Moxibustion combustion box based on automatic adjustment
Through the thermosensor and program-controlled automatic lifting mechanism, the problem of manual adjustment of the height of the moxa burning box and skin burning of the moxa burning box is solved, and the automatic adjustment of the height of the moxa burning box is achieved and the uniform and stable temperature is achieved, which improves the safety and convenience of the moxa burning box.
Patent Information
- Application Number
- CN202421930716.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-10
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2034-08-10
AI Technical Summary
The existing moxa burning box is manually adjusted to the height of the burning column, which is inconvenient to operate, and each person has different sensitivity to temperature, causing skin burns.
The thermosensor temperature sensing program sets the time method, and the height of the scalping column is automatically adjusted through the control component and the automatic lifting mechanism, including three structural designs: arc rack and sliding groove structure, spiral teeth and sliding column structure, vertical rack and vertical slide rail structure, combined with the drive component and reducer motor, automatic adjustment of the scalping column height is achieved.
Ensure that the temperature of the human contact surface during moxa burning is uniform and stable, avoid skin burns, improve the safety of use, and enhance the reliability and convenience of the equipment through the design of rechargeable batteries and O-rings.
Smart Images

Figure CN223126883U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of moxibustion burning boxes, in particular to a moxibustion burning box based on automatic adjustment. Background Art
[0002] Moxibustion is a traditional Chinese medical treatment method that uses the temperature generated by the burning of moxa sticks to roast the body surface acupoints, so as to achieve the treatment of diseases. It has the effects of warming meridians and dispelling cold, removing stasis and dissipating nodules, promoting qi and activating blood circulation. During the burning process of the moxa column, due to changes in height or burning state, the temperature of the contact surface between the moxa column and the human body may be too high or too low. The existing moxibustion burning boxes adjust the height of the moxa column manually, which has the problems of inconvenient operation and skin burns caused by different sensitivities to temperature for each person.
[0003] In order to solve the above problems, this solution proposes a moxibustion burning box based on automatic adjustment. Summary of the Utility Model
[0004] The invention object of the utility model is to solve the problems that the existing moxibustion burning boxes adjust the height of the moxa column manually, which has the problems of inconvenient operation and skin burns caused by different sensitivities to temperature for each person. The specific solution is as follows:
[0005] The moxibustion burning box based on automatic adjustment includes an upper cover, a lower shell and a middle cover arranged between the upper cover and the lower shell. The lower shell includes a lower shell cavity, a transition table connected to the lower edge of the lower shell cavity, and an adsorption cavity with a downward opening connected to the outer edge of the transition table. A combustion chamber is arranged in the lower shell cavity. A bracket is arranged in the upper part of the combustion chamber. Moxibustion is arranged below the bracket. The upper part of the bracket is tightly fitted with the lower inner part of the upper cover. The lower end of the upper cover is tightly fitted with the upper inner end of the combustion chamber. An automatic lifting mechanism is arranged between the combustion chamber and the lower shell cavity. The height of the combustion chamber is adjusted up and down along with the automatic lifting mechanism.
[0006] Further, the bracket includes a column with a suspended lower end and a disc frame connected to the upper end of the column. The disc frame is provided with a plurality of leaf holes along its radial direction. The moxibustion is inserted or wound around the column.
[0007] Further, the upper cover is provided with a plurality of air outlet holes. A plurality of air inlet holes are arranged on the peripheral side of the adsorption cavity. A plurality of ventilation mesh holes are arranged at the lower end of the combustion chamber.
[0008] Further, the automatic lifting mechanism includes a control component, a driving component electrically connected to the control component, a temperature sensor, and a battery electrically connected to the driving component and the control component. The battery is arranged on the transition table. The temperature sensor is arranged on the lower surface of the transition table.
[0009] Solution 1:
[0010] The automatic lifting mechanism further includes two opposite spiral through grooves provided on the side wall of the lower housing cavity, and two outward sliding columns oppositely provided on the outer wall of the combustion chamber. The sliding columns pass through the spiral through grooves from inside to outside and are exposed outside the lower housing cavity. The driving assembly is provided on the first screw post of the transition table.
