Anti-radiation equipment detection device

Through the coordinated work of designing box components, bracket components and detection components, single multi-point simultaneous detection of lead plates is realized, solving the problem of inaccurate detection in the prior art, and improving detection efficiency and flexibility.

CN223284156UActive Publication Date: 2025-08-29LIGHTNING LASER
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Patent Information

Application Number
CN202422733659.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-11
Publication Date
2025-08-29
Estimated Expiration
2034-11-11

AI Technical Summary

Technical Problem

When detecting lead plates, existing radiation-proof equipment detection devices cannot realize single multi-point simultaneous detection, and the distances are inconsistent when switching detection points, resulting in inaccurate detection data.

Method used

A radiation-proof equipment detection device is designed, including a box assembly, a bracket assembly and a detection assembly. The lead plate is conveyed through the conveyor mechanism, and the position and spacing of the detection assembly are adjusted using a moving device and a telescopic rod. Multi-point simultaneous detection is carried out in combination with an X-ray emitter and a radiation receiver to ensure the consistency of the detection distance.

Benefits of technology

It realizes single-shot multi-point simultaneous detection, improves the accuracy and flexibility of detection data, adapts to lead plates of different thicknesses, and simplifies the detection process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of radiation detection, and discloses an anti-radiation equipment detection device which comprises a box body assembly, a support assembly and a detection assembly, the box body assembly comprises a device box, two opposite supporting side plates are fixed on the device box, the box body assembly further comprises a conveying mechanism and a processing mechanism, the conveying mechanism is installed on the device box, and the processing mechanism is installed on the device box. The support assembly is arranged on the supporting side plate and located on the opposite side of the supporting side plate, the machining mechanism is fixed to the tail end of the supporting side plate, the support assembly comprises a stabilizing piece installed on the supporting side plate, and a pipe fitting is installed on the stabilizing piece. A top plate in the detection assembly is close to the upper surface of a lead plate, a bottom plate is attached to the lower surface of the lead plate, a plurality of X-ray emitters are arranged on the top plate, a radiation receiver is arranged on the bottom plate, X-rays are emitted to the lead plate through the X-ray emitters, and the X-rays penetrating through the lead plate are received through the radiation receiver. The radiation-proof indexes of the multi-point positions of the lead plate can be obtained through calculation, and the detection efficiency is effectively improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of radiation detection, in particular to a radiation protection equipment detection device. Background Art

[0002] Lead sheeting is a thin sheet made of lead, widely used in various applications, particularly in radiation protection. Lead's excellent protective properties, including its ability to effectively block X-rays and gamma rays, make it a popular choice for use in medicine, nuclear energy, industry, and construction. Its high density effectively absorbs and blocks radiation, and its resistance to most acidic environments makes it a popular choice for protecting medical staff and patients in radiology, dentistry, and nuclear medicine.

[0003] During the production process of lead plates, it is necessary to test and evaluate their radiation protection capabilities to ensure their effectiveness in the environment of use.

[0004] At present, most of the existing radiation protection equipment detection devices use single-point detection on the lead plate, which requires repeated detection of multiple points. Moreover, each time the detection point is switched, it cannot be guaranteed that the height distance from the lead plate is consistent, resulting in inaccurate detection data. Utility Model Content

[0005] In response to the shortcomings of the existing technology, the utility model provides a radiation protection equipment detection device, which has the advantages of being able to achieve simultaneous detection of multiple points in a single time, while ensuring the consistency of the detection spacing and improving the accuracy of the detection data. It solves the problem of the cumbersomeness of the current method of using a single line to detect lead plates multiple times and the inconsistency of the distance between the detection component and the lead plate when switching points, resulting in inaccurate detection data.

[0006] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a radiation protection equipment detection device, comprising a box assembly, a bracket assembly and a detection assembly, wherein the box assembly comprises a device box, on which two opposite supporting side plates are fixed, and the supporting side plates elevate the bracket assembly so that the detection assembly can perform radiation detection on lead plates of different thicknesses.

