Reed tube moxibustion device convenient for replacing moxa
By designing a reed tube moxibustion device that facilitates the replacement of moxa wool, the problem of ash scattering is solved by utilizing a disc-shaped filling chamber and a drive mechanism, achieving ash retention and temperature regulation, and improving operational convenience and cleaning efficiency.
Patent Information
- Application Number
- CN202511361279.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-23
- Publication Date
- 2025-12-12
AI Technical Summary
Traditional reed tube moxibustion devices are prone to scattering and splashing ash during the replacement of moxa wool, which pollutes the environment and increases the difficulty of cleaning.
Design a reed tube moxibustion device that facilitates the replacement of moxa wool, including a tube body, a filling mechanism, and a support mechanism. The device achieves automatic replacement of moxa wool and retention of ash through a disc-shaped filling chamber, and simplifies operation by combining a drive mechanism and an electronic igniter.
It effectively prevents ash from scattering, is simple and quick to operate, reduces cleaning difficulty and improves ease of use, and adjusts the temperature by controlling the burning speed through the adjustment plate.
Smart Images

Figure CN121102004A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of moxibustion technology, and in particular to a reed tube moxibustion device that facilitates the replacement of moxa wool. Background Technology
[0002] Gentle reed tube moxibustion is a therapy that uses reed or bamboo tubes as moxibustion tools to apply heat to the inside of the ear. This therapy applies heat directly to the ear canal, utilizing the close connection between the ear and the internal organs and meridians to achieve precise conditioning. Its warming and unblocking effect can reach the head and face orifices along the ear meridians.
[0003] The traditional reed tube moxibustion device consists of a reed tube body and a duckbill-shaped moxa wool support plate. During moxibustion, one end of the reed tube is gently inserted into the ear canal, and the other end is filled with moxa wool on the support plate. After being lit with incense, the moxa wool is continuously warmed.
[0004] During use by medical staff, because the moxa wool is filled on the support plate, the ash is easily scattered and splashed during the replacement of the wool, which not only pollutes the environment but also increases the difficulty of cleaning. Summary of the Invention
[0005] In view of this, the purpose of the present invention is to provide a reed tube moxibustion device that facilitates the replacement of moxa wool, thereby solving the problem in the prior art where ash easily scatters and splashes during the replacement process, which not only pollutes the environment but also increases the difficulty of cleaning.
[0006] The present invention solves the above-mentioned technical problems through the following technical means:
[0007] A reed tube moxibustion device for easy replacement of moxa wool includes a tube body, a filling mechanism, and a support mechanism. The filling mechanism includes a shell and a disc-shaped filling chamber. The support mechanism is fixedly connected to the bottom of the shell. A cavity is provided inside the shell. An installation tube is provided on the side of the shell near the tube body. One end of the tube body is sealed and connected to the installation tube, which communicates with the cavity. The disc-shaped filling chamber is rotatably disposed in the cavity. The rotation axis of the disc-shaped filling chamber is parallel to the installation tube. The disc-shaped filling chamber has multiple filling cavities for filling moxa wool. When the disc-shaped filling chamber is rotated so that one of the multiple filling cavities is aligned with the installation tube, the filling cavity communicates with the installation tube. A vent is provided on the side of the shell away from the installation tube, and the vent communicates with the filling cavity.
[0008] By setting up the above structure, the moxa wool is filled into the filling cavity of the disc filling chamber. The ash after the moxa wool burns remains in the filling cavity, preventing the ash from scattering and splashing. The moxa wool can be replaced by rotating the disc filling chamber, making the operation simple, convenient and quick.
[0009] Furthermore, the shape of the cavity interior is the same as that of the disc packing chamber, and the top of the shell has a slot communicating with the cavity, through which the disc packing chamber is placed into the cavity.
[0010] By setting up the above structure, on the one hand, it is convenient to remove the disc packing chamber from the cavity, and on the other hand, it is convenient to manually rotate the disc packing chamber to replace different packing chambers.
[0011] Furthermore, the outer circumferential wall of the disc-shaped packing chamber is provided with multiple strip grooves, and each of the multiple strip grooves corresponds to a multiple packing cavity. When one of the multiple strip grooves is located at the top position, the packing cavity corresponding to the strip groove is connected to the installation pipe.
