Full-automatic moxa stick column cutting equipment

By designing the loading equipment of fully automatic moxa stick cutting and column cutting equipment, the staggered structure of the storage silo, material separation chamber, temporary storage silo and material barrier silo is solved, and the loading and processing efficiency is improved.

CN120170831APending Publication Date: 2025-06-20HENAN CHENJIYUAN INTELLIGENT EQUIP CO LTD
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Patent Information

Application Number
CN202510531371.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-25
Publication Date
2025-06-20

AI Technical Summary

Technical Problem

When placing moxa stick strips on the conveyor belt, the existing moxa sticks are prone to rolling untidy, resulting in trouble loading and low finishing efficiency, which affects the machining efficiency of moxa sticks.

Method used

A fully automatic moxa stick cutting machine is designed, including feeding equipment, conveying equipment and cutting equipment. The feeding equipment realizes the smooth feeding and transport of rows of moxa strips through the storage silo and the dispensing chamber, combining the interlaced structure of the temporary storage silo and the barrier silo.

Benefits of technology

It effectively avoids the rolling and irregular problems of moxa sticks, and improves the feeding efficiency of moxa sticks and the processing efficiency of moxa sticks.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses full-automatic moxa stick column cutting equipment, which belongs to the technical field of moxa stick processing and particularly comprises a rack, conveying equipment and cutting equipment, the feeding equipment comprises a material storage bin, and a plurality of material distribution cavities distributed at intervals are formed in the material storage bin; the device further comprises a discharging mechanism, the discharging mechanism comprises a temporary storage bin and a material blocking bin, temporary storage cavities with the same number as the material distribution cavities are formed in the temporary storage bin, and the temporary storage cavities and the material distribution cavities are arranged in a staggered mode. Material blocking cavities with the same number as the temporary storage cavities are formed in the material blocking bin, and the material blocking cavities and the temporary storage cavities are arranged in a staggered mode; in the intermittent movement process of the conveying belt, rows of moxa sticks can be sequentially fed into all the containing areas on the conveying belt, the problem that the moxa sticks roll and are irregular due to the fact that the moxa sticks are placed singly in the prior art is solved, the moxa stick feeding efficiency is improved, and therefore the moxa cone processing efficiency is improved.
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Description

Technical Field

[0001] The present invention belongs to the technical field of moxa stick processing, and particularly relates to a fully automatic moxa stick cutting and column-making device. Background Art

[0002] Before use, the moxa stick is in the shape of a cylindrical long strip. When in use, it needs to be in the shape of a small cylindrical block. This requires cutting and truncating the cylindrical long-strip moxa stick to meet the usage requirements.

[0003] The Chinese utility model patent with the application number CN202222547397.9 is disclosed in the prior art. This patent discloses a fully automatic moxa stick cutting and column-making machine, which has a conveyor belt on one side of the frame. The surface of the conveyor belt is divided into multiple equal areas by multiple partitions: an outer push plate is provided on the outer side of the output end of the conveyor belt on the frame, and the base on the inner side of the conveyor belt on the frame can move back and forth along the conveyor belt direction: an inner push plate that can move up and down and horizontally is provided at the end of the bracket on the base close to the conveyor belt, a pressing plate is provided at the end of the base far from the conveyor belt, and a baffle with an adjustable distance from the end of the base is provided on the side of the base far from the conveyor belt. A circular knife belt is provided on the frame, and one side of the circular knife belt is located between the end of the base and the baffle. The present utility model can cut short moxa columns of different lengths as needed. When cutting the moxa stick, multiple moxa columns can be cut simultaneously. The cut moxa columns have a flat cross-section and are of the same length, ensuring product quality, and having a high degree of automation and efficiency.

