A far-infrared light-enhanced radiation therapy device

By designing a rectangular reflector and driving structure, the problems of irradiation adaptability and uneven energy distribution of far-infrared radiation therapy equipment in the treatment of irregular wounds and large-area burns were solved, achieving more efficient treatment results.

CN121266015BActive Publication Date: 2026-03-10JIANGSU AIHUA TECH MEDICAL INSTR CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-12-10
Publication Date
2026-03-10

AI Technical Summary

Technical Problem

Existing far-infrared radiation therapy equipment suffers from poor irradiation adaptability and uneven energy distribution in clinical applications, making it difficult to achieve precise coverage, especially when treating irregular wounds and large-area burns.

Method used

The reflector adopts a rectangular structure with an internal reflective plane and reflective arc surface. Combined with a moving base and driving structure, it can achieve flexible adjustment and tilting fine adjustment of the reflector to form a rectangular radiation area, which can adapt to irregular wound surfaces. The reflector plate reduces light scattering and ensures uniform energy distribution.

Benefits of technology

It improves the uniformity and precision of treatment, reduces irradiation blind spots and energy superposition, and enhances treatment efficacy.

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Abstract

This invention discloses a far-infrared light-enhanced radiation therapy device, relating to the field of radiation therapy equipment. It includes a rectangular reflector with a reflective plane arranged along its length and reflective arc surfaces on both sides. Far-infrared radiation elements are mounted on both the reflective plane and the reflective arc surfaces within the reflector. The device also includes a movable base, the top of which is connected to the reflector via a connecting assembly. This invention uses a connecting frame to connect the rectangular reflector to the movable base, mounting the far-infrared radiation elements on the reflective plane and reflective arc surfaces respectively. This allows the far-infrared light to form a rectangular radiation area after the synergistic effect of the reflective plane and reflective arc surfaces, effectively adapting to irregular wound shapes, improving the integrity of irradiation coverage and the effective radiation area, effectively avoiding energy superposition or missed irradiation areas, thereby improving the uniformity and accuracy of treatment.
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Description

Technical Field

[0001] This invention relates to the field of radiation therapy equipment, specifically a far-infrared light-enhanced radiation therapy device. Background Technology

[0002] Far-infrared radiation therapy equipment is a therapeutic instrument that uses long-wave infrared rays. Its main biological effect is thermal effect, without photochemical effect. It is often used in burn treatment. Its core value lies in improving the wound microenvironment through physical means, making up for the shortcomings of traditional treatments.

[0003] Existing far-infrared radiation therapy equipment generally consists of a radiation source, a reflector, a control system, and a support structure. The reflector is mostly a hemispherical structure, and the radiation source located inside the reflector is generally a point light source. The far-infrared light is focused and radiated to the treatment area through the reflector.

[0004] Regarding the aforementioned technologies, the irradiation area of ​​existing far-infrared radiation therapy devices is usually circular, which is not easily adapted to the irregular wound shapes commonly seen in clinical practice. This leads to problems such as blind spots or uneven energy distribution during treatment. When treating patients with large-area burns, the irradiation area of ​​a single device is limited. Using multiple devices simultaneously can easily cause overlapping irradiation areas, making it difficult to achieve precise coverage of the target treatment area. Furthermore, as the distance between the light source and the patient's skin changes, the irradiation area often expands or contracts rapidly, resulting in unstable energy density per unit area and affecting the treatment effect.

[0005] In summary, existing far-infrared radiation therapy equipment suffers from poor irradiation adaptability and uneven energy distribution in clinical applications. Summary of the Invention

[0006] Based on this, the purpose of the present invention is to provide a far-infrared light-enhanced radiation therapy device to solve the technical problems of poor irradiation adaptability and uneven energy distribution in the clinical application of existing far-infrared radiation therapy devices.

