Detachable electromagnetic radiation protection collar with lightweight neck protection structure

The lightweight, detachable electromagnetic radiation protection collar, with its elastic transmission and interlocking sliding mechanism, solves the problems of complex diameter adjustment and poor stability of existing collars, achieving convenient, stable, and comfortable neck support and improving the user experience.

CN224290265UActive Publication Date: 2026-05-26SHANXI BEKELER ENVIRONMENTAL TESTING CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHANXI BEKELER ENVIRONMENTAL TESTING CO LTD
Filing Date
2025-05-30
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

Existing neck protectors have complex diameter adjustment designs, require external instruments for inflation, are not convenient to use, have poor stability, and thus have limited applicability. Furthermore, they can cause stuffiness when worn for extended periods, affecting patients' recovery and experience.

Method used

A lightweight, detachable electromagnetic radiation protective collar was designed, employing an elastic transmission mechanism and an interlocking sliding mechanism. By interlocking the fixed support block with the docking support frame, it achieves rapid diameter adjustment and stable support, while ventilation holes and protective padding enhance comfort.

Benefits of technology

It enables quick and convenient adjustment of the neck diameter, improves the stability and comfort of the device, enhances neck support, reduces stuffiness, and improves the user experience for patients.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a detachable electromagnetic radiation protection collar of a lightweight neck protection structure, and relates to the field of protection collars, the detachable electromagnetic radiation protection collar comprises a peripheral protection sleeve, the upper surface of the peripheral protection sleeve is provided with a first supporting plate, and the outer surface of the first supporting plate is provided with an elastic transmission mechanism for meshing an extension abutting rod; the elastic transmission mechanism comprises a second supporting plate, and a fixed supporting block is installed on the outer surface of the second supporting plate. According to the detachable electromagnetic radiation protection collar of the light-weight neck protection structure, when diameter adjustment operation needs to be carried out on equipment, opening butt joint is directly carried out on a fixed supporting block and a butt joint supporting frame, so that an extension abutting rod abuts against and lifts a pressing occlusion rod; due to the triangular cone design of the extension abutting rod, the extension abutting rod can be fixed in an occlusion mode after the downward pressing occlusion rod is reset, the stable supporting effect is achieved, through the design, the diameter of the neck can be adjusted more rapidly, the use convenience of the device is improved, and the device can be used at any time.
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Description

Technical Field

[0001] This utility model relates to the field of protective collar technology, specifically a lightweight, detachable electromagnetic radiation protective collar with a neck-protecting structure. Background Technology

[0002] With the rapid development of modern technology, people are using electronic products more and more frequently. Electronic products contain electromagnetic radiation, which inevitably poses a certain degree of harm to the human body, a good conductor. With the development of modern technology, there is a kind of fabric that can effectively prevent radiation. It can not only effectively prevent radiation but also inhibit bacteria to a certain extent. Therefore, various products are made from this fabric for use.

[0003] Currently, the treatment of cervical spondylosis is generally divided into non-surgical and surgical treatments. Non-surgical treatments include neck braces and neck guards, chin strap traction, massage, physical therapy, and self-care methods. However, existing neck guards usually have poor breathability, do not fit the neck well, are uncomfortable, are bulky and inconvenient to carry, resulting in a poor patient experience.

[0004] To overcome the aforementioned shortcomings, existing technology (Chinese patent application date: 2022-09-13, publication number: CN217409103U) discloses an anatomical combined collar, relating to the field of medical device technology, which solves the technical problems of existing collars being insufficiently fitted, uncomfortable, and inconvenient to carry. This collar includes a support structure and a vacuum storage bladder; the support structure, in its inflated state, is an anatomical structure that fits snugly against the human neck; the support structure and the vacuum storage bladder are matched and fixedly connected; the support structure is disposed inside the vacuum storage bladder; the collar can be in an inflated state or a deflated state. This invention uses a vacuum storage bladder to enclose the support structure. By vacuuming the vacuum storage bladder, the support structure is compressed, reducing the collar's volume for easy carrying. By inflating the vacuum storage bladder, the support structure returns to its original anatomical shape, fitting snugly against the human neck, restricting cervical spine movement, and achieving a therapeutic effect.

