Moxa filter element processing and producing device

By designing a moxa filter element processing and production device that combines components such as transmission rods, transmission plates, and movable plates, the problem of insufficient crushing in the existing device is solved, and efficient crushing and mixing of moxa and moxa powder is achieved, improving the pharmacological effect and use quality of the finished product.

CN119974566AInactive Publication Date: 2025-05-13ANHUI AIZHIYUAN AGRI TECH CO LTD
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Patent Information

Application Number
CN202510154131.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-12
Publication Date
2025-05-13
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing moxa velvet and moxa powder crushing mixing devices have limitations in the fixed position of the crushing and mixing components, resulting in insufficient crushing and reducing pharmacological effects and finished product quality.

Method used

A wool velvet filter element processing and production device is designed, which adopts a combination of transmission rod, transmission plate, movable plate, feed pipe, scraper ring, limit pressure ring, angle plate, vertical rod and crusher. Through the rotation of transmission plate and crusher and the reciprocating movement of scraper and moutain powder, the effective crushing and mixing of wool velvet and mug powder are achieved.

Benefits of technology

By improving the crushing and mixing effect of moxa velvet and moxa powder, the pharmacological effect and usage quality of the finished product are optimized, and the quality of the quality is reduced due to insufficient crushing in traditional devices.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a moxa filter element processing and producing device, and relates to the technical field of moxa filter element processing. The device comprises a base, cutting equipment is arranged on the left side of the base, a conveying assembly is arranged at the top of the base, a supporting table is arranged in the conveying assembly, the bottom of the supporting table is fixedly installed at the top of the base, a U-shaped frame is arranged at the center of the top of the base, a smashing barrel is arranged in the U-shaped frame, and a driving assembly is arranged at the top of the U-shaped frame; a discharging assembly is arranged at the bottom of the smashing barrel. In the continuous movement process of a crushing cutter, the contact and crushing range of a transmission plate and materials in a crushing barrel is effectively expanded, when the crushing cutter is attached to the outer wall of the transmission plate, the contact area of the transmission plate and the materials is effectively increased, and the effect of accelerating crushing of moxa and moxa powder under the same revolution frequency is achieved; the situation that the transmission plate always crushes the moxa and the moxa powder in a fixed direction, and the production quality is reduced is avoided.
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Description

Technical Field

[0001] The invention relates to the technical field of moxa filter element processing, and in particular to a moxa filter element processing and production device. Background Art

[0002] The moxa filter is a filter element specially used in moxibustion instruments. Smoke and odor will be produced during the moxibustion process. These smoke and odor are mainly produced by the burning of moxa. Moxa is the raw material for making moxa sticks and is also the main material used in moxibustion.

[0003] The patent with patent announcement number CN216260460U discloses a device for stirring moxa and moxa powder, which relates to the technical field of stirring devices and solves the technical problem that the existing stirring process requires pre-preparation of raw materials to complete the processing of moxa and moxa powder, and the processing is complicated. The patent comprises a mixing chamber, a crushing chamber and a feeding hopper, a stirring mechanism is arranged in the mixing chamber, a feeding hopper and a crushing chamber are arranged on the top, a supporting foot is arranged on the bottom, a mixed material outlet is opened at the lower part of one side, a first feeding port and a second feeding port are arranged at the bottom of the feeding hopper, the second feeding port is communicated with the mixing chamber, the first feeding port is communicated with the crushing chamber, the bottom of the crushing chamber is communicated with the mixing chamber, a screen is arranged at the connection between the crushing chamber and the mixing chamber, the screen is arranged between the second feeding port and the mixed material outlet, and a crushing mechanism is arranged in the crushing chamber; the patent can directly crush moxa into moxa powder and mix it evenly with moxa, which reduces the labor intensity of workers, and can be produced continuously, with strong applicability.

[0004] However, the device still has some shortcomings: the device can crush and mix moxa and moxa powder, but during the crushing and mixing process, the components for crushing and mixing the materials always crush and mix the moxa and moxa powder in a fixed position, which has certain limitations. It is easy to cause insufficient crushing and mixing between moxa and moxa powder, thereby reducing the pharmacological effect, and it is very easy to cause the quality of finished products rich in moxa to be reduced. Summary of the invention

[0005] In view of the deficiencies in the prior art, the present invention provides a moxa filter element processing and production device, which solves the problems raised in the above-mentioned background technology.

[0006] To achieve the above purpose, the present invention is implemented through the following technical scheme: a moxa filter element processing and production device, including a base, a cutting device is arranged on the left side of the base, a conveying assembly is arranged on the top of the base, a support table is arranged inside the conveying assembly, the bottom of the support table is fixedly installed on the top of the base, a U-shaped frame is arranged at the center of the top of the base, a crushing barrel is arranged inside the U-shaped frame, a driving assembly is arranged on the top of the U-shaped frame, and a discharging assembly is arranged at the bottom of the crushing barrel;

[0007] A crushing device is arranged inside the crushing barrel, an anti-volatilization device is arranged outside the crushing barrel, and a compacting device is arranged inside the anti-volatilization device;

[0008] The crushing device includes a transmission rod, the top of the transmission rod passes through and is fixedly installed at the bottom of the output end of the driving component, a plurality of transmission plates are equidistantly and fixedly installed on the outer wall of the bottom end of the transmission rod, a movable plate is passed through and movably installed on the outer wall of the reciprocating spiral groove of the transmission rod, two feed pipes are symmetrically and fixedly installed inside the movable plate, a T-shaped frame is fixedly installed on the side of the bottom end of the feed pipe away from the transmission rod, a scraper ring is installed on the side of the T-shaped frame away from the feed pipe, a limiting pressure ring is fixedly installed on the bottom of the T-shaped frame, a plurality of angle plates are symmetrically and slidably installed on the outer wall of the transmission plate through a spring, a vertical rod is fixedly installed on the top of the angle plate away from the transmission rod, and a crushing knife is fixedly installed on the top of the angle plate.