[0007] To achieve the above objectives, the present invention provides the following technical solution: a far-infrared light enhancement radiation therapy device, comprising a rectangular reflector, wherein a reflective plane is provided along the length direction inside the reflector, and reflective arc surfaces are provided on both sides of the reflective plane; far-infrared radiation elements are installed inside the reflector on both the reflective plane and the reflective arc surfaces; and a movable base is also included, wherein the top of the movable base is connected to the reflector via a connecting component.

[0008] By adopting the above technical solution, a rectangular reflector is connected to the mobile seat using a connecting frame. The far-infrared radiation element is installed on the reflective plane and the reflective arc surface respectively, so that the far-infrared light forms a rectangular radiation area after the reflective plane and the reflective arc surface work together. This effectively adapts to the irregular shape of the wound, improves the integrity of the irradiation coverage and the effective radiation area, effectively avoids energy superposition or omission of irradiation areas, and thus improves the uniformity and accuracy of treatment.

[0009] The present invention is further configured such that one end of a connecting frame is fixed to the top of the movable base, and the other end of the connecting frame is connected to a reflector, and the reflector connected to the connecting frame can be rotated to both sides to adjust its orientation.

[0010] Preferably, the orientation of the reflector can be manually adjusted by using the damping shaft provided in the connecting frame.

[0011] The present invention is further configured such that an arc-shaped frame is fixedly connected to the middle of the top surface of the reflector along the width direction, an arc-shaped track is provided inside the arc-shaped frame, and a fixed platform is slidably connected along the arc-shaped track. A connecting column is connected to the top of the fixed platform, and a driving structure for driving the fixed platform to slide along the arc-shaped track is installed inside the connecting column. The top of the connecting column is fixedly connected to one end of a horizontal frame, and the other end of the horizontal frame is fixedly connected to the top of a movable seat.

[0012] Preferably, the reflector is made to swing back and forth along a fixed arc trajectory.

[0013] The invention is further configured such that a first motor is fixedly installed at one end of the connecting column near its bottom, and the output end of the first motor passes through the connecting column and is connected to a drive wheel. A first driven wheel is rotatably connected to the end of the connecting column opposite to the drive wheel. The diameter of the drive wheel is larger than that of the first driven wheel. Four second driven wheels are rotatably connected to the fixed platform. Every two second driven wheels are coaxially arranged as a group. The two groups of second driven wheels are located at the two symmetrical ends of the fixed platform. The drive wheel and the first driven wheel simultaneously contact the top surface of the arc-shaped track, and the second driven wheels simultaneously contact the bottom surface of the arc-shaped track.

[0014] Preferably, the reflector is driven to swing back and forth by a first motor.

[0015] The present invention is further configured such that the top of the fixed platform is provided with a plug-in platform for inserting the connecting column, the plug-in platform is provided with a gasket, the gasket is elastic, and multiple connecting bolts are provided through the bottom end of the fixed platform, and the multiple connecting bolts are fixedly connected to the bottom end of the connecting column after passing through the fixed platform.

[0016] Preferably, the fixing platform and the connecting column are fastened together using connecting bolts.

[0017] The invention is further configured such that the second driven wheel, coaxially arranged, is rotatably connected to both ends of a rotating shaft, the rotating shaft is connected through the lifting block, the lifting block is installed at both ends of a fixed platform and can slide in the vertical direction, a double-headed second motor is installed in the fixed platform, both ends of the second motor are connected to a drive shaft, a screw passing through the lifting block is arranged in the vertical direction in the fixed platform, the drive shaft is used to drive the screw, the screw threads of the two lifting blocks are opposite, the bottom ends of the drive wheel and the first driven wheel are at the same height and are in the same straight line.

[0018] Preferably, after the reflector moves along a fixed arc trajectory, the lifting block can be controlled to move up and down in the opposite direction to achieve further fine-tuning of the reflector's tilt angle.

[0019] The present invention is further configured such that the fixed platform is provided with guide rods coaxially on both sides of the screw, the guide rods pass through the lifting block in the vertical direction, and the lifting block is slidably connected to the guide rods.