[0011] Option A: The automatic lifting mechanism further includes an arc-shaped rack and two vertical sliding grooves provided on the inner wall of the middle cover. The arc-shaped rack meshes with the driving gear of the driving assembly. The sliding grooves are sleeved on the ends of the sliding columns. The lower edge of the middle cover is sleeved in the circular sliding groove on the outer edge of the transition table. The inner edge of the upper end of the middle cover is provided with a plurality of card slots, and the card slots match the buckles on the outer edge of the upper end of the lower housing cavity. The control assembly is provided in the installation grooves on the upper surfaces of the transition table and the adsorption cavity.
[0012] Option B: The automatic lifting mechanism further includes spiral teeth provided on the outer wall surface of the combustion chamber. The spiral teeth mesh with the driving gear of the driving assembly. A part of the driving assembly and the driving gear enters the driving window provided on the side wall of the lower housing cavity. The control assembly is provided on the second screw post on the outer wall of the lower housing cavity. The lower part of the inner wall of the middle cover is provided with four fourth screw posts and is fastened to the four screw holes on the transition table by screws.
[0013] Solution 2:
[0014] The automatic lifting mechanism further includes a vertical slide rail and a vertical rack oppositely provided on the outer wall of the combustion chamber. The vertical slide rail matches the vertical slide groove on the inner wall of the lower housing cavity. The vertical rack meshes with the driving gear of the driving assembly provided on the outer wall of the lower housing cavity. One side of the driving gear enters the gear window on the side wall of the lower housing cavity, and the gear window faces the vertical rack.
[0015] Furthermore, the driving assembly is installed on the third screw post on the outer wall of the lower housing cavity.
[0016] Furthermore, the control assembly is provided on the second screw post on the outer wall of the lower housing cavity. The lower part of the inner wall of the middle cover is provided with four fourth screw posts and is fastened to the four screw holes on the transition table by screws.
[0017] In summary, adopting the technical solution of the present utility model has the following beneficial effects:
[0018] This solution solves the problems of the existing manual adjustment of the height of the moxibustion column in the moxibustion burning box, including inconvenient operation and skin burns caused by different sensitivities to temperature among individuals. This solution uses two methods to sense temperature, namely, a temperature sensor and programmed time setting (with safety guarantees even when the temperature sensor fails). The control component and the automatic lifting mechanism are used to automatically adjust the height of the moxibustion column without manual operation, ensuring that the temperature of the contact surface with the human body is uniform and stable during the entire moxibustion burning process, preventing skin burns, and improving the safety of using the moxibustion burning box. This solution designs three structures for automatically adjusting the height of the moxibustion column. The first structure drives the arc rack on the inner wall of the middle cover to rotate through the driving component, and then the two opposite vertical sliding grooves on the inner wall of the middle cover drive the two sliding columns on the outer wall of the combustion chamber to move up and down along the two spiral through grooves of the lower shell cavity. The up and down movement of the combustion chamber adjusts the distance between the moxibustion and the human contact surface, thereby achieving uniform and stable temperature of the human contact surface. The second structure improves on the first structure. The driving component drives the spiral teeth on the outer surface of the combustion chamber to rotate, and the sliding column on the outer surface of the combustion chamber rotates accordingly. The spiral through groove of the lower shell cavity guides the combustion chamber to move up and down, thereby achieving uniform and stable temperature of the human contact surface. The third structure simplifies and improves on the second structure. One sliding column is changed to a vertical rack, and the other sliding column is changed to a vertical slide rail. The driving component directly drives the vertical rack and the combustion chamber to move up and down. The vertical slide rail plays a role in balancing the force on the combustion chamber and making the up and down movement smoother. According to actual needs, this solution sets a smoke filter cotton between the tray and the inner side of the upper cover to reduce environmental pollution. The fixing method of the tray and the upper cover adopts either a silicone sleeve or a snap connection, which can prevent loosening or falling off. An O-ring seal is set between the upper cover and the inner wall of the combustion chamber, achieving a tight fit and facilitating the opening of the upper cover to replace the moxibustion. This solution designs a rechargeable battery, and the charging interface is assembled on the control component, eliminating the need to replace the battery and facilitating repeated use. A reduction motor is provided on the driving component, which can finely adjust the up and down position of the combustion chamber, that is, finely adjust the height of the moxibustion column, with reliable and durable performance. Brief Description of the Drawings
[0019] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required for use in the description of the embodiments of the present invention. Obviously, the drawings in the following description are only a part of the embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.
