Radiation protection panel device
Through modular splicing design, components such as pins, limit blocks, slides, magnets and splicing strips are used to achieve flexible splicing and single-piece replacement of radiation shielding panels, solving the problems of spatial adaptability and adhesive failure of traditional radiation shielding devices, and improving maintenance convenience and stability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- 科辰星飞(北京)科技有限公司
- Filing Date
- 2025-06-10
- Publication Date
- 2026-07-21
AI Technical Summary
Traditional radiation protection devices are mostly fixed, integral structures, which are difficult to adapt to changes in space, and the adhesive used between the layered materials is prone to delamination and failure.
The modular splicing design utilizes components such as pins, limit blocks, slides, magnets, and splicing strips to achieve glue-free connections. Combined with bolts and elastic sleeves, the modular splicing and single-piece replacement of the radiation shielding panels are realized.
It enables flexible splicing and disassembly of radiation shielding panels to adapt to different space requirements and supports individual panel replacement, improving the convenience of maintenance and the stability of the device.
Smart Images

Figure CN224536711U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of radiation protection plate technology, and in particular to a radiation transmission protection plate device. Background Technology
[0002] Everything in nature, as long as its temperature is above absolute zero, constantly transmits heat outward in the form of electromagnetic waves; this way of transmitting energy is called radiation. The energy emitted by an object through radiation is called radiant energy. Radiation is harmful to the human body, which is why many special places, such as the radiology department of a hospital, use radiation-shielding panels in their construction.
[0003] Traditional radiation protection devices are mostly fixed, integral structures, which are either non-removable or complex to assemble and disassemble, making them difficult to adapt to changes in space. In addition, the adhesive used between the layered materials is prone to delamination and failure after long-term use. Utility Model Content
[0004] This utility model discloses a radiation protection plate device, which aims to solve the technical problems of traditional radiation protection devices being mostly fixed integral structures, which are either non-removable or complex to disassemble and assemble, making it difficult to adapt to changes in space, and the use of adhesive between layered materials, which can easily lead to delamination and failure after long-term use.
[0005] To achieve the above objectives, the present invention adopts the following technical solution:
[0006] A radiation transmission shielding device includes modular units and assembly units:
[0007] The module unit includes a first radiation shielding plate, a second radiation shielding plate attached to one side of the first radiation shielding plate, an installation pin fixedly installed on one side of the first radiation shielding plate, a limit block fixedly installed on the outer wall of the installation pin, a slot opened inside the second radiation shielding plate, and a sliding groove communicating with the slot opened inside the second radiation shielding plate.
[0008] The assembly unit includes a mounting frame, in which bolts are slidably inserted. A first splicing strip and a second splicing strip are threaded onto the outer wall of the bolts. An elastic sleeve is fitted onto the outer wall of both the first and second splicing strips.
[0009] In a preferred embodiment, there are multiple first radiation shielding panels, which are joined together by mortise and tenon joints.
[0010] In a preferred embodiment, both the first splicing strip and the second splicing strip are made of multiple mortise and tenon structures, and the second splicing strip fits into the upper and lower sides of the first radiation shielding plate, while the first splicing strip fits into the left and right sides of the first radiation shielding plate.
[0011] In a preferred embodiment, the bolt slides through the mounting frame and is threaded into the interior of the second splice strip and the first splice strip, respectively.
[0012] In a preferred embodiment, both the second splicing strip and the first splicing strip have grooves inside, the elastic sleeve is located inside the grooves, and the elastic sleeve is elastic.
[0013] In a preferred embodiment, the second radiation shield is slidably installed via a slot and a mounting pin, and the second radiation shield is slidably installed via a groove and a limiting block.
[0014] In a preferred embodiment, a magnet is fixedly installed inside the second radiation shield at the end of the slide groove, and a magnet is fixedly installed on one side of the limiting block. The magnet and the magnet are magnetically attracted to each other.
[0015] As can be seen from the above, the radiation protection plate device provided by this utility model has the following technical effects.
[0016] Firstly, by splicing the first radiation shielding plate, it can be made into any size. Then, the mounting pin is aligned with the slot and inserted. The first radiation shielding plate is rotated so that the limiting block slides in the groove, and magnets one and two are attracted to each other. After the splicing and assembly of the first and second radiation shielding plates are completed, the first and second splicing strips of corresponding length and width are assembled. After the assembly is completed, the customized elastic sleeves of corresponding length and width are put into the grooves of the first and second splicing strips. Finally, the front and back sides of the first and second splicing strips are attached to the mounting frame and the bolts are screwed in to complete the installation. The first and second radiation shielding plates use a glue-free slot connection structure, which solves the traditional layering problem. The modular splicing assembly allows the device to be spliced into any size, making its application range wider.
