Adjusting type anti-seismic reinforcing plate for reinforcing constructional engineering

Through the design of the adjustment and strengthening mechanism, the adjustable seismic reinforcement plate solves the problem that the existing technology cannot adapt to walls of different inclinations, and achieves effective seismic reinforcement and shock absorption effects on the walls.

CN223214999UActive Publication Date: 2025-08-12HUNAN ZANGU ENGINEERING TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422026567.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-21
Publication Date
2025-08-12
Estimated Expiration
2034-08-21

AI Technical Summary

Technical Problem

The existing earthquake-resistant reinforcement plate cannot adjust the angle of the buffer plate, resulting in a decrease in its applicability and cannot adapt to wall surfaces of different inclinations.

Method used

An adjustable earthquake-resistant reinforcement plate is designed to provide angle adjustment and support force of the shock absorber plate through the adjustment mechanism and the reinforcement mechanism, including the combination of components such as guide rails, sliders, slots, lifting blocks, bolts and balls to ensure that the plate angle and support force are adjustable.

Benefits of technology

Effective earthquake resistance reinforcement of wall surfaces of different inclinations is achieved, the bending resistance and shock absorption effect of the support plate are improved, and the fit to the wall surface is enhanced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of anti-seismic reinforcing plates, in particular to an adjustable anti-seismic reinforcing plate for reinforcing constructional engineering, which comprises a bottom plate, a rotating plate is hinged to the surface of the bottom plate, an adjusting mechanism and a reinforcing mechanism are arranged on the surface of the bottom plate, a damping plate is arranged on the surface of the rotating plate, and the adjusting mechanism comprises a first guide rail. A first guide rail is arranged on the surface of the rotating plate, a first sliding block is slidably connected into the first guide rail, a second guide rail is arranged on the surface of the bottom plate, a second sliding block is slidably connected into the second guide rail, and a supporting plate is arranged between the first sliding block and the second sliding block. And by arranging the adjusting mechanism, the deflection angle of the damping plate can be adjusted, and therefore anti-seismic reinforcement can be conducted on wall faces with different gradients.
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Description

Technical Field

[0001] The utility model relates to the technical field of earthquake-resistant reinforcement plates, in particular to an adjustable earthquake-resistant reinforcement plate for reinforcement of construction projects. Background Art

[0002] A construction project refers to an engineering entity formed through the construction of various types of buildings and their ancillary facilities and the installation of supporting lines, pipelines, and equipment. Among them, "buildings" refer to projects with roofs, beams, columns, walls, foundations, and the ability to form internal spaces to meet people's needs for production, residence, study, and public activities. In construction projects, seismic reinforcement plates are needed to reinforce the walls to increase safety.

[0003] Some wall surfaces have a certain inclination, but the existing seismic reinforcement plates do not have an adjustment function and the angle of the buffer plate cannot be adjusted, thus reducing their applicability. Utility Model Content

[0004] The cam is connected to the second support rail by the spring, and the cam is connected to the second support rail by the spring, so that the cam can slide in the space between the first and second support rails and move the cam back to the support rail when the cam is in motion.

[0005] As an improvement of the above technical solution, the reinforcing mechanism includes a square cavity, the surface of the base plate is fixedly connected to the square cavity, the interior of the square cavity is slidably connected to a lifting block, a plurality of through holes are opened on the surface of the lifting block, the surface of the square cavity is slidably connected to bolts passing through it, the bolts pass through the through holes and are slidably connected to the through holes, the upper end of the lifting block is rotatably connected to a rotating shaft, one end of the rotating shaft is fixedly connected to a sliding sleeve, the support plate passes through the sliding sleeve and is slidably connected to the sliding sleeve.

[0006] As an improvement of the above technical solution, a plurality of balls are provided inside the sliding sleeve, and the sliding sleeve is rollingly connected to the support plate through the plurality of balls provided inside the sliding sleeve.

[0007] As an improvement of the above technical solution, the shock absorbing plate includes a connecting plate, the surface of the rotating plate is fixedly connected to the connecting plate, a plurality of shock absorbers are installed on the surface of the connecting plate, and the moving ends of the plurality of shock absorbers are installed with resistance plates.

[0008] Beneficial effects of the utility model:

[0009] 1. By setting an adjustment mechanism, the deflection angle of the shock-absorbing plate can be adjusted, thereby achieving earthquake-resistant reinforcement of wall surfaces with different inclinations.

