Non-contact flaw detection prediction device for building structure

The design of the spring-shaped rebound line and the clamping mechanism solves the problem of mess and damage caused by exposed connecting wires, thus improving the cleanliness and safety of the equipment.

CN223636886UActive Publication Date: 2025-12-05SHENZHEN ESSENS INNOVATION TECH CO LTD
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Patent Information

Application Number
CN202520108158.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-17
Publication Date
2025-12-05
Estimated Expiration
2035-01-17

AI Technical Summary

Technical Problem

The existing non-contact flaw detection prediction devices have exposed connection lines, resulting in a messy and easily affected by external physical factors, increasing the risk of line damage.

Method used

The design incorporates a spring-like rebound wire, support tube, ferrule mechanism, and button mechanism, allowing the connecting wire to be stored away, avoiding exposure, and reducing damage caused by external factors such as friction, stretching, and compression.

Benefits of technology

It improved the cleanliness and safety of the equipment, reduced the risk of damage to the connecting cables, and enhanced the company's image.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of building structure flaw detection equipment, in particular to a non-contact flaw detection prediction device for a building structure. According to the technical scheme, the flaw detection device comprises a flaw detection device body and a pair of connecting lines fixedly connected to the flaw detection device body, scanning mechanisms connected with the connecting lines are arranged on the two sides of the flaw detection device body, and the flaw detection device further comprises a spring-shaped rebound line. According to the utility model, the spring-shaped springback line, the supporting pipe, the clamping sleeve mechanism, the connecting sleeve, the button mechanism and other structures are matched, so that the connecting lines on the non-contact flaw detection prediction device are properly arranged, and the equipment and the working environment can look cleaner and tidier, and the specialty is embodied. For customers, visitors or partners, a clean and tidy environment can improve corporate images. And meanwhile, the connecting wire is automatically stored after being used, the electric wire can be effectively prevented from being exposed, and potential safety hazards caused by damage caused by the external environment are reduced.
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Description

TECHNICAL FIELD

[0001] The utility model relates to building structure flaw detection equipment technical field especially relates to a building structure non contact flaw detection prediction device. BACKGROUND

[0002] Building structure refers to all components designed and built to support the building and ensure its stability and safety. Currently, in order to improve detection efficiency, ensure building structure safety, reduce cost and reduce damage to existing building structure, a non-contact flaw detection prediction device is usually required. The traditional device is provided with a scanning mechanism on both sides, and is connected with the device through a connecting line. The scanning mechanism detects by using sensors, sound waves, magnetic fields and other physical principles. In the prior art, the connecting line used by the scanning mechanism is usually directly exposed to the outside. The exposed wire not only makes the entire device look messy, but also is easily affected by external physical factors (such as friction, stretching, extrusion, etc.), thereby increasing the risk of line damage. SUMMARY

[0003] The utility model discloses to solve the problem that the connecting line used by the scanning mechanism in the prior art is usually directly exposed to the outside, and the exposed wire not only makes the entire device look messy, but also is easily affected by external physical factors (such as friction, stretching, extrusion, etc.), thereby increasing the risk of line damage.

[0004] The technical scheme of the utility model discloses a building structure non-contact flaw detection prediction device, which comprises a flaw detection equipment body and a pair of connecting lines fixedly connected to the flaw detection equipment body, and scanning mechanisms are arranged on both sides of the flaw detection equipment body and connected with the connecting lines, and further comprises: spring-shaped rebound lines arranged on both sides of the flaw detection equipment body and corresponding to the scanning mechanisms and the connecting lines; support pipes sleeved on the spring-shaped rebound lines, one end of the support pipes is provided with a clamping sleeve mechanism fast detachably connected with one end of the scanning mechanism; a connecting sleeve fixedly connected to one end of the support pipe, and a button mechanism for controlling the clamping sleeve mechanism switch is arranged on the connecting sleeve.

[0005] Optionally, the clamping sleeve mechanism comprises a connecting sleeve fixedly connected to one end of the support pipe, a rotating groove is formed in the connecting sleeve, a pair of arc-shaped rotating plates are rotatably connected in the rotating groove, clamping blocks are fixedly connected in the arc-shaped rotating plates, a connecting head is fixedly connected to one end of the scanning mechanism close to the connecting sleeve, and a clamping groove for clamping the clamping blocks is formed in one end of the connecting head away from the scanning mechanism.

[0006] Optionally, the clamping blocks are provided with inclined surfaces for abutting against the connecting head to drive the arc-shaped rotating plates to rotate.

[0007] Optionally, the button mechanism comprises a button connected to the connecting sleeve through sliding, a tapered abutting block fixedly connected to one end of the button inserted into the connecting sleeve, and an abutting block fixedly connected to one end of the arc-shaped rotating plate close to the button.