[0020] Preferably, the lifting block is raised and lowered smoothly.

[0021] The present invention is further configured such that reflective plates are rotatably connected to both sides of the reflector, and the reflective plates are arranged along the length direction of the reflector.

[0022] Preferably, it effectively reduces the escape of far-infrared light from both sides of the reflector.

[0023] The present invention is further configured such that a limiting piece is provided at the position of the reflector near the axis of rotation of the reflector plate, and both reflector plates are in a vertical state when the reflector is horizontal. When the reflector is not in a horizontal state, the higher reflector plate is restricted from rotating by the limiting piece, while the lower reflector plate rotates under its own gravity and remains in a vertical state.

[0024] Preferably, ineffective scattering of far-infrared light is reduced, while ensuring that the two reflectors can effectively concentrate light in tandem at different tilt angles, avoiding energy loss due to angle changes.

[0025] The present invention is further configured such that a protective net is fixedly connected to the bottom end of the reflector, and the protective net has an arc-shaped structure adapted to the reflector.

[0026] Preferably, this effectively prevents patients from accidentally touching the high-temperature components inside the reflector and getting burned when they stand up or raise their hands.

[0027] In summary, the present invention has the following main beneficial effects:

[0028] This invention connects a rectangular reflector to a mobile base using a connecting frame. A reflective plane is set along the length of the reflector, and reflective arc surfaces are set on both sides of the reflective plane. Far-infrared radiation elements are installed on the reflective plane and the reflective arc surfaces respectively, so that the far-infrared light forms a rectangular radiation area after the reflective plane and the reflective arc surfaces work together. This effectively adapts to irregular wound shapes, improves the integrity of irradiation coverage and the effective radiation area, effectively avoids energy superposition or irradiation area omission, and thus improves the uniformity and accuracy of treatment.

[0029] This invention installs an arc-shaped frame on the top surface of the reflector and uses a driving structure to drive the arc-shaped frame to move along the central trajectory of its own arc-shaped portion. This enables the reflector to swing back and forth along a fixed arc-shaped trajectory. When it is necessary to treat both sides of the patient's body at the same time, the back-and-forth swing of the reflector can be used to expand the irradiation range, reduce the irradiation blind spots on both sides of the patient's body, and thus improve the uniformity of radiation therapy.

[0030] This invention, by setting up a reversible lifting block inside the fixed platform, allows the reflector to move along a fixed arc trajectory. After the reflector moves, the lifting blocks on both sides of the drive wheel can be controlled to move in the opposite direction to further fine-tune the tilt angle of the reflector. This enables a more precise match to changes in the patient's body contour and ensures that the far-infrared light maintains a uniform energy distribution under different irradiation angles.

[0031] This invention improves energy utilization efficiency by rotating reflectors on both sides of the reflector to concentrate scattered far-infrared light. Furthermore, when the reflector rotates to adjust the illumination angle, the reflector moving away from the fixed platform remains vertical due to its own gravity, while the reflector moving closer to the fixed platform is restricted by the positioning plate and does not rotate, reducing ineffective scattering of far-infrared light. At the same time, it ensures that the two reflectors can effectively concentrate light together at different tilt angles, avoiding energy loss due to angle changes. Attached Figure Description

[0032] Figure 1 This is a perspective view of the first embodiment of the present invention;

[0033] Figure 2 This is a perspective view of the first embodiment of the present invention from another perspective;

[0034] Figure 3 This is a perspective view of the first embodiment of the present invention after the protective netting has been removed;

[0035] Figure 4 This is a perspective view of the second embodiment of the present invention;

[0036] Figure 5 This is a perspective view of a second embodiment of the present invention from another perspective;

[0037] Figure 6For the present invention Figure 5 Enlarged view of A in the middle;

[0038] Figure 7 This is a side view of the second embodiment of the present invention;

[0039] Figure 8 A perspective view of the second embodiment of the present invention when the reflector is moved to irradiate one side of the patient's body;

[0040] Figure 9 This is a perspective view of the second embodiment, showing the reflector moving to irradiate one side of the patient's body, from another perspective of the present invention.