[0007] The box assembly also includes a conveying mechanism and a processing mechanism. The conveying mechanism is installed on the device box and is located on the opposite side of the supporting side plate. The processing mechanism is fixed at the end of the supporting side plate. The conveying mechanism is used to convey the lead plate, and the processing mechanism is used to perform subsequent cutting or welding operations on the lead plate.

[0008] The bracket assembly includes a stabilizing member installed on the supporting side plate, a pipe fitting is installed on the stabilizing member, and the stabilizing member is used to install the pipe fitting on the supporting side plate.

[0009] The detection component includes a mover installed on the pipe fitting, a base plate is fixed at the bottom of the mover, a top plate is movably connected to the mover, a receiving component is installed on the base plate, and a transmitting component is installed on the top plate. The mover can translate on the pipe fitting to adjust the position detected by the detection component.

[0010] When the radiation protection equipment detection device is in use, a lead plate is placed on a conveying mechanism, which conveys the lead plate toward the detection component. During the conveying process, the lead plate is emitted X-rays by the emitting element installed on the top plate. The rays pass through the lead plate and are received by the receiving element installed on the bottom plate. The radiation protection data of the lead plate is calculated based on the received intensity.

[0011] As a further improvement of the above solution, the stabilizing member includes stabilizing blocks fixed at both ends of the supporting side plates, and the pipe fitting includes a stabilizing sleeve rod and a threaded rod. The stabilizing sleeve rod is fixed at one end of the stabilizing block, and the threaded rod is rotatably connected to the other end of the stabilizing block.

[0012] Changed to a specific, stable horizontal setting of the sleeve rod and threaded rod to improve the stability of the mover's translation on the pipe.

[0013] As a further improvement of the above solution, a fastening screw is threadedly connected to the side of the stabilizing block, and one end of the fastening screw is fitted on the stabilizing sleeve rod.

[0014] More specifically, by rotating the fastening screw, the front end of the fastening screw is closely attached to the side of the stabilizing sleeve rod, thereby fixing the stabilizing sleeve rod and the stabilizing block, while the stabilizing sleeve rod cannot rotate.

[0015] As a further improvement of the above solution, a driving motor is fixed on the stabilizing block, and the output end of the driving motor passes through the stabilizing block and is fixed to one end of the threaded rod.

[0016] More specifically, the output end of the driving motor has the function of bidirectional rotation, and can drive the threaded rod to rotate during operation.

[0017] As a further improvement of the above solution, two connecting holes are provided on the mover, the stabilizing sleeve rod is movably sleeved in one of the connecting holes, and the threaded rod is threadedly connected in the other connecting hole.

[0018] More specifically, when the threaded rod rotates, the mover can move smoothly on the stable sleeve rod under the force of the threaded connection between the threaded rod and the inner thread of the connecting hole.

[0019] As a further improvement of the above solution, a protrusion is fixed on one side of the mover, a telescopic rod is mounted on the protrusion, a linkage plate is fixed at one end of the telescopic rod, a linkage rod is fixed at one end of the linkage plate, and one end of the linkage rod is fixed to the top plate.

[0020] More specifically, when the telescopic rod telescopes and moves in the protrusion, the height of the top plate is adjusted, and the distance between the top plate and the bottom plate is expanded, so that it can be adjusted according to the thickness of the lead plate.

[0021] As a further improvement of the above solution, a regulating ring is rotatably connected to the protrusion, and the regulating ring is threadedly connected to the side of the telescopic rod.

[0022] More specifically, threads are provided on the inner side of the regulating ring and the side of the telescopic rod. By rotating the regulating ring, the telescopic rod can be moved up and down to adjust the height of the top plate.

[0023] As a further improvement of the above solution, a sleeve hole is opened on the mover, a stabilizing rod is sleeved in the sleeve hole, and one end of the stabilizing rod is fixed to the top plate.

[0024] More specifically, when the top plate is lifted up and down, the stabilizing rod moves in the sleeve hole, thereby improving the stability of the lifting of the top plate.

[0025] As a further improvement of the above solution, the receiving component includes a plurality of radiation receivers fixed on the bottom plate, and the emitting component includes a plurality of X-ray emitters fixed on the top plate, and the radiation receivers correspond to the X-ray emitters.