[0008] Optionally, the tapered abutting block is fixedly connected with a pair of clamping rods clamping the button to prevent it from coming out of the connecting sleeve.

[0009] Optionally, a sleeve pipe is sleeved on the connecting line, one end of the sleeve pipe is fixedly connected to the outer wall of the body of the flaw detection equipment, and the other end of the sleeve pipe is fixedly connected to one end of the supporting pipe away from the scanning mechanism.

[0010] Optionally, one end of the spring-shaped rebounding line is fixedly connected to one end of the connecting head away from the scanning mechanism, and the other end of the spring-shaped rebounding line is fixedly connected to one end of the connecting line away from the body of the flaw detection equipment.

[0011] Optionally, a plurality of anti-skid lines arranged in a linear form are arranged on the outer wall of the connecting head.

[0012] In summary, the present application has at least one of the following beneficial technical effects:

[0013] The spring-shaped rebounding line, the supporting pipe, the clamping sleeve mechanism, the connecting sleeve and the button mechanism are matched to arrange the connecting line on the non-contact flaw detection prediction device properly, so that the equipment and the working environment look cleaner and neater, and the professional nature is reflected.

[0014] Further, the connecting line can be automatically stored after use, which can effectively avoid the exposure of the wire and reduce the safety hazards caused by damage due to external environment (such as friction, stretching, extrusion, etc.). BRIEF DESCRIPTION OF DRAWINGS

[0015] Figure 1 A structural schematic diagram of a building structure non-contact flaw detection prediction device is given;

[0016] Figure 2 For Figure 1 A partial disassembly structural schematic diagram;

[0017] Figure 3 For Figure 1 A partial cross-sectional structural schematic diagram;

[0018] Figure 4 For Figure 3 A partial structural schematic diagram.

[0019] 1, the equipment body of detecting a flaw; 11, connecting line; 12, spring-like rebound line; 13, scanning mechanism; 14, connecting head; 15, clamping groove; 2, sleeve pipe; 21, support pipe; 3, connecting sleeve; 31, rotating groove; 32, arc-shaped rotating plate; 33, clamping block; 34, inclined surface; 35, abutting block; 36, arc-shaped insertion hole; 37, reset spring; 4, button; 41, conical abutting block; 42, clamping rod. DETAILED DESCRIPTION

[0020] The technical solutions of the present application will be described clearly and completely below in conjunction with the drawings. Obviously, the described embodiments are only some of the embodiments of the present application, not all the embodiments.

[0021] The components of the embodiments of the present application generally described and shown in the drawings can be arranged and designed in various different configurations. Therefore, the following detailed description of the embodiments of the present application provided in the drawings is not intended to limit the scope of the claimed application, but only represents selected embodiments of the present application.

[0022] Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of the present application.

[0023] In the description of the present application, it should be noted that the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer" and the like indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and therefore cannot be understood as indicating or implying that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the present application. In addition, the terms "first", "second", "third" are only for descriptive purposes and cannot be understood as indicating or implying relative importance.

[0024] It should be noted that the terms "include", "contain" or any other variants thereof are intended to cover non-exclusive inclusion, so that the processes, methods, articles or devices including a series of elements not only include those elements, but also include other elements not explicitly listed or inherent to such processes, methods, articles or devices. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Moreover, the described specific features, structures, materials or characteristics can be combined in any one or more embodiments or examples in a suitable manner.

[0025] In the description of the utility model, it is necessary to explain, unless another explicit provision and limitation, term "installation", "link", "connection" should do broad sense understanding, for example, can be fixed connection, also can be detachable connection, or integrally connected;Can be mechanical connection, also can be electrical connection;Can be directly connected, also can pass through intermediate medium indirectly connected, can be two element inside the intercommunication.For ordinary skilled person in the art, the above-mentioned terms can be understood according to the specific meaning of the utility model.