[0041] Figure 10 For the present invention Figure 9 Enlarged view of B in the middle;

[0042] Figure 11 A side view of a second embodiment of the present invention when the reflector is moved to irradiate one side of the patient's body;

[0043] Figure 12 This is an exploded view of the connecting column and fixing platform of the present invention;

[0044] Figure 13 For the present invention Figure 12 Enlarged view of C;

[0045] Figure 14 This is an exploded view of the connecting column and the fixing platform from another perspective of the present invention;

[0046] Figure 15 This is a side view of the arc-shaped frame cross-section when the reflector of the present invention is moved to irradiate one side of the patient's body.

[0047] Explanation of reference numerals in the attached figures:

[0048] 1. Movable base; 2. Reflector; 201. Reflective plane; 202. Reflective arc surface; 203. Limiting plate; 3. Connecting frame; 4. Protective net; 5. Far-infrared radiation element; 6. Arc frame; 601. Arc track; 7. Horizontal frame; 8. Connecting column; 9. Fixed platform; 901. Insertion platform; 10. First motor; 11. Drive wheel; 12. First driven wheel; 13. Second driven wheel; 14. Connecting bolt; 15. Washer; 16. Second motor; 17. Transmission shaft; 18. Screw; 19. Guide rod; 20. Lifting block; 21. Rotating shaft; 22. Reflector plate. Detailed Implementation

[0049] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention, and should not be construed as limiting the present invention.

[0050] The embodiments of the present invention will now be described. Example 1

[0051] Please refer to a far-infrared light-enhanced radiation therapy device. Figures 1-15 It includes a reflector 2 with a rectangular structure. Specifically, in this embodiment, the projection surface of the reflector 2 is rectangular. In other undisclosed embodiments, various proportions and sizes can be adopted according to different usage requirements.

[0052] Specifically, a reflective plane 201 is provided along the length of the reflective cover 2, and reflective arc surfaces 202 are provided on both sides of the reflective plane 201. The reflective plane 201 is located in the middle of the reflective cover 2, and the two reflective arc surfaces 202 on both sides have equal areas. Far-infrared radiation elements 5 are installed on both the reflective plane 201 and the reflective arc surfaces 202 inside the reflective cover 2. Far-infrared light is emitted by the far-infrared radiation elements 5. The synergistic effect of the reflective arc surfaces 202 and the reflective plane 201 effectively increases the radiation intensity and coverage uniformity of the far-infrared light, thereby optimizing the treatment effect.

[0053] It also includes a movable base 1, the top of which is connected to a reflector 2 via a connecting component. Specifically, the bottom of the movable base 1 is equipped with casters, and the interior is equipped with a host for controlling components such as the far-infrared radiation element 5.

[0054] For details regarding the above embodiments, please refer to [link / reference]. Figures 1-3 One end of the connecting frame 3 is fixed to the top of the movable base 1, and the other end of the connecting frame 3 is connected to the reflector 2. Specifically, in this embodiment, the connecting frame 3 adopts the multi-angle adjustment bracket commonly used in the prior art, which can manually adjust the orientation and height of the reflector 2. The reflector 2 connected to the connecting frame 3 can rotate to both sides to adjust its orientation. The orientation of the reflector 2 can be manually adjusted by using the damping rotating shaft set in the connecting frame 3.

[0055] Furthermore, a protective net 4 is fixedly connected to the bottom of the reflector 2. The protective net 4 has an arc-shaped structure that matches the reflector 2, which effectively prevents patients from accidentally touching the high-temperature components inside the reflector 2 and getting burned when they get up or raise their hands. At the same time, it does not affect the transmission effect of far-infrared light. The protective net 4 is made of high-temperature resistant and corrosion-resistant metal material. Example 2

[0056] Please refer to a far-infrared light-enhanced radiation therapy device. Figures 1-15 Based on the first embodiment, the difference from the first embodiment is that an arc-shaped frame 6 is fixedly connected to the middle of the top surface of the reflector 2 along the width direction. Specifically, the arc radius of the arc-shaped frame 6 is smaller than the arc radius of the outer shell of the reflector 2.