[0005] While the above design can solve the aforementioned problems, the neck diameter adjustment design is too complicated for patients to use, requiring external instruments for auxiliary inflation, which makes the device less convenient to use and affects its applicability, preventing it from being used at any time. At the same time, the existing design lacks stability and provides poor support for the neck, which slows down the patient's recovery. Furthermore, the patient may feel stuffy and hot due to wearing the neck brace for a long time, resulting in a poor user experience. Utility Model Content

[0006] The purpose of this invention is to provide a lightweight, detachable electromagnetic radiation protection neck brace to solve the problems mentioned in the background art, such as the overly complex neck diameter adjustment design requiring external instruments for inflation, which makes the device inconvenient to use and affects its applicability, preventing it from being used at any time. In addition, the existing design lacks stability, provides poor neck support, slows down the patient's recovery, and causes the patient to feel stuffy and uncomfortable due to prolonged wear, resulting in a poor user experience.

[0007] To achieve the above objectives, this utility model provides the following technical solution: a lightweight, detachable electromagnetic radiation protective collar, comprising an outer protective sleeve, a first support plate mounted on the upper surface of the outer protective sleeve, and an elastic transmission mechanism for engaging an extended abutment rod mounted on the outer surface of the first support plate, the elastic transmission mechanism comprising a second support plate, a fixed support block mounted on the outer surface of the second support plate, an extended abutment rod mounted on the outer surface of the fixed support block, a docking support frame mounted on the outer surface of the first support plate, a limiting sliding frame mounted on the outer surface of the second support plate, and an engaging sliding mechanism for fixing the first support plate installed inside the limiting sliding frame.

[0008] Furthermore, the fitting sliding mechanism includes a first fitting rod, which is nested inside the limiting sliding frame. A support connecting plate is installed on the top of the limiting sliding frame, and a docking groove is formed on the upper surface of the second support plate.

[0009] Furthermore, the docking inner groove is fitted into the end of the first support plate, and the upper surface of the first support plate is provided with a first fitting inner groove. The lower surface of the support connecting plate is equipped with a second fitting rod, and the movement trajectory of the second fitting rod corresponds to the interior of the first fitting inner groove.

[0010] Furthermore, the rotation trajectory of the extended contact rod passes through the interior of the docking support frame, and a downward biting rod is installed inside the trademark Miani of the docking support frame. A compression spring is installed on the outer surface of the downward biting rod, and the top of the compression spring abuts against the top of the inner surface of the docking support frame.

[0011] Furthermore, a limiting stabilizing block is installed on the inner surface of the docking support frame, and the inner surface of the limiting stabilizing block is in contact with the outer surface of the extended abutting rod. The movement trajectory of the extended abutting rod abuts the end of the pressing bite rod, and a connecting rotating component is installed on the top outer surface of the pressing bite rod.

[0012] Furthermore, two sets of the downward biting rod, the compression spring, and the limiting stabilizing block are installed about the center point of the docking support frame, and the connecting rotating parts respectively engage the tops of the two sets of downward biting rods, and the end of the connecting rotating parts slides along the inside of the vertical sliding frame.

[0013] Furthermore, the supporting connecting plate, the first fitting rod, and the first fitting inner groove are designed as a single unit, and protective pads are installed on the upper surfaces of the first supporting plate and the second supporting plate, respectively. The interior of the limiting sliding frame contacts the outer surface of the first fitting rod to form a sliding structure, and the inner surface of the first fitting inner groove contacts the outer surface of the second fitting rod to form a sliding structure.

