Fixing support for human body spine photographing

By designing a spinal imaging fixation bracket that includes casters, sliding components, and a multi-stage telescopic rod system, the problem of existing technologies being unable to capture images in a seated or upright position is solved. This achieves flexible movement, stability, and comfort of the bracket, thereby improving image quality and diagnostic accuracy.

CN223731387UActive Publication Date: 2025-12-30黄庭
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Patent Information

Application Number
CN202422213750.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-10
Publication Date
2025-12-30
Estimated Expiration
2034-09-10

AI Technical Summary

Technical Problem

In existing technologies, human spinal imaging fixation braces cannot capture images in a sitting or standing position, which limits the assessment of patients' most common daily postures and may miss important diagnostic information.

Method used

A human spine imaging fixation bracket was designed, comprising components such as a spine support, imaging base, casters, support rods, imaging device, movable handrails, protective shell, telescopic rods, rotating rods, springs, and a seat. Combined with casters, sliding components, and a multi-stage telescopic rod system, it provides flexible movement and precise adjustment, ensuring stability and comfort.

Benefits of technology

It enables flexible movement and precise positioning of the stent in different directions, improves image quality, reduces image blurring, enhances patient comfort and safety, and improves diagnostic accuracy and ease of operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

A human body spine photographing fixing support comprises a spine support and an image base, the bottom of the spine support is fixedly connected with a plurality of universal wheels, the top of the spine support is fixedly connected with a supporting rod, the outer portion of the image base is slidably connected with an image machine, and the outer portion of the spine support is provided with a sliding assembly for providing a movable handrail. The outer portion of the spine support is fixedly connected with a protection shell, and the interior of the protection shell is fixedly connected with a first telescopic rod. According to the scheme, the human body spine photographing fixing support has high practical value and innovativeness, the stability and operation convenience of the photographing process can be effectively improved, and meanwhile the safety and comfort of a patient are guaranteed.
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Description

Technical Field

[0001] This utility model relates to the field of medical devices, and in particular to a human spinal imaging fixation bracket. Background Technology

[0002] Spinal imaging is a crucial step in diagnosing spinal diseases, assessing spinal injuries, and developing treatment plans. Ensuring patient positional stability during the imaging process is essential for obtaining accurate results. The spinal imaging fixation system is designed to provide a stable, comfortable, and precise support system to maintain patient positioning during imaging. This system design must not only meet the technical requirements of radiology but also consider patient comfort and safety.

[0003] The primary function of a fixation brace is to provide postural stability. To ensure accurate spinal positioning during filming, the brace must be designed to tightly wrap around and secure the spinal region. Adjustable support components and straps are typically used to accommodate different body types and positions. For example, the brace can be designed to wrap around the entire spine, combined with padding and support straps to ensure the spine remains stationary during filming.

[0004] Since patients need to remain relatively still during the imaging process, the comfort of the stent is crucial. The stent's lining and contact surfaces should use soft materials, such as high-density foam or padding, to reduce pressure and discomfort on the skin. The stent's breathability should also be considered in its design to prevent discomfort or skin problems caused by prolonged contact.

[0005] To accommodate different patient body types and needs, stents require a high degree of adjustability. The stent adjustment mechanism should include adjustable support straps, adjustment plates, and locking devices, allowing for precise adjustment to the desired position. The design should consider ease and accuracy of adjustment so that healthcare professionals can quickly and accurately set the stent.

[0006] Stent operation should be as simple as possible to improve clinical efficiency. This includes rapid installation and removal systems, and easy-to-use adjustment mechanisms, enabling healthcare professionals to quickly complete setups even in busy work environments. For example, adjustment knobs or slide rails on the stent can simplify the adjustment process and reduce operation time.

[0007] Safety is a critical factor in the design. The stent should have a robust structure to prevent accidental movement or tilting during imaging. Furthermore, all parts that come into contact with the patient's skin should undergo rigorous safety testing to ensure there are no allergic reactions or skin damage. The stent's materials and design should also comply with relevant medical device standards and regulations.