[0012] By setting up the above structure, it is easy to control the accuracy of rotation, so as to ensure that the packing cavity is connected to the installation pipe.
[0013] Furthermore, the disc packing chamber has several through holes at the inner end of the packing cavity, and all of the through holes are connected to the ventilation openings. An adjusting plate is slidably disposed inside the ventilation openings. When the adjusting plate is slid, the number of the through holes connected to the ventilation openings changes.
[0014] By setting up the above structure, on the one hand, it can prevent moxa wool from entering the cavity, and on the other hand, by sliding the adjustment plate, the burning speed of the moxa wool can be changed, thereby adjusting the temperature of the reed tube moxibustion.
[0015] Furthermore, a filter screen is provided on the side of the housing near the mounting tube, the filter screen being used to block the ash from burning moxa wool.
[0016] By setting up the above structure, the ash from burning moxa wool is prevented from entering the tube body through the installation tube.
[0017] Furthermore, a drive mechanism is fixedly installed on the side of the housing near the mounting tube. The drive mechanism is connected to the disc packing chamber and is used to drive the disc packing chamber to rotate.
[0018] By setting up the above structure, the control drive mechanism can control the automatic rotation of the disc filling chamber, further improving the ease of operation.
[0019] Furthermore, an electronic igniter is slidably installed inside the mounting tube along its length. When it is necessary to ignite the moxa wool in the filling chamber, the electronic igniter is controlled to slide along the mounting tube into the filling chamber. A drive ring is slidably sleeved outside the mounting tube. Sliding grooves are provided on both the upper and lower sides of the mounting tube. An installation strip is fixedly installed on the drive ring. The installation strip is slidably installed in the sliding groove. The electronic igniter is fixedly installed on the installation strip. The drive mechanism is connected to the drive ring. When the drive mechanism drives the disc filling chamber to rotate, the electronic igniter is located outside the filling chamber.
[0020] By setting up the above structure, it is easy to ignite the moxa wool in the filling chamber without the need for manual lighting with incense sticks. Furthermore, by setting up a sliding groove, the installation tube is connected to the outside, which on the one hand enhances air circulation and facilitates the ignition of the moxa wool, and on the other hand, the smoke can be discharged through the sliding groove to prevent it from flowing into the tube body.
[0021] Furthermore, the driving mechanism is a telescopic driving component. The output end of the driving component is fixedly connected to a transmission assembly. The transmission assembly includes a plate, a transmission rod, and a transmission block. The output end of the driving component is fixedly connected to the plate. The top of the plate is fixedly connected to a driving ring. The bottom of the plate is fixedly connected to the end of the transmission rod. The free end of the transmission rod is fixedly connected to the transmission block. A driving hole is opened at the center of the disc-shaped filling chamber. A transmission ring is fixedly installed in the driving hole. Multiple protrusions corresponding to the filling chambers are fixedly arranged on the inner circumference of the transmission ring. An inclined surface is provided at the end of the multiple protrusions near the transmission block. Multiple mounting grooves corresponding to the protrusions are opened on the transmission block. A transmission head is rotatably installed at the end of the mounting groove near the inner end wall through a torsion spring. A through groove is formed between adjacent protrusions. A limit block is provided at the end of the protrusion near the driving component. The position of the limit block corresponds to the through groove. The end face of the limit block coincides with the inclined surface.
[0022] By configuring the above structure, after the drive component rotates the disc-shaped packing chamber to switch packing cavities, the drive component continues to drive the electronic igniter into the packing cavity, eliminating the need for manual movement of the electronic igniter and further simplifying the operation. Furthermore, when the drive component moves in the reverse direction, it drives the electronic igniter out of the packing cavity, preventing the electronic igniter from interfering with the rotation of the disc-shaped packing chamber.
[0023] Furthermore, an adjusting cylinder is slidably sleeved on the mounting tube. When the electronic igniter slides into the filling chamber, the adjusting cylinder is used to change the communication area between the slide groove and the outside.
