Artemisia argyi strip processing equipment
By using hydraulic adjustment and auxiliary feeding mechanisms, the problem of frequent mold changes in the production of mugwort sticks has been solved, thereby improving production efficiency and ease of operation.
Patent Information
- Application Number
- CN202511378309.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-25
- Publication Date
- 2026-01-23
- Estimated Expiration
- 2045-09-25
AI Technical Summary
The current production process of mugwort sticks involves frequent mold changes, resulting in high operational complexity and low production capacity.
The system employs a hydraulic adjustment mechanism and an auxiliary feeding mechanism. The size of the mugwort sticks is adjusted by hydraulically changing the number of mold sets. Combined with the unloading mechanism and clamping mechanism, it achieves the goal of eliminating the need for manual mold replacement and simplifying operation.
This technology eliminates the need for manual mold changes during the production of mugwort sticks, improving production efficiency and ease of operation while reducing the complexity of manual operations.
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Figure CN120863129B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the technical field of mugwort extrusion processing, and relates to a mugwort strip processing equipment. Background Technology
[0002] Artemisia argyi is a traditional Chinese medicinal herb and natural plant resource with a long history of application and widespread market demand in traditional Chinese medicine therapy, health preservation, and daily chemical products. Among them, moxa sticks (also known as moxibustion sticks) are one of the most common processed products of artemisia argyi, mainly used in moxibustion therapy. The heat and medicinal effects generated by burning the moxa sticks act on acupoints on the human body to achieve the effects of warming the meridians and dispelling cold, promoting blood circulation and unblocking collaterals, and strengthening yang and consolidating the body. In the production process, moxa sticks are mostly produced by extruding artemisia argyi into shape.
[0003] Currently, the production process of mugwort usually involves using a press to shape it. During production, mugwort floss is filled into a mold, and then the press squeezes the mugwort into the mold to form a cylindrical finished product, which is mugwort strip. However, the thickness of mugwort strips varies depending on the specifications, and each time a new model is produced, the corresponding mold needs to be changed. This results in frequent mold changes during production, which is inconvenient and increases the complexity of manual operation and downtime, affecting overall production capacity. Summary of the Invention
[0004] In view of this, the present invention provides a processing device for mugwort into strips.
[0005] The technical solution is as follows: A processing equipment for Artemisia argyi into strips includes a frame, a cylinder, a pusher plate, pressure rods, a forming mold frame, a base plate, an adjustment mechanism, and a hydraulic mechanism. A cylinder is installed in the middle of the top of the frame. A pusher plate is connected to the telescopic rod of the cylinder. Five pressure rods are evenly spaced on both sides of the bottom of the pusher plate. A forming mold frame is connected to the middle of the frame, located below the pressure rods. Five forming grooves are evenly spaced on both sides of the forming mold frame. A base plate is connected to the bottom of the frame, located below the forming mold frame. An adjustment mechanism is provided inside the forming mold frame. A hydraulic mechanism is provided between the base plate and the adjustment mechanism.
[0006] Furthermore, the adjustment mechanism includes a model sleeve, a pusher column, and a pusher sleeve. Ten sets of model sleeves are provided, with four model sleeves in each set, gradually increasing in size and stacked on top of each other. The ten sets of model sleeves are located within ten forming grooves. A pressure rod extends into the upper part of the middle model sleeve. A pusher column is slidably connected to the innermost model sleeve. The pusher column and the innermost model sleeve are in a sliding, sealed fit. Hydraulic chambers are formed between adjacent model sleeves, between the pusher column and the model sleeve, and between the outermost model sleeve and the inner wall of the forming groove. These hydraulic chambers, numbered 1-5 from the inside out, store hydraulic oil. Ten sets of pusher sleeves are provided, with four pusher sleeves in each set, gradually increasing in size and stacked on top of each other. Adjacent pusher sleeves are threaded together. The ten sets of pusher sleeves are respectively fitted onto the outside of the ten pressure rods. The bottom of the pressure rods has external threads, and the innermost pusher sleeve can be threadedly connected to the bottom of the pressure rod.