[0009] According to the above technical scheme, a reciprocating spiral groove is provided on the outer wall at the top of the transmission rod, and several transmission plates are located inside the crushing barrel. The bottom of the feed pipe passes through the top of the crushing barrel, the outer wall of the scraper ring is slidably connected to the inner wall of the crushing barrel, and the top of the vertical rod is located on the bottom movement trajectory of the limiting pressure ring. The external motor drives the conveying assembly, and the conveying assembly conveys the filter paper layer of the filter element from right to left, and the support platform supports the top of the inner wall of the conveying assembly; moxa and moxa powder are respectively input into the crushing barrel through two feed pipes, and the driving assembly is started, and the output end of the driving assembly drives the transmission rod to rotate, and when the transmission rod rotates, it drives the transmission plate to revolve inside the crushing barrel, and the transmission plate revolves to stir the moxa and moxa powder to mix, and at the same time, the transmission The movable rod limits the built-in block of the movable plate through the reciprocating spiral groove on its outer wall, driving the movable plate to slide downward and reset along the outer wall of the reciprocating spiral groove of the transmission rod, and the movable plate drives the feed pipe to move synchronously, and the mixed moxa falls to the top of the filter paper layer transported by the conveying assembly through the discharging assembly; the feed pipe moves downward and resets, driving the T-frame to move synchronously, the T-frame drives the scraper ring to scrape synchronously along the inner wall of the crushing barrel, the scraper ring drives the limiting pressure ring to move synchronously, and the limiting pressure ring contacts and presses the vertical rod downward when moving downward, the vertical rod drives the angle plate to slide downward along the outer wall of the transmission plate, the angle plate drives the crushing knife to move synchronously, and when the limiting pressure ring is reset, the angle plate is reset by the spring and drives the crushing knife to reset.

[0010] According to the above technical solution, the anti-volatilization device includes two vertical plates, a push plate and two sliding frames. The top ends of the two vertical plates penetrate through and are fixedly installed on the outer wall of the movable plate. The top of the push plate is hinged to the side of the vertical plate away from the crushing barrel through a torsion spring. The bottoms of the two sliding frames are symmetrically and slidably installed on the top of the base. The top of the sliding frame is hinged to the bottom of the push plate.

[0011] According to the above technical solution, the anti-volatile device also includes a plurality of cooling fans, air outlet pipes and arc guide plates. The plurality of cooling fans are symmetrically and fixedly installed on the outer wall of the sliding frame at the right end. The air outlet pipe passes through and is fixedly installed on the side of the cooling fan close to the sliding frame at one end away from the center of the sliding frame. The top of the arc guide plate is fixedly installed inside the sliding frame, and the arc guide plate is located below the air outlet pipe. When the movable plate slides downward along the outer wall of the reciprocating spiral groove of the transmission rod, it drives the vertical plate to move synchronously. During the downward movement of the vertical plate, it will contact the top edge of the discharge assembly. At this time, the discharge assembly The telescopic end of the component extends downward, that is, the discharge port is closer to the filter paper layer, and at the same time, the vertical plate drives the push plate to move synchronously. The bottom of the push plate is limited by the sliding frame, causing its own hinge shaft to start rotating and push the sliding frame to slide along the top of the base away from the center of the conveying assembly. The right end sliding frame drives the cold air fan to move synchronously, and the cold air fan drives the air outlet duct to move synchronously. The air outlet duct blows the cold air guided by the cold air fan into the conveying range of the conveying assembly in the form of a breeze. When the sliding frame drives the arc guide plate to move synchronously, the arc guide plate guides the breeze to the top of the conveying assembly through its own arc surface.

[0012] The bottom of the outer wall of the rolling roller is in contact with the top of the conveying assembly, and the bottom of the center rod is slidably mounted on the top of the base through a spring, and the baffle plate is hinged between the sliding frame close to the crushing barrel and the outer wall of the center rod. At the same time, when the left end sliding frame moves away from the center of the conveying assembly, the rotating rod drives the synchronous movement, and the rotating rod drives the rolling roller to move synchronously. During the movement of the rolling roller, the rolling roller contacts the top of the conveying assembly to generate friction, which prompts the rolling roller to start rotating through friction and drives the rotating rod to rotate. At this time, the rolling roller rotates to grind the mixed material on the top of the filter paper layer. At the same time, when the sliding frames on both sides move synchronously away from the center of the conveying assembly, the baffle plate will be pulled to move synchronously, and the hinge shaft between the baffle plate and the center rod will start to rotate. At this time, the center rod will slide along the top of the base away from the outer wall of the conveying assembly.