[0008] The impact of stents in practical applications:

[0009] Stable positioning is crucial for obtaining high-quality spinal imaging. Using a fixation brace can significantly reduce image blurring caused by patient movement, thereby improving image clarity and diagnostic accuracy. This is of great significance for the early diagnosis and treatment planning of spinal diseases.

[0010] A comfortable support system not only reduces patient discomfort during imaging but also improves patient cooperation. By providing a comfortable and stable support system, patients can undergo imaging examinations in a more relaxed state, thereby reducing anxiety and discomfort.

[0011] Healthcare professionals can more quickly and accurately position patients when using stents, thus improving work efficiency. The convenient operation and adjustment mechanism of stents make clinical work more efficient and reduce the need for re-images due to improper positioning.

[0012] Durable bracket design reduces maintenance costs and the need for frequent equipment replacement. High-quality materials and structural design extend equipment lifespan, reduce equipment failures and maintenance requirements, thereby improving the equipment's economic viability and long-term value.

[0013] Spinal imaging fixation braces meet various needs during spinal imaging. They not only improve image quality and diagnostic accuracy but also enhance the patient experience and increase the efficiency of medical staff. Clearly, spinal imaging fixation braces play a vital role in clinical applications and have a profound impact on the advancement of spinal imaging and the optimization of medical practice.

[0014] In the prior art, some devices for human spinal imaging fixation have high strength, good rigidity, stability and reliability, and diverse components, which can effectively fix the spine, maintain body position, and are suitable for imaging and diagnosis of various spinal-related diseases. However, the disadvantage of not being able to capture sitting images is also obvious. The inability to capture sitting images limits the assessment of the patient's most common daily postures and may miss important diagnostic information. Therefore, a human spinal imaging fixation device is proposed to solve the above problems. Summary of the Invention

[0015] This utility model proposes a human spine photography fixation bracket, which aims to improve the problem that a human spine photography fixation bracket cannot capture sitting or standing images.

[0016] To achieve the above objectives, the present invention provides the following technical solution:

[0017] A human spinal imaging fixation bracket includes a spinal support and an imaging base. Multiple casters are fixedly connected to the bottom of the spinal support, and a support rod is fixedly connected to the top of the spinal support. An imaging device is slidably connected to the outside of the imaging base. A sliding assembly providing movable armrests is located on the outside of the spinal support. A protective shell is fixedly connected to the outside of the spinal support. A telescopic rod is fixedly connected inside the protective shell. A rotating rod is rotatably connected to the outside of the telescopic rod. A second telescopic rod is fixedly connected to the outside of the rotating rod. A spring is fixedly connected to the bottom of the second telescopic rod. A seat is rotatably connected inside the protective shell.

[0018] Furthermore, the sliding assembly includes an armrest groove, with a handle slidably connected inside the armrest groove, and the handle being fixedly connected outside the armrest groove.

[0019] Furthermore, a support plate is fixedly connected to the outside of the spinal support, and a rotating rod is rotatably connected to the outside of the support plate.

[0020] Furthermore, a helical spring is rotatably connected to the outside of the rotating rod two, and a limit plate is fixedly connected to the outside of the helical spring.

[0021] Furthermore, a winding wheel is rotatably connected to the outside of the rotating rod two, and a fixing belt is fixedly connected to the outside of the winding wheel.

[0022] Furthermore, a rotating shaft is rotatably connected to the bottom of the rotating rod two, and a protective shell is fixedly connected to the outside of the support plate.

[0023] Furthermore, one end of the spring is fixedly connected to a rotating rod, and the other end of the spring is fixedly connected to the outside of the protective shell.

[0024] Furthermore, the handle is slidably connected inside the spinal support, and the spinal support is fixedly connected to a handrail groove inside.

[0025] This utility model has the following beneficial effects:

[0026] By incorporating multiple casters at the base of the spinal support, the device becomes more flexible in its movement and positioning. The casters ensure smooth movement of the support in different directions, facilitating position adjustments in hospitals or clinics and ensuring convenient patient placement.

