Automatic moxa stick cutting machine

CN122808015APending Publication Date: 2026-09-25THE 957TH ARMY HOSPITAL OF THE CHINESE PEOPLES LIBERATION ARMY
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Patent Information

Application Number
CN202611192977.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-08-07
Publication Date
2026-09-25

AI Technical Summary

Technical Problem

[0005]本发明的目的是提供一种艾灸条自动切割机,以解决现有技术中的切面处艾绒逸失的问题

Benefits of technology

[0027]与现有技术相比,本发明提供的一种艾灸条自动切割机,通过设置定长机构与刀盘组件相互配合,在切割完成后及时对艾灸条端部进行有效压实,有效防止艾绒在后续转运、收集过程中因振动或摩擦而逸出散落,既避免了物料浪费与工作环境污染,又保证了艾灸条的切割端面品质与产品一致性。

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Abstract

The application discloses a moxa stick automatic cutting machine and relates to the technical field of moxa stick cutting, which comprises a shell, a feeding pipe, a fixed-length mechanism, a driving mechanism, two cutter disc assemblies and a removing mechanism. The feeding pipe is arranged on one side of the shell and used for feeding moxa sticks into the shell. The fixed-length mechanism is arranged on the inner side of the shell and used for setting the cutting length and compacting the moxa sticks after cutting. The driving mechanism is arranged on one side of the shell. The two cutter disc assemblies are arranged on one side of the driving mechanism. The removing mechanism is arranged on one side of the fixed-length mechanism and used for removing the cut moxa sticks. The moxa stick automatic cutting machine is characterized in that the fixed-length mechanism and the cutter disc assemblies are arranged to cooperate with each other, the end of the moxa stick is compacted in time after cutting, and the moxa stick is effectively prevented from escaping and scattering due to vibration or friction in the subsequent transfer and collection process. The moxa stick automatic cutting machine can not only avoid material waste and working environment pollution but also ensure the cutting end surface quality of the moxa stick and the product consistency.
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Description

Technical Field

[0001] This invention relates to the field of moxibustion stick cutting technology, specifically to an automatic moxibustion stick cutting machine. Background Technology

[0002] Moxibustion sticks are a traditional moxibustion product. They are made primarily from aged mugwort leaves. The leaves are repeatedly crushed and sieved to remove impurities, extracting fine moxa wool. The moxa wool is then rolled evenly into a tight, straight cylindrical strip using soft cotton paper, making it easy to ignite and allowing it to smolder.

[0003] Chinese invention patent CN112873341B discloses a moxa stick cutting machine. This moxa stick cutting machine uses an auxiliary mechanism and a clamping mechanism to fix the moxa stick. The clamping mechanism rotates under external drive, and the auxiliary mechanism rotates under external drive. The rotation directions of the clamping mechanism and the auxiliary mechanism are opposite. The auxiliary mechanism includes multiple belts arranged side by side, with a gap L between two adjacent belts. The cutting mechanism cuts the moxa stick through the gap L.

[0004] While existing automatic moxa stick cutting machines have solved the problem of uneven cut surfaces, the soft and delicate moxa wool is prone to uneven stress on the cut surface, which can easily lead to loss during transportation, causing contamination and reducing quality. Summary of the Invention

[0005] The purpose of this invention is to provide an automatic moxa stick cutting machine to solve the problem of moxa wool loss at the cut surface in the prior art.

[0006] To achieve the above objectives, the present invention provides the following technical solution: an automatic moxibustion stick cutting machine, comprising a housing, and further comprising:

[0007] A feed tube, which is disposed through one side of the outer shell, is used to feed the moxibustion stick into the interior of the outer shell;

[0008] A length-fixing mechanism, which is disposed inside the outer shell, is used to set the cutting length and compact the moxibustion strip after cutting;

[0009] The fixed-length mechanism includes a base, which is disposed inside the housing via a connecting rod, and a telescopic sleeve and an adjusting piston are respectively disposed on its top, with the adjusting piston located inside the telescopic sleeve;

[0010] The opening of the telescopic sleeve corresponds to the feed pipe. The moxibustion stick enters the inside of the telescopic sleeve through the feed pipe and is limited by the telescopic sleeve.

