Medical radiation protection wall structure
By designing the installation components and multi-layered material structure, the problem of installation misalignment of the radiation shielding wall was solved, achieving seamless splicing and efficient radiation shielding effect, and improving the stability and sealing of the wall.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GUANGDONG CONSTR ENG GRP
- Filing Date
- 2025-05-17
- Publication Date
- 2026-06-02
AI Technical Summary
The existing radiation shielding walls lack a precise alignment structure, leading to installation misalignment and affecting sealing and radiation shielding performance.
The installation components, including mounting blocks and mounting sleeves, enable aligned installation on the wall. Connecting lines and positioning components ensure seamless connection, and a multi-layered material structure enhances load-bearing stability and radiation protection performance.
It achieves seamless splicing between walls, enhances sealing and radiation protection performance, improves the load-bearing stability of the walls, blocks radiation leakage paths, and extends service life.
Smart Images

Figure CN224314407U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of building protection and medical equipment technology, and in particular to a medical radiation protection wall structure. Background Technology
[0002] Building protection refers to protective measures taken in the construction field to ensure safety, functionality, or environmental requirements, such as radiation protection, fire prevention, and earthquake resistance. Medical equipment is a general term for professional instruments, equipment, and devices used in medical activities such as disease diagnosis, treatment, prevention, monitoring, and health maintenance. Radiation-proof walls are an important type of building protection.
[0003] A search revealed Chinese Patent Publication No. CN219491391U, which discloses a wall structure with a radiation-proof coating layer. The structure includes a first wall and a second wall, both made of the same material. A slot is located at the middle of the right side of the first wall, and a locking block is fixedly connected to the middle of the left side of the second wall, engaging with the inner cavity of the slot. In this wall structure, pulling a lever outward causes a movable block to move outward, deforming a spring. The locking block then engages with the inner cavity of the slot. Releasing the lever causes the spring to deform again, moving the movable block inward. The movable block then inserts a rod into the inner cavity of the locking block, limiting its position and completing the connection between the first and second walls. The structure incorporates a second functional layer consisting of a basalt fiber layer and a polyethylene coating, providing a radiation-proof effect.
[0004] However, the existing radiation shielding walls lack precise alignment structures, and relying on manual adjustments can easily lead to installation misalignment, resulting in insufficient sealing and radiation shielding performance of the radiation shielding walls. Utility Model Content
[0005] To overcome the above deficiencies, this utility model provides a medical radiation shielding wall structure, which aims to improve the problem that the existing radiation shielding walls lack a precise alignment structure and rely on manual adjustment, which can easily lead to installation misalignment and thus insufficient sealing and radiation shielding performance.
[0006] To achieve the above objectives, the present invention provides the following technical solution:
[0007] A medical radiation shielding wall structure includes a wall body one, a wall body two disposed on the lower surface of the wall body one, an installation component disposed on the lower surface of the wall body one, the installation component being connected to the wall body two, a connecting line one being connected to the installation component, a connecting line two being disposed on the inner wall of the connecting line one, a sealing block one being fixedly connected to the outer wall of the connecting line one, a sealing block two being fixedly connected to the outer wall of the connecting line two, a positioning component disposed on the outer wall of the sealing block one, the positioning component being connected to the sealing block two, and the outer wall of the sealing block one being disposed on the outer wall of the sealing block two.
[0008] The above technical solution achieves aligned installation of Wall 1 and Wall 2 using installation components, preventing misalignment between Wall 1 and the installation components. Simultaneously, a connecting line 1 is installed inside the installation components, and a connecting line 2, which connects to the medical equipment, is connected to connecting line 1. This aligns the sealing block 1 on the outside of connecting line 1 with the sealing block 2 on the outside of connecting line 2. Then, a positioning component secures sealing block 1 and sealing block 2, thereby ensuring seamless connection between the walls, eliminating the risk of misalignment, improving the overall structural sealing and radiation protection reliability, enhancing the load-bearing stability of the walls, and blocking the path of radiation leakage through cable joints.