[0013] The top of the sliding panel also is connected with the support of the hinge parts of each end, and the bottom of the sliding panel is connected with the hinge parts of each end to the hinge part, and the top of the sliding panel is connected with the hinge part of each end to the hinge part.

[0014] According to the above technical scheme, the compacting device also includes an elastic telescopic rod, a straight plate, an L-shaped hollow plate, a thin plate and an arc plate. The elastic telescopic rod is fixedly installed on the side of the sliding frame close to the support platform, the straight plate is fixedly installed on the outer wall of the telescopic end of the elastic telescopic rod away from the rolling roller, the bottom of the L-shaped hollow plate is fixedly installed on the inner wall of the sliding frame away from the rolling roller, the thin plate is fixedly installed inside the L-shaped hollow plate close to the inner wall of the sliding frame, and the top of the arc plate is fixedly installed on the top of the inner wall of the sliding frame.

[0015] When the L-shaped hollow plate is moved toward the top of the support assembly, the bottom of the straight plate is in contact with the top of the support assembly, and the arc surface of the bottom of the arc plate is located on the moving track of the top of the L-shaped hollow plate. When the sliding plate drives the elastic telescopic rod to move toward the direction approaching the conveying assembly, the telescopic end of the elastic telescopic rod drives the straight plate to move synchronously, and the straight plate slides along the top of the support assembly. The straight plate blocks the front and back sides of the rolling range of the rolling roller. At the same time, the sliding plate drives the L-shaped hollow plate to move synchronously, and the L-shaped hollow plate drives the thin plate to move synchronously. When the L-shaped hollow plate moves toward the direction approaching the conveying assembly, it will contact the bottom of the arc plate and generate a resistance force. The L-shaped hollow plate begins to bend and deform due to the resistance force, and the arc plate is guided by the arc surface to facilitate the L-shaped hollow plate in a bent posture to overcome its own obstruction. When the L-shaped hollow plate is reset by its own toughness, it will swing back and forth to generate vibration. When the L-shaped hollow plate vibrates, it drives the thin plate to vibrate synchronously. When the thin plate vibrates, the vibration frequency of the L-shaped hollow plate is increased, and the rolling roller and the straight plate are caused to vibrate slightly through the transmission of force.

[0016] The present invention provides a moxa filter element processing and production device, which has the following beneficial effects:

[0017] (1) The present invention adopts the setting of a crushing device, through the cooperation of a transmission rod, a transmission plate, a movable plate, a feed pipe, a T-shaped frame, a scraper ring, a limit pressure ring, an angle plate, a vertical rod and a crushing knife, and relies on the revolution of the transmission plate and the crushing knife to enable the moxa and moxa powder to be displaced and crushed, effectively improving the synergistic effect of the chemical components between the two, optimizing the use effect of the finished product, and at the same time, the feed pipe continuously changes the falling height of the moxa and moxa powder during movement, optimizes the distribution range of the moxa and moxa powder inside the crushing barrel, thereby improving the crushing and mixing effect; and relies on the reciprocating motion of the scraper ring and the angle plate to ensure the cleanliness of the outer wall of the crushing barrel and the transmission plate, reduce material residue and thus reduce material loss. At the same time, during the continuous movement of the crushing knife, the contact and crushing range of the transmission plate and the material inside the crushing barrel is effectively expanded, and when the crushing knife is attached to the outer wall of the transmission plate, the contact area between the transmission plate and the material is effectively increased, thereby achieving the effect of accelerating the crushing of moxa and moxa powder at the same revolution frequency, and avoiding the transmission plate always crushing moxa and moxa powder in a fixed position, thereby reducing production quality.

[0018] (2) The present invention expands the range of motion of the air cooler by setting an anti-evaporation device through the coordination of a movable plate, a vertical plate, a push plate, a sliding frame, a cold air blower, an air outlet duct, an arc-shaped guide plate, a rotating rod, a rolling roller, a central rod and a shielding plate, and effectively reduces the filter paper layer and the processing range, thereby reducing the natural evaporation rate of the mixture of moxa wool and moxa powder at low temperature, thereby improving the use effect and service life of the finished product; at the same time, the self-rotation and rolling of the rolling roller improves the tightness of the fit between the mixture and the filter paper layer, that is, increases the mixing strength between the two, thereby preventing the mixture from falling off at the edge of the filter paper layer when the cutting equipment cuts according to the required size, and when the shielding plate moves and extends synchronously with the sliding frame, it expands the shielding range around the conveying component, thereby reducing the overflow of cold air and the mixture when they fall.