[0024] By setting up the above structure, the size of the sealing groove can be selected according to the actual situation to avoid excessive heat dissipation from the groove.
[0025] Furthermore, the support mechanism includes a base and an adjustable telescopic cylinder, one end of which is fixedly connected to the base and the other end of which is fixedly connected to the housing.
[0026] The beneficial effects of this invention are:
[0027] 1. This invention uses a tube body, a disc-shaped filling chamber, and a support mechanism to fill the filling cavity of the disc-shaped filling chamber with moxa wool. The ash from the burning moxa wool remains in the filling cavity, preventing the ash from scattering and splashing. The moxa wool can be replaced by rotating the disc-shaped filling chamber, making the operation simple, convenient, and quick.
[0028] 2. By setting a slot, the present invention facilitates the removal of the disc packing chamber from the cavity and allows for the rotation of the disc packing chamber to replace different packing chambers.
[0029] 3. By setting through holes and adjusting plates, this invention can, on the one hand, prevent moxa wool from entering the cavity, and on the other hand, change the burning speed of moxa wool by sliding the adjusting plate, thereby adjusting the temperature of reed tube moxibustion.
[0030] 4. This invention, by incorporating a driving component and an electronic igniter, allows the electronic igniter to continue entering the filling chamber after the driving component rotates the disc-shaped filling chamber to switch filling cavities. This eliminates the need for a separate driving component, effectively reducing costs. Furthermore, when the driving component moves in the reverse direction, it drives the electronic igniter out of the filling chamber, preventing the electronic igniter from interfering with the rotation of the disc-shaped filling chamber. Attached Figure Description
[0031] Figure 1 This is a three-dimensional structural diagram of a reed tube moxibustion device for easy replacement of moxa wool according to the present invention.
[0032] Figure 2 This is a schematic diagram of the filling mechanism in a reed tube moxibustion device for easy replacement of moxa wool according to the present invention. Figure 1 ;
[0033] Figure 3 This is a cross-sectional schematic diagram of the filling mechanism in a reed tube moxibustion device for easy replacement of moxa wool according to the present invention.
[0034] Figure 4 This is a schematic diagram showing the disassembled structure of the filling mechanism in a reed tube moxibustion device for easy replacement of moxa wool according to the present invention.
[0035] Figure 5 This is a schematic diagram of the filling mechanism in a reed tube moxibustion device for easy replacement of moxa wool according to the present invention. Figure 2 ;
[0036] Figure 6 This is a schematic diagram of the transmission ring and transmission block in a reed tube moxibustion device for easy replacement of moxa wool according to the present invention.
[0037] in,
[0038] 1. Pipe body; 11. Cotton ring;
[0039] 2. Shell; 21. Cavity; 22. Vent; 23. Groove; 24. Adjustment plate; 25. Filter screen; 26. Mounting plate; 27. Protective cover;
[0040] 3. Disc-shaped packing bin; 31. Packing cavity; 311. Through hole; 32. Strip groove; 33. Drive hole; 34. Transmission ring; 35. Protrusion; 351. Inclined surface; 36. Through groove; 37. Limiting block;
[0041] 4. Installation pipe; 41. Slide groove; 42. Adjusting cylinder;
[0042] 5. Electronic igniter; 51. Drive ring; 52. Mounting strip;
[0043] 6. Driving component; 61. Plate; 62. Transmission rod; 63. Transmission block; 631. Mounting slot; 632. Transmission head;
[0044] 71. Base; 72. Adjustable telescopic cylinder. Detailed Implementation
[0045] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0046] like Figures 1-6 As shown, the present invention provides a reed tube moxibustion device for easy replacement of moxa wool, comprising a tube body 1, a filling mechanism, and a support mechanism. The filling mechanism includes a housing 2 and a disc-shaped filling chamber 3. The support mechanism is fixedly connected to the bottom of the housing 2 and is mainly used to support the filling mechanism to ensure that the tube body 1 will not detach from the patient's ear due to the excessive weight of the filling mechanism. A cavity 21 is provided inside the housing 2, and an installation tube 4 is provided on the side of the housing 2 near the tube body 1. One end of the tube body 1 is sealed and connected to the installation tube 4. In this embodiment, the tube body 1 is a reed tube. The installation tube 4 communicates with the cavity 21. The disc-shaped filling chamber 3 is rotatably disposed inside the cavity 21, and the rotation axis of the disc-shaped filling chamber 3 is parallel to the installation tube 4. The disc-shaped filling chamber 3 is provided with multiple filling cavities 31 for filling moxa wool. When the disc-shaped filling chamber 3 is rotated so that one of the multiple filling cavities 31 is aligned with the installation tube 4, the filling cavity 31 communicates with the installation tube 4. A vent 22 is provided on the side of the housing 2 away from the installation tube 4, and the vent 22 communicates with the filling cavity 31. In use, moxa wool is filled into the filling chamber 31 of the disc-shaped filling chamber 3, and one of the multiple filling chambers 31 is aligned with the mounting tube 4. The end of the tube 1 is then placed inside the patient's ear, and the moxa wool in the filling chamber 31 is ignited to perform moxibustion. The ash from the burning moxa wool remains in the filling chamber 31, preventing it from scattering and splashing. The moxa wool can be replaced by rotating the disc-shaped filling chamber 3, making the operation simple, convenient, and quick.