[0027] The base of the support is equipped with casters, and combined with sliding components and movable handrails, it can provide additional support and stability, reducing inconvenience for patients or medical staff during operation;

[0028] A support rod is fixedly connected to the top of the stand, providing stable support for the imaging device and ensuring that the device remains in a precise position during shooting. The stability of the support rod is crucial for obtaining high-quality images and reducing image blur caused by device shake.

[0029] The protective shell and multi-stage telescopic rod system in this application effectively provide additional safety protection for the patient. The cooperation of telescopic rods one and two allows the support to be finely adjusted according to the patient's body shape, increasing comfort and reducing discomfort during the photography process. The presence of spring one provides additional cushioning, reducing direct pressure on the patient's body when adjusting position, and increasing safety during use;

[0030] The design of the armrest slide and handle enhances ease of operation. Using the handle on the armrest slide, operators can easily adjust the stand settings, ensuring the equipment can smoothly adapt to different photography needs.

[0031] The design of the take-up reel and the fixing belt allows the equipment to be tightened or adjusted when needed, enhancing its adaptability and stability.

[0032] The design of rotating rod one and rotating rod two allows the bracket to be adjusted in angle and height as needed during the photography process. Rotating rod two, in conjunction with a helical spring and a limiting plate, can be adjusted according to specific needs, providing a more flexible way of use;

[0033] The combination of the bottom rotating shaft and the support plate can maintain stability at various shooting angles, which is especially important for the complex process of spinal imaging.

[0034] The combined design of the protective shell and the protective casing ensures the structural safety of the equipment during use, while also improving its overall durability.

[0035] The design of the support plate and protective shell not only protects the internal structure of the bracket, but also enhances the overall stability of the equipment and reduces the impact of external impacts on the equipment.

[0036] The proposed spinal radiography fixation device has high practical value and innovation, effectively improving the stability and ease of operation during the radiography process while ensuring patient safety and comfort. Attached Figure Description

[0037] Figure 1 This is a three-dimensional structural diagram of a human spine imaging fixation bracket proposed in this utility model;

[0038] Figure 2 A schematic diagram of the universal wheel structure of a human spine imaging fixation bracket proposed in this utility model;

[0039] Figure 3This is a schematic diagram of the fixing strap structure of a human spine imaging fixation bracket proposed in this utility model;

[0040] Figure 4 This is a schematic diagram of the spring structure of a human spine imaging fixation bracket proposed in this utility model;

[0041] Legend:

[0042] 1. Spinal support; 2. Imaging base; 3. Casters; 4. Support rod; 5. Imaging machine; 6. Armrest slide; 7. Handle; 8. Protective shell; 9. Telescopic rod one; 10. Rotating rod one; 11. Telescopic rod two; 12. Spring one; 13. Seat; 14. Support plate; 15. Rotating rod two; 16. Helical spring; 17. Limiting plate; 18. Rewinding wheel; 19. Fixing strap; 20. Rotating shaft; 21. Protective shell. Detailed Implementation

[0043] 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.

