Nonmetal structure detection scanning equipment
By designing non-metallic structure detection and scanning equipment, using length and angle adjustment mechanisms, a full-dimensional scanning of non-metallic structures of billboards and curtain walls is achieved, solving the problem of inability to comprehensively scan in the prior art, and improving the convenience and accuracy of detection.
Patent Information
- Application Number
- CN202421787051.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-25
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2034-07-25
AI Technical Summary
The existing reinforcement scanner can only detect metal locations and cannot fully scan the non-metal structures of billboards and curtain walls, resulting in inconvenient inspection work.
A non-metallic structure detection and scanning device is designed, and the horizontal position adjustment of the probe is realized through the coordination of the length adjustment mechanism and the angle adjustment mechanism, including the first motor, a threaded rod, a moving plate, a turntable, a connecting rod, a reinforcement rod and a sealing plate; and the coordination of the second motor, a rotating rod, a driving gear and a driven gear, the angle adjustment of the probe is realized to ensure all-round scanning.
It realizes measurement of the structural system of billboards and curtain walls and scanning of non-metallic materials without opening the panel, improving the convenience and accuracy of detection.
Smart Images

Figure CN223139873U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of billboard and curtain wall detection, in particular to a non-metal structure detection and scanning device. Background Technique
[0002] The steel bar detector uses the electromagnetic induction method to detect the position of steel bars, the thickness of the protective layer and the diameter of steel bars in concrete structures or components, or to detect the quantity, direction and distribution of steel bars. It can also detect magnetic and conductive bodies in non-magnetic and non-conductive media.
[0003] In view of the large amount of work for the external opening panels of billboards and curtain walls and the high cost of measuring the internal structure, the existing steel bar scanners are limited in use at present. They can only detect the metal positions and cannot comprehensively scan the structure and non-metal positions, causing inconvenience in the detection work. Therefore, a non-metal structure detection and scanning device is proposed to solve the above problems. Content of the Utility Model
[0004] Aiming at the deficiencies of the prior art, the utility model provides a non-metal structure detection and scanning device, which has the advantages of being able to comprehensively scan the structure, etc., and solves the problems that the existing steel bar scanners are limited in use, can only detect the metal positions, cannot comprehensively scan the structure and non-metal positions, and cause inconvenience in the detection work.
[0005] To achieve the above purpose, the utility model provides the following technical scheme: a non-metal structure detection and scanning device, including a steel bar detector body. A fixed box is fixed on the front of the steel bar detector body. A probe is arranged in the inner cavity of the fixed box. A length adjustment mechanism for adjusting the elongation length of the probe is arranged at the top on the right side of the fixed box. An angle adjustment mechanism for adjusting the angle of the probe is arranged at the bottom of the inner cavity of the fixed box.
[0006] The length adjustment mechanism includes a first motor, a threaded rod, a moving plate, a turntable, a connecting rod, a reinforcing rod and a sealing plate. The first motor is fixed at the top on the right side of the fixed box. The output shaft of the first motor penetrates the fixed box and extends into the inner cavity of the fixed box and is fixed to the threaded rod. The moving plate is in threaded connection with the threaded rod. The turntable is arranged on the left side of the moving plate. The connecting rod is fixed on the left side of the turntable. The reinforcing rod is arranged in the inner cavity of the connecting rod. The sealing plate is fixed on the left side of the probe.
[0007] By adopting this technical scheme, the horizontal position of the probe can be adjusted, so that the probe can pass through the through hole and the side hole of the billboard and curtain wall to the inner cavity of the billboard and curtain wall for scanning, achieving the purpose of measuring the structure system and scanning non-metal materials without lifting the panel.
[0008] Further, a through hole is formed in the left side wall of the inner cavity of the fixed box, and the size of the inner cavity of the through hole is larger than the size of the probe.
[0009] By adopting this technical solution, it is convenient for the probe to move out of the inner cavity of the fixed box through the through hole.
[0010] Further, a protective box is arranged on the outer surface of the first motor, the threaded rod is rotatably connected to the side of the left side wall of the inner cavity of the fixed box through a bearing, and the left side of the connecting rod is fixed to the probe.
[0011] Further, sliding grooves are formed on the opposite sides of the inner top wall and the inner bottom wall of the fixed box, sliding blocks are fixed on both the upper and lower sides of the moving plate, and the sliding blocks move in a horizontal straight line in the inner cavity of the sliding grooves.