[0011] The adjusting piston adjusts its own length, thereby adjusting the length of the moxibustion strip inside the telescopic sleeve, and after cutting, it compresses the moxibustion strip by increasing its own length.

[0012] The drive mechanism is located on one side of the housing;

[0013] Two cutter head assemblies are respectively disposed on one side of the drive mechanism;

[0014] The drive mechanism drives the cutter assembly to cut the moxibustion strip. After cutting, the cutter assembly cooperates with the length-fixing mechanism to compact the moxibustion strip.

[0015] A removal mechanism, located on one side of the fixed-length mechanism, is used to remove the cut moxa stick.

[0016] Furthermore, the removal mechanism includes a drive shaft disposed on one side of the telescopic end of the telescopic sleeve, and a driven shaft rotatably mounted on its other end. A support shaft is rotatably mounted in the middle of the driven shaft, and a push block is rotatably mounted on its other end. A slide is rotatably mounted on the other end of the support shaft. The other side of the slide is fixedly connected to the outer side of the fixed end of the telescopic sleeve, and the push block can move along the slide.

[0017] The drive shaft moves up and down with the extension and retraction of the telescopic sleeve, driving the driven shaft and the support shaft to move up and down and rotate, thereby realizing the horizontal movement of the push block on the slide.

[0018] Furthermore, the driving mechanism includes an adjusting rod disposed inside the housing, and having a positive thread and a negative thread respectively on its outer side. The positive thread and the negative thread are respectively threaded to a base. A limit rod is slidably mounted on one side of the base. The limit rod is fixedly connected to the inner side of the housing. The rotation of the adjusting rod causes the base to move along the limit rod.

[0019] The drive mechanism also includes a drive source, which is located on one side of the housing and drives the adjusting rod to rotate via a gear set.

[0020] Furthermore, the cutter head assembly corresponds to the base, and the cutter head assembly includes a second drive source, which is disposed on one side of the base, and its output end is provided with a rotating cutter head.

[0021] Furthermore, the driving mechanism includes a third driving source, which is disposed on one side of the housing, and its output end is provided with a driving bevel gear;

[0022] The drive mechanism also includes a driven bevel gear, which is rotatably mounted inside the housing via a sleeve and meshes with the driving bevel gear. A threaded rod is coaxially mounted on the driven bevel gear, and an adjusting joint is threadedly connected to the outer side of the threaded rod. A guide rail is provided on one side of the sleeve to limit the adjusting joint.

[0023] The driving bevel gear can drive the driven bevel gear and the threaded rod to rotate, thereby enabling the adjusting section to move along the threaded rod.

[0024] Furthermore, the cutter head assembly includes an arc-shaped slide rail disposed inside the housing, and a slider is slidably mounted on its inner side. One side of the slider is rotatably connected to the adjusting section via a connecting shaft. The movement of the adjusting section causes the slider to slide inside the arc-shaped slide rail. A rotating shaft cutter head is rotatably mounted on one side of the slider. The output end of the drive source three drives the rotating shaft cutter head to rotate via belt drive.

[0025] Furthermore, it also includes a dust-collecting mechanism, which is located inside the housing to absorb the lint generated during cutting.

[0026] Furthermore, the bottom of the outer casing is provided with an opening, and a bracket is provided on one side of the outer casing.

[0027] Compared with the prior art, the automatic moxibustion stick cutting machine provided by the present invention, through the cooperation of a fixed length mechanism and a cutter disc assembly, effectively compacts the end of the moxibustion stick in a timely manner after cutting, effectively preventing the moxa wool from escaping and scattering due to vibration or friction during subsequent transportation and collection. This not only avoids material waste and pollution of the working environment, but also ensures the quality of the cut end face of the moxibustion stick and the consistency of the product. Attached Figure Description

[0028] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this invention. For those skilled in the art, other drawings can be obtained based on these drawings.