[0047] In this embodiment, a cotton ring 11 is provided at the end of the tube 1 to prevent the end of the tube 1 from damaging the patient's ear.
[0048] In this embodiment, the internal shape of the cavity 21 is the same as that of the disc-shaped packing chamber 3. A slot 23 communicating with the cavity 21 is provided on the top of the shell 2, and the disc-shaped packing chamber 3 is placed into the cavity 21 through the slot 23. In other embodiments, the disc-shaped packing chamber 3 can also be rotatably installed into the cavity 21 by setting a rotating shaft. In this embodiment, by making the internal shape of the cavity 21 the same as that of the disc-shaped packing chamber 3, when the exposed outer wall of the disc-shaped packing chamber 3 is moved from the slot 23, the disc-shaped packing chamber 3 rotates within the cavity 21. This facilitates the removal of the disc-shaped packing chamber 3 from the cavity 21 and also facilitates the rotation of the disc-shaped packing chamber 3 to replace different packing chambers 31.
[0049] In this embodiment, to prevent the disc-shaped packing chamber 3 from rotating arbitrarily, the outer wall of the disc-shaped packing chamber 3 is tightly fitted with the inner wall of the cavity 21. A damping layer is provided on the surface to increase the frictional resistance between the disc-shaped packing chamber 3 and the shell 2.
[0050] In this embodiment, the outer circumferential wall of the disc-shaped packing chamber 3 is provided with multiple strip grooves 32, each corresponding to a single packing cavity 31. When one of the strip grooves 32 is at its topmost position, the corresponding packing cavity 31 is connected to the mounting pipe 4. This facilitates control over the rotation accuracy, ensuring communication between the packing cavity 31 and the mounting pipe 4. Furthermore, the strip grooves 32 provide a point of leverage when the disc-shaped packing chamber 3 is removed. In other embodiments, a calibration strip can be provided at the top of the housing 2 to further improve the accuracy of rotating the disc-shaped packing chamber 3.
[0051] In this embodiment, the disc-shaped packing chamber 3 has several through holes 311 at the inner end of the packing cavity 31. All through holes 311 communicate with the vent 22. External gas enters the packing cavity 31 through the vent 22 and the through holes 311. An adjusting plate 24 is slidably disposed within the vent 22. The adjusting plate 24 is used to block the through holes 311, preventing them from communicating with the outside. When the adjusting plate 24 is slid, the number of through holes 311 communicating with the vent 22 changes. On the one hand, this prevents moxa wool from entering the cavity 21; on the other hand, by sliding the adjusting plate 24, the burning rate of the moxa wool can be changed, thereby adjusting the temperature of the reed tube moxibustion.
[0052] In this embodiment, a filter screen 25 is provided on the side of the housing 2 near the mounting tube 4. The filter screen 25 is used to block the ash from burning moxa wool and prevent the ash from burning moxa wool from entering the tube body 1 through the mounting tube 4.