[0020] Figure 1 Structural diagram of the moxibustion burning box based on automatic adjustment for Embodiment 1 of the present invention;
[0021] Figure 2 is Figure 1 exploded view of;
[0022] Figure 3 Structural diagram of the lower case for Embodiment 1 of the present utility model;
[0023] Figure 4 Structural diagram of the middle cover for Embodiment 1 of the present utility model;
[0024] Figure 5 Structural diagram of the upper cover for Embodiment 1 of the present utility model;
[0025] Figure 6 Structural diagram of the combustion chamber for Embodiment 1 of the present utility model;
[0026] Figure 7 Cross-sectional view of Embodiment 1 of the present utility model;
[0027] Figure 8 Structural diagram of the first mounting method of the bracket for Embodiment 1 of the present utility model;
[0028] Figure 9 Structural diagram of the second mounting method of the bracket for Embodiment 1 of the present utility model;
[0029] Figure 10 Explosion diagram of Embodiment 2 of the present utility model;
[0030] Figure 11 Schematic diagram of the engagement of the spiral teeth and the drive gear for Embodiment 2 of the present utility model;
[0031] Figure 12 Structural diagram of the middle cover for Embodiment 2 of the present utility model;
[0032] Figure 13 Structural diagram of the moxibustion combustion box based on automatic adjustment for Embodiment 3 of the present utility model;
[0033] Figure 14 is Figure 13 explosion diagram.
[0034] Explanation of the reference numerals in the drawings:
[0035] 10 - Upper cover, 11 - Air vent, 12 - Cover body, 13 - Cover top platform, 14 - Cover edge, 15 - Hook, 20 - Lower shell, 21 - Lower shell cavity, 22 - Transition platform, 23 - Adsorption cavity, 231 - Cylindrical adsorption cavity, 24 - Air inlet hole, 25 - Spiral groove, 26 - First screw post, 27 - Circular ring chute, 28 - Snap, 29 - Installation groove, 30 - Driving window, 31 - Second screw post, 32 - Screw hole, 33 - Vertical chute, 34 - Gear window, 35 - Third screw post, 40 - Combustion chamber, 41 - Ventilation mesh hole, 42 - Slide post, 43 - Spiral tooth, 44 - Vertical slide rail, 45 - Vertical rack, 50 - Bracket, 51 - Support pillar, 52 - Disk frame, 521 - Block, 53 - Leaf hole 60 - Moxibustion, 70 - Control component, 701 - Circuit board, 702 - Switch, 71 - Driving component, 711 - Driving gear, 72 - Temperature sensor, 721 - Temperature sensor installation hole, 73 - Battery, 80 - Middle cover, 81 - Arc rack, 82 - Sliding groove, 83 - Card slot, 84 - Fourth screw post, 90 - Smoke filter cotton, 91 - Silicone sleeve, 92 - O-ring seal. Detailed implementation mode
[0036] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without making creative efforts shall fall within the protection scope of the present invention.
