Medical radiation protection structure
By designing a medical radiation protection structure with polygonal protective sheets and supporting columns, the problem of radiation damage to non-scanned areas during CT scans has been solved, achieving effective local protection for patients and a comfortable user experience.
Patent Information
- Application Number
- CN202423105357.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-17
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2034-12-17
AI Technical Summary
Medical radiation during CT scans can affect non-scanned areas of the patient, posing health risks.
Design a medical radiation protection structure comprising multiple protective sheets. The protective sheets are equipped with splicing holes, buckles, and support columns. They are made of radiation-proof materials and have folded and protective surfaces. The protective sheets can be spliced and bent, and are equipped with rubber rings to fit the human body and reduce radiation damage.
It effectively reduces radiation damage to non-scanned areas, improves the adaptability and fit of the protective film, and enhances the patient's user experience.
Smart Images

Figure CN223886902U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to medical radiation protection technical field especially relates to a medical radiation protection structure. BACKGROUND
[0002] Medical radiation refers to when patients go to hospital, carry out diagnosis and develop, such as receiving X -ray, CT, PET, isotope treatment and so on instrument diagnosis and are received the irradiation of. These radiations have certain harmfulness, but if it is not frequent use, then it is all right.
[0003] Medical radiation exists in the CT ray in hospital, usually after patient enters CT room, needs patient family members to all number to retreat to the door, and in the CT treatment process, usually scans the local body of patient, and in the scanning process, the body that does not need to scan will be affected by radiation, thereby affecting the health of patient.
[0004] For this, we design a kind of medical radiation protection structure. UTILITY MODEL CONTENT
[0005] The utility model aims at solving the prior art easy to influence patient health problem and proposes a kind of medical radiation protection structure.
[0006] In order to realize the above-mentioned purpose, the utility model adopts the following technical scheme:
[0007] A kind of medical radiation protection structure, including multiple protective sheets, multiple the protective sheet is polygonal, multiple splicing holes for being connected with each other are set on the protective sheet;
[0008] Second refracting surface for reducing radiation damage is set on the protective sheet, buckle for improving connection strength is symmetrically arranged in the splicing hole, and multiple support columns for improving overall strength are arranged on the back side of the protective sheet.
[0009] Preferably, the second refracting surface is fixedly connected with the protective sheet by the fastener, the second refracting surface top is provided with a first refracting surface, and multiple third refracting surfaces are formed in the inner wall of the protective sheet.
[0010] Preferably, the splicing body for fixing the buckle is arranged in the splicing hole, the splicing body is fixedly connected with the inner wall of the splicing hole by welding, and the buckle is fixedly connected with the splicing body by welding.
[0011] Preferably, the splicing body is provided with a threaded hole for increasing the connection mode, and a double-headed screw rod is arranged in the threaded hole.
[0012] Preferably, the back side of the protective sheet is provided with a support body for improving the strength, and the support column is fixedly connected at both ends by welding.
[0013] Preferably, the support column is provided with a first rubber ring and a second rubber ring to improve the body contact effect.
[0014] The beneficial effects of this utility model are as follows:
[0015] 1. This utility model, through the setting of a first refractive surface and a second refractive surface, allows patients to protect other areas that do not need to be scanned before undergoing a CT scan. It can effectively highlight the areas that need to be scanned, while reducing the radiation damage to areas that do not need to be scanned. At the same time, the second refractive surface can improve the radiation reflection effect, further reducing the radiation damage to other parts of the patient, thereby reducing the impact of radiation on health.
[0016] 2. This utility model, through the design of the splicing body, allows the protective sheet to be effectively spliced according to the patient's height and the location of the affected area before protection, thereby increasing the coverage area of the protective sheet and improving the effectiveness of the protective sheet in protecting localized areas of the body. The first rubber ring reduces the slippage of the protective sheet on localized areas of the body and improves the fit with exposed skin, thus enhancing the patient's user experience. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of a medical radiation protection structure proposed in this utility model;
[0018] Figure 2 This is an explosion diagram of a medical radiation protection structure proposed in this utility model;
[0019] Figure 3 This is a front view of the protective sheet of a medical radiation protection structure proposed in this utility model;
[0020] Figure 4 This is a back view of the protective sheet of a medical radiation protection structure proposed in this utility model.
