Moxibustion anti-scald fixed moxa stick frame

By precisely adjusting the distance between the moxa stick and the skin using a laser ranging module and a lifting mechanism, and removing moxa ash using a cleaning mechanism, the problems of temperature control difficulties and ash accumulation in traditional moxibustion are solved, thus improving the safety and effectiveness of moxibustion.

CN224523607UActive Publication Date: 2026-07-21东莞市石碣医院
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
东莞市石碣医院
Filing Date
2025-03-13
Publication Date
2026-07-21

AI Technical Summary

Technical Problem

Traditional moxibustion therapy faces the risk of skin burns due to the difficulty in temperature control when the moxa cones are burning with an open flame. In addition, the infrared sensor has poor accuracy, and the accumulation of moxa ash affects the moxibustion effect.

Method used

The laser ranging module is used to precisely adjust the distance between the moxa stick and the skin. Combined with the lifting mechanism and the ash removal mechanism, the laser ranging module accurately obtains the burning position of the moxa stick, and the lifting mechanism precisely adjusts the distance between the moxa stick and the patient's skin. At the same time, the ash removal mechanism removes the ash from the ash-blocking net, ensuring stable burning of the moxa stick and cleanliness of the ash-blocking net.

Benefits of technology

It achieves precise control over the burning position of the moxa stick, avoids skin burns, improves the safety and effectiveness of moxibustion, and ensures the stability and consistency of the moxibustion process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides fixed moxa stick frame of moxa -moxibustion anti -scald, including base, adjusting support and moxa stick cylinder, this base fixed mounting adjusting support, this adjusting support fixed mounting moxa stick cylinder, this moxa stick cylinder fixed mounting has lifting mechanism, moxa stick cylinder bottom fixed mounting has bottom, bottom is provided with dust screen, bottom fixed mounting has laser ranging module and dust cleaning mechanism, dust cleaning mechanism includes drive mechanism and dust sweeping mechanism, dust sweeping mechanism includes adsorption pipe, first sweep arm and second sweep arm, first sweep arm passes through movable axle swing joint second sweep arm, first sweep arm and second sweep arm all are equipped with dust suction groove, and adsorption pipe is connected with dust suction groove guide. Through adjusting support adjustment moxa stick cylinder and patient skin distance, again through controller setting moxa stick and skin's distance, when moxa stick burns, through laser ranging module accurate acquisition moxa stick's combustion position, and through lifting mechanism accurate regulation moxa stick and patient skin's distance, improve moxa -moxibustion effect.
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Description

Technical Field

[0001] This utility model belongs to the field of medical device technology, specifically relating to a moxibustion anti-scalding fixation frame. Background Technology

[0002] Moxibustion, a traditional Chinese medicine therapy with a history of thousands of years, occupies an important position in folk medical practice due to its significant warming and tonifying effects. This therapy uses the warmth generated by burning moxa cones to stimulate specific acupoints on the body, employing the principle of "moxa penetration to acupoints" to achieve therapeutic effects such as warming the meridians and dispelling cold, harmonizing the body's vital energy and blood, and strengthening the body's resistance. It is worth noting that traditional moxibustion therapy still has significant limitations in practice. The difficulty in controlling the temperature of the open flame during moxibustion, leading to the risk of skin burns, is particularly prominent. This safety hazard not only affects the patient's treatment experience but also restricts the modernization and expansion of the therapy's clinical application. To address this, moxibustion frames were invented to fix the distance between the moxa cone and the skin, preventing skin burns.

[0003] Chinese utility model patent CN222323907U discloses a moxibustion anti-scalding fixation frame, which includes a base, a support rod, an adjusting rod, a connecting seat, and a moxa stick adjusting cylinder. The support rod is vertically positioned above the base, with one end of the adjusting rod hinged to the upper end of the support rod and the other end hinged to the rear end of the connecting seat. The side of the moxa stick adjusting cylinder is fixed to the front end of the connecting seat, and an opening is provided at the upper end of the side of the moxa stick adjusting cylinder opposite to the connecting seat. Sliding grooves are vertically provided on the two sides of the moxa stick adjusting cylinder perpendicular to the opening, and a first infrared sensor and a second infrared sensor are slidably mounted on these grooves. A moxa stick clamp is movable up and down inside the moxa stick adjusting cylinder, and a lifting device is provided on the lower outer side of the moxa stick adjusting cylinder. This moxibustion anti-scalding fixation frame ensures that the burning point of the moxa stick remains within the effective therapeutic range of the acupoint during moxibustion.