[0037] Embodiment 1:
[0038] As Figures 1 to 9 shown, the moxibustion combustion box based on automatic adjustment is circular as a whole, including an upper cover 10, a lower shell 20 and a middle cover 80 arranged between the upper cover 10 and the lower shell 20. The lower shell 20 includes a lower shell cavity 21, a transition platform 22 connected to the lower edge of the lower shell cavity 21, and an adsorption cavity 23 with an opening facing downwards connected to the outer edge of the transition platform 22 (used to adsorb the moxibustion combustion box on the human skin). A combustion chamber 40 is arranged in the lower shell cavity 21. A bracket 50 is arranged in the upper part of the combustion chamber 40. A moxibustion 60 is arranged in the lower part of the bracket 50. The upper part of the bracket 50 is tightly fitted with the inner lower part of the upper cover 10. The lower end of the upper cover 10 is tightly fitted with the inner upper end of the combustion chamber 40. An automatic lifting mechanism is arranged between the combustion chamber 40 and the lower shell cavity 21. The height of the combustion chamber 40 is adjusted up and down with the automatic lifting mechanism. Preferably, the combustion chamber 40 is cylindrical and the adsorption cavity 23 is bowl-shaped. The upper cover 10 includes a cover body 12 and a cover top platform 13 arranged on the upper surface of the cover body 12. A downward cover edge 14 is arranged on the outer edge of the cover top platform 13. The transition platform 22 can be set as a flat platform or a curved surface platform according to needs.
[0039] Specifically, the bracket 50 includes a pillar 51 with a suspended lower end and a disc frame 52 connected to the upper end of the pillar 51. The disc frame 52 is provided with a plurality of leaf holes 53 along its radial direction, and the moxibustion cone 60 is inserted into or wound around the pillar 51. Optionally, the lower end of the pillar 51 can be made into a hook shape (not shown in the figure), so that the moxibustion cone 60 can be hooked on the pillar 51.
[0040] Specifically, the upper cover 10 is provided with a plurality of air outlet holes 11, the peripheral side of the adsorption cavity 23 is provided with a plurality of air inlet holes 24, and the lower end of the combustion chamber 40 is provided with a plurality of ventilation mesh holes 41.
[0041] Specifically, the automatic lifting mechanism includes a control component 70, a driving component 71 electrically connected to the control component 70, a temperature sensor 72, and a battery 73 electrically connected to the driving component 71 and the control component 70. The battery 73 (adhesive type) is arranged on the transition table 22. The temperature sensor 72 is arranged in the temperature sensing mounting hole 721 on the lower surface of the transition table 22 and communicates with the space in the adsorption cavity 23. Preferably, the battery 73 is a rechargeable lithium battery.
[0042] The automatic lifting mechanism further includes two opposite spiral through grooves 25 arranged on the side wall of the lower housing cavity 21, and two outward sliding columns 42 oppositely arranged on the outer wall of the combustion chamber 40. The sliding columns 42 pass through the spiral through grooves 25 from inside to outside and are exposed outside the lower housing cavity 21. The driving component 71 is arranged on the first screw post 26 of the transition table 22.
[0043] Optionally, the automatic lifting mechanism of this embodiment further includes an arc-shaped rack 81 arranged on the inner wall of the middle cover 80 and two vertical sliding grooves 82. The arc-shaped rack 81 meshes with the driving gear 711 of the driving component 71. The sliding grooves 82 are sleeved on the ends of the sliding columns 42. The lower edge of the middle cover 80 is sleeved in the circular ring sliding groove 27 on the outer edge of the transition table 22. The inner edge of the upper end of the middle cover 80 is provided with a plurality of clamping grooves 83, and the clamping grooves 83 are matched with a plurality of buckles 28 on the outer edge of the upper end of the lower housing cavity 21, so as to ensure that the middle cover 80 will not come out of the lower housing cavity 21 during rotation. Optionally, the clamping groove 83 in this embodiment 1 is a circular clamping groove, and correspondingly, the buckle 28 is a circular buckle.
[0044] The control component 70 is arranged in the mounting groove 29 on the upper surfaces of the transition table 22 and the adsorption cavity 23. The control component 70 includes a circuit board 701, a switch 702, a control chip (which belongs to the prior art, and its specific model and working principle will not be elaborated here), an indicator light, a charging interface, etc., which are not shown in the figure.