[0019] (3) The present invention adopts the arrangement of a compacting device, and cooperates with a rotating rod, a sliding plate, a hinged plate, an arc-shaped top plate, an elastic telescopic rod, a straight plate, an L-shaped hollow plate, a thin plate and an arc-shaped plate. The arc-shaped top plate indirectly contacts the bottom of the conveying component, so that the conveying component is always conveyed in a taut posture, and the conveying component is prevented from becoming loose during long-term use. The conveying component is ensured to always convey the filter paper layer in a stable and horizontal posture, and the friction between the filter paper layer and the loose top of the conveying component is prevented from increasing and causing damage. At the same time, the straight plate is used to shield the mixed material within the rolling range, so that the mixed material is prevented from falling outward when the rolling roller is rolling, thereby reducing the filling content of the mixed material at the edge of the filter paper layer. At the same time, the rolling roller carries a vibration force, which effectively improves its own rolling effect on the mixed material, so that the mixed material is more evenly attached to the top of the filter paper layer, and the vibration force is used to reduce the adhesion strength of the rolling roller and the straight plate to the mixed material, so as to avoid adhesion when the two contact the mixed material. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 A schematic diagram of the present invention as a whole;

[0021] Figure 2 It is a cross-sectional schematic diagram of the present invention as a whole;

[0022] Figure 3 It is a schematic diagram of the crushing device of the present invention;

[0023] Figure 4 It is a cross-sectional schematic diagram of the pulverizing device of the present invention;

[0024] Figure 5 It is an enlarged schematic diagram of the overall structure of the pulverizing device of the present invention;

[0025] Figure 6 It is a schematic diagram of the anti-volatilization device of the present invention;

[0026] Figure 7 It is a cross-sectional schematic diagram of the anti-volatilization device of the present invention;

[0027] Figure 8 It is a schematic diagram of the compacting device of the present invention;

[0028] Fig. 9 For the present invention Figure 8 A schematic diagram of the structure enlargement in the middle;

[0029] Fig.10 It is a schematic diagram of the bottom perspective of the compacting device of the present invention.

[0030] In the figure: 1, base; 2, cutting equipment; 21, conveying assembly; 22, support table; 3, U-shaped frame; 31, crushing barrel; 32, driving assembly; 33, discharging assembly; 4, crushing device; 41, transmission rod; 42, transmission plate; 43, movable plate; 44, feeding pipe; 45, T-shaped frame; 46, scraper ring; 47, limit pressure ring; 48, angle plate; 49, vertical rod; 410, crushing knife; 5, anti-volatile Device; 51. vertical plate; 52. push plate; 53. sliding frame; 54. air cooler; 55. air outlet duct; 56. arc guide plate; 57. rotating rod; 58. rolling roller; 59. center rod; 510. shielding plate; 6. compacting device; 61. sliding plate; 62. hinged plate; 63. arc top plate; 64. elastic telescopic rod; 65. straight panel; 66. L-shaped hollow plate; 67. thin plate; 68. arc panel. DETAILED DESCRIPTION

[0031] The technical solutions in the embodiments of the present invention will be described clearly and completely below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.

[0032] See also Figure 1-Figure 10, one embodiment of the present invention is: a moxa filter element processing and production device, including a base 1, a cutting device 2 is arranged on the left side of the base 1, a conveying component 21 is arranged on the top of the base 1, a support table 22 is arranged inside the conveying component 21, the bottom of the support table 22 is fixedly installed on the top of the base 1, a U-shaped frame 3 is arranged at the center of the top of the base 1, a crushing barrel 31 is arranged inside the U-shaped frame 3, a driving component 32 is arranged on the top of the U-shaped frame 3, and a discharging component 33 is arranged at the bottom of the crushing barrel 31;

[0033] A crushing device 4 is arranged inside the crushing barrel 31, an anti-volatile device 5 is arranged outside the crushing barrel 31, and a compacting device 6 is arranged inside the anti-volatile device 5;

[0034] The crushing device 4 includes a transmission rod 41, the top of the transmission rod 41 passes through and is fixedly installed at the bottom of the output end of the driving assembly 32, a plurality of transmission plates 42 are equidistantly and fixedly installed on the outer wall of the bottom end of the transmission rod 41, a movable plate 43 passes through and is movably installed on the outer wall of the reciprocating spiral groove of the transmission rod 41, two feed pipes 44 are symmetrically and fixedly installed inside the movable plate 43, a T-shaped frame 45 is fixedly installed on the side of the bottom end of the feed pipe 44 away from the transmission rod 41, a scraper ring 46 is installed on the side of the T-shaped frame 45 away from the feed pipe 44, a limiting pressure ring 47 is fixedly installed on the bottom of the T-shaped frame 45, a plurality of angle plates 48 are symmetrically and slidably installed on the outer wall of the transmission plate 42 through a spring, a vertical rod 49 is fixedly installed on the top of the end of the angle plate 48 away from the transmission rod 41, and a crushing knife 410 is fixedly installed on the top of the angle plate 48.

[0035] A reciprocating spiral groove is provided on the outer wall of the top of the transmission rod 41, and several transmission plates 42 are all located inside the crushing barrel 31. The bottom of the feed pipe 44 passes through the top of the crushing barrel 31, the outer wall of the scraper ring 46 is slidably connected to the inner wall of the crushing barrel 31, and the top of the vertical rod 49 is located on the bottom movement trajectory of the limiting pressure ring 47. Through the above coordination, the revolution of the transmission plate 42 is relied on to enable the moxa and moxa powder to be displaced and crushed, effectively improving the synergistic effect of the chemical components between the two and optimizing the use effect of the finished product. At the same time, the feed pipe 44 continuously changes the falling height of the moxa and moxa powder during movement, optimizes the distribution range of the moxa and moxa powder inside the crushing barrel 31, thereby improving its powder The crushing and mixing effects are achieved; through the above cooperation, the reciprocating motion of the scraper ring 46 and the angle plate 48 is relied upon to ensure the cleanliness of the outer walls of the crushing barrel 31 and the transmission plate 42, reduce material residue and thus reduce material loss; at the same time, during the continuous movement of the crushing knife 410, the contact and crushing range of the transmission plate 42 and the material inside the crushing barrel 31 is effectively expanded, and when the crushing knife 410 is attached to the outer wall of the transmission plate 42, the contact area between the transmission plate 42 and the material is effectively increased, thereby accelerating the crushing effect of moxa and moxa powder at the same orbital frequency, and avoiding the transmission plate 42 from always crushing moxa and moxa powder in a fixed position, thereby reducing production quality.