[0004] The above prior art still has deficiencies: when the conveyor belt conveys the moxa stick, it is necessary to place the moxa stick on the conveyor belt one by one, then align the row of moxa sticks, and then enable the subsequent circular knife belt to cut the row of moxa sticks. However, when placing a single moxa stick on the conveyor belt one by one, the moxa stick is prone to rolling on the conveyor belt, resulting in the problem of troublesome moxa stick feeding, and the problem of low efficiency in sorting the moxa stick, which affects the processing efficiency of the moxa column. Therefore, a fully automatic moxa stick cutting and column-making device is needed to solve the above technical problems. Summary of the Invention

[0005] To solve the problems raised in the above background art, the present invention provides a fully automatic moxa stick cutting and column-making device, which has the characteristics of avoiding the problems of rolling and disorder of the moxa stick caused by traditional single placement, improving the feeding efficiency of the moxa stick, and thus improving the processing efficiency of the moxa column.

[0006] To achieve the above object, the present invention provides the following technical solution: a fully automatic moxa stick cutting and column-making device, including a frame, a conveying device, and a cutting device. The conveying device is arranged on the frame, and the cutting device is arranged on one side of the discharging end of the conveying device; It further includes a feeding device for placing rows of moxa sticks onto the conveying device. The feeding device includes a storage bin, and a plurality of spaced-apart material distribution chambers are provided in the storage bin; It further includes a discharging mechanism. The discharging mechanism includes a temporary storage bin and a material blocking bin. The temporary storage bin is horizontally slidably connected to the bottom of the storage bin. A temporary storage chamber with the same number as the material distribution chambers is provided in the temporary storage bin. The temporary storage chambers and the material distribution chambers are arranged alternately, and the temporary storage chambers and the material distribution chambers cooperate together to form a material blocking and discharging structure for the moxa sticks; The material blocking bin is horizontally slidably connected to the bottom of the temporary storage bin. A material blocking chamber with the same number as the temporary storage chambers is provided in the material blocking bin. The material blocking chambers and the temporary storage chambers are arranged alternately, and the material blocking chambers and the temporary storage chambers cooperate together to form a material blocking and discharging structure for the temporary storage bin.

[0007] Preferably, the conveying device includes a conveying frame, a conveyor belt and spacer plates. The conveying frame is fixedly connected to the machine frame. A conveyor belt is drivenly connected to the conveying frame through a belt roller. A plurality of spacer plates are fixedly connected at intervals on the outer surface of the conveyor belt. A placement area for the moxa sticks is formed between the plurality of spacer plates.

[0008] Preferably, a support frame is fixedly connected to the outside of the conveying frame, and the other end of the support frame is fixedly connected to the storage bin.

[0009] Preferably, it further includes a first driving assembly for driving the temporary storage bin to slide horizontally. The first driving assembly includes a sliding plate, a fixing plate and a first cylinder. The sliding plate is slidably connected to the storage bin. The cylinder barrel of the first cylinder is fixedly connected to the storage bin, and the piston rod of the first cylinder is fixedly connected to one end of the sliding plate. The fixing plate is fixedly connected to the temporary storage bin, and the fixing plate and the sliding plate are connected through a third driving assembly for enabling the fixing plate to move following the sliding plate.

[0010] Preferably, slide rails are fixedly connected to both sides of the storage bin where the third driving assembly is located. Sliders are slidably connected to the slide rails, and the other ends of the sliders are fixedly connected to the sliding plate.

[0011] Preferably, it further includes a second driving assembly for driving the material blocking bin to slide horizontally. The first driving assembly includes a pulley seat, a sliding wheel and a second cylinder. The pulley seat is fixedly connected to the material blocking bin. A sliding wheel is rotatably connected to the pulley seat, and the sliding wheel is slidably connected inside a pulley groove provided on the fixing plate. The second cylinder is fixedly connected to the fixing plate, and the piston rod of the second cylinder is fixedly connected to the pulley seat.

[0012] Preferably, the temporary storage bin includes a material blocking bin and a buffer bin. The material blocking bin is horizontally slidably connected to the storage bin. The buffer bin is vertically slidably connected below the material blocking bin, and the buffer bin is fixedly connected to the fixing plate.

[0013] Preferably, it further includes a combining and separating component for making the material blocking bin and the buffer bin in a fixed or separated state. The combining and separating component includes an electromagnet and a metal block. The electromagnet is fixedly connected to the bottom of the material blocking bin, and the metal block is fixedly connected to the top of the buffer bin.