[0007] Furthermore, the hydraulic mechanism includes an oil guide pipe, an oil suction pipe, a connecting pipe, a delivery pipe, a solenoid valve, a hydraulic oil pump, and a through pipe. The top center of the base plate is connected to the oil guide pipe, and five oil suction pipes are evenly spaced on both sides of the oil guide pipe. The oil suction pipes are connected to the connecting pipes, and five delivery pipes are evenly spaced on the connecting pipes. Four of the delivery pipes extend into the liquid storage chamber of the mold sleeve, and the other delivery pipe extends between the pusher column and the innermost mold sleeve. A solenoid valve is installed on the upper part of the delivery pipe, and the solenoid valves are numbered 1-5 from the inside to the outside. A hydraulic oil pump is installed on the top of the frame, and an through pipe connects the hydraulic oil pump to the oil guide pipe.
[0008] Furthermore, it also includes an unloading mechanism, which includes an electric push rod, a push frame, and a pad. The electric push rod is installed on both sides of the middle of the frame. There are two push frames, which are connected to each other. Both push frames are located at the top of the forming mold frame and are in contact with the top of the forming mold frame. Pads are connected to both sides of the push frame. The telescopic rod of the electric push rod is connected to the pad.
[0009] Furthermore, it also includes an auxiliary feeding mechanism, which includes a support frame, a support plate, a partition, and a feeding cylinder. Two support frames are connected to both sides of the middle of the frame, and two support plates are rotatably connected between the two support frames. A partition is connected inside the pusher frame, and five feeding cylinders are evenly spaced on both sides of the partition.
[0010] Furthermore, it also includes a drive mechanism, which includes a guide frame, an electric push rod II, a transmission gear, and a bidirectional rack. The guide frame is connected to two support frames on one side, and the electric push rod II is installed at the bottom of the guide frame. The bidirectional rack is connected to the telescopic rod of the electric push rod II. The bidirectional rack is connected to the transmission shaft of the support plate, and the two sides of the bidirectional rack mesh with two transmission gears that are close to it.
[0011] Furthermore, it also includes a clamping mechanism, which includes an air pump, an air injection pipe and an annular air bladder. The annular air bladder is installed inside the feeding cylinder, and the air pump is installed on the frame. The air outlet of the air pump is connected to the air injection pipe, which is divided into two sections. The two sections of the air injection pipe extend into two pusher frames and are connected to the inside of the annular air bladder at the two pusher frames.
[0012] Furthermore, it also includes a collection frame, with the collection frame slidably connected to both sides of the bottom inside the frame.
[0013] The beneficial effects are as follows: 1. When extruding mugwort sticks, the present invention can adjust the number of mold sleeves located below the pressure bar by means of hydraulic pressure, thereby adjusting the size of the extruded mugwort sticks. There is no need to manually change the mold for adjustment, making the operation more convenient and thus ensuring the efficiency of mugwort stick production.
[0014] 2. When adding mugwort, this invention only requires placing the mugwort into the feeding cylinder. Then, the feeding and unloading of mugwort can be carried out by moving the feeding cylinder. There is no need for manual operation to stuff the mugwort into the mold sleeve or to take out the formed mugwort strips, making the operation more convenient. Attached Figure Description
[0015] Figure 1 This is a three-dimensional structural diagram of the present invention.
[0016] Figure 2 This is a schematic diagram of the pusher plate, pressure bar, and forming mold frame of the present invention.
[0017] Figure 3 This is a cross-sectional view of the present invention.
[0018] Figure 4 This is a schematic diagram of the adjustment mechanism and hydraulic mechanism of the present invention.
[0019] Figure 5 For the present invention Figure 4 Enlarged view of part A in the image.
[0020] Figure 6 For the present invention Figure 4 Enlarged view of part B in the image.
[0021] Figure 7 This is a cross-sectional view of the adjustment mechanism and hydraulic mechanism of the present invention.
[0022] Figure 8 This is a schematic diagram of the auxiliary feeding mechanism of the present invention.
[0023] Figure 9 This is a schematic diagram of the first structure of the auxiliary feeding mechanism and the feeding mechanism of the present invention.
[0024] Figure 10 This is a schematic diagram of a second structure of the auxiliary feeding mechanism and the feeding mechanism of the present invention.
[0025] Figure 11 This is a cross-sectional view of the auxiliary feeding mechanism and the feeding mechanism of the present invention.
[0026] Figure 12 This is a schematic diagram of the clamping mechanism of the present invention.
[0027] Figure 13 This is a cross-sectional view of the clamping mechanism of the present invention.