[0026] Embodiment

[0027] As Figures 1 to 4 The utility model discloses a kind of building structure non-contact flaw detection prediction devices, including flaw detection equipment ontology 1 and the pair of connecting wires 11 fixedly connected on flaw detection equipment ontology 1, the both sides of flaw detection equipment ontology 1 are equipped with the scanning mechanism 13 connected with connecting wire 11, further include: spring-like rebound line 12, spring-like rebound line 12 has stretchability, so it can be lengthened according to need, shorten after use, it is convenient to store.This makes spring-like rebound line 12 can flexibly adapt to different use scenarios, when storing, it will not occupy too much space.And the design of spring-like rebound line 12 makes that electric wire can freely stretch and recover, not easy to knot or entangle, reduce the trouble caused because of winding or knoting.In addition, spring-like rebound line 12 can be lengthened or shortened according to need when using, it is convenient to use flexibly in different environment and space.For example, the distance between equipment is far, spring-like rebound line 12 can be lengthened, restore to original length after use, avoid unnecessary waste and confusion.Corresponding to scanning mechanism 13 and connecting wire 11, support tube 21 is sleeved on spring-like rebound line 12, one end of support tube 21 is equipped with the snap-on mechanism of one end quick-release type connection with scanning mechanism 13;Connecting sleeve 3 is fixedly connected in one end of support tube 21, button mechanism for controlling snap-on mechanism switch is equipped on connecting sleeve 3.

[0028] Further, the sleeve mechanism comprises a connecting sleeve 3 fixedly connected to one end of the supporting pipe 21, the connecting sleeve 3 is provided with a rotating groove 31, a pair of arc-shaped rotating plates 32 are rotatably connected to the inside of the rotating groove 31, the arc-shaped rotating plates 32 are fixedly connected with clamping blocks 33, the clamping blocks 33 are provided with inclined surfaces 34 for the connecting head 14 to abut against and drive the arc-shaped rotating plates 32 to rotate, the inclined surfaces 34 are used to drive the corresponding arc-shaped rotating plates 32 to open when the clamping blocks 33 are abutted against by the end of the connecting head 14. The scanning mechanism 13 is fixedly connected with the connecting head 14 at one end close to the connecting sleeve 3, the outer wall of the connecting head 14 is provided with a plurality of linearly arranged anti-skid lines, the main function of the anti-skid lines is to increase the friction between the surface and the contact object to prevent sliding. One end of the spring-shaped rebound line 12 is fixedly connected with the end of the connecting head 14 away from the scanning mechanism 13, the other end of the spring-shaped rebound line 12 is fixedly connected with the end of the connecting line 11 away from the flaw detection equipment body 1, and the end of the connecting head 14 away from the scanning mechanism 13 is provided with a clamping groove 15 for clamping the clamping block 33.

[0029] The button mechanism comprises a button 4 slidingly connected to the connecting sleeve 3, the end of the button 4 inserted into the connecting sleeve 3 is fixedly connected with a tapered abutting block 41, the outer wall of the tapered abutting block 41 is fixedly connected with a pair of clamping rods 42 for clamping the button 4 to prevent it from falling out of the connecting sleeve 3, the clamping rods 42 are used to ensure that the button 4 can be repeatedly used and prevent it from falling out of the connecting sleeve 3 for one-time use. The end of the arc-shaped rotating plate 32 close to the button 4 is fixedly connected with an abutting block 35, the abutting block 35 is provided with an arc-shaped insertion hole 36 for the end of the tapered abutting block 41 to be inserted, the end of the arc-shaped rotating plate 32 close to the button 4 is fixedly connected with a pair of return springs 37, the return springs 37 are used to make the abutting block 35 not be abutted against by the tapered abutting block 41, at this time, the arc-shaped rotating plate 32 will automatically rotate to the original position for clamping the connecting head 14 in the rotating groove 31 through the elastic pulling force of the return springs 37.

[0030] Further, the connecting line 11 is provided with a sleeve line pipe 2, one end of the sleeve line pipe 2 is fixedly connected with the outer wall of the flaw detection equipment body 1, and the other end of the sleeve line pipe 2 is fixedly connected with the end of the supporting pipe 21 away from the scanning mechanism 13.

[0031] In this embodiment, when the building structure non-contact flaw detection prediction device is needed to be used, the sleeve mechanism is first connected to the connecting sleeve 3, the scanning mechanism 13 is connected to the connecting head 14, the button mechanism is connected to the button 4, and the connecting line 11 is connected to the sleeve line pipe 2. Figure 1As shown, only need to press the button 4 in the connecting sleeve 3, the button 4 drives the conical abutment 41 inserted into a pair of arc-shaped insertion hole 36, thereby opening a pair of arc-shaped insertion hole 36 so that the distance between them is getting bigger. And the corresponding arc-shaped insertion hole 36 drives the abutment 35 to move, the abutment 35 in turn drives the corresponding arc-shaped rotating plate 32 to move, so that the arc-shaped rotating plate 32 drives the clamping block 33 on it cannot be clamped into the clamping groove 15 at the end of the connector 14. At this time, the moving scanning mechanism 13 is pulled out through the end of the connector 14, the spring-shaped rebound line 12 in the supporting pipe 21, and then pulls the spring-shaped rebound line 12 to make it lengthen to the required length. And after loosening, the spring-shaped rebound line 12 will recover to retract into the supporting pipe 21. When the connector 14 at the end of the scanning mechanism 13 needs to be installed on the connecting sleeve 3, only need to insert the connector 14 far away from the end of the spring-shaped rebound line 12 into the connecting sleeve 3. The end of the connector 14 abuts against the inclined surface 34 on a pair of clamping blocks 33, so that the inclined surface 34 in turn drives the corresponding clamping block 33 and arc-shaped rotating plate 32 to move, until the end of the connector 14 is completely inserted into the connecting sleeve 3. At this time, the arc-shaped rotating plate 32 drives the corresponding clamping block 33 to clamp into the clamping groove 15 through the elastic tension of the end reset spring 37, so as to complete the connection and fixation of the connector 14 and the connecting sleeve 3.