[0021] In the diagram: 1. Protective sheet; 2. First refractive surface; 3. Second refractive surface; 4. Third refractive surface; 5. Splicing hole; 6. Splicing body; 7. Buckle; 8. Screw hole; 9. Support body; 10. Support column; 11. First rubber ring; 12. Second rubber ring. Detailed Implementation
[0022] Reference Figures 1-4 A medical radiation protection structure includes multiple protective sheets 1. The entire protective sheet 1 and its front side are made of radiation-proof material. It mainly reflects the CT radiation from the frontal scan, thereby reducing the radiation damage to the human body. The protective sheet 1 is polygonal in shape, which is conducive to the later splicing and can be effectively spliced according to different parts of the patient. The splicing holes 5 facilitate the connection between multiple protective sheets 1.
[0023] The protective sheet 1 has a second refractive surface 3 for reducing radiation damage. The second refractive surface 3 is made of existing radiation shielding material and is mainly used to improve the radiation damage reduction effect of the protective sheet 1. The second refractive surface 3 is fixedly connected to the protective sheet 1 by fasteners. The fasteners are existing connection auxiliary components, which improve the connection strength between the two and facilitate the later disassembly and installation of the second refractive surface 3. A first refractive surface 2 is opened at the top of the second refractive surface 3. The first refractive surface 2 is opened at the top of the second refractive surface 3 and is polygonal in shape. Multiple third refractive surfaces 4 are opened on the inner wall of the protective sheet 1. The third refractive surfaces 4 are opened on the inner wall of the protective sheet 1 and are refracted at a 45° angle to facilitate the refraction of radiation.
[0024] The splicing hole 5 is symmetrically provided with buckles 7 to improve the connection strength. Buckles 7 are existing connection auxiliary components. One end of the buckle is provided with a fastening end, and the other end is provided with a fastened end, which facilitates the splicing of multiple protective pieces 1. The splicing hole 5 is provided with a splicing body 6 for fixing buckles 7. The splicing body 6 is made of aluminum and is rectangular in shape to facilitate splicing. The splicing body 6 is fixedly connected to the inner wall of the splicing hole 5 by welding. Buckles 7 are fixedly connected to the splicing body 6 by welding. Welding is an existing connection method, which can effectively improve the connection strength of the two and reduce the breakage and detachment phenomenon in later use, further enhancing the service life of splicing body 6 and buckles 7.
[0025] The splicing body 6 has screw holes 8 for increasing the connection method. The screw holes 8 mainly increase the splicing method of the protective plates 1 to avoid damage at the splicing point of the protective plates 1, which would affect the effect of the next splicing. The screw holes 8 are equipped with double-ended screws. The double-ended screws are existing technology. First, they are fixed in one screw hole 8 by their own threads. Then, the screw holes 8 on the other protective plate 1 are aligned, and the other end of the double-ended screw is rotated and fixed, thereby achieving the effect of fixing the two together.
[0026] The protective sheet 1 has multiple support columns 10 on its back side to improve overall strength. The support columns 10 are aluminum telescopic shafts with telescopic effect in the prior art, and also have compression springs inside for easy bending, so that the protective sheet 1 can bend at a small angle, thus better conforming to the curvature of the human body. The protective sheet 1 also has a support body 9 on its back side to improve strength. The support body 9 is a component that is fixed at one end of the support column 10 to the middle section of the protective sheet 1. The whole body is made of aluminum, which can improve the overall lightness and convenience of the protective sheet 1. The two ends of the support column 10 are fixedly connected by welding, which can improve the connection between one end of the support column 10 and the protective sheet 1, as well as the connection with the support body 9.
