Integrated steel bar detector

By designing a guiding and positioning structure for the integrated rebar detector, the problems of detection accuracy and reliability caused by manual handheld operation were solved. Stable fixation and horizontal movement without human intervention were achieved, thereby improving detection accuracy and applicability.

CN223966100UActive Publication Date: 2026-03-03JILIN PROVINCE ARCHITECTURAL SCI RES & DESIGN INSTJILIN PROVINCE CONSTR ENG QUALITY INSPECTION CENT
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-28
Publication Date
2026-03-03

AI Technical Summary

Technical Problem

Existing rebar detectors require manual hand-held operation, which makes the test results susceptible to human factors, resulting in poor accuracy and reliability. They are particularly difficult to meet the needs of accurate testing in complex construction environments.

Method used

An integrated rebar detector was designed, which adopts a guiding and positioning structure, including an installation frame, guide holes, a traction frame, a plug sleeve, and a traction component. Through the cooperation of the traction frame and the traction component, the device can be fixed and moved horizontally, reducing manual intervention and ensuring detection accuracy and reliability.

Benefits of technology

It achieves stable fixation and horizontal movement without manual handling, improving detection accuracy and reliability, expanding its application range, and reducing the impact of human factors.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an integrated steel bar detector which comprises a detector body, a guiding and positioning structure is installed at the upper end of the detector body, and the guiding and positioning structure comprises an installation frame, three guiding holes, two traction frames, six inserting sleeves and a traction assembly. The utility model relates to the technical field of reinforcing steel bar detectors, and adopts a guide positioning structure, the whole device can be fixed on one side of a column body through matching of traction frames on two sides and a traction assembly during use, and the device does not need to be held by a person for fixation in a detection process, so that the problem of detection result deviation caused by human factors is solved; the detection precision and reliability are guaranteed, the detector body can horizontally move at the upper end of the traction assembly through cooperation of the arranged insertion sleeve and the three guide holes, and the application range of the detector is guaranteed.
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Description

Technical Field

[0001] This utility model relates to the technical field of rebar detectors, specifically an integrated rebar detector. Background Technology

[0002] In the field of construction engineering, steel bars are an important structural material, and their quality and the accuracy of their placement directly affect the safety and durability of the project. Therefore, testing steel bars is an indispensable part of the construction process.

[0003] Most existing rebar detectors require manual hand-held operation, which not only increases the workload of operators but also easily leads to deviations in test results due to human factors, affecting the accuracy and reliability of the test. This limitation is even more pronounced in complex construction environments, making it difficult to meet the requirements for accurate testing. In view of this, existing technologies may already have solutions to the above problems, but this case aims to provide an alternative or replacement technical solution. Utility Model Content

[0004] To achieve the above objectives, this utility model is implemented through the following technical solution: an integrated rebar detector, comprising a detector body, wherein a guide positioning structure is installed on the upper end of the detector body, and the guide positioning structure comprises: an installation frame, three guide holes, two traction frames, six plug-in sleeves, and a traction component.

[0005] The mounting frame is fixedly installed on one side of the upper end of the detector body. The three guide holes are all opened on the upper end of the mounting frame. The two traction frames are respectively located on both sides of the detector body. The six plug-in sleeves are respectively installed on the side walls of the six plug-in sleeves and are respectively movably embedded in both sides of the three guide holes. The traction assembly is installed on the side walls of the two traction frames and is movably embedded in the six plug-in sleeves and the three guide holes at its center.

[0006] Preferably, each of the traction components includes: four bearing plates, two operating shafts, six winding shafts, three traction ropes, and two rotation positioning components;

[0007] The four bearing plates are respectively installed on both sides of the two traction frames, and the two operating shafts are respectively movably embedded in the four bearing plates. The six winding shafts are respectively installed on the upper ends of the two operating shafts. The two ends of the three traction ropes are respectively wound around the upper ends of the six winding shafts, and the center of the ropes moves through the six insertion sleeves and the three guide holes. The two rotation positioning components are respectively installed on one side of the two operating shafts.