[0032] The preferred embodiments of the above utility model are only used to help explain the utility model. The preferred embodiments do not describe all the details and do not limit the utility model to the specific implementation. Obviously, according to the content of the specification, many modifications and changes can be made. The description selects and specifically describes these embodiments in order to better explain the principles and practical applications of the utility model, so that the person skilled in the art can well understand and utilize the utility model. The utility model is limited by the claims and the whole scope and equivalents.

Claims

1. A non-contact flaw detection prediction device for a building structure, comprising a flaw detection device body (1) and a pair of connecting lines (11) fixedly connected to the flaw detection device body (1), both sides of the flaw detection device body (1) being provided with scanning mechanisms (13) connected to the connecting lines (11), characterized in that, Also include: Spring-shaped rebound line (12) is arranged in the both sides of the flaw detection equipment body (1) and the scanning mechanism (13) and the connecting line (11) corresponding; The support pipe (21) is sleeved on the spring-shaped rebound line (12), one end of the support pipe (21) is provided with a clamping sleeve mechanism connected with one end of the scanning mechanism (13) in quick release mode; The connecting sleeve (3) is fixedly connected to one end of the support pipe (21), and the connecting sleeve (3) is provided with a button mechanism for controlling the clamping sleeve mechanism switch.

2. The non-destructive testing prediction device for a building structure according to claim 1, wherein The clamping sleeve mechanism includes a connecting sleeve (3) fixedly connected to one end of the support pipe (21), a rotating groove (31) is formed in the connecting sleeve (3), a pair of arc-shaped rotating plates (32) are rotatably connected inside the rotating groove (31), a clamping block (33) is fixedly connected to the inside of each arc-shaped rotating plate (32), and a connecting head (14) is fixedly connected to one end of the scanning mechanism (13) close to the connecting sleeve (3), and a clamping groove (15) is formed in one end of the connecting head (14) away from the scanning mechanism (13) for clamping the clamping block (33).

3. A non-destructive testing prediction device for a building structure according to claim 2, wherein The clamping block (33) is provided with an inclined surface (34) for resisting the connecting head (14) to drive the arc-shaped rotating plate (32) to rotate.

4. The apparatus for non-destructive testing of a building structure according to claim 2, wherein The button mechanism includes a button (4) slidingly connected to the connecting sleeve (3), a tapered abutting block (41) is fixedly connected to one end of the button (4) inserted into the connecting sleeve (3), an abutting block (35) is fixedly connected to one end of each arc-shaped rotating plate (32) close to the button (4), an arc-shaped insertion hole (36) is formed in the abutting block (35) for inserting the tapered abutting block (41), and a pair of reset springs (37) are fixedly connected to one end of each arc-shaped rotating plate (32) close to the button (4).

5. The apparatus for non-destructive testing of a building structure according to claim 4, wherein The outer wall of the tapered abutting block (41) is fixedly connected with a pair of clamping rods (42) for clamping the button (4) to prevent it from coming out of the connecting sleeve (3).

6. The apparatus for non-destructive testing of a building structure according to claim 1, wherein The connecting line (11) is sleeved with a sleeve line pipe (2), one end of the sleeve line pipe (2) is fixedly connected with the outer wall of the flaw detection equipment body (1), and the other end of the sleeve line pipe (2) is fixedly connected with one end of the support pipe (21) away from the scanning mechanism (13).

7. The non-destructive testing prediction device for a building structure according to claim 2, wherein One end of the spring-shaped rebound line (12) is fixedly connected with one end of the connecting head (14) away from the scanning mechanism (13), and the other end of the spring-shaped rebound line (12) is fixedly connected with one end of the connecting line (11) away from the flaw detection equipment body (1).

8. The non-destructive testing prediction device for a building structure according to claim 2, wherein A plurality of anti-skid lines are arranged in a linear arrangement on the outer wall of the connecting head (14).