Novel far infrared treatment rehabilitation equipment and use method thereof
By introducing airflow circulation components and magnetic fixed connections into the far-infrared treatment equipment, the problems of uneven airflow and unstable support plate are solved, stable airflow distribution and automatic operation of the equipment are achieved, and the treatment effect and comfort are improved.
Patent Information
- Application Number
- CN202510991552.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-18
- Publication Date
- 2025-10-10
AI Technical Summary
Traditional far-infrared therapy equipment lacks an effective airflow regulation mechanism, resulting in uneven airflow, vortexes or dead zones, affecting the treatment effect. In addition, the fixed support method is unstable, increasing operational complexity and noise.
It uses air flow components and magnetic fixed connections, including air flow rate adjustment rods, rotating shafts, buffer damping rods and magnetic blocks to achieve uniform distribution and stable fixation of air flow. Combined with an electric telescopic device to adjust the height of the equipment, it simplifies the operation process.
It achieves stable and uniform distribution of airflow, reduces noise and vibration, improves the stability and comfort of treatment effects, simplifies operating procedures, and enhances the degree of automation of the equipment.
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Figure CN120754450A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of infrared rehabilitation therapy, and in particular relates to a novel far-infrared therapeutic rehabilitation device and a method for using the same. Background Art
[0002] Far infrared rays refer to electromagnetic waves with a wavelength in the range of 4 to 1000 microns. Far infrared rays with a wavelength of 4 to 14 microns are consistent with the movement frequency of biological cell molecules in human tissues and water molecules in body fluids, and can produce a resonance effect, causing the temperature inside the epidermal tissue to rise. The thermal effect accelerates the synthesis of biological enzymes inside the body, increases the activity of biological enzymes, activates biological macromolecules such as proteins, promotes body fluid circulation, and enhances the body's metabolic function, thereby improving the body's immunity and the repair and regeneration ability of living tissue cells.
[0003] Existing infrared therapy and rehabilitation equipment lacks an effective flow rate regulation mechanism. This not only leads to uneven airflow during delivery, but also creates eddies or dead zones, affecting both airflow and uniform far-infrared radiation at the treatment site. Furthermore, this uneven airflow distribution exacerbates mechanical vibration and noise, reducing treatment comfort.
[0004] Furthermore, traditional devices often use mechanical locking or bolted connections to secure the backrest. Over extended treatments, the backrest can become loose due to vibration or patient movement, preventing the treatment area from closely contacting the far-infrared source and affecting treatment effectiveness. Furthermore, traditional far-infrared therapy devices often require manual adjustments by medical staff or patients, which not only complicates operation but can also compromise treatment effectiveness due to improper operation. Summary of the Invention
[0005] In view of the above situation, in order to overcome the defects of the prior art, the present invention provides a novel far-infrared therapeutic rehabilitation device and a method of using the same, so as to at least partially solve the above technical problems.
[0006] The technical solution adopted by the present invention is as follows:
[0007] The present invention proposes a novel far-infrared therapeutic rehabilitation device, comprising:
[0008] An airflow circulation component, the airflow circulation component includes an airflow conveying pipe, a rotating rod, a rotating shaft and an airflow rate adjustment rod, the rotating rod is arranged inside the airflow conveying pipe, the rotating shaft is arranged on the outer wall of the rotating rod, the airflow rate adjustment rod is arranged on the outer wall of the rotating shaft, the airflow rate adjustment rod is provided in multiple groups, and filter screens are respectively provided at both ends of the rotating rod, and bearing seats are provided at both ends of the rotating rod, and two bearing seats are respectively provided on the side walls of the filter screen;
[0009] A working frame, wherein the treatment part is arranged in the inner cavity of the working frame, a backing plate is arranged inside the working frame, the size of the backing plate is smaller than the size of the working frame, the backing plate is embedded in the interior of the working frame, an infrared electromagnetic plate is arranged inside the backing plate, the size of the infrared electromagnetic plate is smaller than the size of the backing plate, the infrared electromagnetic plate is embedded in the interior of the backing plate, the treatment part is closely attached to the surface of the infrared electromagnetic plate, one end of the airflow conveying pipe passes through the side wall of the working frame, and a certain ventilation distance is set between the airflow conveying pipe and the backing plate;
[0010] Air pumps are provided on both sides of the outer wall of the working frame, and the working end of the air pump is connected to one end of the air flow conveying pipe.