[0053] In this embodiment, a drive mechanism is fixedly installed on the side of the housing 2 near the mounting tube 4. The drive mechanism is connected to the disc-shaped filling chamber 3 and is used to drive the disc-shaped filling chamber 3 to rotate. In some other embodiments, if no drive mechanism is provided, the disc-shaped filling chamber 3 can be manually rotated. In this embodiment, controlling the drive mechanism can control the automatic rotation of the disc-shaped filling chamber 3, further improving the convenience of operation.
[0054] In this embodiment, an electronic igniter 5 is slidably installed inside the installation tube 4 along its length. When it is necessary to ignite the moxa wool in the filling chamber 31, the electronic igniter 5 is controlled to slide along the installation tube 4 into the filling chamber 31. A drive ring 51 is slidably sleeved outside the installation tube 4. Slide grooves 41 are provided on both the upper and lower sides of the installation tube 4. An installation strip 52 is fixedly installed on the drive ring 51 and slidably installed in the slide groove 41. The electronic igniter 5 is fixedly installed on the installation strip 52. The drive mechanism is connected to the drive ring 51. When the drive mechanism drives the disc filling chamber 3 to rotate, the electronic igniter 5 is located outside the filling chamber 31. By setting the electronic igniter 5, it is easy to ignite the moxa wool in the filling chamber 31 without the need for manual ignition with incense sticks. Furthermore, by setting the slide groove 41, the installation tube 4 is connected to the outside. On the one hand, this enhances air circulation and facilitates the ignition of the moxa wool. On the other hand, the smoke can be discharged through the slide groove 41, preventing it from flowing into the tube body 1. It should be noted that if the electronic igniter 5 is not installed, the incense stick can be directly inserted into the filling chamber 31 through the vent 22 and the through hole 311 to ignite the moxa wool in the filling chamber 31.
[0055] In this embodiment, the driving mechanism is a telescopic driving member 6. The output end of the driving member 6 is fixedly connected to a transmission assembly. The transmission assembly includes a plate 61, a transmission rod 62, and a transmission block 63. The output end of the driving member 6 is fixedly connected to the plate 61, and the top of the plate 61 is fixedly connected to the driving ring 51. When the driving member 6 drives the plate 61 to move, the plate 61 drives the driving ring 51 to move, thereby controlling the electronic igniter 5 to move within the mounting tube 4.
[0056] The bottom of the plate 61 is fixedly connected to the end of the transmission rod 62, and the free end of the transmission rod 62 is fixedly connected to the transmission block 63. The housing 2 is provided with a receiving shell for accommodating the transmission block 63 on the side near the driving member 6. When the transmission block 63 is located in the receiving shell, the transmission block 63 will not block the disc packing chamber 3 from entering and exiting the cavity 21, and the receiving shell also has the function of limiting the movement of the transmission rod 62 along the length direction of the driving member 6.
[0057] A drive hole 33 is provided at the center of the disc-shaped packing chamber 3. A transmission ring 34 is fixedly installed in the drive hole 33. Multiple protrusions 35, corresponding one-to-one with the packing cavities 31, are fixedly provided on the inner circumference of the transmission ring 34. An inclined surface 351 is provided at one end of the multiple protrusions 35 near the transmission block 63. Multiple mounting grooves 631, corresponding one-to-one with the protrusions 35, are provided on the transmission block 63. A transmission head 632 is rotatably mounted at one end of the mounting groove 631 near the inner end wall via a torsion spring. A through groove 36 is formed between adjacent protrusions 35. The transmission block 63 drives the transmission head 632 to move into the disc-shaped packing chamber 3. When the transmission head 632 abuts against the inclined surface 351, the transmission head 632 and the inclined surface 351 of the protrusions 35 cooperate to force the transmission ring 34 to rotate. The rotation of the transmission ring 34 drives the disc-shaped packing chamber 3 to rotate. As a result, one of the multiple packing cavities 31 is aligned with the mounting pipe 4, and the packing cavity 31 is connected to the mounting pipe 4.