[0014] Preferably, a plurality of the material blocking bins are slidably connected to the storage bin through a limiting component. The limiting component includes a limiting rod, a connecting rod, and a buffer spring. Both ends of the limiting rod are fixedly connected to the storage bin through shaft seats. A connecting rod is slidably sleeved on the limiting rod. The other end of the connecting rod is fixedly connected to the material blocking bin. The buffer spring is movably sleeved on the limiting rod, and both ends of the buffer spring are respectively fixedly connected to the connecting rod and the shaft seat.

[0015] Preferably, the third driving component includes a third air cylinder and a limiting plate. The cylinder barrel of the third air cylinder is fixedly connected to the sliding plate. The piston rod of the third air cylinder movably penetrates through the sliding plate and is fixedly connected to the fixing plate. Limiting plates that are movably inserted through the sliding plate are further arranged on both sides of the third air cylinder, and the other ends of the limiting plates are fixedly connected to the fixing plate.

[0016] Compared with the prior art, the beneficial effects of the present invention are as follows: 1. During the reciprocating switching between the state where the temporary storage cavity and the material distribution cavity are facing each other or misaligned, the moxa sticks in the material distribution cavity can enter the temporary storage bin one by one. During the reciprocating switching between the state where the material blocking cavity and the temporary storage cavity are facing each other or misaligned, the moxa sticks in the material blocking bin can be discharged from the temporary storage bin one by one. Thus, during the intermittent movement of the conveyor belt, the row of moxa sticks can be successively sent into each placement area on the conveyor belt, avoiding the problems of moxa stick rolling and unevenness caused by traditional single placement of moxa sticks, improving the feeding efficiency of moxa sticks, and thus improving the processing efficiency of moxa cones.

[0017] 2. Through the first driving component provided in the present invention, the temporary storage bin drives the material blocking bin to perform reciprocating sliding in the horizontal direction relative to the storage bin, so that the temporary storage cavity and the material distribution cavity can be in a facing or misaligned state. Through the second driving component provided, the material blocking bin performs reciprocating sliding in the horizontal direction relative to the temporary storage bin, so that the material blocking cavity and the temporary storage cavity can be in a facing or misaligned state.

[0018] 3. Through the combining and separating component provided in the present invention, the material blocking bin and the buffer bin can be in a fixed or separated state, enabling the buffer bin to drive the material blocking bin to perform reciprocating sliding in the horizontal direction, or when the buffer bin can perform reciprocating movement in the vertical direction, the material blocking bin can still block the storage bin.

[0019] 4. By providing the limiting component, when the buffer bin and the material blocking bin are in a separated state, under the elastic action of the buffer spring, the material blocking bin can be in an initial state to block the moxa sticks in the storage bin, avoiding the phenomenon that the material blocking bin slides freely at the bottom of the storage bin, and thus preventing the moxa sticks in the storage bin from sliding out automatically.

[0020] 5. By providing the third driving component, not only can the fixed plate slide horizontally back and forth following the sliding plate, but also the buffer bin can drive the material blocking bin to slide vertically back and forth relative to the storage bin, so that the buffer bin and the material blocking bin extend into the placement area for discharging operations, or the buffer bin and the material blocking bin are separated from the placement area, and the conveyor belt can drive the moxa sticks to be conveyed normally. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] The drawings are used to provide a further understanding of the present invention and constitute a part of the specification. Together with the embodiments of the present invention, they are used to explain the present invention and do not constitute a limitation to the present invention. In the drawings: Figure 1 is a three-dimensional structural schematic diagram of the present invention; Figure 2 is a top-view structural schematic diagram of the present invention; Figure 3 is a three-dimensional structural schematic diagram of the feeding device of the present invention; Figure 4 is a sectional structural schematic diagram of the feeding device of the present invention; Figure 5 is a top-view structural schematic diagram of the feeding device of the present invention; Figure 6 is a three-dimensional structural schematic diagram of the separated state of the material blocking bin and the buffer bin of the present invention; Figure 7 is a sectional structural schematic diagram of the separated state of the material blocking bin and the buffer bin of the present invention; Figure 8 is a main-view exploded structural schematic diagram of the feeding device of the present invention; Figure 9 is a side-sectional structural schematic diagram of the storage bin of the present invention; Figure 10 is a side-sectional structural schematic diagram of the temporary storage bin of the present invention; Figure 11 is a side-sectional structural schematic diagram of the material blocking bin of the present invention; In the figure: 100, frame; 200, conveying device; 201, conveying frame; 202, conveyor belt; 203, spacer; 300, loading device; 301, storage bin; 302, material distribution chamber; 303, temporary storage bin; 303a, material blocking bin; 303b, buffer bin; 304, temporary storage chamber; 305, material retaining bin; 306, material retaining chamber; 307, first driving assembly; 307a, sliding plate; 307b, fixing plate; 307c, first cylinder; 307d, slide rail; 307e, slider; 308, second driving assembly; 308a, pulley seat; 308b, sliding wheel; 308c, second cylinder; 309, third driving assembly; 309a, third cylinder; 309b, limiting plate; 310, combining and separating assembly; 310a, electromagnet; 310b, metal block; 311, limiting assembly; 311a, limiting rod; 311b, connecting rod; 311c, buffer spring. Detailed implementation manner