[0004] The disclosed patent uses an infrared sensor to capture the burning position of the moxa stick, and then uses a lifting device to automatically control the distance between the burning position of the moxa stick and the skin. However, the infrared sensor has poor accuracy and is easily interfered with, which makes it impossible to accurately adjust the distance between the burning position of the moxa stick and the skin. In addition, after the moxa stick has been burning for a long time, the ash will accumulate on the ash-blocking net, which greatly affects the moxibustion results and weakens the moxibustion effect. Utility Model Content

[0005] The purpose of this utility model is to provide a moxibustion frame to prevent burns during moxibustion, so as to solve the problems mentioned in the background art.

[0006] To achieve the above objectives, this utility model provides the following technical solution: a moxibustion anti-scalding fixed moxibustion frame, comprising a base, an adjusting bracket, and a moxa cylinder. The base is fixedly equipped with the adjusting bracket, the adjusting bracket is fixedly equipped with the moxa cylinder, and the moxa cylinder is fixedly equipped with a lifting mechanism. The lifting mechanism is driven and connected to a moxa clamp. A bottom cover is fixedly installed at the bottom of the moxa cylinder, and the bottom cover is provided with a dust-blocking mesh. A laser ranging module and a dust-cleaning mechanism are fixedly installed on the bottom cover. The dust-cleaning mechanism includes a driving mechanism and a dust-sweeping mechanism. The dust-sweeping mechanism includes an adsorption tube, a first sweeping arm, and a second sweeping arm. The first sweeping arm is movably connected to the second sweeping arm via a movable shaft. Both the first and second sweeping arms are provided with dust-absorbing grooves, and the adsorption tube is conductively connected to the dust-absorbing grooves.

[0007] Preferably, a torsion spring is movably sleeved on the outer surface of the movable shaft, the first end of the torsion spring being fixedly connected to the first sweeping arm, and the second end of the torsion spring being fixedly connected to the second sweeping arm.

[0008] Preferably, the initial positions of the first and second sweeping arms are located beside the dust-blocking mesh, and the elastic potential energy of the torsion spring is zero.

[0009] Preferably, a rotating wheel is movably mounted at the end of the second sweeping arm, and a buffer rubber is fixedly mounted on the surface of the rotating wheel.

[0010] Preferably, the moxibustion cylinder is fixedly equipped with a controller.

[0011] Compared with the prior art, the beneficial effects of this utility model are:

[0012] This invention adjusts the distance between the moxa stick and the patient's skin by adjusting the bracket, uses a moxa stick clamp to hold and fix the moxa stick, and sets the distance between the moxa stick and the skin by a controller. When the moxa stick is burning, the burning position of the moxa stick is accurately obtained by a laser ranging module, and the distance between the moxa stick and the patient's skin is precisely adjusted by a lifting mechanism, thereby improving the moxibustion effect.

[0013] This invention utilizes a dust-cleaning mechanism to remove ash from the ash-blocking mesh. The dust-cleaning mechanism, driven by a drive mechanism, includes an adsorption tube, a first sweeping arm, and a second sweeping arm. Both the first and second sweeping arms have suction grooves connected to the adsorption tube. The adsorption tube uses an external vacuum cleaner to provide negative pressure, adsorbing and removing the ash. Specifically, the drive mechanism drives the first sweeping arm to sweep across the ash-blocking mesh, simultaneously driving the second sweeping arm to do so. The cooperation of the first and second sweeping arms allows the dust-cleaning mechanism to deform within a narrow space, ensuring thorough removal of dust from the mesh. Simultaneously, the dust-cleaning mechanism is activated during the lifting mechanism adjustment, further cleaning the mesh and improving the moxibustion effect. Attached Figure Description

[0014] Figure 1 This is a structural view of the present invention.

[0015] Figure 2 This is the first perspective structural view of the Ai column tube of this utility model.

[0016] Figure 3 This is a second perspective structural view of the Ai column tube of this utility model.