[0058] A limiting block 37 is provided at the end of the protrusion 35 near the driving member 6. The end of the limiting block 37 away from the driving member 6 has a rounded corner. The position of the limiting block 37 corresponds to the through groove 36, and the end face of the limiting block 37 coincides with the inclined surface 351. When the transmission head 632 moves from outside the transmission ring 34 to the limiting block 37, the transmission head 632 abuts against the end face of the limiting block 37. The continuously moving transmission head 632 pushes the limiting block 37 to rotate, forcing the transmission ring 34 to drive the disc filling chamber 3 to rotate. When the transmission head 632 moves from inside the through groove 36 to the limiting block 37, when the transmission head 632 abuts against the limiting block 37, the limiting block 37 forces the transmission head 632 to further compress the torsion spring and rotate, so that the transmission head 632 can pass smoothly through the limiting block 37. By setting the above structure, it is ensured that the disc filling chamber 3 will not rotate during the process of the driving member 6 driving the electronic igniter 5 to move out of the filling chamber 31. By aligning the end face of the limiting block 37 with the inclined surface 351, when the transmission head 632 moves from the outside of the transmission ring 34 to the limiting block 37, the transmission head 632 can transition along the end face of the limiting block 37 to the inclined surface 351 of the protrusion 35, so as to ensure that the transmission head 632 can smoothly drive the disc filling chamber 3 to rotate.
[0059] In some other embodiments, the drive mechanism can also be configured with two drive components 6, which respectively drive the disc-shaped filling chamber 3 and the electronic igniter 5 to move. In this embodiment, by setting up a single drive component 6 in conjunction with the transmission assembly, after the drive component 6 drives the disc-shaped filling chamber 3 to rotate and switch the filling chamber 31, the drive component 6 continues to drive the electronic igniter 5 into the filling chamber 31, eliminating the need for a separate drive and effectively reducing costs. Furthermore, when the drive component 6 moves in the reverse direction, it drives the electronic igniter 5 out of the filling chamber 31, preventing the electronic igniter 5 from affecting the rotation of the disc-shaped filling chamber 3.
[0060] It should be noted that this embodiment does not limit the control method of the drive unit 6 and the electronic igniter 5. In fact, it can be set according to the needs, such as setting a switch button for control, which can be set on the base 71; or a remote control can be set and controlled by the button on the remote control.
[0061] In this embodiment, a mounting plate 26 is fixedly installed on the side of the housing 2 near the mounting tube 4, and the drive component 6 is fixedly installed on the mounting plate 26. A protective cover 27 is provided at the bottom of the housing 2 and the mounting tube 4. The transmission component and the drive component 6 are both located inside the protective cover 27, which protects the transmission component and the drive component 6.
[0062] In this embodiment, an adjusting cylinder 42 is slidably sleeved on the mounting pipe 4. When the electronic igniter 5 slides into the filling chamber 31, the adjusting cylinder 42 is used to change the communication area between the slide groove 41 and the outside. The size of the sealing slide groove 41 can be selected according to the actual situation to avoid excessive heat dissipation from the slide groove 41.
[0063] In this embodiment, the support mechanism includes a base 71 and an adjustable telescopic cylinder 72. One end of the adjustable telescopic cylinder 72 is fixedly connected to the base 71, and the other end is fixedly connected to the housing 2. In other embodiments, a telescopic frame or a flexible metal hose may be used instead of the adjustable telescopic cylinder 72.
[0064] The working principle of this invention is as follows:
[0065] When using,
[0066] First, remove the disc-shaped packing chamber 3 from the slot 23, fill the packing cavity 31 of the disc-shaped packing chamber 3 with moxa wool, then insert the disc-shaped packing chamber 3 into the cavity 21 from the slot 23, and then place the end of the tube 1 into the patient's ear.