[0017] Secondly, when some of the first or second radiation shielding plates are damaged, a device with a suction cup and a handle can be used to attach the suction cup to the corresponding first or second radiation shielding plate and pull it out to replace it. The second and second radiation shielding plates can be disassembled and replaced piece by piece. When the device is broken or worn, it is not necessary to replace the whole device; only the pieces need to be replaced, making maintenance more convenient. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the main structure proposed in this utility model.
[0019] Figure 2 The present utility model proposes Figure 1 A schematic diagram of the structure after removing part of it.
[0020] Figure 3 This is a schematic diagram of the disassembled structure proposed in this utility model.
[0021] Figure 4 This is a partial structural schematic diagram of the present invention.
[0022] Figure 5 The present utility model proposes Figure 4 Schematic diagram of the middle section.
[0023] In the attached diagram: 100, module unit; 200, combination unit; 101, first radiation shielding plate; 102, second radiation shielding plate; 103, mounting pin; 104, limiting block; 105, slide groove; 106, slot; 201, mounting frame; 202, bolt; 203, elastic sleeve; 204, first splicing strip; 205, second splicing strip. Detailed Implementation
[0024] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.
[0025] In the description of this utility model, it should be understood that the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0026] Reference Figures 1-5 A radiation transmission shielding device includes a module unit 100 and a combination unit 200.
[0027] The module unit 100 includes a first radiation shielding plate 101, a second radiation shielding plate 102 attached to one side of the first radiation shielding plate 101, the first radiation shielding plate 101 and the second radiation shielding plate 102 cooperate to achieve radiation protection, an installation pin 103 is fixedly installed on one side of the first radiation shielding plate 101, a limit block 104 is fixedly installed on the outer wall of the installation pin 103, a slot 106 is opened inside the second radiation shielding plate 102, and a sliding groove 105 communicating with the slot 106 is opened inside the second radiation shielding plate 102. Through the cooperation of the limit block 104 and the sliding groove 105, the glueless connection of the first radiation shielding plate 101 and the second radiation shielding plate 102 is achieved.
[0028] The assembly unit 200 includes a mounting frame 201, with bolts 202 slidably inserted inside the mounting frame 201. A first splicing strip 204 and a second splicing strip 205 are threaded onto the outer wall of the bolts 202. An elastic sleeve 203 is fitted onto the outer walls of the first splicing strip 204 and the second splicing strip 205. The elasticity of the elastic sleeve 203 makes the device connection more compact and stable.
[0029] In this embodiment, a glue-free slot connection structure is used between the first radiation shielding plate 101 and the second radiation shielding plate 102, solving the traditional layering problem. Modular splicing assembly allows the device to be assembled into any size, making its application range wider. When some of the first radiation shielding plate 101 or the second radiation shielding plate 102 is damaged, the suction cup is attached to the corresponding first radiation shielding plate 101 or the second radiation shielding plate 102 by the device with suction cup and handle, and then pulled outward to complete the replacement of the corresponding first radiation shielding plate 101 and the second radiation shielding plate 102. The second radiation shielding plate 102 can be disassembled and replaced piece by piece. When the device is broken or worn, it is not necessary to replace the whole device; only piece needs to be replaced, making maintenance more convenient.
[0030] In a preferred embodiment, there are multiple first radiation shielding plates 101, and the multiple first radiation shielding plates 101 are joined together by mortise and tenon joints.
[0031] In this embodiment, there are multiple first radiation shielding plates 101 and second radiation shielding plates 102, which are connected to each other by mortise and tenon joints.
[0032] In a preferred embodiment, both the first splicing strip 204 and the second splicing strip 205 are made of multiple mortise and tenon structures, and the second splicing strip 205 fits with the upper and lower sides of the first radiation shielding plate 101, while the first splicing strip 204 fits with the left and right sides of the first radiation shielding plate 101.
[0033] In this embodiment, the first splicing strip 204 and the second splicing strip 205 are used to stabilize both sides of the assembled first radiation shielding plate 101 and the second radiation shielding plate 102.
[0034] In a preferred embodiment, bolt 202 slides through mounting frame 201 and is threaded into the interior of second splice strip 205 and first splice strip 204, respectively.
[0035] In this embodiment, the four corner positions of the first splicing strip 204 and the second splicing strip 205 are determined by bolts 202, thereby improving the stability of the device.
[0036] In a preferred embodiment, both the second splicing strip 205 and the first splicing strip 204 have slots inside, and the elastic sleeve 203 is located inside the slots and has elasticity.
[0037] In this embodiment, the elastic sleeve 203 provides better stability of the device.