[0017] Figure 4 This is a structural view of the dust-sweeping mechanism inside the bottom cover of this utility model during operation.

[0018] Figure 5 This is a structural view of the initial position of the dust-sweeping mechanism inside the bottom cover of this utility model.

[0019] Figure 6 This is a structural view of the dust removal mechanism of this utility model.

[0020] Figure 7 This is a cross-sectional view of the dust removal mechanism of this utility model.

[0021] The diagram shows: 1. Base, 2. Adjustable bracket, 3. Moxibustion column, 4. Lifting mechanism, 5. Moxibustion column clamp, 6. Bottom cover, 7. Dust-blocking net, 8. Laser ranging module, 9. Dust-cleaning mechanism, 10. Drive mechanism, 11. Dust-sweeping mechanism, 12. Adsorption tube, 13. First sweeping arm, 14. Second sweeping arm, 15. Movable shaft, 16. Dust-sucking groove, 17. Torsion spring, 18. Rotary wheel, 19. Buffer rubber, 20. Controller. Detailed Implementation

[0022] 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.

[0023] Example 1:

[0024] like Figures 1-7As shown, the moxibustion anti-scalding fixed moxibustion frame provided by this utility model includes a base 1, an adjusting bracket 2, and a moxa cylinder 3. The base 1 is fixedly equipped with the adjusting bracket 2, and the adjusting bracket 2 is fixedly equipped with the moxa cylinder 3. The moxa cylinder 3 is fixedly equipped with a lifting mechanism 4, which is driven and connected to a moxa clamp 5. A bottom cover 6 is fixedly installed at the bottom of the moxa cylinder 3. The bottom cover 6 is provided with a dust-blocking mesh 7. A laser ranging module 8 and a dust-cleaning mechanism 9 are fixedly installed on the bottom cover 6. The dust-cleaning mechanism 9 includes a driving mechanism 10 and a dust-sweeping mechanism 11. The dust-sweeping mechanism 11 includes an adsorption tube 12, a first sweeping arm 13, and a second sweeping arm 14. The first sweeping arm 13 is movably connected to the second sweeping arm 14 through a movable shaft 15. Both the first sweeping arm 13 and the second sweeping arm 14 are provided with dust-absorbing grooves 16. The adsorption tube 12 is electrically connected to the dust-absorbing grooves 16. A torsion spring 17 is movably sleeved on the outer surface of the movable shaft 15. The first end of the torsion spring 17 is fixedly connected to the first sweeping arm 13, and the second end of the torsion spring 17 is fixedly connected to the second sweeping arm 14. The first sweeping arm 13 and the second sweeping arm 14 are initially positioned beside the dust-blocking mesh 7, and the elastic potential energy of the torsion spring 17 is zero. A rotating wheel 18 is movably mounted at the end of the second sweeping arm 14, and a buffer rubber sheet 19 is fixedly mounted on the surface of the rotating wheel 18. A controller 20 is fixedly mounted on the column cylinder 3.

[0025] Through the above technical solution, the present invention adjusts the distance between the moxa stick 3 and the patient's skin by adjusting the bracket 2, clamps and fixes the moxa stick with the moxa stick 5, and sets the distance between the moxa stick and the skin by the controller 20. When the moxa stick is burning, the burning position of the moxa stick is accurately obtained by the laser ranging module 8, and the distance between the moxa stick and the patient's skin is accurately adjusted by the lifting mechanism 4, thereby improving the moxibustion effect.

[0026] This invention cleans the ash from the ash-blocking mesh 7 using a cleaning mechanism 9, and drives a sweeping mechanism 11 via a driving mechanism 10. The sweeping mechanism 11 includes an adsorption tube 12, a first sweeping arm 13, and a second sweeping arm 14. Both the first and second sweeping arms 13 and 14 are equipped with ash-suction grooves 16, which are connected to the adsorption tube 12. The adsorption tube 12 provides negative pressure through an external vacuum cleaner to adsorb and remove the ash. Specifically, the driving mechanism 10 drives the first sweeping arm 13 to sweep across the ash-blocking mesh 7, simultaneously driving the second sweeping arm 14 to sweep across the mesh. Through the cooperation of the first and second sweeping arms 13 and 14, the sweeping mechanism 11 can deform within a narrow space, ensuring that the dust on the ash-blocking mesh 7 is thoroughly removed. When the lifting mechanism 4 is adjusted, the cleaning mechanism is simultaneously activated to completely remove the dust from the ash-blocking mesh 7, improving the moxibustion effect.