[0011] In one embodiment of the present invention, a buffer damping rod is provided on both sides of the rotating shaft, the other end of the buffer damping rod is provided on the side wall of the filter screen, the rotating rod rotates inside the airflow conveying pipe, and the rotation of the rotating rod drives the rotation of the rotating shaft and the airflow rate adjustment rod. The airflow rate adjustment rod is set as a multi-stage blade to provide a stable flow rate for the airflow.
[0012] In one embodiment of the present invention, protective side panels are respectively provided on both sides of the working frame, the vacuum pump is fixed to the outer wall of the protective side panels, and the two protective side panels are provided with infrared therapy lamps near the inner cavity of the working frame. The infrared therapy lamps are provided in multiple groups, and the infrared therapy lamps are arranged on both sides of the treatment area.
[0013] In one embodiment of the present invention, shock-absorbing damping rods are provided at the four corners of the inner wall of the working frame, and the other ends of the four groups of shock-absorbing damping rods are provided on the outer wall of the support plate. Positive magnetic blocks are also provided on both sides of the inner wall of the working frame, and negative magnetic blocks that are compatible with the positive magnetic blocks are also provided on both sides of the outer wall of the support plate. The treatment part pushes the support plate to move toward the inner wall of the working frame, and the positive magnetic block is magnetically fixed to the negative magnetic block, so that the support plate is fixed to the inside of the working frame.
[0014] In one embodiment of the present invention, an inner wall of the working frame is provided with an air pump control button, and the air pump control button is electrically controlled and connected to the air pump through a conductive line. The treatment part pushes the back plate to move toward the inner wall of the working frame, so that the outer wall of the back plate contacts the air pump control button, and the air pump automatically starts to work.
[0015] In one embodiment of the present invention, an infrared electromagnetic panel control button is provided on the inner wall of the working frame, and the infrared electromagnetic panel control button is electrically controlled and connected to the infrared electromagnetic panel through a conductive line. The treatment part pushes the back plate toward the inner wall of the working frame, so that the outer wall of the back plate contacts the infrared electromagnetic panel control button, and the infrared electromagnetic panel automatically starts working.
[0016] In one embodiment of the present invention, a fixed base plate is provided under the working frame, an electric telescopic device is provided on the top of the fixed base plate, a telescopic connecting rod is provided at the working end of the electric telescopic device, and the other end of the telescopic connecting rod is provided on the outer wall of the working frame to control the lifting and lowering operation of the working frame.
[0017] In one embodiment of the present invention, a control system is further provided on the outside of the working frame, and the control system is electrically controlled and connected to the infrared therapy lamp via an electrical signal.
[0018] In one embodiment of the present invention, a method for using the novel far-infrared therapeutic rehabilitation device comprises the following steps:
[0019] Step 1: The patient places the treatment area against the support plate and pushes it toward the inner wall of the working frame. At this point, the positive and negative magnetic blocks connect magnetically, ensuring that the support plate is firmly fixed inside the working frame.
[0020] Step 2: The movement of the support plate triggers the vacuum pump control button and the infrared electromagnetic plate control button at the same time, starting the vacuum pump and the infrared electromagnetic plate respectively. The vacuum pump introduces external fresh air into the working frame through the air flow circulation component to form a stable airflow environment. The infrared electromagnetic plate starts to heat up and emits far-infrared rays to irradiate the treatment area.
[0021] Step 3: The infrared therapy lamp provides additional infrared radiation on both sides of the treatment area, enhancing the treatment effect. At the same time, the electric telescopic device adjusts the height of the working frame according to the treatment needs, ensuring comfort and therapeutic effect at the treatment area.
[0022] Step 4. During the treatment process, the shock-absorbing damping rod and the buffer damping rod work together to reduce vibration and impact, improving the patient's comfort. The filter screen continuously blocks external impurities from entering the airflow delivery pipe, ensuring a clean and safe treatment environment.
[0023] Step 5: After the treatment, the patient gently pulls the back plate to separate it from the working frame, disconnecting the positive and negative magnetic blocks. At this point, the vacuum pump and infrared electromagnetic plate automatically stop working, and the device enters standby mode.
[0024] The beneficial effects of the technical solution of the present invention are:
[0025] The present invention utilizes a multi-stage blade configuration with an airflow velocity adjustment rod, effectively regulating airflow velocity and creating a more uniform airflow distribution during rotation. The arrangement and angle of the multi-stage blades ensure that, driven by the rotating rod, airflow forms a stable and continuous airflow field within the delivery pipe. A buffering and damping rod connects the rotating shaft and the filter screen, providing stability during rotation and mitigating adverse effects from airflow fluctuations or mechanical vibration. Furthermore, the buffering and damping rod absorbs energy during rotation to a certain extent, reducing noise and wear.