[0026] More specifically, the X-ray emitter emits X-rays toward the upper surface of the lead plate, and the radiation receiver is located at the bottom of the lead plate to receive and calculate the value of the radiation magnitude.

[0027] As a further improvement of the above solution, the conveying mechanism includes a plurality of rotating rollers movably connected to the supporting side plates, and the bottom plate is located between two adjacent rotating rollers.

[0028] More specifically, the rotating roller is provided with an independent driver for rotating the rotating roller to achieve the function of conveying the lead plate to the detection component.

[0029] Compared with the prior art, the present invention provides a radiation protection equipment detection device with the following beneficial effects:

[0030] 1. The radiation protection equipment detection device, through the top plate of the detection component close to the upper surface of the lead plate, and the bottom plate adheres to the lower surface of the lead plate, a number of X-ray emitters are set on the top plate, and a radiation receiver is set on the bottom plate. The X-ray emitters emit X-rays to the lead plate, and the radiation receivers receive the X-rays that pass through the lead plate. The radiation protection index of multiple points on the lead plate can be obtained through calculation, which effectively improves the detection efficiency.

[0031] 2. The radiation protection equipment detection device is equipped with two sets of bracket assemblies at both ends of the detection assembly. The mover is translated on the pipe to adjust the detection position of the lead plate. At the same time, the telescopic rod is telescopically moved to adjust the distance between the top plate and the bottom plate, thereby meeting the detection requirements of lead plates of different thicknesses, further improving the practicality and flexibility of the device. BRIEF DESCRIPTION OF THE DRAWINGS

[0032] Figure 1 This is a schematic diagram of the overall external structure of the device of the utility model;

[0033] Figure 2 This is a schematic diagram of the overall connection structure between the bracket assembly and the detection assembly of the utility model;

[0034] Figure 3 For this utility model Figure 2 Schematic diagram of the local connection structure between the detection component and the bracket component;

[0035] Figure 4 This is a schematic diagram of the bottom of the movable device and the stabilizing rod set structure of the utility model.

[0036] In the accompanying drawings, the components represented by the reference numerals are as follows:

[0037] 1. Box assembly; 101. Device box; 11. Conveying mechanism; 1101. Rotating roller; 12. Processing mechanism; 102. Support side plate;

[0038] 2. Bracket assembly; 21. Stabilizing member; 201. Stabilizing block; 22. Pipe fitting; 202. Stabilizing sleeve rod; 203. Threaded rod; 204. Fastening screw; 205. Drive motor;

[0039] 3. Detection component; 301. Mover; 3011. Connecting hole; 302. Bottom plate; 303. Receiver; 3031. Radiation receiver; 304. Bump; 305. Telescopic rod; 306. Adjustment ring; 307. Linking plate; 308. Linking rod; 309. Top plate; 310. Transmitter; 3101. X-ray transmitter; 311. Hole; 312. Stabilizing rod. DETAILED DESCRIPTION

[0040] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention. Example

[0041] See also Figure 1-4 As shown, the radiation protection equipment detection device proposed in this embodiment includes a box assembly 1, a bracket assembly 2 and a detection assembly 3. The box assembly 1 includes a device box 101, and two opposite supporting side plates 102 are fixed on the device box 101. The supporting side plates 102 elevate the bracket assembly 2 so that the detection assembly 3 can perform radiation detection on lead plates of different thicknesses.

[0042] The box assembly 1 also includes a conveying mechanism 11 and a processing mechanism 12. The conveying mechanism 11 is installed on the device box 101 and is located on the opposite side of the supporting side plate 102. The processing mechanism 12 is fixed at the end of the supporting side plate 102. The conveying mechanism 11 is used to convey the lead plate, and the processing mechanism 12 is used to perform subsequent cutting or welding operations on the lead plate.

[0043] The bracket assembly 2 includes a stabilizing member 21 mounted on the supporting side plate 102 . A pipe 22 is mounted on the stabilizing member 21 . The stabilizing member 21 is used to mount the pipe 22 on the supporting side plate 102 .