[0009] As a further description of the above technical solution:
[0010] The installation assembly includes an installation block, the upper surface of which is fixedly connected to the lower surface of wall one, and an installation sleeve is fixedly connected to the inner wall of wall two.
[0011] The above technical solution achieves the fitting connection between wall one and wall two by aligning and matching the mounting block with the preset groove inside the mounting sleeve. This structure achieves positioning through mechanical limiting to avoid installation deviation.
[0012] As a further description of the above technical solution:
[0013] The outer wall of the mounting block is disposed on the side wall of the mounting sleeve, and the inner wall of the mounting sleeve is disposed on the outer wall of the connecting line one.
[0014] Through the above technical solution, the mounting sleeve is designed to accommodate the mounting block, and its structure enhances the load-bearing stability of the connection between wall one and wall two.
[0015] As a further description of the above technical solution:
[0016] The positioning component includes a positioning block one, the outer wall of which is fixedly connected to the outer wall of a sealing block one, the outer wall of a sealing block two is fixedly connected to a positioning block two, and the inner wall of the positioning block one is threadedly connected to a positioning bolt.
[0017] Through the above technical solution, positioning block one and positioning block two are synchronously aligned with the corresponding positions of sealing block one and sealing block two. By rotating the positioning bolt, the two are made to form a tight connection, so as to limit the displacement of sealing block one and sealing block two and maintain the sealing state of the interface of connecting line one and connecting line two.
[0018] As a further description of the above technical solution:
[0019] The outer wall of the first positioning block is disposed on the outer wall of the second positioning block, and the outer wall of the positioning bolt is threadedly connected to the inner wall of the second positioning block.
[0020] Through the above technical solution, the positioning bolt is used to assist in the connection between positioning block one and positioning block two.
[0021] As a further description of the above technical solution:
[0022] The wall structure includes a decorative panel, a crack-resistant layer, a protective coating, a protective layer, and a lead plate.
[0023] The above technical solution combines various materials with different properties into a wall, with the outermost layer being a decorative panel, a lead plate installed on the outside of the decorative panel, a protective layer installed on the outside of the lead plate, a protective coating installed on the outside of the protective layer, and then a crack-resistant layer installed on the outside of the protective coating.
[0024] As a further description of the above technical solution:
[0025] The outer wall of the decorative panel is provided with a lead plate, the outer wall of the lead plate is provided with a protective layer, the outer wall of the protective layer is provided with a protective coating, and the outer wall of the protective coating is provided with a crack-resistant layer.
[0026] Through the above technical solution, the decorative panel uses composite aluminum-plastic panel as the base material, which meets the cleanliness standards of medical environments and is suitable for high-frequency disinfection operations. The lead plate is made of lead material, which blocks ionizing radiation such as X-rays and gamma rays through its high density characteristics. The protective layer is made of cement mortar, which is used to isolate harmful dust generated by the oxidation reaction of lead plate, and at the same time buffer the deformation of lead plate caused by external impact. The protective coating uses barium sulfate cement, which compensates for the radiation shielding defects of lead plate joints through high-density filler. The crack-resistant layer uses galvanized steel wire mesh as a constraint layer to limit the shrinkage stress of cement mortar and barium sulfate coating, reduce the risk of structural cracking, thereby enabling the wall to cope with radiation of different energy levels, improve shielding efficiency and comprehensive protection capabilities, ensure the stability of wall structure, improve the cleanliness of medical space and extend service life.
[0027] As a further description of the above technical solution:
[0028] The decorative panel, crack-resistant layer, protective coating, protective layer, and lead plate are all rectangular.
[0029] The above technical solution facilitates the assembly and installation of the wall by unifying the shapes of the decorative panel, crack-resistant layer, protective coating, protective layer, and lead plate.
[0030] This utility model has the following beneficial effects:
[0031] 1. In this utility model, by aligning the mounting block with the groove inside the mounting sleeve, and since wall one is fixedly connected to the mounting block and wall two is fixedly connected to the mounting sleeve, wall one and wall two are then aligned and installed, thereby achieving seamless splicing between walls, avoiding installation misalignment problems, enhancing structural sealing and radiation protection performance, improving the load-bearing stability of the wall, and blocking radiation leakage through cable connection gaps.