[0044] Reference Figures 1 to 3 This utility model provides an embodiment of a human spinal imaging fixation bracket, comprising a spinal bracket 1 and an imaging base 2, made of carbon fiber material, which is lightweight and high-strength, providing stable support. The spinal bracket 1 is ergonomically designed to adapt to the spinal curves of different patients. Multiple casters 3 are fixedly connected to the bottom of the spinal bracket 1, each equipped with a locking mechanism to lock the bracket when needed and prevent movement. The wheels are made of polyurethane, which is both wear-resistant and ground-friendly. A support rod 4 is fixedly connected to the top of the spinal bracket 1. The support rod 4 is made of aluminum alloy, which is lightweight and high-strength. The surface of the support rod 4 is coated with anti-rust paint to ensure long-term rust prevention. An imaging device 5 is slidably connected to the external side of the imaging base 2. The sliding connection of the imaging device 5 uses precision ball bearings to ensure smooth and precise movement. This helps to capture clear images from multiple angles. The external side of the spinal bracket 1 has a sliding assembly providing a moving armrest, and a protective shell 8 is fixedly connected to the external side of the spinal bracket 1. The protective shell 8 is designed to be waterproof and dustproof, protecting the internal mechanical structure from environmental influences. A telescopic rod 9 is fixedly connected internally to the protective shell 8, and a rotating rod 10 is rotatably connected externally to the telescopic rod 9. Both the telescopic rod 9 and the rotating rod 10 are made of stainless steel with polished surfaces to reduce wear and improve durability. The protective shell 8 is fixedly connected to the outside of the spinal support 1, as shown below. Figure 4 As shown, the interior of the protective shell 8 contains a linkage structure consisting of a telescopic rod 9, a rotating rod 10, a telescopic rod 11, and a spring 12, which is used to support the foldable seat 13.

[0045] The telescopic rod 9 is designed with graduated markings for precise length adjustment. A telescopic rod 11 is externally fixed to the rotating rod 10. A spring 12 is fixedly connected to the bottom of the telescopic rod 11, and both ends of the spring 12 are equipped with anti-drop devices to ensure safe use. A seat 13 is rotatably connected inside the protective shell 8. The seat 13 is made of memory foam material, providing a comfortable sitting experience. The rotation mechanism of the seat 13 allows for 360-degree rotation, facilitating patient posture adjustment. The sliding assembly includes an armrest slide 6, with a handle 7 slidably connected inside. The armrest slide 6 is made of aluminum, making it lightweight and sturdy. The handle 7 is designed to conform to ergonomic grip habits and has a non-slip surface to ensure a comfortable and stable grip. The handle 7 is externally fixed to the outside of the armrest slide 6.

[0046] Reference Figures 2 to 4 The spinal support 1 is externally fixed to a support plate 14, which is made of tempered glass, offering high strength and good transparency for easy observation of the underlying structure. The edges of the support plate 14 are chamfered to reduce safety risks associated with sharp angles. A rotating rod 15 is externally rotatably connected to the support plate 14. The rotating rod 15 is made of lightweight alloy material with an anti-oxidation treatment to ensure it will not rust over long-term use. A coil spring 16 is externally rotatably connected to the rotating rod 15. The coil spring 16 is made of high-elasticity stainless steel, offering excellent fatigue resistance. Its tightly coiled design ensures a stable spring rate, providing smooth power output. A limiting plate 17 is externally fixed to the coil spring 16. The limiting plate 17 is made of wear-resistant nylon material and has self-lubricating properties. The limiting plate 17 features an anti-slip texture to increase friction with the winding wheel 18, effectively preventing slippage. The winding wheel 18 is externally rotatably connected to the rotating rod 15. The outer shell of the winding wheel 18 is made of lightweight plastic material, with an embedded metal bearing to ensure smooth rotation. The rim is designed with microgrooves to increase friction with the fixing belt 19 and prevent belt slippage. The take-up reel 18 is externally fixed to the fixing belt 19. The outer shell of the take-up reel 18 is made of lightweight plastic material, with an embedded metal bearing to ensure smooth rotation. The rim is designed with microgrooves to increase friction with the fixing belt 19 and prevent belt slippage.

[0047] A rotating shaft 20 is rotatably connected to the bottom of the rotating rod 15. The rotating shaft 20 is made of high-strength steel and coated with Teflon to reduce friction and extend service life. Both ends of the rotating shaft 20 have anti-detachment structures to ensure safety. A protective shell 21 is fixedly connected to the outside of the support plate 14. The protective shell 21 is made of transparent polycarbonate material, which not only has high transparency but also impact resistance. The protective shell 21 is designed to be waterproof and dustproof, protecting the internal mechanical structure from environmental influences. One end of the spring 12 is fixedly connected to the rotating rod 10, and the other end of the spring 12 is fixedly connected to the outside of the protective shell 8. The handle 7 is slidably connected to the inside of the spinal support 1. The handle 7 is designed to conform to ergonomic grip habits and is covered with anti-slip material. The handle 7 has a shock-absorbing structure inside to reduce vibrations caused by operation. A handrail slide 6 is fixedly connected inside the spinal support 1. The handrail slide 6 is made of aluminum, which is lightweight and sturdy. The slide is designed with a dust cover to prevent dust and foreign objects from entering.