[0028] In the diagram: 1. Frame, 2. Cylinder, 3. Pusher plate, 4. Pressure rod, 5. Forming mold frame, 6. Base plate, 71. Mold sleeve, 72. Pusher column, 73. Pusher sleeve, 81. Oil guide pipe, 82. Oil suction pipe, 83. Connecting pipe, 84. Conveying pipe, 85. Solenoid valve, 86. Hydraulic oil pump, 87. Oil passage pipe, 91. Electric pusher rod one, 92. Pusher frame, 93. Pad plate, 101. Support plate, 102. Partition plate, 103. Feeding cylinder, 104. Guide frame, 105. Electric pusher rod two, 106. Transmission gear, 107. Double rack, 108. Support frame, 111. Air pump, 112. Air injection pipe, 113. Annular airbag, 12. Collection frame. Detailed Implementation
[0029] The present invention will be further described below with reference to specific embodiments. It should also be noted that, unless otherwise explicitly specified and limited, terms such as "set," "install," "connect," and "link" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in the present invention based on the specific circumstances.
[0030] A type of equipment for processing mugwort into strips, such as Figures 1-7 As shown, the machine includes a frame 1, a cylinder 2, a pusher plate 3, a pressure rod 4, a forming mold frame 5, a base plate 6, an adjustment mechanism, and a hydraulic mechanism. The cylinder 2 is installed in the middle of the top of the frame 1. The pusher plate 3 is connected to the telescopic rod of the cylinder 2. Five pressure rods 4 are evenly spaced on both the front and rear sides of the bottom of the pusher plate 3. The forming mold frame 5 is connected to the middle of the frame 1. The forming mold frame 5 is located below the pressure rods 4. Five forming grooves are evenly spaced on both the front and rear sides of the forming mold frame 5. The base plate 6 is connected to the bottom of the frame 1. The base plate 6 is located below the forming mold frame 5. An adjustment mechanism is provided inside the forming mold frame 5. A hydraulic mechanism is provided between the base plate 6 and the adjustment mechanism.
[0031] like Figures 3-7 As shown, the adjustment mechanism includes a model sleeve 71, a pusher column 72, and a pusher sleeve 73. Ten sets of model sleeves 71 are provided, with four model sleeves 71 in each set, gradually increasing in size and stacked on top of each other. Adjacent model sleeves 71 can slide against each other. The ten sets of model sleeves 71 are located in ten forming grooves and can slide within the forming grooves. The pressure rod 4 extends into the upper part of the middle model sleeve 71. The pusher column 72 is slidably connected to the innermost model sleeve 71. The pusher column 72 and the innermost model sleeve 71 are in a sliding sealing fit. Adjacent model sleeves 71... Hydraulic chambers are formed between the pusher column 72 and the mold sleeve 71, and between the outermost mold sleeve 71 and the inner wall of the molding groove. The hydraulic chambers from the inside to the outside are hydraulic chambers 1-5. Hydraulic oil is stored in the hydraulic chambers. Ten sets of pusher sleeves 73 are provided. Each set of pusher sleeves 73 has four pusher sleeves 73, which are gradually increased in size and stacked on top of each other. The two adjacent pusher sleeves 73 are threaded together. The ten sets of pusher sleeves 73 are respectively sleeved on the outside of the ten pressure rods 4. The bottom of the pressure rod 4 is provided with external threads. The innermost pusher sleeve 73 can be connected to the bottom of the pressure rod 4 by threads.
[0032] like Figures 3-7 As shown, the hydraulic mechanism includes an oil guide pipe 81, an oil suction pipe 82, a connecting pipe 83, a delivery pipe 84, a solenoid valve 85, a hydraulic oil pump 86, and an oil passage pipe 87. The top center of the base plate 6 is connected to the oil guide pipe 81. Five oil suction pipes 82 are evenly spaced on both the front and rear sides of the oil guide pipe 81. The oil suction pipes 82 are connected to the connecting pipes 83. Five delivery pipes 84 are evenly spaced on the connecting pipes 83. Four of the delivery pipes 84 extend into the liquid storage chamber of the model sleeve 71, and the other delivery pipe 84 extends between the pusher column 72 and the innermost model sleeve 71. A solenoid valve 85 is installed on the upper part of the delivery pipe 84. The solenoid valves 85 from the inside to the outside are numbered 1-5. A hydraulic oil pump 86 is installed on the top left side of the frame 1. The hydraulic oil pump 86 is connected to the oil guide pipe 81 by an oil passage pipe 87.