[0067] Then, the drive unit 6 operates. The drive unit 6 controls the plate 61 to move closer to the disc-shaped filling chamber 3. The plate 61 drives the transmission rod 62 and the drive ring 51 to move synchronously. The transmission rod 62 drives the transmission block 63 to move, and the transmission block 63 drives the transmission head 632 to move into the disc-shaped filling chamber 3. The transmission head 632 cooperates with the inclined surface 351 of the protrusion 35 to force the transmission ring 34 to rotate, and the transmission ring 34 drives the disc-shaped filling chamber 3. When the transmission head 632 enters the through groove 36 and moves along the through groove 36, the transmission ring 34 stops rotating. At this time, one of the multiple filling chambers 31 is aligned with the mounting tube 4, and the filling chamber 31 is connected to the mounting tube 4. After the transmission ring 34 stops rotating, the continuously moving plate 61 drives the drive ring 51 to continue moving, so that the electronic igniter 5 enters the filling chamber 31. After the electronic igniter 5 ignites the moxa wool in the filling chamber 31, moxibustion can be performed.
[0068] When it is necessary to replace the moxa wool:
[0069] First, the drive unit 6 is controlled to operate. The drive unit 6 controls the plate 61 to move away from the disc filling chamber 3. The plate 61 drives the transmission rod 62 and the drive ring 51 to move synchronously. The transmission rod 62 drives the transmission block 63 to move. The transmission block 63 drives the transmission head 632 to move closer to the drive unit 6 in the through groove 36. When the transmission head 632 abuts against the limiting block 37, the limiting block 37 forces the transmission head 632 to further compress the torsion spring and rotate so that the transmission head 632 can pass smoothly through the limiting block 37.
[0070] Then, the drive unit 6 is activated. The drive unit 6 controls the plate 61 to move closer to the disc-shaped filling chamber 3. The plate 61 drives the transmission rod 62 and the drive ring 51 to move synchronously. The transmission rod 62 drives the transmission block 63 to move, and the transmission block 63 drives the transmission head 632 to move into the disc-shaped filling chamber 3. The transmission head 632 abuts against the end face of the limiting block 37. The continuously moving transmission head 632 pushes the limiting block 37 to rotate, forcing the transmission ring 34 to drive the disc-shaped filling chamber 3 to rotate. During this process, the transmission head 632 gradually moves along the end face of the limiting block 37 to the inclined surface 351 of the protrusion 35. Then, through the interaction between the transmission head 632 and the inclined surface 351 of the protrusion 35, the transmission ring 34 is forced to drive the disc-shaped filling chamber 3 to continue rotating until the disc-shaped filling chamber 3 rotates to the adjacent filling cavity 31 and connects with the installation pipe 4. Switch the filling chambers 31 one by one in sequence. After all the moxa wool in all the filling chambers 31 has burned, take out the disc filling chamber 3, empty the ashes, and refill it.
[0071] The above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit it. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of the present invention without departing from the spirit and scope of the present invention, and all such modifications and substitutions should be covered within the scope of the claims of the present invention. Technical aspects, shapes, and structures not described in detail in this invention are all well-known technologies.
Claims
1. A reed tube moxibustion device that facilitates the replacement of moxa wool, characterized in that, The device includes a pipe body (1), a filling mechanism, and a support mechanism. The filling mechanism includes a housing (2) and a disc-shaped filling chamber (3). The support mechanism is fixedly connected to the bottom of the housing (2). A cavity (21) is provided inside the housing (2). An installation pipe (4) is provided on the side of the housing (2) near the pipe body (1). One end of the pipe body (1) is sealed and connected to the installation pipe (4). The installation pipe (4) communicates with the cavity (21). The disc-shaped filling chamber (3) is rotatably disposed inside the cavity (21). The rotation axis of the disc filling chamber (3) is parallel to the mounting pipe (4). The disc filling chamber (3) is provided with a plurality of filling cavities (31) for filling moxa wool. When the disc filling chamber (3) is rotated so that one of the filling cavities (31) is in the same straight line as the mounting pipe (4), the filling cavity (31) is connected to the mounting pipe (4). A vent (22) is provided on the side of the shell (2) away from the mounting pipe (4), and the vent (22) is connected to the filling cavity (31).
2. The reed tube moxibustion device for easy replacement of moxa wool according to claim 1, characterized in that, The shape inside the cavity (21) is the same as that of the disc packing bin (3). The top of the shell (2) is provided with a slot (23) that communicates with the cavity (21). The disc packing bin (3) is placed inside the cavity (21) from the slot (23).