[0026] The present invention utilizes a magnetic connection between positive and negative magnetic blocks, allowing the backrest to be easily and stably secured within the working frame. An electric telescoping mechanism, via a telescopic connecting rod, controls the raising and lowering of the working frame, allowing the device to accommodate patients of varying heights and treatment needs. Furthermore, the control of the electric telescoping mechanism ensures stability and accuracy during treatment.
[0027] When the treatment area pushes the support plate toward the inner wall of the working frame and contacts the vacuum pump control button, the vacuum pump automatically activates, simplifying the operation process and improving the automation level of the device. When the outer wall of the support plate contacts the infrared electromagnetic plate control button, the infrared electromagnetic plate automatically activates, ensuring that the treatment area is quickly and evenly irradiated with far-infrared rays, thereby improving the treatment effect.
[0028] Additional aspects and advantages of the present invention will be set forth in part in the description which follows and, in part, will be obvious from the description which follows, or may be learned through practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS
[0029] The above and / or additional aspects and advantages of the present invention will become apparent and readily understood from the following description of the embodiments in conjunction with the accompanying drawings, in which:
[0030] Figure 1 This is a schematic structural diagram of the airflow distribution component of the novel far-infrared therapeutic rehabilitation device proposed in an embodiment of the present invention;
[0031] Figure 2 This is a schematic structural diagram of a novel far-infrared therapeutic rehabilitation device proposed in an embodiment of the present invention;
[0032] Figure 3 A top view of a novel far-infrared therapeutic rehabilitation device proposed in an embodiment of the present invention;
[0033] Figure 4 This is a rear view of the novel far-infrared therapeutic rehabilitation device proposed in an embodiment of the present invention;
[0034] Figure 5 A side view of a novel far-infrared therapeutic rehabilitation device proposed in an embodiment of the present invention;
[0035] Figure 6 for Figure 3 A cross-sectional view along the cutting line AA;
[0036] Figure 7 for Figure 4 A cross-sectional view along the cutting line BB;
[0037] Figure 8 for Figure 5 Cross-sectional view along cutting line CC.
[0038] In the figure: 1. Air flow circulation component; 2. Vacuum pump; 3. Air flow conveying pipe; 4. Filter screen; 5. Bearing seat; 6. Rotating rod; 7. Rotating axis; 8. Air flow rate adjustment rod; 9. Buffer damping rod; 10. Working frame; 11. Protective side panel; 12. Shock-absorbing damping rod; 13. Back plate; 14. Infrared electromagnetic plate; 15. Air pump control button; 16. Infrared electromagnetic plate control button; 17. Positive magnetic block; 18. Negative magnetic block; 19. Infrared therapy lamp; 20. Fixed base plate; 21. Electric telescopic device; 22. Telescopic connecting rod. DETAILED DESCRIPTION
[0039] The following describes embodiments of the present invention in detail, examples of which are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are intended to be used to explain the present invention, and are not to be construed as limiting the present invention.
[0040] A novel far-infrared therapeutic rehabilitation device and a method of using the same will be described below with reference to the accompanying drawings.
[0041] like Figures 1 to 8 As shown, the embodiment of the present invention provides a novel far-infrared therapeutic rehabilitation device, comprising: an air flow circulation component 1, the air flow circulation component 1 comprises an air flow conveying pipe 3, a rotating rod 6, a rotating shaft 7 and an air flow rate adjusting rod 8, the rotating rod 6 is arranged inside the air flow conveying pipe 3, the rotating shaft 7 is arranged on the outer wall of the rotating rod 6, the air flow rate adjusting rod 8 is arranged on the outer wall of the rotating shaft 7, the air flow rate adjusting rod 8 is provided with multiple groups, and filtering screens 4 are respectively provided at both ends of the rotating rod 6, and bearing seats 5 are provided at both ends of the rotating rod 6. The two bearing seats 5 are respectively provided on the side walls of the filtering screen 4, and an air pump 2 is provided on both sides of the outer wall of the working frame 10, and the working end of the air pump 2 is connected to one end of the air flow conveying pipe 3, and buffer damping rods 9 are respectively provided on both sides of the rotating shaft 7, and the other end of the buffer damping rod 9 is provided on the side wall of the filtering screen 4, the rotating rod 6 rotates inside the air flow conveying pipe 3, and the rotation of the rotating rod 6 drives the rotation of the rotating shaft 7 and the air flow rate adjusting rod 8. The air flow rate adjusting rod 8 is provided with a multi-stage blade to provide a stable flow rate for the airflow;
[0042] The working frame 10 and the treatment part are arranged in the inner cavity of the working frame 10. A back plate 13 is provided inside the working frame 10. The size of the back plate 13 is smaller than that of the working frame 10. The back plate 13 is embedded in the interior of the working frame 10. An infrared electromagnetic plate 14 is provided inside the back plate 13. The size of the infrared electromagnetic plate 14 is smaller than that of the back plate 13. The infrared electromagnetic plate 14 is embedded in the interior of the back plate 13. The treatment part is closely attached to the surface of the infrared electromagnetic plate 14. One end of the airflow conveying pipe 3 passes through the side wall of the working frame 10, and a certain ventilation distance is provided between it and the back plate 13.