[0012] By adopting this technical solution, the movement of the moving plate can be limited by the arranged sliding grooves and sliding blocks.
[0013] Further, a limiting collar is fixed to the left end of the inner front wall of the fixed box, and the inner diameter of the limiting collar is adapted to the outer diameter of the connecting rod.
[0014] By adopting this technical solution, the arranged limiting collar can limit the movement of the connecting rod.
[0015] Further, the size of the sealing plate is larger than the size of the inner cavity of the through hole, a rotating block is fixed to the right side of the turntable, a rotating groove is formed on the left side of the moving plate, and the rotating block rotates in the inner cavity of the rotating groove.
[0016] By adopting this technical solution, the arranged sealing plate is used to prevent dust from entering the inner cavity of the fixed box and avoid affecting the normal detection of the probe.
[0017] Further, the angle adjustment mechanism includes a second motor, a rotating rod, a driving gear and a driven gear. The second motor is fixed to the bottom of the right side of the moving plate, the output shaft of the second motor penetrates through the moving plate and extends to the left side of the moving plate and is fixed to the rotating rod, the driving gear is fixed to the outer surface of the rotating rod, and the driven gear is fixed to the outer surface of the turntable.
[0018] By adopting this technical solution, the angle of the probe can be adjusted, so that omnidirectional scanning can be carried out, making the detection result more comprehensive and accurate and improving the convenience of detection.
[0019] Further, the rotating rod is rotatably connected to the left side of the moving plate through a bearing, and the driving gear is meshed with the driven gear.
[0020] By adopting this technical solution, the rotation of the driven gear can be driven by the rotation of the driving gear.
[0021] Compared with the prior art, the technical solution of the present application has the following beneficial effects:
[0022] 1. The non-metal structure detection and scanning device can adjust the horizontal position of the probe through the mutual cooperation of the first motor, threaded rod, moving plate, turntable, connecting rod, reinforcing rod and sealing plate, so that the probe can pass through the through hole and the side hole of the billboard and curtain wall to the inner cavity of the billboard and curtain wall for scanning, achieving the purpose of measuring the structural system and scanning non-metal materials without lifting the panel.
[0023] 2. The non-metal structure detection and scanning device can adjust the angle of the probe through the second motor, rotating rod, driving gear and driven gear, so as to perform omnidirectional scanning, making the detection result more comprehensive and accurate, and improving the convenience of detection. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] Figure 1 It is a schematic structural diagram of the present utility model;
[0025] Figure 2 It is a schematic structural diagram of the length adjustment mechanism of the present utility model;
[0026] Figure 3 It is a schematic structural diagram of the angle adjustment mechanism of the present utility model;
[0027] Figure 4 It is a 3D structural diagram of the angle adjustment mechanism of the present utility model.
[0028] In the figure: 1. Rebar detector body; 2. Fixed box; 3. Probe; 4. Length adjustment mechanism; 41. First motor; 42. Threaded rod; 43. Moving plate; 44. Turntable; 45. Connecting rod; 46. Reinforcing rod; 47. Sealing plate; 5. Angle adjustment mechanism; 51. Second motor; 52. Rotating rod; 53. Driving gear; 54. Driven gear. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0029] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative work shall fall within the protection scope of the present utility model.
[0030] Please refer to Figure 1, the non-metallic structure detection and scanning device in this embodiment includes a steel bar detector body 1. A fixed box 2 is fixed on the front of the steel bar detector body 1. A probe 3 is arranged in the inner cavity of the fixed box 2. A length adjustment mechanism 4 for adjusting the extended length of the probe 3 is arranged at the top on the right side of the fixed box 2. An angle adjustment mechanism 5 for adjusting the angle of the probe 3 is arranged at the bottom of the inner cavity of the fixed box 2.
[0031] In this embodiment, a through hole is formed in the left side wall of the inner cavity of the fixed box 2, and the size of the inner cavity of the through hole is larger than the size of the probe 3.
[0032] It should be noted that the probe 3 is loaded with professional scanning equipment and software to achieve the purpose of measuring the structural system and scanning non-metallic materials without opening the panel. The probe 3 needs to be loaded with computer analysis and processing software. After scanning, it can be directly imported to automatically generate drawings. It is sensitive to the node position and can automatically take pictures and scan.