[0027] Example 2:

[0028] like Figures 1-7As shown, the moxibustion frame of the present invention mainly includes a base 1, an adjusting bracket 2, and an moxa cylinder 3. The base 1 serves as the foundation of the entire device, and the adjusting bracket 2 is fixedly installed thereon. The adjusting bracket 2 is fixedly installed with the moxa cylinder 3, used to adjust the position and angle of the moxa cylinder 3. A lifting mechanism 4 is fixedly installed on the moxa cylinder 3, and the lifting mechanism 4 drives and connects to the moxa cylinder clamp 5. The moxa cylinder clamp 5 is used to clamp and fix the moxa cylinder, ensuring its stability during combustion. A bottom cover 6 is fixedly installed at the bottom of the moxa cylinder 3, and the bottom cover 6 is provided with an ash-blocking mesh 7. The ash-blocking mesh 7 is used to filter and collect the ash produced during combustion, preventing the ash from directly contacting the skin. A laser ranging module 8 and an ash-cleaning mechanism 9 are also fixedly installed on the bottom cover 6. The laser ranging module 8 is used to accurately measure the distance between the burning position of the moxa cylinder and the skin, providing accurate data support for adjustment. The ash-cleaning mechanism 9 includes a driving mechanism 10 and an ash-sweeping mechanism 11. The driving mechanism 10 provides power to the ash-sweeping mechanism 11. The ash-sweeping mechanism 11 includes an adsorption tube 12, a first sweeping arm 13, and a second sweeping arm 14. The first sweeping arm 13 is movably connected to the second sweeping arm 14 via a movable shaft 15, allowing both arms to move flexibly in confined spaces and thoroughly clean the dust-blocking mesh 7. Both the first and second sweeping arms 13 and 14 are equipped with dust-suction grooves 16, with the suction tube 12 connected to the dust-suction grooves 16. The suction tube 12 is connected to an external vacuum cleaner to provide negative pressure suction to remove ash. During use, the moxa stick is fixed to the moxa stick clamp 5, and the position of the moxa stick cylinder 3 is adjusted by adjusting the bracket 2. After the moxa stick is lit, the laser ranging module 8 continuously monitors the distance between the moxa stick and the skin, and the lifting mechanism 4 automatically adjusts the height of the moxa stick based on the measurement results. During moxibustion, the dust-cleaning mechanism 9 is activated periodically, and the drive mechanism 10 rotates the first and second sweeping arms 13 and 14 to clean the ash on the dust-blocking mesh 7. The ash is sucked away through the dust-suction grooves 16 and the suction tube 12, keeping the dust-blocking mesh 7 clean. When it's necessary to clean ash from corners, the second sweeping arm 14 can rotate around the movable axis 15, forming different angles with the first sweeping arm 13 to adapt to confined spaces. After sweeping, the second sweeping arm 14 automatically returns to its initial position parallel to the first sweeping arm 13 under the action of the torsion spring 17. This design solves the problems of easy burns and ash accumulation affecting the effect in traditional moxibustion, improving the safety and effectiveness of moxibustion. Throughout the process, the position of the moxa stick remains stable, and the ash-blocking mesh 7 remains clean, ensuring the continuity and consistency of the moxibustion effect. This device is suitable for various moxibustion treatment scenarios, is easy to operate, safe and reliable, and greatly improves the application range and effectiveness of moxibustion therapy.

[0029] Example 3:

[0030] like Figures 1-7As shown, the first sweeping arm 13 of this invention is movably connected to the second sweeping arm 14 via a movable shaft 15. A torsion spring 17 is movably sleeved on the outer surface of the movable shaft 15. The first end of the torsion spring 17 is fixedly connected to the first sweeping arm 13, and the second end of the torsion spring 17 is fixedly connected to the second sweeping arm 14. This design allows the second sweeping arm 14 to rotate around the first sweeping arm 13, achieving mutual folding, thereby shortening the length of the dust-sweeping mechanism 11 and facilitating the cleaning of ash in corner positions. During the dust-cleaning process, when the dust-sweeping mechanism 11 encounters the inner wall of the moxa cylinder 3, the second sweeping arm 14 automatically rotates around the movable shaft 15. At this time, the torsion spring 17 is compressed, storing elastic potential energy. When the dust-sweeping mechanism 11 returns to its original position, the torsion spring 17 releases the stored elastic potential energy, pushing the second sweeping arm 14 back to its initial position. This adaptive mechanism allows the dust-sweeping mechanism 11 to flexibly cope with different dust-cleaning environments, improving dust-cleaning efficiency and cleanliness. Throughout the dust-cleaning process, the adsorption tube 12 continuously operates, providing negative pressure to the dust-suction trough 16. By introducing the torsion spring 17 mechanism, this embodiment significantly improves the adaptability and cleaning efficiency of the dust removal mechanism 11.

[0031] Example 4:

[0032] like Figures 1-7 As shown, the torsion spring 17 of this invention adopts a pre-stressed design. The initial positions of the first sweeping arm 13 and the second sweeping arm 14 are set beside the ash-blocking mesh 7. When the first sweeping arm 13 and the second sweeping arm 14 are in their initial positions, the elastic potential energy of the torsion spring 17 is zero. When the second sweeping arm 14 rotates around the first sweeping arm 13, the torsion spring 17 begins to store elastic potential energy. When returning to the initial position, the elastic potential energy of the torsion spring 17 is released, pushing the second sweeping arm 14 back to its initial position. This design ensures the flexibility of the ash-sweeping mechanism 11 while avoiding unnecessary energy consumption. During the ash-cleaning process, the controller 20 automatically adjusts the ash-cleaning frequency according to the burning state of the moxa stick. When the moxa stick is first lit, less ash is produced, and the controller 20 reduces the ash-cleaning frequency to reduce unnecessary energy consumption. As the moxa stick burns, the controller 20 gradually increases the ash-cleaning frequency to ensure that the ash-blocking mesh 7 remains clean at all times.

[0033] Example 5:

[0034] like Figures 1-7As shown, this invention mainly consists of a base 1, an adjusting bracket 2, an moxibustion cylinder 3, a lifting mechanism 4, a moxibustion clamp 5, a bottom cover 6, a laser ranging module 8, and a dust removal mechanism 9. The dust removal mechanism 9 comprises a drive mechanism 10 and a dust sweeping mechanism 11. The dust sweeping mechanism 11 includes an adsorption tube 12, a first sweeping arm 13, and a second sweeping arm 14. The first sweeping arm 13 and the second sweeping arm 14 are connected by a movable shaft 15, and both are provided with a dust suction groove 16 communicating with the adsorption tube 12. A rotating wheel 18 is movably installed at the end of the second sweeping arm 14, and a buffer rubber sheet 19 is fixedly installed on the surface of the rotating wheel 18. The rotating wheel 18 is connected to the end of the second sweeping arm 14 through a bearing, allowing free rotation. The buffer rubber sheet 19 is made of an elastic material with a moderate thickness, capable of covering the entire surface of the rotating wheel 18. When the dust removal mechanism 9 is working, the drive mechanism 10 drives the dust sweeping mechanism 11 to move. During the movement of the second sweeping arm 14, the rotating wheel 18 at its end contacts the inner wall of the moxibustion cylinder 3. Because the rotating wheel 18 can rotate freely, it rolls along the inner wall of the moxibustion cylinder 3, greatly reducing friction. This design allows the second sweeping arm 14 to fold and unfold more easily inside the moxibustion cylinder 3, improving cleaning efficiency. Simultaneously, the cushioning rubber 19 on the surface of the rotating wheel 18 acts as a buffer when it contacts the inner wall of the moxibustion cylinder 3. When the rotating wheel 18 touches the inner wall of the moxibustion cylinder 3, the cushioning rubber 19 deforms slightly, absorbing some of the impact force. This not only protects the rotating wheel 18 and the inner wall of the moxibustion cylinder 3 but also significantly reduces noise generated during contact. During the cleaning process, the second sweeping arm 14 can flexibly fold and unfold, sweeping through every corner of the dust-blocking mesh 7. The rolling design of the rotating wheel 18 ensures smooth cleaning action, while the cushioning rubber 19 provides a quiet and stable operating experience. This structural design greatly improves cleaning efficiency while minimizing noise interference during equipment operation. Through this design, the cleaning mechanism 9 can work efficiently within the confined internal space of the moxibustion cylinder 3, ensuring the cleanliness of the dust-blocking mesh 7. The clean ash-blocking mesh 7 effectively prevents ash from falling onto the patient, thus improving the safety of moxibustion treatment. At the same time, its quiet operation enhances patient comfort during treatment.