[0033] When it is necessary to process mugwort into strips, this processing equipment can be used. First, open the control solenoid valve 85 to control the hydraulic oil pump 86 to draw oil. Through the oil pipe 87, guide pipe 81, suction pipe 82, and connecting pipe 83, a negative pressure is generated in the delivery pipe 84. At this time, because the control solenoid valve 85 is open, the hydraulic oil in the hydraulic chamber 1 will enter the delivery pipe 84, causing the pusher column 72 to move down. After the pusher column 72 moves down, close the control solenoid valve 85 and the hydraulic oil pump 86. Then, the mugwort can be placed into the innermost mold. Inside the mold sleeve 71, the extension rod of the control cylinder 2 can be extended to drive the pusher plate 3 downward. When the pusher plate 3 moves downward, it can drive the pressure rod 4 downward. When the pressure rod 4 moves downward, it can extend into the innermost mold sleeve 71. Then the pressure rod 4 continues to move downward, and can contact the mugwort inside the mold sleeve 71 and squeeze the mugwort inside the mold sleeve 71. At the bottom of the mugwort, there is a pusher column 72 to squeeze it. Under the combined action of the pusher column 72 and the pressure rod 4, the mugwort can be squeezed into strips. After the squeezing is completed, the hydraulic oil pump 86 can be controlled to operate. When the oil supply and control solenoid valve 85 (number 1) is opened, the hydraulic oil pump 86 can deliver hydraulic oil into the hydraulic chamber 1 through the delivery pipe 84, causing the extrusion pusher 72 to move upward. This upward movement of the pusher 72 pushes the formed mugwort strip out of the mold sleeve 71, and then the formed mugwort strip can be removed. This process is repeated to process and shape mugwort strips using this device. In actual operation, if it is necessary to control the thickness of the formed mugwort strip, different solenoid valves 85 (numbers 1-5) can be opened for adjustment. For example, a thicker mugwort strip... If the mugwort stick is thin, the larger-numbered solenoid valve 85 can be opened. If the mugwort stick is thin, the smaller-numbered solenoid valve 85 can be opened. After adjusting the mold sleeve 71, the pusher sleeve 73 needs to be pulled down and installed on the bottom of the pressure rod 4 by thread. The number of pusher sleeves 73 installed on the pressure rod 4 should be the same as the number of times the mold sleeve 71 is moved down. This ensures that the pressure rod 4 and the pusher sleeve 73 can work together to squeeze the mugwort stick. In this way, it is easier to adjust the thickness of the mugwort stick being squeezed and the operation is more convenient.
[0034] like Figure 8 As shown, it also includes an unloading mechanism, which includes an electric push rod 91, a push frame 92, and a pad 93. The electric push rod 91 is installed on both the front and rear sides of the middle of the frame 1. There are two push frames 92, which are connected to each other. Both push frames 92 are located on the top of the forming mold frame 5 and are in contact with the top of the forming mold frame 5. The pads 93 are connected to the rear of the left and right sides of the push frames 92. The telescopic rod of the electric push rod 91 is connected to the pad 93 so that the operation of the electric push rod 91 can drive the push frame 92 to move.
[0035] After the mugwort is compressed into strips, when it is necessary to unload the mugwort strips, the electric push rod 91 can be extended to move the pad 93 backward. When the pad 93 moves backward, it can move the two pusher frames 92 backward. When the rear pusher frame 92 moves backward, it can unload the formed mugwort strips. The subsequently compressed mugwort strips will be located in the front pusher frame 92. When it is necessary to unload them next time, the electric push rod 91 can be retracted to unload the mugwort strips. In this way, the unloading of mugwort strips can be achieved more conveniently.
[0036] like Figures 9-11 As shown, it also includes an auxiliary feeding mechanism, which includes a support frame 108, a support plate 101, a partition plate 102, and a feeding cylinder 103. The left and right sides of the middle of the frame 1 are each connected to a front and rear support frame 108. Two support plates 101 are rotatably connected between the right sides of the front and rear support frames 108. The support plates 101 can support the pusher frame 92. The pusher frame 92 is connected to the partition plate 102. Five feeding cylinders 103 are evenly spaced on the front and rear sides of the partition plate 102. Material is added into the feeding cylinder 103. When the feeding cylinder 103 moves above the forming mold frame 5, the material inside the feeding cylinder 103 will fall into the forming mold frame 5.