[0010] 2. By setting up a reinforcement mechanism, a certain supporting force can be provided to the support plate, thereby improving the bending resistance of the support plate. BRIEF DESCRIPTION OF THE DRAWINGS

[0011] Figure 1 This is the overall structure diagram of the utility model;

[0012] Figure 2 This is the structural diagram of the adjustment mechanism of the utility model;

[0013] Figure 3 Strengthen the structure diagram of the mechanism for this utility model;

[0014] Figure 4 This is the structural diagram of the shock-absorbing plate of the utility model;

[0015] Figure 5 This is a structural diagram of the sliding sleeve of the utility model.

[0016] Figure numerals: 1. Base plate; 2. Rotating plate; 3. Adjusting mechanism; 31. First guide rail; 32. First slider; 33. Second guide rail; 34. Second slider; 35. Support plate; 36. Slot; 37. Slide plate; 38. Limiting block; 4. Reinforcing mechanism; 41. Square cavity; 42. Lifting block; 43. Through hole; 44. Bolt; 45. Rotating shaft; 46. Sliding sleeve; 47. Ball; 5. Shock-absorbing plate; 51. Connecting plate; 52. Shock absorber; 53. Resistance plate. DETAILED DESCRIPTION

[0017] In order to make the purpose, technical solutions and advantages of the present invention more clearly understood, the present invention is further described in detail below. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.

[0018] See also Figure 1-5The utility model provides a technical solution: an adjustable seismic reinforcement plate for strengthening construction projects, comprising a base plate 1, a rotating plate 2 hingedly connected to the surface of the base plate 1, an adjusting mechanism 3 and a strengthening mechanism 4 being provided on the surface of the base plate 1, and a shock-absorbing plate 5 being provided on the surface of the rotating plate 2. The adjusting mechanism 3 comprises a first guide rail 31, a first guide rail 31 being provided on the surface of the rotating plate 2, a first slider 32 being slidably connected inside the first guide rail 31, a second guide rail 33 being provided on the surface of the base plate 1, a second slider 34 being slidably connected inside the second guide rail 33, a supporting plate 35 being provided between the first slider 32 and the second slider 34, one end of the supporting plate 35 being hinged to the first slider 32, and the other end of the supporting plate 35 being hinged to the second slider 34, a plurality of slots 36 being provided inside the second guide rail 33, one end of the second slider 34 being fixedly connected to a slide plate 37, the slide plate 37 being slidably connected to the second guide rail 33, a limit block 38 being slidably connected to the surface of the slide plate 37, and the lower end of the limit block 38 extending to the inside of the slot 36.

[0019] In this embodiment, the rotating plate 2 is first rotated, thereby driving the first guide rail 31 to rotate, and then driving the first slider 32 to slide relatively inside the first guide rail 31, the support plate 35 makes a planar motion, and the second slider 34 and the slide plate 37 slide inside the second guide rail 33. When the rotating plate 2 drives the shock-absorbing plate 5 to rotate to a suitable angle, the self-locking can be completed by using the limit block 38 to pass through the hole opened on the surface of the slide plate 37 and insert it into the inside of the card slot 36. Therefore, by setting the adjustment mechanism 3, the deflection angle of the shock-absorbing plate 5 can be adjusted, so that the seismic reinforcement of wall surfaces with different inclinations can be achieved.

[0020] Specifically, the reinforcing mechanism 4 includes a square cavity 41, the surface of the base plate 1 is fixedly connected to the square cavity 41, the interior of the square cavity 41 is slidably connected to a lifting block 42, a surface of the lifting block 42 is provided with a plurality of through holes 43, the surface of the square cavity 41 is slidably connected to a bolt 44 passing through it, the bolt 44 passes through the through hole 43 and is slidably connected to the through hole 43, the upper end of the lifting block 42 is rotatably connected to a rotating shaft 45, one end of the rotating shaft 45 is fixedly connected to a sliding sleeve 46, the support plate 35 passes through the sliding sleeve 46 and is slidably connected to the sliding sleeve 46.