[0014] Compared with the prior art, the beneficial effects of this utility model are: the lightweight neck protection structure of the detachable electromagnetic radiation protection collar, when the diameter of the equipment needs to be adjusted, the fixed support block and the docking support frame are directly connected to the opening, so that the extended contact rod will push the lower biting rod to lift. Due to the triangular cone design of the extended contact rod, it will bite and fix it after the lower biting rod is reset, achieving a stable support effect. This design makes the diameter adjustment of the neck more convenient and improves the ease of use of the equipment, allowing it to be used at any time.

[0015] Furthermore, when it is necessary to stably engage and support the entire equipment, the first engaging rod can be slid down directly along the inside of the limiting sliding frame, so that the support connecting plate can drive the second engaging rod synchronously, and during the downward movement, it can be nested and fixed inside the first engaging groove. This design improves the stability of the equipment and provides better support for the neck.

[0016] Furthermore, multiple sets of ventilation holes are equidistantly opened on the outside of the first and second support plates, making the use of the equipment more comfortable and reducing patient discomfort. At the same time, the protective pads installed on the upper surface of the first and second support plates also improve the comfort of using the equipment. Attached Figure Description

[0017] Figure 1 This is a three-dimensional structural diagram of the outer protective sleeve of this utility model;

[0018] Figure 2 This is a three-dimensional structural diagram of the first support plate of this utility model;

[0019] Figure 3 This is a schematic diagram of the three-dimensional structure of the protective soft pad of this utility model;

[0020] Figure 4 This is a three-dimensional structural diagram of the fixed support block of this utility model;

[0021] Figure 5This is a schematic diagram of the three-dimensional structure of the docking inner groove of this utility model;

[0022] Figure 6 This is a schematic diagram of the three-dimensional structure of the first fitting inner groove of this utility model.

[0023] In the diagram: 1. Outer protective sleeve; 2. First support plate; 3. Second support plate; 4. Protective pad; 5. Fixed support block; 6. Docking support frame; 7. Ventilation hole; 8. Docking inner groove; 9. Limiting sliding frame; 10. Support connecting plate; 11. First fitting rod; 12. Extending abutment rod; 13. Connecting rotating part; 14. Vertical sliding frame; 15. Downward biting rod; 16. Compression contraction spring; 17. Limiting stabilizing block; 18. First fitting inner groove; 19. Second fitting rod. 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. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0025] Example 1: Please refer to Figures 1-6 The present invention provides the following technical solution: a lightweight detachable electromagnetic radiation protection collar with a neck-protecting structure, including an outer protective sleeve 1, a first support plate 2 installed on the upper surface of the outer protective sleeve 1, and an elastic transmission mechanism for engaging an extension abutment rod 12 installed on the outer surface of the first support plate 2, the elastic transmission mechanism including a second support plate 3, a fixed support block 5 installed on the outer surface of the second support plate 3, an extension abutment rod 12 installed on the outer surface of the fixed support block 5, a docking support frame 6 installed on the outer surface of the first support plate 2, a limiting sliding frame 9 installed on the outer surface of the second support plate 3, and an interlocking sliding mechanism for fixing the first support plate 2 installed inside the limiting sliding frame 9.

[0026] like Figure 1 , Figure 3 , Figure 4The technical solution shown addresses the problem that the neck diameter adjustment design is too complex for patient use, requiring external instruments for auxiliary inflation, which reduces the ease of use and limits its applicability. The solution discloses that: the rotation trajectory of the extended contact rod 12 passes through the interior of the docking support frame 6, and a downward-pressing engagement rod 15 is installed inside the docking support frame 6. A compression spring 16 is installed on the outer surface of the downward-pressing engagement rod 15, and the top of the compression spring 16 abuts against the top of the inner surface of the docking support frame 6. The inner surface of the device is equipped with a limiting stabilizing block 17, and the inner surface of the limiting stabilizing block 17 is in contact with the outer surface of the extended abutting rod 12. The movement trajectory of the extended abutting rod 12 abuts the end of the pressing bite rod 15. The top outer surface of the pressing bite rod 15 is equipped with a connecting rotating part 13. The pressing bite rod 15, the compression spring 16 and the limiting stabilizing block 17 are installed in two sets about the center point of the docking support frame 6. The connecting rotating part 13 respectively engages the top of the two sets of pressing bite rods 15. The end of the connecting rotating part 13 slides along the inside of the vertical sliding frame 14 for limiting.