[0032] 2. In this utility model, a wall is constructed by combining a variety of materials with different properties. The outermost layer is a decorative panel made of composite aluminum-plastic composite board. A lead plate is installed on the outside of the decorative panel and is made of lead. This enables the wall to cope with radiation of different energy levels, improve shielding efficiency and comprehensive protection capabilities, ensure the stability of the wall structure, improve the cleanliness of the medical space, and extend its service life. Attached Figure Description
[0033] Figure 1 This is a three-dimensional structural diagram of a medical radiation shielding wall structure proposed in this utility model;
[0034] Figure 2 This is a partial structural diagram of the mounting block of a medical radiation shielding wall structure proposed in this utility model;
[0035] Figure 3 This is a partial structural diagram of a sealing block for a medical radiation shielding wall structure proposed in this utility model;
[0036] Figure 4 This is a partial structural diagram of the protective coating for a medical radiation-proof wall structure proposed in this utility model.
[0037] Legend:
[0038] 1. Wall Frame 1; 2. Wall Frame 2; 3. Installation Components; 31. Installation Block; 32. Installation Sleeve; 4. Decorative Panel; 5. Connecting Wire 1; 6. Connecting Wire 2; 7. Sealing Block 1; 8. Sealing Block 2; 9. Positioning Components; 91. Positioning Block 1; 92. Positioning Block 2; 93. Positioning Bolt; 10. Crack-resistant Layer; 11. Protective Coating; 12. Protective Layer; 13. Lead Plate. Detailed Implementation
[0039] The technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, and not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.
[0040] Reference Figures 1-3 The present invention provides an embodiment of a medical radiation shielding wall structure, comprising a wall 1, a wall 2 on the lower surface of the wall 1, an installation component 3 on the lower surface of the wall 1, the installation component 3 being connected to the wall 2, a connecting line 5 connected to the installation component 3, a connecting line 6 on the inner wall of the connecting line 5, a sealing block 7 fixedly connected to the outer wall of the connecting line 5, a sealing block 8 fixedly connected to the outer wall of the connecting line 6, a positioning component 9 on the outer wall of the sealing block 7, the positioning component 9 being connected to the sealing block 8, and the outer wall of the sealing block 7 being disposed on the outer wall of the sealing block 8.
[0041] Specifically, the wall 1 and wall 2 are aligned and installed using the installation component 3 to prevent misalignment between the wall 1 and the installation component 3. A connecting wire 5 is installed inside the installation component 3. The connecting wire 6, which connects to the medical equipment, is inserted into the connecting wire 5. At this point, the sealing block 7 on the outside of the connecting wire 5 aligns with the sealing block 8 on the outside of the connecting wire 6. Then, the positioning component 9 connects the sealing block 7 and the sealing block 8, thereby ensuring a seamless connection between the walls, eliminating the risk of misalignment, improving the overall structural sealing and radiation protection reliability, enhancing the load-bearing stability of the walls, and blocking the path of radiation leakage through cable joints.
[0042] Reference Figure 2 The mounting component 3 includes a mounting block 31, the upper surface of which is fixedly connected to the lower surface of wall 1, and the inner wall of wall 2 is fixedly connected to a mounting sleeve 32.
[0043] Specifically, by aligning the mounting block 31 with the groove inside the mounting sleeve 32, and since wall 1 is fixedly connected to the mounting block 31 and wall 2 is fixedly connected to the mounting sleeve 32, wall 1 and wall 2 are then aligned and installed.
[0044] Reference Figure 2 The outer wall of the mounting block 31 is set on the side wall of the mounting sleeve 32, and the inner wall of the mounting sleeve 32 is set on the outer wall of the connecting line 5.
[0045] Specifically, the mounting sleeve 32 is used to accommodate the mounting block 31 and increase the load-bearing stability at the connection between wall 1 and wall 2.