[0045] The working principle of this solution is as follows: The temperature sensor 72 senses the temperature and the program installed in the control chip sets the time in two ways, and the control component 70 and the automatic lifting mechanism automatically adjust the height of the moxibustion column (that is, the moxibustion cone 60).
[0046] The working process of the automatic lifting mechanism in Embodiment 1 is as follows: The temperature sensor 72 transmits the real-time temperature to the control component 70. The control component 70 issues an instruction to control the forward or reverse rotation of the reduction motor of the drive component 71 according to a preset program. The drive gear 711 drives the arc-shaped rack 81 to rotate together with the sliding groove 82. The sliding groove 82 drives the sliding column 42 and the combustion chamber 40 to move up and down along the spiral through groove 25, adjusting the height of the moxibustion cone 60 from the human skin to the optimal position, so that the temperature of the human contact surface is uniform and stable during the entire combustion process of the moxibustion cone 60, achieving the purpose of moxibustion treatment and not burning the human skin at the same time.
[0047] Optionally, according to actual needs, a smoke filter cotton 90 is provided between the tray 52 and the inner side of the upper cover 10 to reduce environmental pollution. There are two preferred ways to fix the bracket 50, that is, the fixing method of the tray 52 and the upper cover 10 uses a silica gel sleeve 91 (as Figure 8 shown) or a snap connection method (for example, a latch 521 is provided on the tray 52 and a hook 15 is provided on the upper cover 10, as Figure 9 shown), either of which can prevent loosening or falling off. An O-ring 92 is provided between the upper cover 10 and the inner wall of the combustion chamber 40, which not only achieves a tight fit but also facilitates opening the upper cover 10 to replace the moxibustion cone 60.
[0048] Embodiment 2:
[0049] As Figures 10 to 12 shown, Embodiment 2 is an improvement based on Embodiment 1. The difference from Embodiment 1 is that the arc-shaped rack 81, the sliding groove 82, and the card slot 83 are cancelled on the middle cover 80. The automatic lifting mechanism further includes a spiral tooth 43 provided on the outer wall surface of the combustion chamber 40. The spiral tooth 43 meshes with the drive gear 711 of the drive component 71. A part of the drive component 71 and the drive gear 711 enters the drive window 30 provided on the side wall of the lower housing cavity 21. The control component 70 is provided on the second screw post 31 on the outer wall of the lower housing cavity 21. Four fourth screw posts 84 are provided at the lower part of the inner wall of the middle cover 80 and are fastened to four screw holes 32 on the transition table 22 by screws (not shown in the figure). The rest of the structure is the same as that in Embodiment 1 and will not be described in detail here.
[0050] The working process of the automatic lifting mechanism in Embodiment 2 is as follows: The temperature sensor 72 transmits the real-time temperature to the control component 70. The control component 70 issues an instruction to control the forward or reverse rotation of the reduction motor of the drive component 71 according to a preset program. The drive gear 711 drives the spiral tooth 43 to rotate together with the sliding column 42. The sliding column 42 and the combustion chamber 40 move up and down along the spiral through groove 25, adjusting the height of the moxibustion cone 60 from the human skin to the optimal position, so that the temperature of the human contact surface is uniform and stable during the entire combustion process of the moxibustion cone 60, achieving the purpose of moxibustion treatment and not burning the human skin at the same time.