[0036] When in use, the external motor drives the conveying component 21, and the conveying component 21 conveys the filter paper layer of the filter element from right to left, and the support platform 22 supports the top of the inner wall of the conveying component 21; moxa and moxa powder are respectively input into the inside of the crushing barrel 31 through two feeding pipes 44, and the driving component 32 is started, and the output end of the driving component 32 drives the transmission rod 41 to rotate, and when the transmission rod 41 rotates, it drives the transmission plate 42 to revolve inside the crushing barrel 31, and the transmission plate 42 revolves to stir the moxa and moxa powder to mix, and at the same time, the transmission rod 41 reciprocates the spiral groove on its outer wall to the built-in block of the movable plate 43 The movable plate 43 is driven to slide downward along the outer wall of the reciprocating spiral groove of the transmission rod 41 and reset, and the movable plate 43 drives the feed pipe 44 to move synchronously, and the mixed moxa falls through the discharging component 33 to the top of the filter paper layer conveyed by the conveying component 21. Through the above cooperation, the transmission plate 42 rotates to enable the moxa and moxa powder to be displaced and crushed, which effectively enhances the synergistic effect of the chemical components between the two and optimizes the use effect of the finished product. At the same time, the feed pipe 44 continuously changes the falling height of the moxa and moxa powder during movement, and optimizes the distribution range of the moxa and moxa powder inside the crushing barrel 31. Thereby, the crushing and mixing effects are improved; the feed pipe 44 moves downward and resets, driving the T-shaped frame 45 to move synchronously, the T-shaped frame 45 drives the scraper ring 46 to scrape synchronously along the inner wall of the crushing barrel 31, the scraper ring 46 drives the limit pressure ring 47 to move synchronously, and the limit pressure ring 47 contacts and presses the vertical rod 49 downward when moving downward, and the vertical rod 49 drives the angle plate 48 to slide downward along the outer wall of the transmission plate 42, and the angle plate 48 drives the crushing knife 410 to move synchronously. When the limit pressure ring 47 is reset, the angle plate 48 is reset by the spring and drives the crushing knife 410 to reset. The reciprocating motion of the scraper ring 46 and the angle plate 48 ensures the cleanliness of the outer walls of the crushing barrel 31 and the transmission plate 42, reduces material residue and thus reduces material loss. At the same time, the crushing knife 410 continuously moves, effectively expanding the contact and crushing range between the transmission plate 42 and the material inside the crushing barrel 31. When the crushing knife 410 is attached to the outer wall of the transmission plate 42, the contact area between the transmission plate 42 and the material is effectively increased, thereby accelerating the crushing effect of moxa and moxa powder at the same orbital frequency, and avoiding the transmission plate 42 always crushing moxa and moxa powder in a fixed position, thereby reducing production quality.

[0037] See also Figure 1-Figure 10 , based on the above embodiment, another embodiment of the present invention further includes an anti-volatile device 5;

[0038] The anti-volatile device 5 includes two vertical plates 51, a push plate 52 and two sliding frames 53. The top ends of the two vertical plates 51 penetrate through and are fixedly installed on the outer wall of the movable plate 43. The top of the push plate 52 is hinged to the side of the vertical plate 51 away from the crushing barrel 31 through a torsion spring. The bottoms of the two sliding frames 53 are symmetrically and slidably installed on the top of the base 1. The top of the sliding frame 53 is hinged to the bottom of the push plate 52.

[0039] The anti-evaporation device 5 also includes a plurality of air coolers 54, an air outlet pipe 55 and an arc guide plate 56. The plurality of air coolers 54 are symmetrically and fixedly installed on the outer wall of the sliding frame 53 at the right end. The air outlet pipe 55 penetrates through and is fixedly installed on the side of the air cooler 54 close to the sliding frame 53 at one end away from the center of the sliding frame 53. The top of the arc guide plate 56 is fixedly installed inside the sliding frame 53, and the arc guide plate 56 is located below the air outlet pipe 55. Through the above coordination, the activity range of the air cooler 54 is expanded, the filter paper layer and the processing range are effectively reduced, the natural volatilization rate of the mixture of moxa wool and moxa powder is reduced at low temperature, and the use effect and service life of the finished product are improved.