[0027] When the device needs to be adjusted according to the patient's neck position, the front ends of the first support plate 2 and the second support plate 3 are directly connected to each other, so that the fixed support block 5 and the docking support frame 6 fixedly installed on the outer surface are connected synchronously. When the fixed support block 5 moves to dock, the extended abutment rod 12 fixedly installed on the outer surface will rotate synchronously and enter the docking support frame 6 fixedly installed on the outer surface of the first support plate 2. At this time, the movement of the extended abutment rod 12 will abut the end of the downward biting rod 15. Since the downward biting rod 15 is slidably installed inside the upper and lower sides of the docking support frame 6, it will slide vertically after being abutted at the end. At the same time, the compression spring 16 nested on the outer surface of the downward biting rod 15 will... Driven to move synchronously, and simultaneously contracted due to the abutment of the inner surface of the docking support frame 6, the movement of the extended abutment rod 12 will pass through the corresponding fixed limiting and stabilizing block 17 inside the docking support frame 6, ensuring the stability of the docking process. Since the extended abutment rod 12 is a conical disc design, after disengaging from the downward biting rod 15, the downward biting rod 15 will press down and bite its hollow position, so that the first support plate 2 and the second support plate 3 can be stably fitted together. When it is necessary to adjust the fitting position, the connecting rotating part 13 is directly pressed inward. The connecting rotating part 13 will drive the downward biting rod 15, which is nested at both ends, outward synchronously, and slide vertically along the vertical sliding frame 14 fixed on the upper and lower sides of the docking support frame 6, ensuring the stability of the docking.

[0028] Example 2: Figure 2 , Figure 5 , Figure 6 The technical solution shown addresses the problems of insufficient stability in existing designs, poor neck support leading to slower patient recovery, and the unpleasant user experience caused by prolonged wear of the neck brace. It discloses a sliding mechanism comprising a first locking rod 11, which is nested within a limiting sliding frame 9. A supporting connecting plate 10 is mounted on the top of the limiting sliding frame 9. A mating groove 8 is formed on the upper surface of a second supporting plate 3, which engages with the end of the first supporting plate 2. The upper surface of the first fitting groove 18 is provided, and the lower surface of the support connecting plate 10 is provided with a second fitting rod 19. The movement trajectory of the second fitting rod 19 corresponds to the interior of the first fitting groove 18. The support connecting plate 10, the first fitting rod 11 and the first fitting groove 18 are designed as a whole. The upper surfaces of the first support plate 2 and the second support plate 3 are respectively provided with protective soft pads 4. The interior of the limiting sliding frame 9 contacts the outer surface of the first fitting rod 11 to form a sliding structure, and the inner surface of the first fitting groove 18 contacts the outer surface of the second fitting rod 19 to form a sliding structure.

[0029] When the entire equipment needs to be stably supported by interlocking, the other ends of the first support plate 2 and the second support plate 3 are directly connected to each other, so that the end of the first support plate 2 enters the inner groove 8 opened on the upper surface of the second support plate 3. After adjusting to the appropriate position, the first engaging rod 11 is slid downward along the inside of the limiting sliding frame 9. Since the limiting sliding frame 9 is fixedly installed on the outer surface of the second support plate 3, the first engaging rod 11 will slide down vertically in a stable manner. At the same time, as the first engaging rod 11 moves, the support connecting plate 10 fixedly installed at the top of the first engaging rod 11 will also move synchronously. When the support connecting plate 10 moves, the support connecting plate 10 will synchronously drive the second fitting rod 19, which is also fixedly installed on the lower surface. When the second fitting rod 19 moves down synchronously, it will enter the first fitting inner groove 18 opened at the appropriate corresponding position on the upper surface of the first support plate 2 and complete the nesting support. At the same time, in order to ensure the patient's wearing comfort, two sets of protective soft pads 4 are fixedly installed on the upper surfaces of the first support plate 2 and the second support plate 3. Moreover, the ventilation holes 7 opened on the outer surfaces of the first support plate 2 and the second support plate 3 ensure that the patient's breathability will not cause stuffiness.