[0051] Embodiment 3:
[0052] As Figure 13 、 14 shown, Embodiment 3 is an improvement based on Embodiment 2. The difference from Embodiment 2 is that the spiral teeth 43 are cancelled, the bowl-shaped adsorption cavity is changed into a cylindrical adsorption cavity 231, and the overall volume is reduced. The two sliding columns 42 are changed into a vertical sliding rail 44 and a vertical rack 45. The vertical sliding rail 44 is matched with the vertical sliding groove 33 on the inner wall of the lower housing cavity 21, and the vertical rack 45 is engaged with the driving gear 711 of the driving assembly 71 provided on the outer wall of the lower housing cavity 21. One side of the driving gear 711 enters the gear window 34 on the side wall of the lower housing cavity 21, and the gear window 34 faces the vertical rack 45. The driving assembly 70 is installed on the third screw post 35 on the outer wall of the lower housing cavity 21. The rest of the structure is the same as that of Embodiment 2 and will not be described in detail here.
[0053] The working process of the automatic lifting mechanism in Embodiment 3 is as follows: The temperature sensor 72 transmits the real-time temperature to the control component 70. The control component 70 issues an instruction to control the forward or reverse rotation of the deceleration motor of the driving component 71 according to the preset program. The driving gear 711 drives the vertical rack 45 and the vertical sliding rail 44 together with the combustion chamber 40 to move up and down, adjusting the height of the moxibustion 60 from the human skin to the optimal position, so that the temperature of the human contact surface is uniform and stable during the entire combustion process of the moxibustion 60, achieving the purpose of moxibustion treatment and at the same time not burning the human skin.
[0054] In summary, adopting the technical solution of the present utility model has the following beneficial effects:
[0055] This solution solves the problems existing in the manual adjustment of the height of the moxibustion column in the existing moxibustion burning box, such as inconvenient operation and skin burns caused by different sensitivities to temperature for each person. This solution uses two methods, namely, a temperature sensor to sense temperature and a program to set the time (there is also a safety guarantee when the temperature sensor fails), and an automatic lifting mechanism driven by a control component to automatically adjust the height of the moxibustion column without manual operation, ensuring that the temperature of the contact surface with the human body is uniform and stable during the entire moxibustion burning process, preventing skin burns, and improving the safety of using the moxibustion burning box. This solution designs three structures for automatically adjusting the height of the moxibustion column. The first structure drives the arc-shaped rack on the inner wall of the middle cover to rotate through a driving component, and then two opposite vertical sliding grooves on the inner wall of the middle cover drive two sliding columns on the outer wall of the combustion chamber to move up and down along the two spiral through grooves of the lower shell cavity. The up and down movement of the combustion chamber adjusts the distance between the moxibustion and the human contact surface, so as to achieve uniform and stable temperature of the human contact surface. The second structure is an improvement on the first structure. The spiral teeth on the outer surface of the combustion chamber are driven to rotate by a driving component, and the sliding columns on the outer surface of the combustion chamber rotate accordingly. The spiral through groove of the lower shell cavity guides the combustion chamber to move up and down, so as to achieve uniform and stable temperature of the human contact surface. The third structure is a simplified improvement on the second structure. One sliding column is changed to a vertical rack, and the other sliding column is changed to a vertical slide rail. The driving component directly drives the vertical rack and the combustion chamber to move up and down. The vertical slide rail plays a role in balancing the force on the combustion chamber and makes the up and down movement smoother. According to actual needs, a filter cotton is arranged between the tray and the inner side of the upper cover of this solution to reduce environmental pollution. The fixing method of the tray and the upper cover adopts either a silicone sleeve or a snap connection method, which can prevent loosening or falling off. An O-ring seal is arranged between the upper cover and the inner wall of the combustion chamber, which not only achieves a tight fit but also facilitates opening the upper cover to replace the moxibustion. This solution designs a rechargeable battery, and the charging interface is assembled on the control component, eliminating the need to replace the battery and facilitating repeated use. A reduction motor is provided on the driving component, which can finely adjust the up and down position of the combustion chamber, that is, finely adjust the height of the moxibustion column, with reliable and durable performance.
[0056] The above-described embodiments do not constitute a limitation on the protection scope of the technical solution. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the above embodiments shall be included within the protection scope of the technical solution.