[0040] The anti-volatile device 5 also includes a rotating rod 57, a rolling roller 58, a center rod 59 and a shielding plate 510. Both ends of the rotating rod 57 are rotatably installed inside the sliding frame 53 at the left end. Both ends of the rotating rod 57 are provided with reciprocating spiral grooves. The rolling roller 58 passes through the inside and is fixedly installed on the outer wall of the rotating rod 57. The bottom of the outer wall of the rolling roller 58 contacts the top of the conveying component 21. The bottom of the center rod 59 is slidably installed on the top of the base 1 through a spring. The shielding plate 510 is hinged between the side of the sliding frame 53 close to the crushing barrel 31 and the outer wall of the center rod 59. Through the above-mentioned self-rotation rolling of the rolling roller 58, the fit between the mixed material and the filter paper layer is improved, that is, the mixing strength between the two is increased, so as to avoid the mixed material falling off at the edge of the filter paper layer when the cutting device 2 cuts according to the required size, and when the shielding plate 510 moves and extends synchronously with the sliding frame 53, the shielding range around the conveying component 21 is expanded to reduce the overflow of cold air and mixed materials when they fall.

[0041] When in use, the movable plate 43 slides downward along the outer wall of the reciprocating spiral groove of the transmission rod 41, driving the vertical plate 51 to move synchronously. At the same time, the vertical plate 51 drives the push plate 52 to move synchronously. The bottom of the push plate 52 is limited by the sliding frame 53, prompting its own hinge shaft to start rotating and push the sliding frame 53 to slide along the top of the base 1 away from the center of the conveying assembly 21. The right end sliding frame 53 drives the cooling fan 54 to move synchronously, and the cooling fan 54 drives the air outlet duct 55 to move synchronously. The air outlet duct 55 blows the cold air guided by the cooling fan 54 into the conveying range of the conveying assembly 21 in the form of a breeze. When the sliding frame 53 drives the arc guide plate 56 to move synchronously, the arc guide plate 56 guides the breeze to the top of the conveying assembly 21 through its own arc surface. Through the above cooperation, the activity range of the cooling fan 54 is expanded, and the filter paper layer and the processing range are effectively reduced. The natural volatilization rate of the mixture of moxa and moxa powder is reduced at low temperature, thereby improving the use effect and service life of the finished product; at the same time, when the left end sliding frame 53 moves away from the center of the conveying assembly 21 The rotating rod 57 is driven to move synchronously, and the rotating rod 57 drives the rolling roller 58 to move synchronously. During the movement of the rolling roller 58, it contacts the top of the conveying component 21 to generate friction, which causes the rolling roller 58 to start rotating through the friction and drives the rotating rod 57 to rotate. At this time, the rolling roller 58 rotates to roll the mixed material on the top of the filter paper layer. At the same time, when the sliding frames 53 on both sides move synchronously away from the center of the conveying component 21, they will pull the shielding plate 510 to move synchronously, and the hinge shaft between the shielding plate 510 and the center rod 59 starts to rotate. At this time, the center rod 59 will slide along the top of the base 1 away from the outer wall of the conveying assembly 21. Through the self-rotation rolling of the rolling roller 58, the fit between the mixed material and the filter paper layer is improved, that is, the mixing strength between the two is increased, so as to avoid the mixed material falling off at the edge of the filter paper layer when the cutting device 2 cuts according to the required size. In addition, when the shielding plate 510 moves and extends synchronously with the sliding frame 53, the shielding range around the conveying assembly 21 is expanded to reduce the overflow of cold air and mixed material when they fall.

[0042] See also Figure 1-Figure 10 , based on the above embodiment, another embodiment of the present invention further includes a compacting device 6;

[0043] The compacting device 6 includes two sliding plates 61, a hinged plate 62 and an arc-shaped top plate 63. The inside of the two sliding plates 61 is penetrated and movably installed on the outer wall of the reciprocating spiral groove of the rotating rod 57. The top of the sliding plate 61 is slidably installed on the top of the inner wall of the sliding frame 53. The bottom of the hinged plate 62 is hinged to the bottom of the sliding plate 61 close to the support platform 22. The outer wall of the arc-shaped top plate 63 is hinged to the top of the hinged plate 62 through a torsion spring. The top of the arc-shaped top plate 63 contacts the bottom of the conveying component 21. Through the above cooperation, the arc-shaped top plate 63 indirectly contacts the bottom of the conveying component 21, so that the conveying component 21 is always conveyed in a taut posture, avoiding the loosening of the conveying component 21 during long-term use, ensuring that the conveying component 21 always conveys the filter paper layer in a stable and horizontal posture, avoiding the increase of friction between the filter paper layer and the loose top of the conveying component 21 and causing damage.

[0044] The compacting device 6 also includes an elastic telescopic rod 64, a straight plate 65, an L-shaped hollow plate 66, a thin plate 67 and an arc plate 68. The elastic telescopic rod 64 is fixedly installed on the side of the sliding frame 53 close to the support platform 22, the straight plate 65 is fixedly installed on the outer wall of the telescopic end of the elastic telescopic rod 64 away from the rolling roller 58, the bottom of the L-shaped hollow plate 66 is fixedly installed on the inner wall of the sliding frame 53 away from the rolling roller 58, the thin plate 67 is fixedly installed on the inside of the L-shaped hollow plate 66 close to the inner wall of the sliding frame 53, and the top of the arc plate 68 is fixedly installed on the top of the inner wall of the sliding frame 53.