[0037] like Figures 9-11 As shown, it also includes a drive mechanism, which includes a guide frame 104, an electric push rod 105, a transmission gear 106, and a double rack 107. The guide frame 104 is connected to the support frame 108 on the right side. The electric push rod 105 is installed at the bottom of the guide frame 104. The double rack 107 is connected to the telescopic rod of the electric push rod 105. The double rack 107 is connected to the transmission shaft of the support plate 101. The two sides of the double rack 107 mesh with two transmission gears 106 that are close to it, so that the movement of the double rack 107 can drive the two support plates 101 to rotate through the transmission gears 106.
[0038] like Figure 1 As shown, it also includes a collection frame 12. The collection frame 12 is slidably connected to the front and rear sides of the bottom of the frame 1. The collection frame 12 is used to collect the formed moxa sticks. The two collection frames 12 are located below the partitions 102 on both sides.
[0039] Before extruding the mugwort sticks, the mugwort can be placed in the feeding cylinder 103. When the pushing frame 92 moves, it can move the feeding cylinder 103 together. When the pushing frame 92 moves the feeding cylinder 103 above the forming mold frame 5, the mugwort in the feeding cylinder 103 also falls into the mold sleeve 71. After the mugwort is extruded into mugwort sticks, the mugwort sticks are pushed out and will be located in the feeding cylinder 103. When the pushing frame 92 continues to move, the mugwort sticks can be transported to the top of the support plate 101 through the feeding cylinder 103. At this time, the electric push rod 1 is controlled. The extension of the telescopic rod causes the bidirectional rack 107 to move upward. When the bidirectional rack 107 moves upward, it drives the transmission gears 106 on both sides to rotate. When the transmission gears 106 rotate, they drive the support plate 101 to rotate, thereby causing the support plate 101 to flip. After the support plate 101 flips, the mugwort strips formed in the feeding cylinder 103 will fall down and fall into the collection frame 12. The collection frame 12 collects the mugwort strips. In this way, the mugwort strips can be added in advance and the formed mugwort strips can be collected, making the operation more convenient.
[0040] like Figure 12 and Figure 13 As shown, it also includes a clamping mechanism, which includes an air pump 111, an air injection pipe 112, and an annular airbag 113. The annular airbag 113 is installed inside the feeding cylinder 103. The air pump 111 is installed on the left side of the frame 1. The air outlet of the air pump 111 is connected to the air injection pipe 112. The air injection pipe 112 is divided into two sections. The two sections of the air injection pipe 112 extend into the two pusher frames 92 respectively and are connected to the inside of the annular airbag 113 at the two pusher frames 92.
[0041] When placing the mugwort into the feeding cylinder 103, the mugwort can be stuffed into the annular air bladder 113 to restrict the mugwort. Then, when the feeding cylinder 103 moves into the mold sleeve 71, the mugwort will fall directly into the mold sleeve 71, avoiding falling to the bottom of the mold sleeve 71. In specific operation, the operation of the air pump 111 can be controlled according to the size of the mugwort strip to be squeezed, so as to inject air into the annular air bladder 113 through the air injection pipe 112 to control the size of the annular air bladder 113, so that the size of the annular air bladder 113 matches the size of the mold sleeve 71.
[0042] The above description is merely a specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in the present invention should be included within the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be determined by the scope of the claims.