[0022] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0023] Embodiment 1 Please refer to Figures 1-3 , this embodiment provides the following technical solutions: A fully automatic moxa stick cutting device, including a frame 100, a conveying device 200 and a cutting device. The conveying device 200 is arranged on the frame 100, and the cutting device is arranged on one side of the discharging end of the conveying device 200.

[0024] The conveying device 200 includes a conveying frame 201, a conveyor belt 202 and a spacer 203. The conveying frame 201 is fixedly connected to the frame 100. The conveyor belt 202 is connected to the conveying frame 201 through a belt roller. A plurality of spacers 203 are fixedly connected at intervals on the outer surface of the conveyor belt 202. A placement area for moxa sticks is formed between the plurality of spacers 203. By means of the spacers 203 arranged on the conveyor belt 202, the row of moxa sticks placed on the conveyor belt 202 can be conveyed.

[0025] It further includes a feeding device 300 for placing rows of moxa sticks onto the conveying device 200. The feeding device 300 is arranged above the feeding end of the conveyor belt 202. The feeding device 300 includes a storage bin 301, and a number of spaced-apart material distribution cavities 302 are provided inside the storage bin 301. By means of the provided storage bin 301 and material distribution cavities 302, the moxa sticks to be cut can be placed inside the storage bin 301, and the moxa sticks entering the storage bin 301 roll in sequence, enabling the moxa sticks to enter each material distribution cavity 302, thus completing the material distribution operation of the moxa sticks.

[0026] A support frame is fixedly connected to the outside of the conveying frame 201, and the other end of the support frame is fixedly connected to the storage bin 301.

[0027] In some embodiments, the length of the material distribution cavity 302 is slightly greater than the length of the moxa stick, and the width of the powder cavity is slightly greater than the diameter of the moxa stick, which can perform the neatening operation on the moxa stick while performing the material distribution of the moxa stick.

[0028] It further includes a discharging mechanism. The discharging mechanism includes a temporary storage bin 303 and a material blocking bin 305. The temporary storage bin 303 is horizontally slidably connected to the bottom of the storage bin 301. A number of temporary storage cavities 304 identical in quantity to the material distribution cavities 302 are provided inside the temporary storage bin 303. The temporary storage cavities 304 and the material distribution cavities 302 are arranged staggeredly. The temporary storage cavities 304 and the material distribution cavities 302 cooperate together to form a structure for blocking and discharging the moxa sticks. By means of the provided temporary storage bin 303, the temporary storage cavities 304 and the material distribution cavities 302 can be in a facing or misaligned state. When the temporary storage cavities 304 and the material distribution cavities 302 are in a facing state, the moxa sticks in the material distribution cavities 302 can fall into the temporary storage bin 303. When the temporary storage cavities 304 and the material distribution cavities 302 are in a misaligned state, the temporary storage bin 303 can block the moxa sticks in the material distribution bin to prevent the moxa sticks from sliding out of the material distribution cavities 302 freely. When the temporary storage bin 303 slides horizontally back and forth, the steps of the temporary storage cavities 304 and the material distribution cavities 302 facing or misaligning can be repeated, so that the moxa sticks in the material distribution cavities 302 can enter the temporary storage bin 303 one by one.