[0029] Figure 1 This is a first schematic diagram of the overall structure provided in an embodiment of the present invention;

[0030] Figure 2 This is a first cross-sectional view of a partial structure provided in an embodiment of the present invention;

[0031] Figure 3 This is a second cross-sectional view of a portion of the structure provided in an embodiment of the present invention;

[0032] Figure 4 This is a third cross-sectional view of a partial structure provided in an embodiment of the present invention;

[0033] Figure 5 This is a second schematic diagram of the overall structure provided in an embodiment of the present invention;

[0034] Figure 6 This is a fourth cross-sectional view of a partial structure provided in an embodiment of the present invention;

[0035] Figure 7 This is a fifth cross-sectional view of a partial structure provided in an embodiment of the present invention;

[0036] Figure 8 The sixth cross-sectional view is a partial structural view provided in an embodiment of the present invention.

[0037] Explanation of reference numerals in the attached figures:

[0038] 1. Outer shell; 2. Feed pipe; 3. Length fixing mechanism; 31. Base; 32. Telescopic sleeve; 33. Adjusting piston; 4. Drive mechanism; 41. Adjusting rod; 42. Base; 43. Limiting rod; 44. Drive source one; 45. Drive source three; 46. Driving bevel gear; 47. Driven bevel gear; 48. Threaded rod; 49. Adjusting joint; 5. Cutter head assembly; 51. Drive source two; 52. Rotary cutter head; 53. Arc-shaped slide rail; 54. Slider; 55. Rotary shaft cutter head; 6. Removal mechanism; 61. Drive shaft; 62. Driven shaft; 63. Support shaft; 64. Push block; 65. Slide rail; 7. Dust collection mechanism; 8. Bracket. Detailed Implementation

[0039] To enable those skilled in the art to better understand the technical solution of the present invention, the present invention will be further described in detail below with reference to the accompanying drawings.

[0040] As attached Figure 1 To be continued Figure 4 As shown:

[0041] Example 1:

[0042] This invention provides an automatic moxa stick cutting machine, including a housing 1, and further comprising:

[0043] The feed pipe 2 is disposed through one side of the outer shell 1 and is used to feed the moxibustion stick into the interior of the outer shell 1.

[0044] The length-fixing mechanism 3 is located inside the outer shell 1 and is used to set the cutting length and compact the moxibustion strip after cutting.

[0045] The fixed length mechanism 3 includes a base 31, which is set inside the outer casing 1 via a connecting rod, and a telescopic sleeve 32 and an adjusting piston 33 are respectively set on its top. The adjusting piston 33 is located inside the telescopic sleeve 32.

[0046] The opening of the telescopic sleeve 32 corresponds to the feed pipe 2. The moxibustion stick enters the inside of the telescopic sleeve 32 through the feed pipe 2 and is limited by the telescopic sleeve 32.

[0047] The piston 33 adjusts its own length, thereby adjusting the length of the moxibustion strip inside the telescopic sleeve 32, and after cutting, it compresses the moxibustion strip by increasing its own length.

[0048] The drive mechanism 4 is located on one side of the housing 1;

[0049] Two cutter head assemblies 5 are respectively disposed on one side of the drive mechanism 4;

[0050] The drive mechanism 4 drives the cutter head assembly 5 to cut the moxibustion strip. After cutting, the cutter head assembly 5 works with the length-fixing mechanism 3 to compact the moxibustion strip.

[0051] The removal mechanism 6, located on one side of the length-fixing mechanism 3, is used to remove the cut moxa stick.

[0052] Specific implementation method: There are generally two types of cutting of moxibustion strips. One is to cut the whole moxibustion strip into a fixed length according to the packaging requirements during the production process. The other is to cut the moxibustion strip into a small segment of a certain length according to the application site, moxibustion time, etc. during use. The user puts the moxibustion strip to be cut into the feed tube 2. The diameter of the feed tube 2 is adapted to the moxibustion strip and can be adjusted. The outer shell 1 plays the role of containing, protecting and dustproofing.