[0033] Please refer to Figure 2 , in order to adjust the horizontal position of the probe 3, the length adjustment mechanism 4 in this embodiment includes a first motor 41, a threaded rod 42, a moving plate 43, a turntable 44, a connecting rod 45, a reinforcing rod 46 and a sealing plate 47. The first motor 41 is fixed at the top on the right side of the fixed box 2. The output shaft of the first motor 41 penetrates through the fixed box 2 and extends into the inner cavity of the fixed box 2 and is fixed to the threaded rod 42. The moving plate 43 is threadedly connected to the threaded rod 42. By opening a hole on one side of the billboard and the curtain wall, and then starting the first motor 41, the output shaft of the first motor 41 rotates to drive the threaded rod 42 to rotate. The rotation of the threaded rod 42 causes the moving plate 43 threadedly connected to its surface to move. The turntable 44 is arranged on the left side of the moving plate 43. The connecting rod 45 is fixed on the left side of the turntable 44. The reinforcing rod 46 is arranged in the inner cavity of the connecting rod 45. The sealing plate 47 is fixed on the left side of the probe 3. The arranged sealing plate 47 is used to prevent dust from entering the inner cavity of the fixed box 2 and avoid affecting the normal detection of the probe 3.
[0034] In this embodiment, a protective box is arranged on the outer surface of the first motor 41. The threaded rod 42 is rotatably connected to the side of the left side wall of the inner cavity of the fixed box 2 through a bearing. The left side of the connecting rod 45 is fixed to the probe 3. The movement of the moving plate 43 drives the turntable 44 to move. The movement of the turntable 44 drives the connecting rod 45 and the reinforcing rod 46 to move, so that the connecting rod 45 and the reinforcing rod 46 drive the probe 3 to move leftward, pass through the through hole and the hole on one side of the billboard and the curtain wall to the inner cavity of the billboard and the curtain wall. Sliding grooves are formed on the opposite sides of the inner top wall and the inner bottom wall of the fixed box 2. Sliders are fixed on both the upper and lower sides of the moving plate 43, and the sliders move horizontally in the inner cavity of the sliding grooves.
[0035] Among them, a limiting collar is fixed at the left end of the inner front wall of the fixed box 2. The inner diameter of the limiting collar is adapted to the outer diameter of the connecting rod 45. The provided limiting collar can limit the movement of the connecting rod 45. The size of the sealing plate 47 is larger than the size of the inner cavity of the through hole. A rotating block is fixed on the right side of the turntable 44, and a rotating groove is opened on the left side of the moving plate 43. The rotating block makes a rotational movement in the inner cavity of the rotating groove.
[0036] It should be noted that the provided length adjustment mechanism 4 achieves the purpose of measuring the structural system and scanning non-metallic materials without lifting the panel.
[0037] Please refer to Figures 3 to 4 , in order to enable the probe 3 to perform omnidirectional scanning, the angle adjustment mechanism 5 in this embodiment includes a second motor 51, a rotating rod 52, a driving gear 53 and a driven gear 54. The second motor 51 is fixed at the bottom on the right side of the moving plate 43. The output shaft of the second motor 51 penetrates the moving plate 43 and extends to the left side of the moving plate 43 and is fixed to the rotating rod 52. The driving gear 53 is fixed on the outer surface of the rotating rod 52. When the second motor 51 is started, the output shaft of the second motor 51 rotates to drive the rotating rod 52 to rotate. The rotation of the rotating rod 52 drives the rotation of the driving gear 53. The driven gear 54 is fixed on the outer surface of the turntable 44.
[0038] In this embodiment, the rotating rod 52 is rotatably connected to the left side of the moving plate 43 through a bearing. The driving gear 53 is meshed with the driven gear 54. The rotation of the driving gear 53 causes the driven gear 54 meshed with it to rotate. The rotation of the driven gear 54 drives the turntable 44 to rotate, and then drives the probe 3 to rotate through the connecting rod 45 and the reinforcing rod 46, so that the probe 3 can perform omnidirectional scanning.
[0039] The working principle of the above embodiment is as follows:
[0040] (1) When in use, by opening holes on one side of the billboard and the curtain wall, and then starting the first motor 41, the output shaft of the first motor 41 rotates to drive the threaded rod 42 to rotate. The rotation of the threaded rod 42 causes the moving plate 43 threadedly connected to its surface to move. At this time, the moving plate 43 makes a horizontal linear movement due to the provided slider and sliding groove. The movement of the moving plate 43 drives the turntable 44 to move. The movement of the turntable 44 drives the connecting rod 45 and the reinforcing rod 46 to move, so that the connecting rod 45 and the reinforcing rod 46 drive the probe 3 to move leftward, through the through hole and the hole on one side of the billboard and the curtain wall to the inner cavity of the billboard and the curtain wall.