[0029] The material baffle bin 305 is horizontally slidably connected to the bottom of the temporary storage bin 303. A material baffle cavity 306 with the same number as the temporary storage cavities 304 is arranged in the material baffle bin 305. The material baffle cavities 306 and the temporary storage cavities 304 are staggered. The material baffle cavities 306 and the temporary storage cavities 304 cooperate to form a material baffle and discharging structure of the temporary storage bin 303. By the slidably arranged material baffle bin 305, the material baffle cavities 306 and the temporary storage cavities 304 can be in a facing or misaligned state. When the material baffle cavities 306 and the temporary storage cavities 304 are in a facing state, the moxa sticks in the temporary storage cavities 304 can be discharged from the temporary storage bin 303. When the material baffle cavities 306 and the temporary storage cavities 304 are in a misaligned state, the moxa sticks in the temporary storage cavities 304 can be blocked to prevent the moxa sticks in the temporary storage cavities 304 from sliding out of the temporary storage bin 303 freely. Thus, during the intermittent movement of the conveyor belt 202, the row of moxa sticks can be successively sent into each placement area on the conveyor belt 202, avoiding the problems of moxa stick rolling and disorder caused by the traditional single placement of moxa sticks, improving the feeding efficiency of moxa sticks, and thus improving the processing efficiency of moxa cones.

[0030] It further includes a first driving assembly 307 for driving the temporary storage bin 303 to perform horizontal sliding. There are two groups of the first driving assemblies 307, and the two groups of the first driving assemblies 307 are arranged on the front and rear sides of the storage bin 301. The first driving assembly 307 includes a sliding plate 307a, a fixing plate 307b, and a first air cylinder 307c. The sliding plate 307a is slidably connected to the storage bin 301. The cylinder barrel of the first air cylinder 307c is fixedly connected to the storage bin 301, and the piston rod of the first air cylinder 307c is fixedly connected to one end of the sliding plate 307a. The fixing plate 307b is fixedly connected to the temporary storage bin 303, and the fixing plate 307b and the sliding plate 307a are connected by a third driving assembly 309 for making the fixing plate 307b move following the sliding plate 307a. By the arranged first driving assembly 307, the temporary storage bin 303 drives the material baffle bin 305 to perform reciprocating sliding in the horizontal direction relative to the storage bin 301, so that the temporary storage cavities 304 and the material distribution cavities 302 can be in a facing or misaligned state.

[0031] Sliding rails 307d are fixedly connected to both the left and right sides of the storage bin 301 where the third driving assembly 309 is located. Sliders 307e are slidably connected to the sliding rails 307d, and the other ends of the sliders 307e are fixedly connected to the sliding plate 307a. By the arranged sliding rails 307d and sliders 307e, the sliding plate 307a can be limited in the horizontal direction.

[0032] It further includes a second driving component 308 for driving the material retaining bin 305 to slide horizontally. There are two sets of the second driving components 308, and the two second driving components are respectively arranged on the front and rear sides of the material retaining bin 305. The first driving component 307 includes a pulley seat 308a, a sliding wheel 308b, and a second air cylinder 308c. The pulley seat 308a is fixedly connected to the material retaining bin 305. There are multiple pulley seats 308a, and the multiple pulley seats 308a are arranged at intervals along the length direction of the fixing plate 307b. A sliding wheel 308b is rotatably connected to the pulley seat 308a, and the sliding wheel 308b is slidably connected inside a pulley groove provided on the fixing plate 307b. The second air cylinder 308c is fixedly connected to the fixing plate 307b, and the piston rod of the second air cylinder 308c is fixedly connected to one of the outermost pulley seats 308a. By providing the second air cylinder 308c, the material retaining bin 305 can reciprocally slide horizontally relative to the temporary storage bin 303 along the fixing plate 307b, so that the material retaining cavity 306 and the temporary storage cavity 304 can be in a facing or misaligned state.