[0053] The moxa stick is limited by the feed pipe 2 and slides down into the telescopic sleeve 32 under the action of gravity, contacting the top of the adjusting piston 33. Before cutting, the telescopic sleeve 32 is raised to the maximum stroke position, and the gap between it and the feed pipe 2 is used for cutting by the cutter assembly 5. According to the set cutting length, the adjusting piston 33 extends until the length of the moxa stick inside the telescopic sleeve 32 meets the requirements. At this time, the drive mechanism 4 drives the cutter assembly 5 to cut the moxa stick by rotation, ensuring that the cut surface is flat. After the cutting is completed, the cutter assembly 5 remains in the same position, and the adjusting piston 33 continues to extend, squeezing the moxa stick. The other end of the moxa stick is also squeezed under the obstruction of the cutter assembly 5, achieving the effect of compacting the moxa wool and preventing the moxa wool from escaping and scattering due to vibration or friction during subsequent transportation and collection.

[0054] The telescopic sleeve 32 has a built-in electric push rod, which can push the telescopic end to move up and down along the inner wall of the fixed end. The LUILEC brand MNTL model push rod can be selected. The electric push rod is electrically connected to an external power supply and is also controlled by an external PLC programming program. The adjusting piston 33 includes, but is not limited to, the electric push rod. The LUILEC brand MNTL model push rod can be selected. It is electrically connected to an external power supply and is also controlled by an external PLC programming program.

[0055] The base 31 is truncated cone-shaped with a smooth surface to prevent the moxa stick from being bumped during the rolling process and affecting its quality. One end of the connecting rod is fixedly connected to the base 31, and the other end is fixedly connected to the inner wall of the outer shell 1. The connecting rod is cylindrical and has a smooth surface to prevent the moxa stick from being bumped during the rolling process.

[0056] After the moxa wool is compacted, the piston 33 and the telescopic sleeve 32 are adjusted to fall back to the top level. During this process, the removal mechanism 6 removes the cut moxa stick, waiting for the next cut.

[0057] The removal mechanism 6 includes a drive shaft 61, which is located on one side of the telescopic end of the telescopic sleeve 32, and a driven shaft 62 is rotatably mounted on its other end. A support shaft 63 is rotatably mounted in the middle of the driven shaft 62, and a push block 64 is rotatably mounted on its other end. A slide 65 is rotatably mounted on the other end of the support shaft 63. The other side of the slide 65 is fixedly connected to the outside of the fixed end of the telescopic sleeve 32, and the push block 64 can move along the slide 65.

[0058] The drive shaft 61 moves up and down with the extension and retraction of the telescopic sleeve 32, driving the driven shaft 62 and the support shaft 63 to move up and down and rotate, thereby realizing the horizontal movement of the push block 64 on the slide 65.

[0059] Detailed implementation: One end of the drive shaft 61 is fixedly connected to the telescopic end of the telescopic sleeve 32. During the process of the telescopic sleeve 32 falling back, the drive shaft 61 descends accordingly, the driven shaft 62 descends and rotates, and the support shaft 63 also descends and rotates, so that the push block 64 approaches the telescopic sleeve 32 along the slide 65 and pushes the moxibustion strip, causing it to roll down.

[0060] During the upward movement of the telescopic sleeve 32, the drive shaft 61 rises accordingly, the driven shaft 62 rises and rotates, and the support shaft 63 also rises and rotates, so that the push block 64 moves away from the telescopic sleeve 32 along the slide 65.

[0061] The drive mechanism 4 includes an adjusting rod 41, which is located inside the housing 1 and has a positive thread and a negative thread on its outer side. The positive thread and the negative thread are respectively threaded to the base 42. A limit rod 43 is slidably installed on one side of the base 42. The limit rod 43 is fixedly connected to the inner side of the housing 1. The rotation of the adjusting rod 41 drives the base 42 to move along the limit rod 43.

[0062] The drive mechanism 4 also includes a drive source 44, which is located on one side of the housing 1 and drives the adjusting rod 41 to rotate via a gear set.

[0063] The cutter head assembly 5 corresponds to the base 42. The cutter head assembly 5 includes a second drive source 51, which is disposed on one side of the base 42, and its output end is provided with a rotating cutter head 52.