Claims
1. A processing device for mugwort into strips, characterized in that, The machine includes a frame (1), a cylinder (2), a pusher plate (3), a pressure rod (4), a forming mold frame (5), a base plate (6), an adjustment mechanism, and a hydraulic mechanism. The cylinder (2) is installed in the middle of the top of the frame (1). The pusher plate (3) is connected to the telescopic rod of the cylinder (2). Five pressure rods (4) are evenly spaced on both sides of the bottom of the pusher plate (3). The forming mold frame (5) is connected in the middle of the frame (1). The forming mold frame (5) is located below the pressure rods (4). Five forming grooves are evenly spaced on both sides of the forming mold frame (5). The base plate (6) is connected to the bottom of the frame (1). The base plate (6) is located below the forming mold frame (5). An adjustment mechanism is provided inside the forming mold frame (5). A hydraulic mechanism is provided between the base plate (6) and the adjustment mechanism. The adjustment mechanism includes a model sleeve (71), a pusher column (72), and a pusher sleeve (73). Ten sets of model sleeves (71) are provided, with four model sleeves in each set, gradually increasing in size and stacked on top of each other. The ten sets of model sleeves (71) are located in ten forming grooves. A pressure rod (4) extends into the upper part of the middle model sleeve (71). The innermost model sleeve (71) is slidably connected to a pusher column (72). The pusher column (72) and the innermost model sleeve (71) are in a sliding, sealed fit. The pusher column (72) and the model sleeve are in close contact with each other. Hydraulic chambers are formed between the sleeves (71) and between the outermost model sleeve (71) and the inner wall of the molding groove. The hydraulic chambers from the inside to the outside are hydraulic chambers 1-5. Hydraulic oil is stored in the hydraulic chambers. Ten sets of push sleeves (73) are provided. Each set of push sleeves (73) has four push sleeves that gradually increase in size and are stacked on top of each other. The two adjacent push sleeves (73) are threaded together. The ten sets of push sleeves (73) are respectively sleeved on the outside of the ten pressure rods (4). The bottom of the pressure rod (4) is provided with external threads. The innermost push sleeve (73) can be connected to the bottom of the pressure rod (4) by threads. The hydraulic mechanism includes an oil guide pipe (81), an oil suction pipe (82), a connecting pipe (83), a delivery pipe (84), a solenoid valve (85), a hydraulic oil pump (86), and an oil passage pipe (87). The top center of the base plate (6) is connected to the oil guide pipe (81). Five oil suction pipes (82) are evenly spaced on both sides of the oil guide pipe (81). The oil suction pipes (82) are connected to the connecting pipes (83), and the connecting pipes (83) are evenly spaced to the five delivery pipes (84). Four delivery pipes (84) extend into the liquid storage chamber of the model sleeve (71), and another delivery pipe (84) extends between the pusher column (72) and the innermost model sleeve (71). A solenoid valve (85) is installed on the upper part of the delivery pipe (84). The solenoid valves (85) from the inside to the outside are numbered 1-5. A hydraulic oil pump (86) is installed on the top of the frame (1). An oil passage pipe (87) connects the hydraulic oil pump (86) and the oil guide pipe (81). It also includes a material unloading mechanism, which includes an electric push rod (91), a push frame (92) and a pad (93). The electric push rod (91) is installed on both sides of the middle part of the frame (1). There are two push frames (92), which are connected to each other. Both push frames (92) are located on the top of the forming mold frame (5) and are in contact with the top of the forming mold frame (5). The pads (93) are connected to both sides of the push frames (92). The telescopic rod of the electric push rod (91) is connected to the pad (93). It also includes an auxiliary feeding mechanism, which includes a support frame (108), a support plate (101), a partition plate (102), and a feeding cylinder (103). Two support frames (108) are connected to both sides of the middle of the frame (1), and two support plates (101) are rotatably connected between the two support frames (108). A partition plate (102) is connected inside the pusher frame (92), and five feeding cylinders (103) are evenly spaced on both sides of the partition plate (102).
2. The artemisia argyi strip processing equipment according to claim 1, characterized in that, It also includes a drive mechanism, which includes a guide frame (104), an electric push rod two (105), a transmission gear (106), and a double rack (107). The guide frame (104) is connected to two support frames (108) on one side. The electric push rod two (105) is installed at the bottom of the guide frame (104). The double rack (107) is connected to the telescopic rod of the electric push rod two (105). The double rack (107) is connected to the transmission shaft of the support plate (101). The double rack (107) meshes with two transmission gears (106) close to it on both sides.
3. The artemisia argyi strip processing equipment according to claim 2, characterized in that, It also includes a clamping mechanism, which includes an air pump (111), an air injection pipe (112) and an annular airbag (113). The annular airbag (113) is installed inside the feeding cylinder (103). The air pump (111) is installed on the frame (1). The air outlet of the air pump (111) is connected to the air injection pipe (112). The air injection pipe (112) is divided into two sections. The two sections of the air injection pipe (112) extend into the two pusher frames (92) respectively and are connected to the inside of the annular airbag (113) at the two pusher frames (92).
4. The artemisia argyi strip processing equipment according to claim 3, characterized in that, It also includes a collection frame (12), and the bottom sides of the frame (1) are slidably connected to the collection frame (12).
Citation Information
Patent Citations
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