[0041] (2) Then start the second motor 51. The rotation of the output shaft of the second motor 51 drives the rotation of the rotating rod 52. The rotation of the rotating rod 52 drives the rotation of the driving gear 53. The rotation of the driving gear 53 causes the driven gear 54 meshed with it to rotate. The rotation of the driven gear 54 drives the rotation of the turntable 44. Furthermore, the probe 3 is driven to rotate through the connecting rod 45 and the reinforcing rod 46, enabling the probe 3 to perform all-round scanning. The probe 3 is loaded with professional scanning equipment and software, achieving the purpose of measuring the structural system and scanning non-metallic materials without lifting the panel. The probe 3 needs to be loaded with computer analysis and processing software, and the scanned data can be directly imported to automatically generate drawings after scanning.
Claims
1. A non-metallic structure detection and scanning device, including a steel bar detector body (1), characterized in that: A fixed box (2) is fixed on the front of the reinforcing bar detector body (1). A probe (3) is arranged in the inner cavity of the fixed box (2). A length adjusting mechanism (4) for adjusting the extending length of the probe (3) is arranged at the top on the right side of the fixed box (2). An angle adjusting mechanism (5) for adjusting the angle of the probe (3) is arranged at the bottom of the inner cavity of the fixed box (2). The length adjusting mechanism (4) includes a first motor (41), a threaded rod (42), a moving plate (43), a turntable (44), a connecting rod (45), a reinforcing rod (46) and a sealing plate (47). The first motor (41) is fixed at the top on the right side of the fixed box (2). The output shaft of the first motor (41) penetrates through the fixed box (2) and extends into the inner cavity of the fixed box (2) and is fixed to the threaded rod (42). The moving plate (43) is in threaded connection with the threaded rod (42). The turntable (44) is arranged on the left side of the moving plate (43). The connecting rod (45) is fixed on the left side of the turntable (44). The reinforcing rod (46) is arranged in the inner cavity of the connecting rod (45). The sealing plate (47) is fixed on the left side of the probe (3).
2. The non-metallic structure detection and scanning device according to claim 1, characterized in that: A through hole is formed in the left inner wall of the fixed box (2), and the size of the inner cavity of the through hole is larger than the size of the probe (3).
3. The non-metallic structure detection and scanning device according to claim 1, wherein: A protective box is arranged on the outer surface of the first motor (41). The threaded rod (42) is rotatably connected to the side opposite to the left inner wall of the fixed box (2) through a bearing. The left side of the connecting rod (45) is fixed to the probe (3).
4. The non-metal structure detection and scanning device according to claim 1, characterized in that: Chutes are formed on the opposite sides of the inner top wall and the inner bottom wall of the fixed box (2). Sliders are fixed on both the upper and lower sides of the moving plate (43), and the sliders move in a horizontal straight line in the inner cavities of the chutes.
5. The non-metal structure detection and scanning device according to claim 1, characterized in that: A limiting collar is fixed at the left end of the inner front wall of the fixed box (2), and the inner diameter of the limiting collar is adapted to the outer diameter of the connecting rod (45).
6. The non-metallic structure detection and scanning device according to claim 2, characterized in that: The size of the sealing plate (47) is larger than the size of the inner cavity of the through hole. A rotating block is fixed on the right side of the turntable (44). A rotating groove is formed on the left side of the moving plate (43), and the rotating block rotates in the inner cavity of the rotating groove.
7. The non-metallic structure detection and scanning device according to claim 1, characterized in that: The angle adjusting mechanism (5) includes a second motor (51), a rotating rod (52), a driving gear (53) and a driven gear (54). The second motor (51) is fixed at the bottom on the right side of the moving plate (43). The output shaft of the second motor (51) penetrates through the moving plate (43) and extends to the left side of the moving plate (43) and is fixed to the rotating rod (52). The driving gear (53) is fixed on the outer surface of the rotating rod (52). The driven gear (54) is fixed on the outer surface of the turntable (44).
8. The non-metallic structure detection and scanning device according to claim 7, characterized in that: The rotating rod (52) is rotatably connected to the left side of the moving plate (43) through a bearing, and the driving gear (53) is meshed with the driven gear (54).