[0044] The detection component 3 includes a mover 301 installed on the pipe 22, a base plate 302 is fixed at the bottom of the mover 301, a top plate 309 is movably connected to the mover 301, a receiving component 303 is installed on the base plate 302, and a transmitting component 310 is installed on the top plate 309. The mover 301 can translate on the pipe 22 to adjust the position detected by the detection component 3.

[0045] The working principle of the radiation protection equipment detection device proposed in this embodiment is: when in use, the lead plate is placed on the conveying mechanism 11, and the lead plate is conveyed toward the detection component 3 by the conveying mechanism 11. During the conveying process, the lead plate is emitted X-rays by the emitting element 310 installed on the top plate 309. The rays pass through the lead plate and are received by the receiving element 303 installed on the bottom plate 302. The radiation protection data of the lead plate is calculated based on the received intensity. Example

[0046] See also Figure 1-4As shown, the radiation protection equipment detection device proposed in this embodiment, based on the embodiment 1, this embodiment also includes, the stabilizing member 21 includes a stabilizing block 201 fixed to both ends of the supporting side plate 102, the pipe 22 includes a stabilizing sleeve rod 202 and a threaded rod 203, the stabilizing sleeve rod 202 is fixed to one end of the stabilizing block 201, the threaded rod 203 is rotatably connected to the other end of the stabilizing block 201, the side of the stabilizing block 201 is threadedly connected with a fastening screw 204, one end of the fastening screw 204 is fitted on the stabilizing sleeve rod 202, a driving motor 205 is fixed on the stabilizing block 201, the output end of the driving motor 205 passes through the stabilizing block 201 and is fixed to one end of the threaded rod 203, two connecting holes 3011 are provided on the mover 301, the stabilizing sleeve rod 202 is movably sleeved in one of the connecting holes 3011, and the threaded rod 203 is threadedly connected in the other connecting hole 3011, and a protrusion 304 is fixed on one side of the mover 301, A telescopic rod 305 is mounted on the protrusion 304, a linkage plate 307 is fixed to one end of the telescopic rod 305, a linkage plate 307 is fixed to one end of the linkage plate 307, and one end of the linkage rod 308 is fixed to the top plate 309. A regulating ring 306 is rotatably connected to the protrusion 304, and the regulating ring 306 is threadedly connected to the side of the telescopic rod 305. A sleeve hole 311 is opened on the mover 301, and a stabilizing rod 312 is mounted in the sleeve hole 311. One end of the stabilizing rod 312 is fixed to the top plate 309. The end is fixed on the top plate 309, the receiving component 303 includes a plurality of radiation receivers 3031 fixed on the bottom plate 302, and the transmitting component 310 includes a plurality of X-ray transmitters 3101 fixed on the top plate 309, and the radiation receivers 3031 correspond to the X-ray transmitters 3101. The conveying mechanism 11 includes a plurality of rotating rollers 1101 movably connected to the supporting side plate 102, and the bottom plate 302 is located between two adjacent rotating rollers 1101;