[0021] In this embodiment, when the user adjusts the adjustment mechanism 3, the support plate 35 makes a planar motion, thereby causing the sliding sleeve 46 to make a planar motion, and the support plate 35 slides relatively inside the sliding sleeve 46. The sliding sleeve 46 rotates relatively at the upper end of the lifting block 42 through the rotating shaft 45. At the same time, the lifting block 42 is lifted and lowered inside the square cavity 41. When the support plate 35 does not move, the self-locking of this mechanism can be completed by passing the bolt 44 through the hole opened on the surface of the square cavity 41 and through the through hole 43, and then tightening the nut. By providing the reinforcement mechanism 4, a certain supporting force can be provided to the support plate 35, thereby improving the bending resistance of the support plate 35.

[0022] Specifically, a plurality of balls 47 are provided inside the sliding sleeve 46 , and the sliding sleeve 46 is rollingly connected to the support plate 35 through the plurality of balls 47 provided inside the sliding sleeve 46 .

[0023] In this embodiment, by providing a plurality of balls 47 , when the support plate 35 slides inside the sliding sleeve 46 , the friction between the two is greatly reduced, thereby greatly reducing the wear between the support plate 35 and the sliding sleeve 46 .

[0024] Specifically, the shock absorbing plate 5 includes a connecting plate 51 , the surface of the rotating plate 2 is fixedly connected with the connecting plate 51 , a plurality of shock absorbers 52 are installed on the surface of the connecting plate 51 , and the movable ends of the plurality of shock absorbers 52 are all installed with resistance plates 53 .

[0025] In this embodiment, the wall surface can be effectively protected from earthquakes by the resistance plate 53 and the shock absorber 52, and multiple resistance plates 53 and shock absorbers 52 can enable the shock absorbing plate 5 to adapt to the uneven wall surface, thereby improving the fit of the shock absorbing plate 5 to the wall surface.

[0026] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit the same.

Claims

1. An adjustable seismic reinforcement plate for strengthening a construction project, comprising a base plate (1), a rotating plate (2) hingedly connected to the surface of the base plate (1), an adjusting mechanism (3) and a reinforcing mechanism (4) provided on the surface of the base plate (1), and a shock absorbing plate (5) provided on the surface of the rotating plate (2), characterized in that: The adjusting mechanism (3) comprises a first guide rail (31), a surface of the rotating plate (2) is provided with the first guide rail (31), the interior of the first guide rail (31) is slidably connected to a first slider (32), the surface of the bottom plate (1) is provided with a second guide rail (33), the interior of the second guide rail (33) is slidably connected to a second slider (34), a supporting plate (35) is provided between the first slider (32) and the second slider (34), one end of the supporting plate (35) is hinged to the first slider (32), and the other end of the supporting plate (35) is hinged to the second slider (34), a plurality of slots (36) are provided inside the second guide rail (33), one end of the second slider (34) is fixedly connected to a slide plate (37), the slide plate (37) is slidably connected to the second guide rail (33), the surface of the slide plate (37) is slidably connected to a limit block (38) provided therethrough, and the lower end of the limit block (38) extends to the interior of the slot (36).

2. The adjustable seismic reinforcement plate for building engineering reinforcement according to claim 1, characterized in that: The reinforcing mechanism (4) includes a square cavity (41), the surface of the bottom plate (1) is fixedly connected with the square cavity (41), the interior of the square cavity (41) is slidably connected with a lifting block (42), the surface of the lifting block (42) is provided with a plurality of through holes (43), the surface of the square cavity (41) is slidably connected with a bolt (44) passing through the square cavity, the bolt (44) passes through the through hole (43) and is slidably connected to the through hole (43), the upper end of the lifting block (42) is rotatably connected with a rotating shaft (45), one end of the rotating shaft (45) is fixedly connected with a sliding sleeve (46), the supporting plate (35) passes through the sliding sleeve (46) and is slidably connected to the sliding sleeve (46).

3. The adjustable seismic reinforcement plate for building engineering reinforcement according to claim 2, characterized in that: A plurality of balls (47) are arranged inside the sliding sleeve (46), and the sliding sleeve (46) is rollingly connected to the support plate (35) through the plurality of balls (47) arranged inside the sliding sleeve (46).

4. The adjustable seismic reinforcement plate for building engineering reinforcement according to claim 3, characterized in that: The shock absorbing plate (5) comprises a connecting plate (51), the surface of the rotating plate (2) is fixedly connected with the connecting plate (51), the surface of the connecting plate (51) is mounted with a plurality of shock absorbers (52), and the movable ends of the plurality of shock absorbers (52) are all mounted with resistance plates (53).