[0008] Preferably, both of the aforementioned rotary positioning components include: a positioning disk, a plurality of positioning holes, a positioning sleeve, and a positioning bolt;

[0009] The positioning disk is fixedly installed on one side of the operating shaft, and a plurality of positioning holes are opened on the upper end of the positioning disk. The positioning sleeve is fixedly installed on the side wall of one of the bearing plates, and the positioning bolt is movably embedded in one of the fixing holes and the positioning sleeve.

[0010] Preferably, the traction frame is L-shaped.

[0011] Preferably, the positioning sleeve has internal threads machined inside.

[0012] Beneficial effects

[0013] This utility model provides an integrated rebar detector with the following advantages: The guiding and positioning structure adopted in this invention, through the cooperation of the traction frames on both sides and the traction components, can fix the entire device on one side of the column. During the detection process, there is no need for personnel to hold and fix it, which solves the problem of deviation in detection results caused by human factors, and ensures detection accuracy and reliability. In addition, through the set plug sleeve and the cooperation of three guide holes, the detector body can move horizontally on the upper end of the traction components, ensuring the applicability of the detector. Attached Figure Description

[0014] Figure 1 This is a front-view three-dimensional structural diagram of an integrated rebar detector according to the present invention.

[0015] Figure 2 This is a top view of the integrated rebar detector of this utility model.

[0016] Figure 3 This is an enlarged schematic diagram of point "A" of the integrated rebar detector described in this utility model.

[0017] In the diagram: 1. Detector body, 2. Mounting frame, 3. Guide hole, 4. Traction frame, 5. Insert sleeve, 6. Bearing plate, 7. Operating shaft, 8. Rewinding shaft, 9. Traction rope, 10. Positioning plate, 11. Positioning hole, 12. Positioning sleeve, 13. Positioning bolt. Detailed Implementation

[0018] Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.

[0019] Example: Please refer to Figure 1-3An integrated rebar detector includes a detector body 1, with a guide positioning structure installed on the upper end of the detector body 1. The guide positioning structure includes: an installation frame 2, three guide holes 3, two traction frames 4, six plug-in sleeves 5, and a traction component.

[0020] Mounting frame 2 is fixedly installed on one side of the upper end of the detector body 1. Three guide holes 3 are all opened on the upper end of mounting frame 2. Two traction frames 4 are located on both sides of the detector body 1. Six plug sleeves 5 are installed on the side walls of the six plug sleeves 5 and are movably embedded in both sides of the three guide holes 3. The traction component is installed on the side walls of the two traction frames 4 and is movably embedded in the six plug sleeves 5 and the three guide holes 3 at the center.

[0021] When inspecting the reinforcing bars in the wall, the staff first opens one end of the traction assembly, then attaches one side of the traction frame 4 to one side of the wall, and then attaches the other side of the traction frame 4 to the other side of the wall. Through the operation of the traction assembly, the two traction frames 4 are tightly attached to both sides of the wall and the traction assembly is tightened. Then, according to the inspection position of the reinforcing bars, the inspection instrument body 1 and the mounting frame 2 are moved to the designated position. The inspection instrument body 1 is adjusted horizontally by moving the three guide holes 3 and the six plug sleeves 5 on the upper end of the traction assembly.

[0022] In the specific implementation process, the traction components include: four bearing plates 6, two operating shafts 7, six winding shafts 8, three traction ropes 9, and two rotation positioning components;

[0023] Four bearing plates 6 are respectively installed on both sides of the two traction frames 4. The two ends of the two operating shafts 7 are respectively movably embedded in the four bearing plates 6. Six winding shafts 8 are respectively installed on the upper ends of the two operating shafts 7. The two ends of the three traction ropes 9 are respectively wound around the upper ends of the six winding shafts 8, and the center is movably inserted into the six plug sleeves 5 and the three guide holes 3. Two rotation positioning components are respectively installed on one side of the two operating shafts 7.