[0033] Embodiment 2 As Figures 6-11 shown, the temporary storage bin 303 includes a material blocking bin 303a and a buffer bin 303b. The material blocking bin 303a is horizontally slidably connected to the storage bin 301, the buffer bin 303b is vertically slidably connected below the material blocking bin 303a, and the buffer bin 303b is fixedly connected to the fixing plate 307b.

[0034] It further includes a combining and separating component 310 for making the material blocking bin 303a and the buffer bin 303b in a fixed or separated state. The combining and separating component 310 includes an electromagnet 310a and a metal block 310b. The electromagnet 310a is fixedly connected to the bottom of the material blocking bin 303a, and the metal block 310b is fixedly connected to the top of the buffer bin 303b. By providing the electromagnet 310a and the metal block 310b, the electromagnet 310a can be powered on or off, so that the electromagnet 310a adsorbs the metal block 310b, or the metal block 310b is separated from the electromagnet 310a, enabling the material blocking bin 303a and the buffer bin 303b to be in a fixed or separated state, and enabling the buffer bin 303b to drive the material blocking bin 303a to reciprocally slide horizontally, or when the buffer bin 303b can reciprocally move vertically, the material blocking bin 303a can still block the storage bin 301.

[0035] A plurality of material blocking bins 303a are slidably connected to the material storage bin 301 through a limiting component 311. There are two groups of limiting components 311, and the two groups of limiting components are respectively arranged on the front and rear sides of the material storage bin 301. The limiting component 311 includes a limiting rod 311a, a connecting rod 311b, and a buffer spring 311c. The left and right ends of the limiting rod 311a are fixedly connected to the material storage bin 301 through shaft seats. A connecting rod 311b is slidably sleeved on the limiting rod 311a, and the other end of the connecting rod 311b is fixedly connected to the material blocking bin 303a. By providing the limiting rod 311a and the connecting rod 311b, when the electromagnet 310a adsorbs the metal block 310b, during the movement of the buffer bin 303b, the material blocking bin 303a can move along with the buffer bin 303b, so that the material blocking bin 303a can slide along the limiting rod 311a.

[0036] The buffer spring 311c is movably sleeved on the limiting rod 311a, and the left and right ends of the buffer spring 311c are respectively fixedly connected to the connecting rod 311b and the shaft seat. By providing the buffer spring 311c, when the buffer bin 303b and the material blocking bin 303a are in a separated state, under the elastic action of the buffer spring 311c, the material blocking bin 303a is in an initial state, blocking the moxa sticks in the material storage bin 301, and avoiding the phenomenon that the material blocking bin 303a freely slides at the bottom of the material storage bin 301, thereby preventing the moxa sticks in the material storage bin 301 from automatically sliding out of the material storage bin 301.

[0037] The third driving component 309 includes a third air cylinder 309a and a limiting plate 309b. The cylinder barrel of the third air cylinder 309a is fixedly connected to the sliding plate 307a, the piston rod of the third air cylinder 309a movably penetrates through the sliding plate 307a and is fixedly connected to the fixing plate 307b. Limiting plates 309b that are movably inserted through the sliding plate 307a are also arranged on the left and right sides of the third air cylinder 309a. The bottom end of the limiting plate 309b is fixedly connected to the fixing plate 307b. By providing the third air cylinder 309a and the limiting plate 309b, not only can the fixing plate 307b reciprocally slide horizontally along with the sliding plate 307a, but also the buffer bin 303b can drive the material blocking bin 305 to reciprocally slide vertically relative to the material storage bin 301, so that the buffer bin 303b and the material blocking bin 305 extend into the placement area for discharging operations, or the buffer bin 303b and the material blocking bin 305 are separated from the placement area, and the conveyor belt 202 can drive the moxa sticks to be normally conveyed.