Claims
1. An automatic-adjustment-based moxibustion burning box, characterized in that: It includes an upper cover, a lower shell, and a middle cover disposed between the upper cover and the lower shell. The lower shell includes a lower shell cavity, a transition platform connected to the lower edge of the lower shell cavity, and a suction cavity with a downward opening connected to the outer edge of the transition platform. A combustion chamber is provided in the lower shell cavity. A bracket is provided in the upper inner part of the combustion chamber. Moxibustion is provided below the bracket. The upper part of the bracket is tightly fitted with the lower inner part of the upper cover. The lower end of the upper cover is tightly fitted with the upper inner end of the combustion chamber. An automatic lifting mechanism is provided between the combustion chamber and the lower shell cavity. The height of the combustion chamber is adjusted up and down with the automatic lifting mechanism.
2. The moxibustion combustion box based on automatic adjustment according to claim 1, characterized in that: The bracket includes a pillar with a suspended lower end and a disc frame connected to the upper end of the pillar. The disc frame is provided with a plurality of leaf holes along its radial direction. The moxibustion is inserted into or wound around the pillar.
3. The moxibustion combustion box based on automatic adjustment according to claim 2, characterized in that: The upper cover is provided with a plurality of air outlet holes. A plurality of air inlet holes are provided on the peripheral side of the suction cavity. A plurality of ventilation mesh holes are provided at the lower end of the combustion chamber.
4. The moxibustion combustion box based on automatic adjustment according to claim 3, characterized in that: The automatic lifting mechanism includes a control component, a driving component electrically connected to the control component, a temperature sensor, and a battery electrically connected to the driving component and the control component. The battery is disposed on the transition platform. The temperature sensor is disposed on the lower surface of the transition platform.
5. The moxibustion burning box based on automatic adjustment according to claim 4, wherein: The automatic lifting mechanism further includes two opposite spiral through grooves provided on the side wall of the lower shell cavity, and two outward sliding columns provided on the outer wall of the combustion chamber. The sliding columns penetrate through the spiral through grooves from the inside to the outside and are exposed outside the lower shell cavity. The driving component is disposed on the first screw post of the transition platform.
6. The moxibustion burning box based on automatic adjustment according to claim 5, characterized in that: The automatic lifting mechanism further includes an arc-shaped rack and two vertical sliding grooves provided on the inner wall of the middle cover. The arc-shaped rack meshes with the driving gear of the driving component. The sliding grooves are sleeved with the ends of the sliding columns. The lower edge of the middle cover is sleeved in the circular sliding groove on the outer edge of the transition platform. A plurality of clamping grooves are provided on the inner edge of the upper end of the middle cover. The clamping grooves match the buckles on the outer edge of the upper end of the lower shell cavity. The control component is disposed in the installation groove on the upper surface of the transition platform and the suction cavity.
7. The moxibustion burning box based on automatic adjustment according to claim 5, wherein: The automatic lifting mechanism further includes a spiral tooth provided on the outer surface of the combustion chamber wall. The spiral tooth meshes with the driving gear of the driving component. A part of the driving component and the driving gear enters the driving window provided on the side wall of the lower shell cavity.
8. The moxibustion burning box based on automatic adjustment according to claim 4, wherein: The automatic lifting mechanism further includes vertical slide rails and vertical racks provided oppositely on the outer wall of the combustion chamber. The vertical slide rails match the vertical slide grooves on the inner wall of the lower shell cavity. The vertical racks mesh with the driving gear of the driving component provided on the outer wall of the lower shell cavity. One side of the driving gear enters the gear window on the side wall of the lower shell cavity. The gear window faces the vertical rack.
9. The moxibustion combustion box based on automatic adjustment according to claim 8, characterized in that: The driving component is installed on the third screw post on the outer wall of the lower shell cavity.
10. The automatically adjustable moxibustion burning box according to any one of claims 7 or 8, characterized in that: The control component is disposed on the second screw post on the outer wall of the lower shell cavity. Four fourth screw posts are provided at the lower part of the inner wall of the middle cover and are fastened to four screw holes on the transition platform by screws.