[0024] When fixing the detector body 1, the staff first removes one of the rotating positioning components, then releases one end of the three traction ropes 9 from the upper end of the three winding shafts 8, takes out one of the traction frames 4 and fits it onto one side of the wall, fixes one end of the traction rope 9 with the rotating positioning component, then pulls the other end of the traction rope 9 and moves the detector body 1 by hand, so that one of the traction frames 4 fits tightly against one side of the wall. Then, the staff operates another rotating positioning component to fit another traction frame 4 onto the other side of the wall. Then, the staff operates another rotating positioning component to drive the winding shaft 8 to rotate through the operating shaft 7, tightening the other end of the traction rope 9, so that the two traction frames 4 fit tightly against both sides of the wall, and the three traction ropes 9 are taut, providing stable support for the detector body 1.

[0025] In the specific implementation process, both rotating positioning components include: positioning disk 10, several positioning holes 11, positioning sleeve 12 and positioning bolt 13;

[0026] The positioning plate 10 is fixedly installed on one side of the operating shaft 7. Several positioning holes 11 are opened on the upper end of the positioning plate 10. The positioning sleeve 12 is fixedly installed on the side wall of one of the bearing plates 6. The positioning bolt 13 is movably embedded in one of the fixing holes and the positioning sleeve 12.

[0027] When tightening the traction rope 9, the staff removes the positioning bolt 13 from the positioning hole 11 and the positioning sleeve 12, and then turns the positioning plate 10. The positioning plate 10 drives the operating shaft 7 to rotate, and the traction rope 9 is wound up. After the traction rope 9 is tightened, the positioning bolt 13 is inserted into the designated positioning hole 11 and the positioning sleeve 12 to wind up and fix the traction rope 9.

[0028] In the specific implementation process, the traction frame 4 is L-shaped.

[0029] In the specific implementation process, the positioning sleeve 12 is machined with internal threads.

[0030] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. An integrated reinforcement detector comprising a detector body (1), characterized in that, The upper end of the detector body (1) is provided with a guide positioning structure, which comprises a mounting frame (2), three guide holes (3), two traction frames (4), six plug-in sleeves (5) and a traction assembly; The mounting frame (2) is fixedly installed on one side of the upper end of the detector body (1), the three guide holes (3) are all arranged on the upper end of the mounting frame (2), the two traction frames (4) are respectively arranged on the two sides of the detector body (1), the six plug-in sleeves (5) are respectively arranged on the side walls of the six plug-in sleeves (5) and are movably embedded on the two sides of the three guide holes (3), and the traction assembly is arranged on the side walls of the two traction frames (4) and is movably embedded in the six plug-in sleeves (5) and the three guide holes (3).

2. The integrated steel bar detector according to claim 1, characterized in that, The traction assembly comprises four bearing plates (6), two operation shafts (7), six winding shafts (8), three traction ropes (9) and two rotation positioning assemblies. The four bearing plates (6) are respectively arranged on the two sides of the two traction frames (4), the two operation shafts (7) are movably embedded in the four bearing plates (6) at the two ends, the six winding shafts (8) are arranged on the upper ends of the two operation shafts (7), the three traction ropes (9) are wound on the upper ends of the six winding shafts (8) at the two ends and movably penetrate into the six plug-in sleeves (5) and the three guide holes (3) at the center, and the two rotation positioning assemblies are respectively arranged on one side of the two operation shafts (7).

3. The integrated steel bar detector according to claim 2, wherein, The two rotation positioning assemblies each comprise a positioning disc (10), a plurality of positioning holes (11), a positioning sleeve (12) and a positioning bolt (13). The positioning disc (10) is fixedly installed on one side of the operation shaft (7), the plurality of positioning holes (11) are all arranged on the upper end of the positioning disc (10), the positioning sleeve (12) is fixedly installed on the side wall of one of the bearing plates (6), and the positioning bolt (13) is movably embedded in one of the fixing holes and the positioning sleeve (12).

4. The integrated steel bar detector according to claim 1, wherein The shape of the traction frame (4) is "L".

5. The one-piece rebar detector of claim 3, wherein, The positioning sleeve (12) is internally threaded.