[0046] Reference Figure 3 The positioning component 9 includes a positioning block 91, the outer wall of which is fixedly connected to the outer wall of the sealing block 7, a positioning block 92 fixedly connected to the outer wall of the sealing block 8, and a positioning bolt 93 threadedly connected to the inner wall of the positioning block 91; the outer wall of the positioning block 91 is disposed on the outer wall of the positioning block 92, and the outer wall of the positioning bolt 93 is threadedly connected to the inner wall of the positioning block 92.
[0047] Specifically, since sealing block 7 is fixedly connected to positioning block 91 and sealing block 8 is fixedly connected to positioning block 92, positioning block 91 and positioning block 92 are aligned as sealing block 7 and sealing block 8 are aligned. At this time, rotating positioning bolt 93 locks positioning block 91 and positioning block 92 to prevent sealing block 7 and sealing block 8 from being misaligned, thus ensuring the sealing at the interface of connecting wire 5 and connecting wire 6.
[0048] Reference Figure 4 The wall 1 includes a decorative panel 4, a crack-resistant layer 10, a protective coating 11, a protective layer 12, and a lead plate 13; the outer wall of the decorative panel 4 is provided with a lead plate 13, the outer wall of the lead plate 13 is provided with a protective layer 12, the outer wall of the protective layer 12 is provided with a protective coating 11, and the outer wall of the protective coating 11 is provided with a crack-resistant layer 10; the decorative panel 4, the crack-resistant layer 10, the protective coating 11, the protective layer 12, and the lead plate 13 are all rectangular;
[0049] Specifically, the wall 1 is constructed by combining various materials with different properties. The outermost layer is a decorative panel 4, which is made of composite aluminum-plastic composite board. The surface of the composite aluminum-plastic composite board is smooth, easy to clean, corrosion-resistant, and moisture-proof, making the decorative panel 4 meet the hygiene requirements of medical environments and suitable for scenarios where disinfectants are frequently used. A lead plate 13 is installed on the outside of the decorative panel 4. The lead plate 13 is made of lead, which has a high atomic number and can efficiently absorb ionizing radiation such as X-rays and gamma rays. A protective layer 12 is installed on the outside of the lead plate 13. The protective layer 12 is made of cement mortar. The cement mortar wraps the lead plate 13 to isolate it from oxygen and moisture, prevent lead oxidation and the generation of toxic dust, and provide physical cushioning to prevent the lead plate 13 from deforming due to external impact. The outer side of the protective layer 12 is fitted with a protective coating 11, which is made of barium sulfate cement. Barium sulfate has a high density and can scatter and absorb residual radiation. After bonding with cement, it forms a dense layer, compensating for the weak points in the protection at the joints of the lead plate 13. Then, an anti-crack layer 10 is installed on the outer layer of the protective coating 11. The anti-crack layer 10 is made of galvanized steel wire mesh. The galvanized layer is rust-resistant and can enhance the overall tensile strength of the wall. At the same time, it restrains the shrinkage and deformation of the cement mortar and barium sulfate coating, preventing cracking. This can achieve the effect of enabling the wall to cover radiation of different energy ranges, improving shielding efficiency and strengthening comprehensive protection performance, ensuring the stability of the wall structure, improving the cleanliness of the medical space, and further extending its service life.
[0050] Working principle: By aligning the grooves inside the mounting block 31 and the mounting sleeve 32, and since wall 1 is fixedly connected to the mounting block 31 and wall 2 is fixedly connected to the mounting sleeve 32, wall 1 and wall 2 are then aligned and installed to avoid misalignment of wall 1 and mounting component 3. At the same time, a connecting wire 5 is installed inside the mounting component 3. The connecting wire 6, which is connected to the medical equipment, is inserted into the connecting wire 5. At this time, the sealing block 7 on the outside of the connecting wire 5 is aligned with the sealing block 8 on the outside of the connecting wire 6. The positioning block 91 and the positioning block 92 are aligned with the alignment of the sealing block 7 and the sealing block 8. Then, the positioning bolt 93 is rotated to lock the positioning block 91 and the positioning block 92, preventing the sealing block 7 and the sealing block 8 from being misaligned, ensuring the seal at the interface of the connecting wire 5 and the connecting wire 6. This achieves seamless splicing between the walls, avoids installation misalignment problems, enhances structural sealing and radiation protection performance, improves the load-bearing stability of the wall, and blocks the leakage of radiation through the cable connection gap.