[0057] Specifically, the arc frame 6 includes two parallel arc sections, with an arc track 601 positioned between them. A fixed platform 9 is slidably connected to the arc track 601 inside the arc frame 6, and a connecting column 8 is connected to the top of the fixed platform 9. A gap is left between the two arc tracks 601 to allow the connecting column 8 to move.

[0058] Furthermore, a drive structure for driving the fixed platform 9 to slide along the arc track 601 is installed inside the connecting column 8. The top end of the connecting column 8 is fixedly connected to one end of the horizontal frame 7, and the other end of the horizontal frame 7 is fixedly connected to the top end of the movable seat 1. Since the fixed platform 9 does not move relative to the horizontal frame 7, the drive structure can drive the arc frame 6 and the reflector 2 to swing back and forth along a fixed arc track when it is working.

[0059] For details regarding the above embodiments, please refer to [link / reference]. Figures 4-8 The horizontal frame 7 includes a telescopic part and a fixed part, which can adjust the distance between the reflector 2 and the movable seat 1 in the horizontal direction. The end of the telescopic part of the horizontal frame 7 is fixedly connected to the connecting column 8, while the fixed part is fixedly connected to the top of the lifting mechanism. The lifting mechanism is installed on the top of the movable seat 1. Specifically, in this embodiment, the lifting mechanism adopts an electric push rod. The height of the reflector 2 and its horizontal position relative to the movable seat 1 can be smoothly adjusted by using the horizontal frame 7 and the lifting mechanism.

[0060] For details regarding the above embodiments, please refer to [link / reference]. Figures 5-8 , Figures 12-15 A first motor 10 is fixedly installed at one end of the connecting column 8 near its bottom. The output end of the first motor 10 passes through the connecting column 8 and is connected to a drive wheel 11. A first driven wheel 12 is rotatably connected to the end of the connecting column 8 opposite to the drive wheel 11. The diameter of the drive wheel 11 is larger than that of the first driven wheel 12, which facilitates the installation of the first motor 10 on the same side as the first driven wheel 12.

[0061] Furthermore, the fixed platform 9 is rotatably connected to four second driven wheels 13. Every two second driven wheels 13 are coaxially arranged as a group. The two groups of second driven wheels 13 are located at the two symmetrical ends of the fixed platform 9. The driving wheel 11 and the first driven wheel 12 simultaneously contact the top surface of the arc track 601, and the second driven wheel 13 simultaneously contact the bottom surface of the arc track 601. The first motor 10 drives the reflector 2 to swing back and forth.

[0062] For details regarding the above embodiments, please refer to [link / reference]. Figures 5-8 , Figures 12-15The top of the fixed platform 9 is provided with a plug-in platform 901 for inserting the connecting column 8. A gasket 15 is provided inside the plug-in platform 901. The gasket 15 is elastic. Multiple connecting bolts 14 are provided through the bottom end of the fixed platform 9. After passing through the fixed platform 9, the multiple connecting bolts 14 are fixedly connected to the bottom end of the connecting column 8. As the connecting bolts 14 are gradually tightened, the elastic gasket 15 will undergo elastic deformation. At the same time, the first driven wheel 12 and the drive wheel 11 that contact the top surface of the arc track 601 and the four second driven wheels 13 that contact the bottom surface of the arc track 601 will also undergo slight deformation to clamp the arc track 601. The fixed platform 9 and the connecting column 8 are fastened together by the connecting bolts 14. When the drive wheel 11 does not rotate, the relative movement between the arc frame 6 and the fixed platform 9 is limited by friction.