[0048] Working principle: The seat 13 is used as follows: When in use, pull the seat 13 outward, which drives the telescopic rod 9 to rotate the rotating rod 10. The rotating rod 10 then drives the telescopic rod 11 to unfold, at which point the spring 12 is stretched. When the seat 13 is unfolded to the use position, the three-bar support structure formed by the telescopic rod 9, the rotating rod 10, and the telescopic rod 11 provides stable support for the seat 13. When retracting, release the seat 13, and under the rebound force of the spring 12, the seat 13 automatically folds back into the protective shell 8.

[0049] By pulling the fixing belt 19, the fixing belt 19 drives the winding wheel 18 to move, which in turn drives the rotating rod 15 to rotate. The rotating rod 15 then drives the coil spring 16 to rotate. Under the action of the limiting plate 17, the coil spring 16 stops rotating when it reaches a certain value. When the fixing belt 19 is adjusted to a suitable position, it is released, and the coil spring 16 automatically tightens. When taking images of the human spine, the fixing belt 19 can effectively improve image quality and optimize the shooting process, thereby improving patient comfort and examination accuracy.

[0050] 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 human spine photographing fixing support, comprising a spine support (1) and an image base (2), characterized in that: The bottom of the spine support (1) is fixedly connected with a plurality of universal wheels (3), the top of the spine support (1) is fixedly connected with a support rod (4), the outside of the image base (2) is slidably connected with an image machine (5), the outside of the spine support (1) has a sliding assembly providing a moving handrail, the outside of the spine support (1) is fixedly connected with a protective shell (8), the inside of the protective shell (8) is fixedly connected with a telescopic rod one (9), the outside of the telescopic rod one (9) is rotatably connected with a rotating rod one (10), the outside of the rotating rod one (10) is fixedly connected with a telescopic rod two (11), the bottom of the telescopic rod two (11) is fixedly connected with a spring one (12), the inside of the protective shell (8) is rotatably connected with a seat (13).

2. The human spine photographing fixing support according to claim 1, wherein: The sliding assembly comprises a handrail sliding groove (6), the inside of the handrail sliding groove (6) is slidably connected with a handle (7), and the outside of the handle (7) is fixedly connected outside the handrail sliding groove (6).

3. The human spine photographing fixing support according to claim 1, wherein: The outside of the spine support (1) is fixedly connected with a support plate (14), and the outside of the support plate (14) is rotatably connected with a rotating rod two (15).

4. The human spine photographing fixing support according to claim 3, wherein: The outside of the rotating rod two (15) is rotatably connected with a spiral spring (16), and the outside of the spiral spring (16) is fixedly connected with a limiting plate (17).

5. The human spine photographing fixing support according to claim 3, wherein: The outside of the rotating rod two (15) is rotatably connected with a winding wheel (18), and the outside of the winding wheel (18) is fixedly connected with a fixed belt (19).

6. The human spine photographing fixing support according to claim 3, wherein: The bottom of the rotating rod two (15) is rotatably connected with a rotating shaft (20), and the outside of the support plate (14) is fixedly connected with a protective shell (21).

7. The human spine photographing fixing support according to claim 1, wherein: One end of the spring one (12) is fixedly connected with the rotating rod one (10), and the other end of the spring one (12) is fixedly connected outside the protective shell (8).

8. The human spine photographing fixing support according to claim 2, wherein: The handle (7) is slidably connected inside the spine support (1), and the inside of the spine support (1) is fixedly connected with the handrail sliding groove (6).