[0035] Example 6:

[0036] like Figures 1-7As shown, the present invention has a controller 20 fixedly installed on the moxa stick cylinder 3 for controlling the operation of the entire device. The controller 20 is installed on the outer wall of the moxa stick cylinder 3, in a position easily accessible to the operator. The controller 20 includes electronic components such as a main control circuit board, microprocessor, memory, and input / output interfaces. These components are encapsulated in a waterproof and dustproof housing to protect them from environmental influences. The front panel of the controller 20 has an LCD screen for displaying various parameters and settings. Below the screen are multiple control buttons and knobs for inputting various parameters and commands. One of the main control knobs is specifically used to set the measurement distance of the laser ranging module 8. The controller 20 is connected to the laser ranging module 8 at the bottom of the moxa stick cylinder 3 via a cable. The laser ranging module 8 continuously sends measurement data to the controller 20, which calculates the burning position of the moxa stick in real time based on this data. The controller 20 is also connected to a lifting mechanism 4, which adjusts the height of the moxa stick according to the calculation results, always maintaining a safe distance between the moxa stick and the patient's skin. The operator can set the ideal moxibustion distance parameters through the buttons and knobs on the control panel. The controller 20 stores these parameters in memory and continuously monitors and adjusts them throughout the moxibustion process to ensure the safety and effectiveness of the treatment. The controller 20 also coordinates the operation of the ash-cleaning mechanism 9. It automatically starts the ash-cleaning program according to preset time intervals or specific conditions, controlling the drive mechanism 10 to drive the ash-sweeping mechanism 11 to ensure that the ash-blocking net 7 remains clean at all times.

[0037] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.

[0038] The above description is only used to illustrate the technical solution of this utility model and is not intended to limit it. Any other modifications or equivalent substitutions made by those skilled in the art to the technical solution of this utility model, as long as they do not depart from the spirit and scope of the technical solution of this utility model, should be covered within the scope of the claims of this utility model.

Claims

1. A moxibustion frame for preventing burns, comprising a base, an adjustable support, and a moxa cylinder, wherein the adjustable support is fixedly mounted on the base, the moxa cylinder is fixedly mounted on the adjustable support, and a lifting mechanism is fixedly mounted on the moxa cylinder; the lifting mechanism is driven and connected to a moxa clamp, characterized in that... A bottom cover is fixedly installed at the bottom of the moxibustion cylinder. The bottom cover is provided with a dust-blocking mesh. A laser ranging module and a dust-cleaning mechanism are fixedly installed on the bottom cover. The dust-cleaning mechanism includes a driving mechanism and a dust-sweeping mechanism. The dust-sweeping mechanism includes an adsorption tube, a first sweeping arm, and a second sweeping arm. The first sweeping arm is movably connected to the second sweeping arm through a movable shaft. Both the first and second sweeping arms are provided with dust-suction grooves. The adsorption tube is electrically connected to the dust-suction grooves.

2. The moxibustion anti-scalding fixing frame according to claim 1, characterized in that, A torsion spring is movably sleeved on the outer surface of the movable shaft. The first end of the torsion spring is fixedly connected to the first sweeping arm, and the second end of the torsion spring is fixedly connected to the second sweeping arm.

3. The moxibustion anti-scalding fixing frame according to claim 2, characterized in that, The first and second sweeping arms are initially positioned next to the dust-blocking mesh, and the elastic potential energy of the torsion spring is zero.

4. The moxibustion anti-scalding fixing frame according to claim 1, characterized in that, A rotating wheel is movably mounted at the end of the second sweeping arm, and a buffer rubber is fixedly mounted on the surface of the rotating wheel.

5. The moxibustion anti-scalding fixing frame according to claim 1, characterized in that, The controller is fixedly installed on the moxibustion cylinder.