[0043] In a specific application of the embodiment of the present invention, the rotating rod 6 is fixed in the air flow conveying tube 3 by the bearing seat 5 to ensure stability and low friction during rotation. The rotating shaft 7 is tightly connected to the rotating rod 6 and rotates synchronously with the rotating rod 6, serving as the driving shaft of the air flow rate adjustment rod 8. The air flow rate adjustment rod 8 adopts a multi-stage blade design, which is convenient for realizing step-by-step acceleration or deceleration of the air flow, thereby providing a stable and adjustable air flow rate, which not only improves the air flow utilization efficiency, but also ensures that the treatment area is evenly covered by the air flow. The filter screen 4 is provided at both ends of the rotating rod 6 to effectively block external dust and particulate impurities from entering the air flow conveying tube 3, ensure the cleanliness of the treatment air flow, and reduce potential contamination of the patient's treatment area. The buffer damping rod 9 connects the rotating shaft 7 and the filter screen 4 to play the role of shock absorption and stable rotation. When the rotating rod 6 rotates at high speed, the buffer damping rod 9 can effectively absorb vibration energy, reduce noise and mechanical wear, and extend the service life of the equipment.
[0044] The backrest 13 is ergonomically designed to conform to the curve of the patient's back, providing stable support. The infrared electromagnetic plate 14 is embedded within the backrest 13, emitting far-infrared radiation that directly targets the treatment area, promoting local blood circulation, accelerating inflammation resolution, and alleviating pain. One end of the airflow duct 3 extends through the side wall of the working frame 10, maintaining a certain ventilation distance from the backrest 13 to form an airflow channel. This ensures sufficient airflow to the treatment area while preventing airflow from directly impacting the infrared electromagnetic plate 14 and affecting the efficiency of far-infrared radiation.
[0045] Vacuum pump 2 begins operating, drawing fresh air into the device through air delivery tube 3. After being purified by filter screen 4, the air enters air delivery tube 3. At this point, rotating rod 6, driven by external power, begins to rotate, driving shaft 7 and airflow rate adjustment rod 8 together. The multi-stage blade design of airflow rate adjustment rod 8 adjusts the airflow rate according to the changes in rotation speed and angle, ensuring uniform and stable airflow coverage of the treatment area.
[0046] Simultaneously, infrared electromagnetic plate 14 emits far-infrared radiation within working frame 10, directly impacting the treatment area adjacent to its surface. The far-infrared radiation's penetrating power and thermal effect promote local blood circulation, accelerate metabolism, and alleviate pain and inflammation. The combined effects of airflow and far-infrared radiation provide comprehensive rehabilitation benefits to the treatment area. The airflow not only removes heat and metabolic waste generated during treatment but also enhances the far-infrared radiation's penetration, improving treatment efficiency.
[0047] In a possible embodiment, protective side panels 11 are respectively provided on both sides of the working frame 10, the vacuum pump 2 is fixed to the outer wall of the protective side panels 11, and the two protective side panels 11 are provided with infrared therapy lamps 19 near the inner cavity of the working frame 10. There are multiple groups of infrared therapy lamps 19, and the infrared therapy lamps 19 are arranged on both sides of the treatment area.
[0048] A fixed base plate 20 is provided below the working frame 10, and an electric telescopic device 21 is provided on the top of the fixed base plate 20. A telescopic connecting rod 22 is provided at the working end of the electric telescopic device 21, and the other end of the telescopic connecting rod 22 is provided on the outer wall of the working frame 10 to control the lifting and lowering of the working frame 10.