[0064] Detailed implementation: After the length of the moxa stick inside the telescopic sleeve 32 meets the requirements, the drive source 1 44 drives the adjusting rod 41 to rotate through the gear set. Due to the action of the positive and negative threads, the two bases 42 will move towards each other under the limit of the limiting rod 43. During this process, the drive source 2 51 drives the rotating cutter 52 to rotate and cut the moxa stick to ensure a flat cut surface. After the cut is completed, the drive source 1 44 and the drive source 2 51 stop driving, the rotating cutter 52 stops, and the adjusting piston 33 compacts the moxa wool. After one cut is completed, the drive source 1 44 drives the adjusting rod 41 to rotate in the opposite direction. The two bases 42 and the rotating cutter 52 move away from each other. The moxa stick slides down into the telescopic sleeve 32 under the action of gravity and continues to the next cut.

[0065] Drive source 1 44 and drive source 2 51 include, but are not limited to, motors, which are electrically connected to an external power supply and are also controlled by an external PLC programming program.

[0066] The bottom of the outer casing 1 has an opening, and a bracket 8 is provided on one side of the outer casing 1.

[0067] Detailed implementation: The bottom opening of the outer shell 1 is narrowed, and the cut moxa sticks roll out from the smaller opening for easy collection. The bracket 8 provides support for the outer shell 1.

[0068] Working principle: The moxa stick is fed into the outer shell 1 through the feed pipe 2 and enters the telescopic sleeve 32 under the action of gravity, where it contacts the adjusting piston 33. According to the required cutting length, the adjusting piston 33 extends to the corresponding position so that the length of the moxa stick in the telescopic sleeve 32 meets the set value. Then, the drive source 1 44 drives the adjusting rod 41 to rotate through the gear set. The positive and negative threads drive the two bases 42 to move towards each other along the limit rod 43. At the same time, the drive source 2 51 drives the rotating cutter head 52 to rotate and cut the moxa stick, ensuring a flat cut surface. After the cutting is completed, the rotating cutter head 52 remains stationary, and the adjusting piston 33 continues to extend, working together with the rotating cutter head 52 to compact the end of the moxa stick and prevent the moxa wool from escaping. Then, the adjusting piston 33 and the telescopic sleeve 32 retract one after the other. The drive shaft 61 descends with the telescopic sleeve 32, and drives the push block 64 to move horizontally along the slide 65 through the driven shaft 62 and the support shaft 63, pushing out the cut moxa stick and completing one cutting cycle.

[0069] As attached Figure 3 , attached Figure 5 To be continued Figure 7 As shown:

[0070] Example 2:

[0071] This embodiment is basically the same as the previous embodiment, except that the drive mechanism 4 includes a drive source 45, which is disposed on one side of the housing 1, and its output end is provided with an active bevel gear 46.

[0072] The drive mechanism 4 also includes a driven bevel gear 47, which is rotatably mounted inside the housing 1 via a sleeve and meshes with the driving bevel gear 46. A threaded rod 48 is coaxially mounted on the driven bevel gear 47, and an adjusting joint 49 is threadedly connected to the outer side of the threaded rod 48. A guide rail with a limit adjustment joint 49 is provided on one side of the sleeve.

[0073] The driving bevel gear 46 can drive the driven bevel gear 47 and the threaded rod 48 to rotate, thereby enabling the adjusting section 49 to move along the threaded rod 48.

[0074] The cutter head assembly 5 includes an arc-shaped slide rail 53, which is located inside the housing 1, and a slider 54 is slidably mounted on its inner side. One side of the slider 54 is rotatably connected to the adjusting section 49 via a connecting shaft. The movement of the adjusting section 49 causes the slider 54 to slide inside the arc-shaped slide rail 53. A rotating shaft cutter head 55 is rotatably mounted on one side of the slider 54. The output end of the drive source 3 45 drives the rotating shaft cutter head 55 to rotate via belt drive.