[0045] The bottom of the straight plate 65 is in contact with the top of the support platform 22, and the bottom arc surface of the arc plate 68 is located on the top movement trajectory of the L-shaped hollow plate 66. Through the above cooperation, the straight plate 65 is relied on to shield the mixed material within the rolling range to prevent the mixed material from falling outward when the rolling roller 58 is rolling. This reduces the filling content of the mixed material at the edge of the filter paper layer. At the same time, the rolling roller 58 carries a vibration force, which effectively improves its own rolling effect on the mixed material, and makes the mixed material fit more evenly on the top of the filter paper layer. The vibration force is relied on to reduce the adhesion strength of the rolling roller 58 and the straight plate 65 to the mixed material, avoiding adhesion between the two when they come into contact with the mixed material.

[0046] When in use, when the rotating rod 57 rotates, the reciprocating spiral grooves on the outer walls at both ends of the rotating rod 57 limit the built-in blocks of the sliding plate 61, so that the sliding plate 61 can reciprocate along the top of the inner wall of the sliding frame 53 toward the center of the conveying assembly 21 and reset. When the sliding plate 61 drives the hinged plate 62 to move toward the center of the conveying assembly 21, it drives the arc-shaped top plate 63 to move synchronously. The arc-shaped top plate 63 limits the position of the hinged plate 62 and causes its hinge axis to start rotating. At this time, the hinged plate 62 pushes the arc-shaped top plate 63 to push the bottom of the conveying assembly 21 with the hinge axis as the axis. When the sliding plate 61 is reset, the arc-shaped top plate 63 is reset through the hinged plate 62 Through the above cooperation, the arc-shaped top plate 63 indirectly contacts the bottom of the conveying component 21, so that the conveying component 21 is always conveyed in a taut posture, avoiding the loosening of the conveying component 21 during long-term use, ensuring that the conveying component 21 always conveys the filter paper layer in a stable and horizontal posture, avoiding the increase of friction between the filter paper layer and the loose top of the conveying component 21 and causing damage; when the sliding plate 61 drives the elastic telescopic rod 64 to move toward the conveying component 21, the telescopic end of the elastic telescopic rod 64 drives the straight plate 65 to move synchronously, and the straight plate 65 slides along the top of the support platform 22, and the straight plate 65 contacts the rolling roller 58 is used to block the front and back sides of the rolling range, and at the same time, the sliding plate 61 drives the L-shaped hollow plate 66 to move synchronously, and the L-shaped hollow plate 66 drives the thin plate 67 to move synchronously. When the L-shaped hollow plate 66 moves toward the direction close to the conveying component 21, it will contact with the bottom of the curved plate 68 and generate a resistance force. The L-shaped hollow plate 66 begins to bend and deform due to the resistance force, and the curved plate 68 guides the L-shaped hollow plate 66 in a bent posture through the curved surface to overcome its own obstruction. When the L-shaped hollow plate 66 is reset through its own toughness, it will swing back and forth to generate vibration. When the L-shaped hollow plate 66 vibrates, it drives the thin plate 67 to vibrate synchronously, and the thin plate 67 vibrates When the L-shaped hollow plate 66 moves, the vibration frequency of the L-shaped hollow plate 66 is increased, and the force transmission causes the rolling roller 58 and the straight plate 65 to vibrate slightly. Through the above cooperation, the straight plate 65 is used to shield the mixed material within the rolling range to prevent the mixed material from falling outward when the rolling roller 58 is rolling. This reduces the filling content of the mixed material at the edge of the filter paper layer. At the same time, the rolling roller 58 carries a vibration force, which effectively improves its own rolling effect on the mixed material, causing the mixed material to fit more evenly on the top of the filter paper layer, and relies on the vibration force to reduce the adhesion strength of the rolling roller 58 and the straight plate 65 to the mixed material, avoiding adhesion when the two come into contact with the mixed material.

[0047] The above description is only a preferred specific implementation manner of the present invention, but the protection scope of the present invention is not limited thereto. Any technician familiar with the technical field can make equivalent replacements or changes according to the technical scheme and inventive concept of the present invention within the technical scope disclosed by the present invention, which should be covered by the protection scope of the present invention.

Claims

1. A moxa filter element processing and production device, comprising a base (1), characterized in that: A U-shaped frame (3) is arranged at the center of the top of the base (1), a crushing barrel (31) is arranged inside the U-shaped frame (3), a driving assembly (32) is arranged at the top of the U-shaped frame (3), a discharging assembly (33) is arranged at the bottom of the crushing barrel (31), and a crushing device (4) is arranged inside the crushing barrel (31); The pulverizing device (4) comprises a transmission rod (41), the top of the transmission rod (41) passes through and is fixedly mounted on the bottom of the output end of the driving assembly (32), a plurality of transmission plates (42) are equidistantly and fixedly mounted on the outer wall of the bottom end of the transmission rod (41), a movable plate (43) passes through and is movably mounted on the outer wall of the reciprocating spiral groove of the transmission rod (41), two feed pipes (44) are symmetrically and fixedly mounted inside the movable plate (43), and the bottom end of the feed pipe (44) is away from the transmission rod (41). ) is fixedly mounted on one side, a scraper ring (46) is mounted on the side of the T-shaped frame (45) away from the feed pipe (44), a limit pressure ring (47) is fixedly mounted on the bottom of the T-shaped frame (45), a plurality of angle plates (48) are symmetrically and slidably mounted on the outer wall of the transmission plate (42) through springs, a vertical rod (49) is fixedly mounted on the top of one end of the angle plate (48) away from the transmission rod (41), and a crushing knife (410) is fixedly mounted on the top of the angle plate (48).