[0049] In the specific application of the embodiment of the present invention, the protective side panel 11 not only plays the role of protecting the infrared therapy lamp 19 and the internal structure of the working frame 10, but also serves as a fixed support for the vacuum pump 2, which not only saves space but also ensures the stability of the vacuum pump 2 during operation. The vacuum pump 2 is used to form a negative pressure environment inside the working frame 10, which helps to enhance the effect of infrared therapy and promote blood circulation and metabolism in the treatment area.
[0050] Multiple sets of infrared therapy lamps 19 are positioned on either side of the treatment area, ensuring uniform and adequate far-infrared radiation. Far-infrared radiation has deep penetrating properties, penetrating deep into the subcutaneous tissue, promoting cell activity and accelerating wound healing, significantly relieving pain and reducing inflammation. The electric telescopic actuator 21 is connected to the working frame 10 via a telescopic connecting rod 22, enabling the working frame 10 to be raised and lowered. This allows the device to accommodate patients of varying heights and treatment needs, enhancing treatment flexibility and comfort. Control of the electric telescopic actuator also ensures a smooth and safe lifting process.
[0051] The fixed base plate 20 serves as the support foundation for the entire device. The electric telescopic actuator 21 and telescopic connecting rod 22 work together to ensure the stability of the working frame 10 during the raising and lowering process. The fixed base plate's robust design also enhances the device's overall load-bearing capacity and service life. The patient lies within the device's treatment area, adjusting the electric telescopic actuator 21 as needed, while the telescopic connecting rod 22 drives the working frame 10 to the desired height.
[0052] The vacuum pump 2 activates, creating a negative pressure environment within the working frame 10, enhancing the effectiveness of infrared therapy. Multiple infrared therapy lamps 19 are simultaneously activated, providing uniform and sufficient far-infrared radiation to the treatment area. Far-infrared radiation penetrates the subcutaneous tissue, promoting cell activity and accelerating blood circulation and metabolism. The intensity and duration of the infrared therapy lamps 19 can be adjusted to achieve optimal therapeutic results based on treatment needs.
[0053] After the treatment is completed, the infrared therapy lamp 19 and the vacuum pump 2 are turned off, and the working frame 10 is lowered to the initial position through the electric telescopic device 21 to facilitate the patient to leave the device.
[0054] In one possible embodiment, shock-absorbing damping rods 12 are provided at the four corners of the inner wall of the working frame 10, and the other ends of the four groups of shock-absorbing damping rods 12 are all provided on the outer wall of the support plate 13. Positive magnetic blocks 17 are also provided on both sides of the inner wall of the working frame 10, and negative magnetic blocks 18 that are compatible with the positive magnetic blocks 17 are also provided on both sides of the outer wall of the support plate 13. The treatment part pushes the support plate 13 to move toward the inner wall of the working frame 10, and the positive magnetic block 17 is magnetically fixed to the negative magnetic block 18, so that the support plate 13 is fixed to the inside of the working frame 10.
[0055] In a specific application of the embodiment of the present invention, the shock-absorbing and damping rods 12 are installed at the four corners of the inner wall of the working frame 10 and are connected to the outer wall of the back plate 13. Not only does it enhance the structural stability of the device, but when the patient pushes the back plate 13 to fix the treatment site, the shock-absorbing and damping rods 12 can effectively absorb and disperse the impact force, reduce vibration and noise, and enhance the patient's experience. The shock-absorbing and damping rods 12 also have a certain elastic recovery ability, which can help the back plate 13 to be smoothly reset after the treatment. The inner wall of the working frame 10 and the outer wall of the back plate 13 are respectively provided with a positive magnetic block 17 and a negative magnetic block 18 to form a magnetic fixing mechanism, which can effectively avoid the cumbersome operation of traditional screw and buckle fixing methods, and the magnetic connection has higher flexibility and convenience. The magnetic force can provide a stable fixing effect to ensure that the back plate 13 will not loosen due to slight movements of the patient during the treatment process.
[0056] The patient pushes the back plate 13 toward the inner wall of the working frame 10, and the positive magnetic block 17 and the negative magnetic block 18 are magnetically fixedly connected, so that the back plate 13 can fit tightly around the treatment area. The tight fit not only helps to improve the efficiency of far-infrared treatment and ensure that the treatment energy can fully act on the target area, but also reduces heat loss and improves the comfort and safety of treatment.