3. The reed tube moxibustion device for easy replacement of moxa wool according to claim 2, characterized in that, The outer circumferential wall of the disc packing chamber (3) is provided with a plurality of strip grooves (32), and the plurality of strip grooves (32) correspond one-to-one with a plurality of packing cavities (31). When one of the strip grooves (32) is located at the top position, the packing cavity (31) corresponding to the strip groove (32) is connected to the installation pipe (4).
4. The reed tube moxibustion device for easy replacement of moxa wool according to claim 1, characterized in that, The disc packing chamber (3) has several through holes (311) at the inner end of the packing cavity (31). All of the through holes (311) are connected to the vent (22). An adjusting plate (24) is slidably arranged in the vent (22). When the adjusting plate (24) is slidably moved, the number of the through holes (311) connected to the vent (22) changes.
5. The reed tube moxibustion device for easy replacement of moxa wool according to claim 1, characterized in that, A filter screen (25) is provided on the side of the housing (2) near the mounting tube (4), and the filter screen (25) is used to block the ash from burning moxa wool.
6. The reed tube moxibustion device for easy replacement of moxa wool according to claim 2, characterized in that, A drive mechanism is fixedly provided on the side of the housing (2) near the mounting tube (4). The drive mechanism is connected to the disc packing chamber (3) for transmission. The drive mechanism is used to drive the disc packing chamber (3) to rotate.
7. The reed tube moxibustion device for easy replacement of moxa wool according to claim 6, characterized in that, An electronic igniter (5) is slidably disposed inside the mounting tube (4) along the length of the mounting tube (4). When it is necessary to ignite the moxa wool in the filling chamber (31), the electronic igniter (5) is controlled to slide along the mounting tube (4) into the filling chamber (31). A drive ring (51) is slidably sleeved outside the mounting tube (4). Slide grooves (41) are provided on both the upper and lower sides of the mounting tube (4). An installation strip (52) is fixedly disposed on the drive ring (51). The installation strip (52) is slidably disposed in the slide groove (41). The electronic igniter (5) is fixedly installed on the installation strip (52). The drive mechanism is connected to the drive ring (51) for transmission. When the drive mechanism drives the disc filling chamber (3) to rotate, the electronic igniter (5) is located outside the filling chamber (31).
8. The reed tube moxibustion device for easy replacement of moxa wool according to claim 7, characterized in that, The driving mechanism is a telescopic driving component (6). The output end of the driving component (6) is fixedly connected to a transmission assembly. The transmission assembly includes a plate (61), a transmission rod (62), and a transmission block (63). The output end of the driving component (6) is fixedly connected to the plate (61). The top of the plate (61) is fixedly connected to a driving ring (51). The bottom of the plate (61) is fixedly connected to the end of the transmission rod (62). The free end of the transmission rod (62) is fixedly connected to the transmission block (63). A driving hole (33) is opened at the center of the disc filling chamber (3). A transmission ring (34) is fixedly installed in the driving hole (33). The circumference of the transmission ring (34) is... The inner wall is fixedly provided with a plurality of protrusions (35) corresponding one-to-one with the filling cavity (31). The protrusions (35) are provided with an inclined surface (351) at one end near the transmission block (63). The transmission block (63) is provided with a plurality of mounting grooves (631) corresponding one-to-one with the protrusions (35). The transmission head (632) is mounted on one end of the mounting groove (631) near the inner end wall by a torsion spring. A through groove (36) is formed between adjacent protrusions (35). A limit block (37) is provided at one end of the protrusion (35) near the driving member (6). The position of the limit block (37) corresponds to the through groove (36). The end face of the limit block (37) coincides with the inclined surface (351).
9. A reed tube moxibustion device for easy replacement of moxa wool according to claim 7, characterized in that, An adjusting cylinder (42) is slidably sleeved on the mounting tube (4). When the electronic igniter (5) slides into the filling chamber (31), the adjusting cylinder (42) is used to change the communication area between the slide groove (41) and the outside.
10. The reed tube moxibustion device for easy replacement of moxa wool according to claim 1, characterized in that, The support mechanism includes a base (71) and an adjustable telescopic cylinder (72), one end of which is fixedly connected to the base (71) and the other end is fixedly connected to the housing (2).