation method, connection method or setting method of which are all common mechanical methods, and any method that can achieve its beneficial effect can be implemented.

[0044] All technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains. The terminology used herein in the specification of this invention is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.

[0045] The above are merely preferred embodiments of the present invention. It should be noted that, for those skilled in the art, several improvements and modifications can be made without departing from the technical principles of the present invention, and these improvements and modifications should also be considered within the scope of protection of the present invention.

Claims

1. A building in-built reinforcing structure comprising a chimney (1), characterized in that, The chimney (1) bottom is provided with a base (2), the inside of the chimney (1) is provided with an internal reinforcing assembly, the outside of the chimney (1) is provided with an external reinforcing assembly (3), the top of the chimney (1) is further provided with a wind power rotating assembly (4), the connecting part of the external reinforcing assembly (3) and the chimney (1) is provided with an adjusting assembly (5), the chimney (1) is provided with a light outlet hole (6); The adjusting assembly (5) comprises a stabilizing sleeve (501), the chimney (1) is provided with a limiting groove (502), the center of the chimney (1) is provided with a stabilizing rod (503), the stabilizing rod (503) and the stabilizing sleeve (501) are provided with a connecting plate (504), the connecting plate (504) is limited to slide in the limiting groove (502), the upper end of the stabilizing rod (503) is provided with a rotating sleeve (505), the upper end of the rotating sleeve (505) is connected with the wind power rotating assembly (4) for transmission, the outside of the rotating sleeve (505) is provided with a light blocking sleeve (506) on the inner wall of the chimney (1), the stabilizing rod (503) is provided with a ring-shaped lamp (507), and the stabilizing rod (503) is provided with an electronic gyroscope.

2. The building in-fill bracing structure of claim 1, wherein The external reinforcing assembly (3) comprises a connecting fixed base (301), the connecting fixed base (301) is provided with a connecting steel cable (302), the outside of the stabilizing sleeve (501) is provided with a reinforcing plate (508), and the upper end of the connecting steel cable (302) is connected with the reinforcing plate (508).

3. The building in-fill bracing structure of claim 1, wherein The external reinforcing assembly (3) is provided with three, and the three external reinforcing assemblies (3) are arranged in the shape of a Chinese character.

4. The building in-fill bracing structure of claim 1, wherein, The wind power rotating assembly (4) comprises a rotating shaft (401), the top of the chimney (1) is provided with a mounting frame (402), the rotating shaft (401) is rotatably arranged on the mounting frame (402), the upper end of the rotating shaft (401) is provided with a wind cup (403), the lower end of the rotating shaft (401) is provided with a limiting block, the upper end of the rotating sleeve (505) is provided with a limiting hole (509), and the lower end of the rotating shaft (401) is slidably inserted into the limiting hole (509).

5. The building in-fill bracing structure according to claim 1, wherein The position of the light blocking sleeve (506) matches the light outlet hole (6), the light blocking sleeve (506) is divided into two parts, the upper part of the light blocking sleeve (506) is a solid ring sleeve, the lower part of the light blocking sleeve (506) is provided with an opening (510), and the openings (510) are arranged in an array, the light outlet hole (6) is provided with a plurality of light outlet holes (6), and the plurality of light outlet holes (6) are arranged in an array.

6. The building in-fill bracing structure according to claim 1, wherein The internal reinforcing assembly comprises an anchor hole (701), the anchor hole (701) is arranged on the inner wall of the chimney (1), the anchor hole (701) is provided with an anchor bolt (702), wherein the anchor bolt (702) is fixed in the anchor hole (701) by welding, the inner wall of the chimney (1) is provided with a connecting frame (703) at the anchor bolt (702), and one group of the anchor hole (701), the anchor bolt (702) and the connecting frame (703) of the internal reinforcing assembly are provided with three.

7. The building in-fill bracing structure of claim 6, wherein, Three connecting frames (703) are provided with cross bars (704) between each other, and are also provided with ring supports (705) between each other, and support bars are arranged between the upper and lower groups of inner reinforcing assemblies, and the inner reinforcing assemblies are arranged at the middle and lower parts of the chimney (1).

8. The building in-fill bracing structure of claim 1, wherein, The chimney (1) is provided with a climbing frame (8) outside, and a protection frame (9) is arranged outside the climbing frame (8) on the chimney (1), and anchor rods and reinforcing ribs are arranged on the base (2) at the lower end of the chimney (1).

9. The building in-fill bracing structure of claim 1, wherein, The chimney (1) is internally provided with a hydraulic cylinder (511), and the output end of the hydraulic cylinder (511) is connected with the lower end of the stabilizing rod (503).

Citation Information

Patent Citations

  • Built-in building reinforcing structure and reinforcing method

    CN109594791A