[0063] For details regarding the above embodiments, please refer to [link / reference]. Figures 5-8 , Figures 12-15 The second driven wheel 13, which is coaxially arranged, is rotatably connected to both ends of the rotating shaft 21. The rotating shaft 21 is connected through the lifting block 20. The lifting block 20 is installed at both ends of the fixed platform 9 and can slide in the vertical direction. A double-headed second motor 16 is installed in the fixed platform 9. Both ends of the second motor 16 are connected to the drive shaft 17. A screw 18 that passes through the lifting block 20 is arranged in the vertical direction in the fixed platform 9. The drive shaft 17 is used to drive the screw 18.

[0064] Specifically, a bevel gear meshes between the end of the drive shaft 17 and the bottom end of the screw 18, thereby enabling the drive shaft 17 to transmit power to the screw 18. The screws 18 connected to the two lifting blocks 20 have opposite thread directions, allowing the two lifting blocks 20 to move in opposite directions when the second motor 16 is working. The bottom ends of the drive wheel 11 and the first driven wheel 12 are at the same height and on the same straight line. Since the two sets of second driven wheels 13 are symmetrically arranged, when the lifting blocks 20 move in opposite directions, the torque on both sides can be better balanced, thereby making the reflector 2 rotate more stably. After the reflector 2 moves along a fixed arc trajectory, the lifting blocks can be controlled to move in opposite directions to achieve further fine adjustment of the tilt angle of the reflector 2.

[0065] Furthermore, the fixed platform 9 is coaxially provided with guide rods 19 on both sides of the screw 18. The guide rods 19 pass through the lifting block 20 in the vertical direction. The lifting block 20 is slidably connected to the guide rods 19 to ensure the smooth lifting and lowering of the lifting block 20 and to prevent the lifting block 20 from getting stuck during the movement.

[0066] For details regarding the above embodiments, please refer to [link / reference]. Figures 7-11 Reflector 22 is rotatably connected to both sides of reflector 2. The reflector 22 is set along the length of reflector 2, which effectively reduces the far-infrared light from the sides of reflector 2.

[0067] Furthermore, a limiting piece 203 is provided near the pivot of the reflector 2 and the reflector 22. When the reflector 2 is horizontal, both reflectors 22 are in a vertical state. When the reflector 2 is not horizontal, the higher reflector 22 is restricted from rotating by the limiting piece 203, while the lower reflector 22 rotates under its own gravity and remains vertical, reducing the ineffective scattering of far-infrared light. At the same time, it ensures that the two reflectors 22 can effectively concentrate light together at different tilt angles, avoiding energy loss due to angle changes.

[0068] In practical operation, this invention:

[0069] The drive wheel 11 rotates in the forward direction, driving the arc frame 6 to move along the arc trajectory, causing the reflector 2 to change from a vertical position facing the patient to a position facing the patient's body. If the reflector 2 needs to be tilted further to irradiate the patient's body, the second motor 16 operates to lower the second driven wheel 13 near the lower end of the reflector 2, and conversely, raise the second driven wheel 13 near the higher end of the reflector 2. This allows the reflector 2 to deviate from the fixed arc trajectory and tilt further. After irradiating the patient's body, the second motor 16 operates to reset the two sets of second driven wheels 13 to the same height. The drive wheel 11 rotates in the reverse direction, driving the arc frame 6 to move in the reverse direction along the arc trajectory until the reflector 2 is vertically facing the patient. The drive wheel 11 then continues to rotate in the reverse direction, which similarly allows the reflector 2 to face the other side of the patient's body.

[0070] During the rotation and adjustment of the reflector 2, the lower reflector 22 will remain vertical due to its own gravity, while the higher reflector 22 will not rotate due to the obstruction of the limiting plate 203. By using the two reflectors 22 to focus the light together, the uniformity of irradiation on the side of the patient's body can be effectively improved, while also reducing the energy loss caused by the far-infrared light scattering.