[0038] In a preferred embodiment, the second radiation shield 102 is slidably installed with the mounting pin 103 via the slot 106, and the second radiation shield 102 is slidably installed with the limiting block 104 via the sliding groove 105.
[0039] In this embodiment, the first radiation shielding plate 101 and the second radiation shielding plate 102 are connected without glue by the cooperation of the slide groove 105 and the limiting block 104.
[0040] In a preferred embodiment, a magnet is fixedly installed inside the second radiation shield 102 at the end of the slide groove 105, and a magnet is fixedly installed on one side of the limiting block 104. The magnet and the magnet are magnetically attracted to each other.
[0041] In this embodiment, the magnet makes the first radiation shielding plate 101 and the second radiation shielding plate 102 more stable and less prone to misalignment.
[0042] Working principle: When in use, the first radiation shielding plate 101 is spliced together so that the first radiation shielding plate 101 can be of any size. Then, the mounting pin 103 is aligned with the slot 106 and inserted. The first radiation shielding plate 101 is rotated so that the limiting block 104 slides in the slide groove 105 and the magnet one and magnet two are attracted to each other.
[0043] After completing the splicing and assembly of the first radiation shielding plate 101 and the second radiation shielding plate 102, the first splicing strip 204 and the second splicing strip 205 of corresponding length and width are then assembled. After the assembly is completed, the customized elastic sleeves 203 of corresponding length and width are put into the grooves of the first splicing strip 204 and the second splicing strip 205. Finally, the mounting frame 201 is attached to the front and back sides of the first splicing strip 204 and the second splicing strip 205 and the bolts 202 are screwed in to complete the installation.
[0044] When some of the first radiation shielding plates 101 or the second radiation shielding plates 102 are damaged, the suction cups can be attached to the corresponding first radiation shielding plate 101 or second radiation shielding plate 102 by using a device with a suction cup and a handle, and then pulled outwards to replace the corresponding first radiation shielding plate 101 or second radiation shielding plate 102. Alternatively, the second radiation shielding plate 102 can be disassembled and replaced piece by piece.
[0045] The above are merely preferred embodiments of this utility model, but the scope of protection of this utility model is not limited thereto. Substitutions may include replacements for some structures, devices, or method steps, or they may be complete technical solutions. Equivalent substitutions or modifications made based on the technical solution and inventive concept of this utility model should all be covered within the scope of protection of this utility model.
Claims
1. A radiation transmission shielding device, comprising a modular unit (100) and a combined unit (200), characterized in that: The module unit (100) includes a first radiation shielding plate (101), a second radiation shielding plate (102) is attached to one side of the first radiation shielding plate (101), an installation pin (103) is fixedly installed on one side of the first radiation shielding plate (101), a limit block (104) is fixedly installed on the outer wall of the installation pin (103), a slot (106) is opened inside the second radiation shielding plate (102), and a sliding groove (105) communicating with the slot (106) is opened inside the second radiation shielding plate (102). The assembly unit (200) includes a mounting frame (201), in which bolts (202) are slidably inserted. A first splicing strip (204) and a second splicing strip (205) are threaded onto the outer wall of the bolts (202). An elastic sleeve (203) is fitted onto the outer walls of the first splicing strip (204) and the second splicing strip (205).
2. The radiation protection shielding plate device according to claim 1, characterized in that, There are multiple first radiation shielding plates (101), and the multiple first radiation shielding plates (101) are joined together by mortise and tenon joints.
3. The radiation protection shielding plate device according to claim 1, characterized in that, The first splicing strip (204) and the second splicing strip (205) are both made of multiple mortise and tenon structures, and the second splicing strip (205) fits with the upper and lower sides of the first radiation shielding plate (101), while the first splicing strip (204) fits with the left and right sides of the first radiation shielding plate (101).
4. The radiation transmission shielding plate device according to claim 1, characterized in that, The bolt (202) slides through the mounting frame (201) and is threaded into the interior of the second splice strip (205) and the first splice strip (204), respectively.
5. The radiation transmission shielding plate device according to claim 1, characterized in that, The second splicing strip (205) and the first splicing strip (204) are both provided with slots, and the elastic sleeve (203) is located in the slots and is elastic.
6. The radiation transmission shielding plate device according to claim 1, characterized in that, The second radiation shield (102) is slidably installed with the mounting pin (103) through the slot (106), and the second radiation shield (102) is slidably installed with the limiting block (104) through the sliding groove (105).
7. The radiation transmission shielding plate device according to claim 1, characterized in that, A magnet is fixedly installed inside the second radiation shield (102) at the end of the slide groove (105), and a magnet is fixedly installed on one side of the limiting block (104). The magnet and the magnet are magnetically attracted to each other.