[0030] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "connected" and "linked" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

[0031] Although the present invention 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 invention should be included within the protection scope of the present invention.

Claims

1. A lightweight neck protector structure with a detachable electromagnetic radiation protection collar, comprising an outer protective sleeve (1), wherein a first support plate (2) is installed on the upper surface of the outer protective sleeve (1), and an elastic transmission mechanism for engaging an extension abutment rod (12) is installed on the outer surface of the first support plate (2). characterized in that The elastic transmission mechanism includes a second support plate (3), and a fixed support block (5) is installed on the outer surface of the second support plate (3). An extended abutment rod (12) is installed on the outer surface of the fixed support block (5), and a docking support frame (6) is installed on the outer surface of the first support plate (2). A limiting sliding frame (9) is installed on the outer surface of the second support plate (3), and an interlocking sliding mechanism for fixing the first support plate (2) is installed inside the limiting sliding frame (9).

2. The detachable electromagnetic radiation protection collar of a lightweight neck protection structure according to claim 1, characterized in that: The fitting sliding mechanism includes a first fitting rod (11), and the first fitting rod (11) is nested inside the limiting sliding frame (9). The top of the limiting sliding frame (9) is equipped with a support connecting plate (10), and the upper surface of the second support plate (3) is provided with a docking groove (8).

3. The lightweight, detachable electromagnetic radiation protective collar with a neck-protecting structure according to claim 2, characterized in that: The docking groove (8) is fitted into the end of the first support plate (2), and the upper surface of the first support plate (2) is provided with a first fitting groove (18). The lower surface of the support connecting plate (10) is equipped with a second fitting rod (19), and the movement trajectory of the second fitting rod (19) corresponds to the interior of the first fitting groove (18).

4. The lightweight, detachable electromagnetic radiation protection collar with a neck brace according to claim 1, characterized in that: The rotation trajectory of the extended contact rod (12) passes through the interior of the docking support frame (6), and a pressing bite rod (15) is installed inside the trademark Miani of the docking support frame (6). A compression spring (16) is installed on the outer surface of the pressing bite rod (15), and the top of the compression spring (16) abuts against the top of the inner surface of the docking support frame (6).

5. The lightweight, detachable electromagnetic radiation protection collar with a neck brace structure according to claim 4, characterized in that: The inner surface of the docking support frame (6) is equipped with a limiting stabilizing block (17), and the inner surface of the limiting stabilizing block (17) is in contact with the outer surface of the extended abutting rod (12). The movement trajectory of the extended abutting rod (12) abuts the end of the pressing bite rod (15), and a connecting rotating part (13) is installed on the top outer surface of the pressing bite rod (15).

6. The lightweight, detachable electromagnetic radiation protection collar with a neck brace structure according to claim 5, characterized in that: The pressing bite rod (15), the compression spring (16) and the limiting stabilizing block (17) are installed in two sets about the center point of the docking support frame (6), and the connecting rotating part (13) respectively fits the top of the two sets of pressing bite rods (15), and the end of the connecting rotating part (13) slides along the inside of the vertical sliding frame (14) for limiting.

7. The lightweight, detachable electromagnetic radiation protection collar with a neck brace according to claim 3, characterized in that: The supporting connecting plate (10), the first fitting rod (11) and the first fitting inner groove (18) are designed as a whole, and the upper surfaces of the first supporting plate (2) and the second supporting plate (3) are respectively equipped with protective soft pads (4). The interior of the limiting sliding frame (9) contacts the outer surface of the first fitting rod (11) to form a sliding structure, and the inner surface of the first fitting inner groove (18) contacts the outer surface of the second fitting rod (19) to form a sliding structure.