[0038] The working principle of the present invention: In the original state, the temporary storage bin 303 is arranged on the left side below the material storage bin 301. The temporary storage cavity 304 and the material distribution cavity 302 are in a misaligned state, and the buffer bin 303b and the material blocking bin 303a are in a fixed state. The material blocking bin 305 is located on the right side below the temporary storage bin 303, and the material blocking cavity 306 and the temporary storage cavity 304 are in a misaligned state. In use, start the conveyor belt 202 for conveying. When the placement area of the conveyor belt 202 is directly opposite to the feeding device 300, start the second cylinder 308c, so that the sliding plate 307a drives the slider 307e and the fixing plate 307b to slide to the right along the slide rail 307d, making the temporary storage cavity 304 on the temporary storage bin 303 correspond to the material distribution cavity 302 in the storage bin 301 one by one. At this time, the single moxa stick at the bottom of each material distribution cavity 302 will fall into the temporary storage cavity 304. At the same time, reset the second cylinder 308c. At this time, the temporary storage cavity 304 is in a misaligned state with the material distribution cavity 302, and the temporary storage bin 303 can block the moxa sticks in the material distribution cavity 302 again. Thus, when the temporary storage bin 303 repeats the left and right reciprocating motion, the moxa sticks in the material distribution cavity 302 can enter the temporary storage cavity 304 one by one; Then cut off the power supply of the electromagnet 310a. At this time, the metal block 310b on the material blocking bin 303a is separated from the electromagnet 310a on the storage bin 301. Then start the third cylinder 309a. Under the limiting action of the limiting plate 309b, the fixing plate 307b drives the buffer bin 303b and the material blocking bin 305 to move towards the conveyor belt 202. After moving to the appropriate position, start the first cylinder 307c, so that the pulley seat 308a and the sliding wheel 308b slide along the pulley groove on the fixing plate 307b, making the material blocking bin 305 slide to the right on the buffer bin 303b. When the material blocking cavity 306 on the material blocking bin 305 is directly opposite to the temporary storage cavity 304 on the buffer bin 303b, the moxa sticks in each temporary storage cavity 304 in the buffer bin 303b fall into the placement area on the conveyor belt 202 through the material blocking cavity 306 in the material blocking bin 305. At this time, the placement operation of the required row of moxa sticks is completed; Then reset the first cylinder 307c and the third cylinder 309a, and then start the conveyor belt 202 to make the next prevention area on the conveyor belt 202 correspond to the feeding device 300 again. Repeat the above operations to place the moxa sticks in the material distribution cavity 302 on the conveyor belt 202 in rows in turn.

[0039] Finally, it should be noted that the above are only the preferred embodiments of the present invention and are not used to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements on some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.

Claims

1. A fully automatic moxa stick cutting device, comprising a frame (100), a conveying device (200) and a cutting device, wherein the frame (100) is provided with the conveying device (200), and the cutting device is provided on one side of a material discharge end of the conveying device (200); Features: It also includes a loading device (300) for placing rows of moxa sticks onto the conveying device (200), wherein the loading device (300) includes a storage bin (301), wherein a plurality of spaced-apart material distribution chambers (302) are provided in the storage bin (301); The device also comprises a material discharge mechanism, wherein the material discharge mechanism comprises a temporary storage bin (303) and a material blocking bin (305), wherein the temporary storage bin (303) is horizontally slidably connected to the bottom of the material storage bin (301), wherein the temporary storage bin (303) is provided with temporary storage cavities (304) whose number is the same as the material distribution cavities (302), wherein the temporary storage cavities (304) and the material distribution cavities (302) are alternately arranged, and the temporary storage cavities (304) and the material distribution cavities (302) cooperate with each other to form a material blocking and discharge structure for moxa sticks; The material blocking bin (305) is horizontally slidably connected to the bottom of the temporary storage bin (303); the material blocking bin (305) is provided with material blocking cavities (306) whose number is the same as the temporary storage cavities (304); the material blocking cavities (306) and the temporary storage cavities (304) are arranged alternately; the material blocking cavities (306) and the temporary storage cavities (304) cooperate with each other to form a material blocking and discharging structure of the temporary storage bin (303).

2. A fully automatic moxa stick cutting device according to claim 1, characterized in that: The conveying device (200) comprises a conveying frame (201), a conveying belt (202) and a spacer plate (203); the conveying frame (201) is fixedly connected to a frame (100); the conveying frame (201) is connected to the conveying belt (202) via a belt roller transmission; a plurality of spacers (203) are fixedly connected to the outer surface of the conveying belt (202) at intervals; a moxa stick placement area is formed between the plurality of spacers (203).