[0075] Detailed implementation: After the moxa stick reaches the required length inside the telescopic sleeve 32, the drive source 3 45 drives the active bevel gear 46 to rotate, which in turn drives the driven bevel gear 47 and the threaded rod 48 to rotate. Under the limit of the guide rail, the adjusting section 49 moves away from the feed pipe 2. The slider 54 is pulled along the arc-shaped slide rail 53 to approach the feed pipe 2 through the coupling shaft. At the same time, the drive source 3 45 drives the rotating shaft cutter 55 to rotate through the belt drive to perform rotational cutting on the moxa stick, ensuring a flat cut surface. After the cutting is completed, the drive source 3 45 stops driving, and the rotating shaft cutter 55 stops. The adjusting piston 33 compacts the moxa wool. After one cutting is completed, the drive source 3 45 reverses the drive, making the adjusting section 49 approach the feed pipe 2. The slider 54 is pushed away from the feed pipe 2 along the arc-shaped slide rail 53 through the coupling shaft. The rotating shaft cutter 55 also moves away from the feed pipe 2. The moxa stick slides down into the telescopic sleeve 32 under the action of gravity, and the next cutting continues.

[0076] The output end of the drive source 3 45 is a long shaft, which is fixedly connected to the active bevel gear 46 and drives the rotating shaft cutter head 55 to rotate through belt drive. The drive source 3 45 includes, but is not limited to, a motor, which is electrically connected to an external power supply and is also controlled by an external PLC programming program.

[0077] Working principle: After the moxibustion stick enters the telescopic sleeve 32 and is set to the length by the adjusting piston 33, the drive source 3 45 drives the active bevel gear 46 to rotate, which in turn drives the driven bevel gear 47 and the coaxial threaded rod 48 to rotate. This causes the adjusting section 49 to move away from the feed pipe 2 along the guide rail. The adjusting section 49 pulls the slider 54 along the arc-shaped slide rail 53 through the connecting shaft, bringing the rotating shaft cutter 55 closer to the moxibustion stick. At the same time, the drive source 3 45 drives the rotating shaft cutter 55 to rotate through the belt drive, cutting the moxibustion stick. After the cutting is completed, the rotating shaft cutter 55 stops rotating, and the adjusting piston 33 extends to press the end of the moxibustion stick. Then, the drive source 3 45 drives in the opposite direction, and the adjusting section 49 moves towards the feed pipe 2, pushing the slider 54 to slide in the opposite direction along the arc-shaped slide rail 53. The rotating shaft cutter 55 resets, and the moxibustion stick re-enters the telescopic sleeve 32 under the action of gravity, waiting for the next cutting.

[0078] As attached Figure 8 As shown:

[0079] Example 3:

[0080] The difference in this embodiment is that it also includes a dust collection mechanism 7, which is located inside the outer casing 1 to absorb the flying lint generated during cutting.

[0081] Working principle: Fine moxa wool will be generated during the cutting process. The dust collection mechanism 7 will be continuously activated to suck in and collect the wool, preventing it from spreading and polluting the working environment. At the same time, it will keep the inside of the outer shell 1 clean and protect the health of the operators. The dust collection mechanism 7 includes, but is not limited to, a negative pressure dust collector. The WONSMART brand 509 model can be selected. It is electrically connected to an external power supply and is also controlled by an external PLC programming program.

[0082] The foregoing has only described certain exemplary embodiments of the present invention by way of illustration. Undoubtedly, those skilled in the art can modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the foregoing drawings and descriptions are illustrative in nature and should not be construed as limiting the scope of protection of the claims of the present invention.

Claims

1. An automatic moxa stick cutting machine, comprising a housing (1), characterized in that, Also includes: Feed pipe (2), which is disposed through one side of the outer shell (1), is used to feed the moxibustion stick into the interior of the outer shell (1); The length-fixing mechanism (3) is located inside the outer shell (1) and is used to set the cutting length and compact the moxibustion strip after cutting. The fixed length mechanism (3) includes a base (31), which is set inside the outer shell (1) by a connecting rod, and a telescopic sleeve (32) and an adjusting piston (33) are respectively set on its top. The adjusting piston (33) is located inside the telescopic sleeve (32). The opening of the telescopic sleeve (32) corresponds to the feed pipe (2). The moxibustion stick enters the inside of the telescopic sleeve (32) through the feed pipe (2) and is limited by the telescopic sleeve (32). The adjusting piston (33) adjusts its own length, thereby adjusting the length of the moxibustion strip inside the telescopic sleeve (32), and after cutting, it compacts the moxibustion strip by increasing its own length. A drive mechanism (4) is disposed on one side of the housing (1); Two cutter head assemblies (5) are respectively disposed on one side of the drive mechanism (4); The driving mechanism (4) drives the blade assembly (5) to cut the moxibustion strip. After the cutting is completed, the blade assembly (5) cooperates with the length-fixing mechanism (3) to compact the moxibustion strip. The removal mechanism (6) is located on one side of the fixed-length mechanism (3) and is used to remove the cut moxa stick.