[0057] The patient first adjusts the position of the support plate 13 so that it is roughly aligned with the treatment area. Then, they gently push the support plate 13 toward the inner wall of the working frame 10. As the support plate 13 moves, the negative magnetic block 18 on its outer wall gradually approaches the positive magnetic block 17 on the inner wall of the working frame 10. When the two are close enough, the magnetic attraction takes effect, firmly securing the support plate 13 inside the working frame 10.
[0058] During this process, the shock-absorbing damping rod 12 effectively absorbs the impact force generated during the pushing process, reducing vibration and noise, ensuring stable fixation and patient comfort. Once the support plate 13 is fixed in place, the far-infrared treatment device begins to work. The far-infrared rays penetrate the skin and act on the treatment area, promoting blood circulation, relieving pain, and accelerating tissue repair.
[0059] After the treatment, the patient only needs to gently pull the back plate 13 to separate the positive magnetic block 17 from the negative magnetic block 18. The back plate 13 is smoothly reset under the elastic restoring force of the shock-absorbing damping rod 12, ready for the next treatment.
[0060] In one possible embodiment, an air pump control button 15 is provided on the inner wall of the working frame 10, and the air pump control button 15 is electrically controlled and connected to the air pump 2 through a conductive line. The treatment part pushes the support plate 13 to move toward the inner wall of the working frame 10, so that the outer wall of the support plate 13 contacts the air pump control button 15, and the air pump 2 automatically starts to work.
[0061] An infrared electromagnetic panel control button 16 is provided on the inner wall of the working frame 10. The infrared electromagnetic panel control button 16 is electrically controlled and connected to the infrared electromagnetic panel 14 through a conductive line. The treatment part pushes the back plate 13 toward the inner wall of the working frame 10, so that the outer wall of the back plate 13 contacts the infrared electromagnetic panel control button 16, and the infrared electromagnetic panel 14 automatically starts working.
[0062] In a specific application of the embodiment of the present invention, the vacuum pump control button 15 is electrically connected to the vacuum pump 2 via a conductive line. Once the support plate 13 touches the vacuum pump control button 15, a signal will be immediately transmitted to the vacuum pump 2 via the conductive line, triggering it to automatically start working, simplifying the operating process and improving the degree of automation of the equipment. The infrared electromagnetic board control button 16 is also electrically connected to the infrared electromagnetic board 14 via a conductive line. When the infrared electromagnetic board control button 16 is triggered, a signal will be transmitted to the infrared electromagnetic board 14, causing it to automatically start working and emit far-infrared rays for treatment. This not only improves the convenience of operation of the equipment, but also ensures the timeliness and accuracy of treatment.
[0063] The backrest 13 is designed to fit snugly against the treatment area, ensuring stable support and fixation during treatment. Furthermore, the outer wall of the backrest 13 is made of a material and shape that facilitates triggering of control buttons, ensuring accurate triggering of the vacuum pump control button 15 and the infrared electromagnetic panel control button 16 during the pushing process. The process of the treatment area pushing the backrest 13 toward the inner wall of the working frame 10 is actually a process of triggering control buttons. This makes the operation of the device more intuitive and simple; the patient or operator only needs to push the backrest 13 to start the device and begin the treatment process.
[0064] The patient places the treatment area against the support plate 13 and gently pushes the support plate 13 toward the inner wall of the working frame 10. When the outer wall of the support plate 13 contacts the air pump control button 15, a signal is transmitted through the conductive line to the air pump 2, triggering it to automatically start working. The air pump 2 starts working, creating a negative pressure environment inside the working frame 10, which helps to enhance the effect of far-infrared therapy.
[0065] As the support plate 13 is pushed further, its outer wall contacts the infrared electromagnetic plate control button 16. Similarly, the signal is transmitted to the infrared electromagnetic plate 14 through the conductive line, triggering it to automatically start working. The infrared electromagnetic plate 14 emits far infrared rays, which penetrate the skin and tissue of the treatment area to perform treatment.
[0066] In a possible embodiment, a control system is further provided outside the working frame 10 , and the control system is electrically controlled and connected to the infrared therapy lamp 19 via an electrical signal.
[0067] In the specific application of the embodiment of the present invention, the vacuum pump 2, infrared electromagnetic plate 14 and infrared therapy lamp 19 used in this device are all mature existing technical fields, and the working principles of the vacuum pump 2, infrared electromagnetic plate 14 and infrared therapy lamp 19 are also well known to people in this technical field, so they will not be described in detail here.