2. The moxa filter element processing and production device according to claim 1 is characterized in that: A cutting device (2) is arranged on the left side of the base (1), a conveying assembly (21) is arranged on the top of the base (1), a support platform (22) is arranged inside the conveying assembly (21), the bottom of the support platform (22) is fixedly mounted on the top of the base (1), a reciprocating spiral groove is opened on the outer wall of the top of the transmission rod (41), a plurality of transmission plates (42) are located inside the crushing barrel (31), the bottom of the feed pipe (44) passes through the top of the crushing barrel (31), the outer wall of the scraper ring (46) is slidably connected to the inner wall of the crushing barrel (31), and the top of the vertical rod (49) is located on the bottom movement track of the limit pressure ring (47).

3. The moxa filter element processing and production device according to claim 2 is characterized in that: An anti-volatile device (5) is arranged on the periphery of the crushing barrel (31), and the anti-volatile device (5) comprises two vertical plates (51), a push plate (52) and two sliding frames (53). The top ends of the two vertical plates (51) penetrate through and are fixedly mounted on the outer wall of the movable plate (43). The top end of the push plate (52) is hinged to the side of the vertical plate (51) away from the crushing barrel (31) through a torsion spring. The bottom ends of the two sliding frames (53) are symmetrically and slidably mounted on the top end of the base (1). The top end of the sliding frame (53) is hinged to the bottom end of the push plate (52).

4. The moxa filter element processing and production device according to claim 3 is characterized in that: The anti-volatile device (5) further comprises a plurality of cooling fans (54), an air outlet pipe (55) and an arc-shaped guide plate (56); the plurality of cooling fans (54) are symmetrically and fixedly mounted on the outer wall of the right end sliding frame (53); the air outlet pipe (55) has one end away from the center of the sliding frame (53) passing through and fixedly mounted on the side of the cooling fan (54) close to the sliding frame (53); the top of the arc-shaped guide plate (56) is fixedly mounted inside the sliding frame (53), and the arc-shaped guide plate (56) is located below the air outlet pipe (55).

5. The moxa filter element processing and production device according to claim 4 is characterized in that: The anti-volatile device (5) also includes a rotating rod (57), a rolling roller (58), a center rod (59) and a shielding plate (510). Both ends of the rotating rod (57) are rotatably mounted inside the sliding frame (53) at the left end. Both ends of the rotating rod (57) are provided with reciprocating spiral grooves. The rolling roller (58) penetrates through the inside and is fixedly mounted on the outer wall of the rotating rod (57). The bottom of the outer wall of the rolling roller (58) contacts the top of the conveying component (21). The bottom of the center rod (59) is slidably mounted on the top of the base (1) through a spring. The shielding plate (510) is hinged between the side of the sliding frame (53) close to the crushing barrel (31) and the outer wall of the center rod (59).

6. The moxa filter element processing and production device according to claim 5 is characterized in that: A tightening device (6) is arranged inside the anti-volatile device (5), and the tightening device (6) comprises two sliding plates (61), a hinged plate (62) and an arc-shaped top plate (63). The two sliding plates (61) are both penetrated and movably mounted on the outer wall of the reciprocating spiral groove of the rotating rod (57). The top of the sliding plate (61) is slidably mounted on the top of the inner wall of the sliding frame (53). The bottom of the hinged plate (62) is hinged to the bottom of the sliding plate (61) close to the support platform (22). The outer wall of the arc-shaped top plate (63) is hinged to the top of the hinged plate (62) through a torsion spring, and the top of the arc-shaped top plate (63) is in contact with the bottom of the conveying component (21).

7. The moxa filter element processing and production device according to claim 6 is characterized in that: The compacting device (6) further comprises an elastic telescopic rod (64), a straight plate (65), an L-shaped hollow plate (66), a thin plate (67) and a curved plate (68); the elastic telescopic rod (64) is fixedly mounted on a side of the sliding frame (53) close to the support platform (22); the straight plate (65) is fixedly mounted on the outer wall of the telescopic end of the elastic telescopic rod (64) on a side away from the rolling roller (58); the bottom of the L-shaped hollow plate (66) is fixedly mounted on the inner wall of the sliding frame (53) on a side away from the rolling roller (58); the thin plate (67) is fixedly mounted inside the L-shaped hollow plate (66) on a side close to the inner wall of the sliding frame (53); and the top of the curved plate (68) is fixedly mounted on the top of the inner wall of the sliding frame (53).

8. The moxa filter element processing and production device according to claim 7 is characterized in that: The bottom of the straight plate (65) contacts the top of the support platform (22), and the bottom arc surface of the arc plate (68) is located on the top movement track of the L-shaped hollow plate (66).

Citation Information

Patent Citations

  • Moxa floss and moxa powder stirring device

    CN216260460U