2. The automatic moxa stick cutting machine according to claim 1, characterized in that, The The removal mechanism (6) includes a drive shaft (61) which is located on one side of the telescopic end of the telescopic sleeve (32), and a driven shaft (62) is rotatably mounted on its other end. A support shaft (63) is rotatably mounted in the middle of the driven shaft (62), and a push block (64) is rotatably mounted on its other end. A slide (65) is rotatably mounted on the other end of the support shaft (63). The other side of the slide (65) is fixedly connected to the outside of the fixed end of the telescopic sleeve (32), and the push block (64) can move along the slide (65). The drive shaft (61) moves up and down with the extension and retraction of the telescopic sleeve (32), driving the driven shaft (62) and the support shaft (63) to move up and down and rotate, thereby realizing the horizontal movement of the push block (64) on the slide (65).

3. The automatic moxa stick cutting machine according to claim 2, characterized in that, The driving mechanism (4) includes an adjusting rod (41), which is located inside the housing (1) and has a positive thread and a negative thread on its outer side. The positive thread and the negative thread are respectively threaded to a base (42). A limiting rod (43) is slidably installed on one side of the base (42). The limiting rod (43) is fixedly connected to the inner side of the housing (1). The rotation of the adjusting rod (41) drives the base (42) to move along the limiting rod (43). The drive mechanism (4) also includes a drive source (44), which is disposed in the housing (1). On one side, the adjusting rod (41) is driven to rotate via a gear set.

4. The automatic moxa stick cutting machine according to claim 3, characterized in that, The cutter head assembly (5) corresponds to the base (42). The cutter head assembly (5) includes a second drive source (51), which is disposed on one side of the base (42), and its output end is provided with a rotating cutter head (52).

5. An automatic moxa stick cutting machine according to claim 2, characterized in that, The drive mechanism (4) includes a drive source three (45), which is located on one side of the housing (1), and its output end is provided with an active bevel gear (46). The drive mechanism (4) also includes a driven bevel gear (47), which is rotatably mounted on the inner side of the housing (1) via a sleeve and meshes with the driving bevel gear (46). A threaded rod (48) is coaxially mounted on the driven bevel gear (47), and an adjusting joint (49) is threadedly connected to the outer side of the threaded rod (48). A guide rail with a limit on the adjusting joint (49) is provided on one side of the sleeve. The driving bevel gear (46) can drive the driven bevel gear (47) and the threaded rod (48) to rotate, thereby enabling the adjusting section (49) to move along the threaded rod (48).

6. An automatic moxa stick cutting machine according to claim 5, characterized in that, The cutter head assembly (5) includes an arc-shaped slide rail (53) which is disposed inside the housing (1), and a slider (54) is slidably mounted on its inner side. One side of the slider (54) is rotatably connected to the adjusting section (49) via a connecting shaft. The movement of the adjusting section (49) causes the slider (54) to slide inside the arc-shaped slide rail (53). A rotating shaft cutter head (55) is rotatably mounted on one side of the slider (54). The output end of the drive source three (45) drives the rotating shaft cutter head (55) to rotate via belt drive.

7. An automatic moxa stick cutting machine according to claim 1, characterized in that, It also includes a dust collection mechanism (7), which is located inside the outer casing (1) to absorb the flying lint generated during cutting.

8. An automatic moxa stick cutting machine according to any one of claims 4, 6, or 7, characterized in that, The bottom of the outer shell (1) is provided with an opening, and a bracket (8) is provided on one side of the outer shell (1).

Citation Information

Patent Citations

  • A moxa stick cutting machine

    CN112873341B