3. A fully automatic moxa stick cutting device according to claim 2, characterized in that: A support frame is fixedly connected to the outer side of the conveying frame (201), and the other end of the support frame is fixedly connected to the material storage bin (301).

4. A fully automatic moxa stick cutting device according to claim 1, characterized in that: The invention also comprises a first driving assembly (307) for driving the temporary storage bin (303) to slide horizontally, wherein the first driving assembly (307) comprises a sliding plate (307a), a fixed plate (307b) and a first cylinder (307c), wherein the sliding plate (307a) is slidably connected to the material storage bin (301), the cylinder barrel of the first cylinder (307c) is fixedly connected to the material storage bin (301), the piston rod of the first cylinder (307c) is fixedly connected to one end of the sliding plate (307a), the fixed plate (307b) is fixedly connected to the temporary storage bin (303), and the fixed plate (307b) and the sliding plate (307a) are connected via a third driving assembly (309) for causing the fixed plate (307b) to move following the sliding plate (307a).

5. A fully automatic moxa stick cutting device according to claim 4, characterized in that: The storage bin (301) is fixedly connected to slide rails (307d) on both sides of the third drive assembly (309), the slide rails (307d) are slidably connected to a slider (307e), and the other end of the slider (307e) is fixedly connected to the sliding plate (307a).

6. A fully automatic moxa stick cutting device according to claim 4, characterized in that: It also includes a second driving component (308) for driving the material blocking bin (305) to slide horizontally, the first driving component (307) includes a pulley seat (308a), a sliding wheel (308b) and a second cylinder (308c), the pulley seat (308a) is fixedly connected to the material blocking bin (305), the sliding wheel (308b) is rotatably connected to the pulley seat (308a), the sliding wheel (308b) is slidably connected to the inside of a pulley groove provided on the fixed plate (307b), the second cylinder (308c) is fixedly connected to the fixed plate (307b), and the piston rod of the second cylinder (308c) is fixedly connected to the pulley seat (308a).

7. A fully automatic moxa stick cutting device according to claim 6, characterized in that: The temporary storage bin (303) comprises a material blocking bin (303a) and a buffer bin (303b); the material blocking bin (303a) is horizontally slidably connected to the material storage bin (301); the buffer bin (303b) is vertically slidably connected below the material blocking bin (303a); and the buffer bin (303b) is fixedly connected to a fixed plate (307b).

8. A fully automatic moxa stick cutting device according to claim 7, characterized in that: It also includes a closing and splitting assembly (310) for placing the material blocking bin (303a) and the buffer bin (303b) in a fixed or separated state, the closing and splitting assembly (310) comprising an electromagnet (310a) and a metal block (310b), the electromagnet (310a) being fixedly connected to the bottom of the material blocking bin (303a), and the metal block (310b) being fixedly connected to the top of the buffer bin (303b).

9. A fully automatic moxa stick cutting device according to claim 7, characterized in that: The material blocking bin (303a) is slidably connected to the material storage bin (301) via a plurality of limiting assemblies (311); the limiting assemblies (311) comprise a limiting rod (311a), a connecting rod (311b) and a buffer spring (311c); both ends of the limiting rod (311a) are fixedly connected to the material storage bin (301) via an axle seat; a connecting rod (311b) is slidably sleeved on the limiting rod (311a); the other end of the connecting rod (311b) is fixedly connected to the material blocking bin (303a); the buffer spring (311c) is movably sleeved on the limiting rod (311a); and both ends of the buffer spring (311c) are fixedly connected to the connecting rod (311b) and the axle seat, respectively.

10. The fully automatic moxa stick cutting device according to claim 4, characterized in that: The third driving assembly (309) comprises a third cylinder (309a) and a limit plate (309b); the cylinder barrel of the third cylinder (309a) is fixedly connected to the sliding plate (307a); the piston rod of the third cylinder (309a) movably passes through the sliding plate (307a) and is fixedly connected to the fixed plate (307b); both sides of the third cylinder (309a) are provided with limit plates (309b) movably passed through the sliding plate (307a); the other end of the limit plate (309b) is fixedly connected to the fixed plate (307b).

Citation Information

Patent Citations

  • Full-automatic moxa stick column cutting machine

    CN218699292U