[0027] The support column 10 is provided with a first rubber ring 11 and a second rubber ring 12 to improve the body contact effect. The first rubber ring 11 and the second rubber ring 12 are made of skin-friendly rubber material in the prior art. The two are mainly used to improve the experience of the back side of the protective plate 1 contacting the patient's skin and clothing. At the same time, the skin-friendly rubber material can improve the contact experience of the patient's skin and effectively eliminate the cold and rough feeling brought by metal contact. In addition, the skin-friendly rubber material itself is made of rubber, which can further reduce the phenomenon of slipping and falling off after the protective plate 1 is spliced and placed on the patient's body, thereby improving the patient's user experience.
[0028] The working principle of this utility model is as follows:
[0029] Based on the patient's required protection areas (e.g., head, torso, limbs), select an appropriate number and shape of protective plates 1. Ensure that each protective plate 1 is made of radiation-shielding material to effectively reflect CT radiation. Before use, carefully inspect each protective plate 1 for damage or wear, especially the second refractive surface 3 and the first refractive surface 2, to ensure they are intact. Connect multiple protective plates 1 together through splicing holes 5. Secure them using clips 7 and splicing bodies 6 to ensure a firm connection. Clips 7 have a fastening end on one side and a fastened end on the other, facilitating the splicing of multiple protective plates 1. For a more secure connection, use screw holes 8 and double-ended screws to further reinforce the connection between the protective plates 1. First, thread one end of the double-ended screw into a screw hole 8, then align the screw hole 8 on another protective plate 1 with the other end of the double-ended screw and rotate to secure it.
[0030] The angle of the support column 10 is adjusted according to the curvature of the patient's body. The support column 10 is an aluminum telescopic shaft with an internal compression spring, allowing the protective plate 1 to bend at a small angle, better conforming to the local curvature of the human body. The support body 9 is fixed to the middle section of the protective plate 1 and is made entirely of aluminum, improving the overall weight and portability of the protective plate 1. The two ends of the support column 10 are fixedly connected by welding, which increases the connection strength between one end of the support column 10 and the protective plate 1 and the support body 9. A first rubber ring 11 and a second rubber ring 12 are installed on the support column 10. These rubber rings are made of skin-friendly rubber material, mainly used to improve the experience of the protective plate 1 in contact with the patient's skin and clothing. The skin-friendly rubber material reduces the cold and rough feeling of metal contact, while also reducing slippage, ensuring that the rubber rings fit tightly against the patient's body and avoid any discomfort. The use of skin-friendly rubber material significantly improves patient comfort and the user experience.
[0031] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.
Claims
1. A medical radiation protection structure, comprising multiple protective sheets (1), wherein the multiple protective sheets (1) are polygonal, and the protective sheets (1) are provided with multiple splicing holes (5) for interconnection. Its characteristics are: The protective sheet (1) has a second refractive surface (3) for reducing radiation damage. The splicing hole (5) is symmetrically provided with buckles (7) for improving connection strength. The back of the protective sheet (1) is provided with multiple support columns (10) for improving overall strength.
2. The medical radiation protection structure according to claim 1, characterized in that, The second refractive surface (3) is fixedly connected to the protective sheet (1) by fasteners. The top of the second refractive surface (3) is provided with a first refractive surface (2), and the inner wall of the protective sheet (1) is provided with multiple third refractive surfaces (4).
3. A medical radiation protection structure according to claim 2, characterized in that, The splicing hole (5) is provided with a splicing body (6) for fixing the buckle (7). The splicing body (6) is fixedly connected to the inner wall of the splicing hole (5) by welding, and the buckle (7) is fixedly connected to the splicing body (6) by welding.
4. A medical radiation protection structure according to claim 3, characterized in that, The splicing body (6) is provided with a screw hole (8) for increasing the connection method, and a double-headed screw is provided in the screw hole (8).
5. A medical radiation protection structure according to claim 4, characterized in that, The protective sheet (1) has a support (9) on its back side for increasing strength, and the two ends of the support column (10) are fixedly connected by welding.
6. A medical radiation protection structure according to claim 5, characterized in that, The support column (10) is provided with a first rubber ring (11) and a second rubber ring (12) for improving the body contact effect.