[0051] The wall 1 is constructed by combining various materials with different properties. The outermost layer is a decorative panel 4, which is made of composite aluminum-plastic composite board. This makes the decorative panel 4 meet the hygiene requirements of medical environments and suitable for scenarios where disinfectants are frequently used. A lead plate 13 is installed on the outside of the decorative panel 4. The lead plate 13 is made of lead, which allows it to efficiently absorb ionizing radiation such as X-rays and gamma rays. A protective layer 12 is installed on the outside of the lead plate 13. The protective layer 12 is made of cement mortar, which prevents lead oxidation and the generation of toxic dust and provides physical buffering to prevent the lead plate from being exposed to toxic dust. 13 is deformed by external impact; while a protective coating 11 is installed on the outside of the protective layer 12. The protective coating 11 is made of barium sulfate cement, which compensates for the weak points of the protection at the joint of the lead plate 13; then a crack-resistant layer 10 is installed on the outer layer of the protective coating 11. The crack-resistant layer 10 is made of galvanized steel wire mesh, which then restrains the shrinkage and deformation of the cement mortar and barium sulfate coating, and prevents cracking. In this way, the wall can cope with radiation of different energy levels, improve shielding efficiency and comprehensive protection capabilities, ensure the stability of the wall structure, improve the cleanliness of the medical space and extend its service life.
[0052] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A medical radiation shielding wall structure, comprising a wall (1), characterized in that: A second wall (2) is provided on the lower surface of the first wall (1). An installation component (3) is provided on the lower surface of the first wall (1). The installation component (3) is connected to the second wall (2). A connecting line (5) is connected to the installation component (3). A connecting line (6) is provided on the inner wall of the connecting line (5). A sealing block (7) is fixedly connected to the outer wall of the connecting line (5). A sealing block (8) is fixedly connected to the outer wall of the connecting line (6). A positioning component (9) is provided on the outer wall of the sealing block (7). The positioning component (9) is connected to the sealing block (8). The outer wall of the sealing block (7) is located on the outer wall of the sealing block (8).
2. The medical radiation shielding wall structure according to claim 1, characterized in that: The installation component (3) includes an installation block (31), the upper surface of which is fixedly connected to the lower surface of wall one (1), and an installation sleeve (32) is fixedly connected to the inner wall of wall two (2).
3. The medical radiation shielding wall structure according to claim 2, characterized in that: The outer wall of the mounting block (31) is disposed on the side wall of the mounting sleeve (32), and the inner wall of the mounting sleeve (32) is disposed on the outer wall of the connecting line (5).
4. A medical radiation shielding wall structure according to claim 1, characterized in that: The positioning component (9) includes a positioning block one (91), the outer wall of the positioning block one (91) is fixedly connected to the outer wall of the sealing block one (7), the outer wall of the sealing block two (8) is fixedly connected to the positioning block two (92), and the inner wall of the positioning block one (91) is threadedly connected to the positioning bolt (93).
5. A medical radiation shielding wall structure according to claim 4, characterized in that: The outer wall of the first positioning block (91) is set on the outer wall of the second positioning block (92), and the outer wall of the positioning bolt (93) is threadedly connected to the inner wall of the second positioning block (92).
6. A medical radiation shielding wall structure according to claim 1, characterized in that: The wall (1) includes a decorative panel (4), a crack-resistant layer (10), a protective coating (11), a protective layer (12), and a lead plate (13).
7. A medical radiation shielding wall structure according to claim 6, characterized in that: The outer wall of the decorative panel (4) is provided with a lead plate (13), the outer wall of the lead plate (13) is provided with a protective layer (12), the outer wall of the protective layer (12) is provided with a protective coating (11), and the outer wall of the protective coating (11) is provided with a crack-resistant layer (10).
8. A medical radiation shielding wall structure according to claim 6, characterized in that: The decorative panel (4), crack-resistant layer (10), protective coating (11), protective layer (12) and lead plate (13) are all rectangular.