[0068] When the present invention is used, the patient places the treatment area against the backing plate 13 and pushes the backing plate 13 toward the inner wall of the working frame 10. At this time, the positive magnetic block 17 and the negative magnetic block 18 are magnetically connected to ensure that the backing plate 13 is stably fixed inside the working frame 10.
[0069] Specifically, the movement of the support plate 13 simultaneously triggers the vacuum pump control button 15 and the infrared electromagnetic plate control button 16, which respectively start the vacuum pump 2 and the infrared electromagnetic plate 14. The vacuum pump 2 introduces external fresh air into the working frame 10 through the airflow circulation component 1 to form a stable airflow environment. The infrared electromagnetic plate 14 starts to heat up and emits far-infrared rays to irradiate the treatment area.
[0070] Specifically, the infrared therapy lamp 19 provides additional infrared radiation on both sides of the treatment area to enhance the treatment effect. At the same time, the electric telescopic device 21 adjusts the height of the working frame 10 according to the treatment needs to ensure the comfort and treatment effect of the treatment area.
[0071] Specifically, during the treatment process, the shock-absorbing damping rod 12 and the buffering damping rod 9 work together to reduce vibration and impact and improve the patient's comfort. The filtering screen 4 continuously blocks external impurities from entering the airflow delivery tube 3, ensuring the cleanliness and safety of the treatment environment.
[0072] Specifically, after the treatment is finished, the patient gently pulls the back plate 13 to separate it from the working frame 10, and the positive magnetic block 17 is disconnected from the negative magnetic block 18. At this time, the air pump 2 and the infrared electromagnetic plate 14 automatically stop working, and the device enters the standby state.
[0073] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.
[0074] The present invention and its embodiments are described above. This description is not restrictive. The drawings show only one embodiment of the present invention, and the actual structure is not limited thereto. In short, if a person skilled in the art is inspired by this and, without departing from the purpose of the present invention, designs structures and embodiments similar to this technical solution without inventiveness, they shall fall within the scope of protection of the present invention.
Claims
1. A new type of far infrared therapeutic rehabilitation equipment, characterized in that: include: An airflow circulation component (1), the airflow circulation component (1) comprises an airflow conveying pipe (3), a rotating rod (6), a rotating shaft (7) and an airflow velocity adjustment rod (8), the rotating rod (6) is arranged inside the airflow conveying pipe (3), the rotating shaft (7) is arranged on the outer wall of the rotating rod (6), the airflow velocity adjustment rod (8) is arranged on the outer wall of the rotating shaft (7), the airflow velocity adjustment rod (8) is provided with multiple groups, the two ends of the rotating rod (6) are respectively provided with a filter screen (4), the two ends of the rotating rod (6) are both provided with a bearing seat (5), and the two bearing seats (5) are respectively provided on the side walls of the filter screen (4); A working frame (10), a treatment part is arranged in the inner cavity of the working frame (10), a backing plate (13) is arranged inside the working frame (10), the size of the backing plate (13) is smaller than the size of the working frame (10), the backing plate (13) is embedded in the working frame (10), an infrared electromagnetic plate (14) is arranged inside the backing plate (13), the size of the infrared electromagnetic plate (14) is smaller than the size of the backing plate (13), the infrared electromagnetic plate (14) is embedded in the backing plate (13), the treatment part is closely attached to the surface of the infrared electromagnetic plate (14), one end of the airflow conveying pipe (3) passes through the side wall of the working frame (10), and a certain ventilation distance is set between the airflow conveying pipe (3) and the backing plate (13); Air pumps (2) are provided on both sides of the outer wall of the working frame (10), and the working end of the air pump (2) is connected to one end of the air flow conveying pipe (3).
2. The novel far-infrared therapeutic rehabilitation device according to claim 1 is characterized in that: Buffer damping rods (9) are respectively provided on both sides of the rotating shaft (7), and the other end of the buffer damping rod (9) is provided on the side wall of the filter screen (4). The rotating rod (6) rotates inside the air flow conveying pipe (3). The rotation of the rotating rod (6) drives the rotation of the rotating shaft (7) and the air flow rate adjustment rod (8). The air flow rate adjustment rod (8) is configured as a multi-stage blade to provide a stable flow rate for the air flow.