[0047] In this solution, the stabilizing sleeve rod 202 and the threaded rod 203 are arranged horizontally to improve the stability of the translation of the mover 301 on the pipe 22. By rotating the fastening screw 204, the front end of the fastening screw 204 is tightly attached to the side of the stabilizing sleeve rod 202, thereby fixing the stabilizing sleeve rod 202 and the stabilizing block 201. At the same time, the stabilizing sleeve rod 202 cannot rotate. The output end of the drive motor 205 has a two-way rotation function. When in operation, it can drive the threaded rod 203 to rotate. The threaded rod 203 is in When rotating, the threaded rod 203 is connected to the inner thread of the connecting hole 3011, so that the mover 301 can move smoothly on the stable sleeve rod 202. It should be further explained that when the threaded rod 203 rotates clockwise, the mover 301 moves to the left, and when the threaded rod 203 rotates counterclockwise, the mover 301 moves to the right, thereby adjusting the position of the detection component 3. When the telescopic rod 305 telescopes and moves in the protrusion 304, the height of the top plate 309 is adjusted to expand the top plate. The distance between the top plate 309 and the bottom plate 302 can be adjusted according to the thickness of the lead plate. The inner side of the regulating ring 306 and the side of the telescopic rod 305 are provided with threads. By rotating the regulating ring 306, the telescopic rod 305 can be moved up and down to adjust the height of the top plate 309. It should be further explained that rotating the regulating ring 306 in the forward direction causes the telescopic rod 305 to move downward, thereby reducing the distance between the top plate 309 and the bottom plate 302, and rotating the regulating ring 306 in the reverse direction causes the telescopic rod 305 to move upward. 05 moves upward to expand the distance between the top plate 309 and the bottom plate 302. When the top plate 309 is lifted up and down, the stabilizing rod 312 moves in the sleeve hole 311 to improve the stability of the lifting of the top plate 309. The X-ray emitter 3101 emits X-rays to the upper surface of the lead plate. The radiation receiver 3031 is at the bottom of the lead plate and receives and calculates the value of the radiation. The rotating roller 1101 is provided with an independent driver for rotating the rotating roller 1101 to realize the function of conveying the lead plate to the detection component 3.

[0048] Although the 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 variations may be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A radiation protection equipment detection device, comprising a box assembly, a bracket assembly and a detection assembly, characterized in that: The box assembly includes a device box, on which two opposite supporting side plates are fixed; The box assembly further comprises a conveying mechanism and a processing mechanism, wherein the conveying mechanism is mounted on the device box and is located on the side opposite to the supporting side plate, and the processing mechanism is fixed to the end of the supporting side plate; The bracket assembly includes a stabilizing member mounted on the supporting side plate, and a pipe is mounted on the stabilizing member; The detection component comprises a mover mounted on the pipe, a bottom plate is fixed to the bottom of the mover, a top plate is movably connected to the mover, a receiving component is mounted on the bottom plate, and a transmitting component is mounted on the top plate.

2. The radiation protection equipment detection device according to claim 1, characterized in that: The stabilizing member includes stabilizing blocks fixed at both ends of the supporting side plates, and the pipe includes a stabilizing sleeve rod and a threaded rod. The stabilizing sleeve rod is fixed at one end of the stabilizing block, and the threaded rod is rotatably connected to the other end of the stabilizing block.

3. The radiation protection equipment detection device according to claim 2, characterized in that: The side of the stabilizing block is threadedly connected with a fastening screw, and one end of the fastening screw is fitted on the stabilizing sleeve rod.

4. The radiation protection equipment detection device according to claim 3, characterized in that: A driving motor is fixed on the stabilizing block, and an output end of the driving motor passes through the stabilizing block and is fixed to one end of the threaded rod.

5. The radiation protection equipment detection device according to claim 1, characterized in that: The mover is provided with two connection holes, the stabilizing sleeve rod is movably sleeved in one of the connection holes, and the threaded rod is threadedly connected in the other connection hole.

6. The radiation protection equipment detection device according to claim 5, characterized in that: A convex block is fixed on one side of the mover, a telescopic rod is sleeved on the convex block, a linkage plate is fixed on one end of the telescopic rod, a linkage rod is fixed on one end of the linkage plate, and one end of the linkage rod is fixed on the top plate.

7. The radiation protection equipment detection device according to claim 6, characterized in that: The convex block is rotatably connected with an adjusting ring, which is threadedly connected to the side of the telescopic rod.

8. The radiation protection equipment detection device according to claim 6, characterized in that: A sleeve hole is provided on the mover, a stabilizing rod is sleeved in the sleeve hole, and one end of the stabilizing rod is fixed on the top plate.

9. The radiation protection equipment detection device according to claim 1, characterized in that: The receiving component includes a plurality of radiation receivers fixed on the bottom plate, and the emitting component includes a plurality of X-ray emitters fixed on the top plate, and the radiation receivers correspond to the X-ray emitters.

10. The radiation protection equipment detection device according to claim 1, characterized in that: The conveying mechanism comprises a plurality of rotating rollers movably connected to the supporting side plates, and the bottom plate is located between two adjacent rotating rollers.