[0071] Although embodiments of the present invention have been shown and described, these specific embodiments are merely explanations of the invention and are not intended to limit it. The specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. After reading this specification, those skilled in the art may make modifications, substitutions, and variations to the embodiments as needed without departing from the principles and spirit of the invention, but such modifications, substitutions, and variations are protected by patent law as long as they are within the scope of the claims of the present invention.

Claims

1. A far infrared light synergistic radiation treatment device, characterized by, The utility model relates to a far infrared radiation device, including: The utility model discloses a far infrared radiation device, including: the reflector cover of rectangular structure is provided with the reflection plane in length direction in the reflector cover, and is provided with the reflection cambered surface in both sides of reflection plane, and is installed far infrared radiation element on reflection plane and reflection cambered surface in the reflector cover, and the middle part of the top surface of reflector cover is fixedly connected with arc frame along width direction, and arc track is arranged in arc frame, and fixed platform is slidably connected along arc track, and the top end of fixed platform is connected with connecting column, and the driving structure for driving fixed platform to slide along arc track is installed in connecting column, and one end of connecting column is fixedly connected with horizontal frame, and the other end of horizontal frame is fixedly connected with the top end of moving seat, and both sides of reflector cover are rotatably connected with reflection board, and reflection board is arranged along the length direction of reflector cover, and the position of reflector cover close to reflection board pivot is provided with limiting piece, and both reflection boards are in vertical state when reflector cover is horizontal, and when reflector cover is not in horizontal state, the reflection board of higher is limited by limiting piece and does not rotate, and the reflection board of lower rotates and keeps vertical state by its gravity. The utility model discloses a far infrared radiation device, including:

2. The far infrared light synergistic radiation treatment device according to claim 1, characterized in that: One end of the connecting frame is fixed to the top end of the moving seat, and the other end of the connecting frame is connected to the reflector cover.

3. The far infrared light synergistic radiation treatment device according to claim 1, characterized in that: The connecting column is fixedly installed with a first motor at one end close to the bottom of the connecting column, the output end of the first motor penetrates through the connecting column and is connected with a driving wheel, the connecting column is rotatably connected with a first driven wheel at the end opposite to the driving wheel, the diameter of the driving wheel is greater than that of the first driven wheel, the fixed platform is rotatably connected with four second driven wheels, every two second driven wheels are coaxially arranged as a group, two groups of second driven wheels are respectively located at the two ends of the fixed platform which are symmetric to each other, the top surface of the driving wheel and the first driven wheel simultaneously contact the top surface of the arc track, and the bottom surface of the second driven wheel simultaneously contacts the bottom surface of the arc track.

4. The far infrared light synergistic radiation treatment device according to claim 1, characterized in that: The top end of the fixed platform is provided with a plug-in table for inserting the connecting column, the plug-in table is provided with a gasket with elasticity, and a plurality of connecting bolts are upwardly and penetratingly arranged at the bottom end of the fixed platform.

5. The far infrared light synergistic radiation treatment device according to claim 3, characterized in that: The two ends of the coaxially arranged second driven wheels are rotatably connected to the two ends of a rotating shaft, the rotating shaft penetrates through a lifting block, the lifting block is installed at the two ends of the fixed platform and can slide in the vertical direction, a double-headed second motor is installed in the fixed platform, both ends of the second motor are connected with transmission shafts, a screw rod penetrating through the lifting block is arranged in the fixed platform in the vertical direction, the transmission shafts are used for transmitting power to the screw rod, the screw threads of the screw rods respectively connected to the two lifting blocks are opposite to each other, the bottom ends of the driving wheel and the first driven wheel are located at the same height and are in the same straight line.

6. The far infrared light synergistic radiation treatment device according to claim 5, characterized in that: The fixed platform is coaxially provided with guide rods at the two sides of the screw rod, the guide rods penetrate through the lifting block in the vertical direction, and the lifting block is slidably connected to the guide rods.

7. The far infrared light synergistic radiation treatment device according to claim 1, characterized in that: The bottom end of the reflector cover is fixedly connected with a protective net, and the protective net is in an arc structure matched with the reflector cover.

Citation Information

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