3. The novel far-infrared therapeutic rehabilitation device according to claim 1 is characterized in that: Protective side panels (11) are respectively provided on both sides of the working frame (10), and the air pump (2) is fixed to the outer wall of the protective side panels (11). The two protective side panels (11) are close to the inner cavity of the working frame (10) and are provided with infrared therapy lamps (19). The infrared therapy lamps (19) are provided in multiple groups and are arranged on both sides of the treatment area.
4. The novel far-infrared therapeutic rehabilitation device according to claim 1 is characterized in that: Shock-absorbing and damping rods (12) are provided at the four corners of the inner wall of the working frame (10), and the other ends of the four groups of shock-absorbing and damping rods (12) are all provided on the outer wall of the support plate (13). Positive magnetic blocks (17) are also provided on both sides of the inner wall of the working frame (10), and negative magnetic blocks (18) adapted to the positive magnetic blocks (17) are also provided on both sides of the outer wall of the support plate (13). The treatment site pushes the support plate (13) to move toward the inner wall of the working frame (10), and the positive magnetic blocks (17) and the negative magnetic blocks (18) are magnetically fixedly connected, so that the support plate (13) is fixed inside the working frame (10).
5. The novel far-infrared therapeutic rehabilitation device according to claim 1 is characterized in that: The inner wall of the working frame (10) is provided with an air pump control button (15), and the air pump control button (15) is electrically controlled and connected to the air pump (2) through a conductive line. The treatment site pushes the support plate (13) to move toward the inner wall of the working frame (10), so that the outer wall of the support plate (13) contacts the air pump control button (15), and the air pump (2) automatically starts to work.
6. The novel far-infrared therapeutic rehabilitation device according to claim 1 is characterized in that: The inner wall of the working frame (10) is provided with an infrared electromagnetic panel control button (16), and the infrared electromagnetic panel control button (16) is electrically controlled and connected to the infrared electromagnetic panel (14) through a conductive line. The treatment site pushes the support plate (13) to move toward the inner wall of the working frame (10), so that the outer wall of the support plate (13) contacts the infrared electromagnetic panel control button (16), and the infrared electromagnetic panel (14) automatically starts to work.
7. The novel far-infrared therapeutic rehabilitation device according to claim 1 is characterized in that: A fixed base plate (20) is provided below the working frame (10), an electric telescopic device (21) is provided on the top of the fixed base plate (20), a telescopic connecting rod (22) is provided at the working end of the electric telescopic device (21), and the other end of the telescopic connecting rod (22) is provided on the outer wall of the working frame (10) to control the lifting and lowering of the working frame (10).
8. The novel far-infrared therapeutic rehabilitation device according to claim 1 is characterized in that: A control system is also provided outside the working frame (10), and the control system is electrically controlled and connected to the infrared physiotherapy irradiation lamp (19) via an electrical signal.
9. A method for using the novel far-infrared therapeutic rehabilitation device according to any one of claims 1 to 8, characterized in that: The following steps are involved: Step 1: The patient places the treatment part close to the support plate (13) and pushes the support plate (13) toward the inner wall of the working frame (10). The positive magnetic block (17) and the negative magnetic block (18) are magnetically connected to ensure that the support plate (13) is stably fixed inside the working frame (10); Step 2: The movement of the support plate (13) simultaneously triggers the air pump control button (15) and the infrared electromagnetic plate control button (16), respectively starting the air pump (2) and the infrared electromagnetic plate (14). The air pump (2) introduces external fresh air into the interior of the working frame (10) through the air flow circulation component (1), forming a stable air flow environment, and the infrared electromagnetic plate (14) starts to heat up and emits far infrared rays to irradiate the treatment area; Step 3: The infrared therapy lamp (19) provides additional infrared irradiation on both sides of the treatment area, and the electric telescopic device (21) adjusts the height of the working frame (10) according to the treatment needs to ensure the comfort and treatment effect of the treatment area; Step 4: During the treatment process, the shock-absorbing damping rod (12) and the buffer damping rod (9) work together to reduce vibration and impact, thereby improving the patient's comfort. The filter screen (4) continuously blocks external impurities from entering the airflow delivery pipe (3), thereby ensuring a clean and safe treatment environment. Step 5: After the treatment is completed, the patient gently pulls the back plate (13) to separate it from the working frame (10), the positive magnetic block (17) and the negative magnetic block (18) are disconnected, the air pump (2) and the infrared electromagnetic plate (14) automatically stop working, and the device enters the standby state.