High-efficiency twisting and impurity removing integrated Chinese mugwort processing device
By designing a Qi Ai processing device that integrates efficient rolling and decomposition removal, and using a transmission motor drive turntable and hinge rod for material rolling and molding, the problem of low discharge and forming efficiency in the existing devices is solved, and automated processing and efficient molding are achieved.
Patent Information
- Application Number
- CN202510783598.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-12
- Publication Date
- 2025-07-25
AI Technical Summary
The existing Qi Ai processing equipment is inefficient during the discharge and forming process, resulting in excessive labor burden and requires manual molding and processing.
A high-efficiency rolling and decomposition processing device is designed, including shock-absorbing and loading feeding components, a thrashing and crushing mechanism, a vibration screening removal mechanism and a rolling and discharging component. The reciprocating hinge transmission is carried out through the transmission motor drive turntable and hinge rod to realize the rolling and forming of materials.
It improves the efficiency and quality of Qi Ai processing, reduces the processing burden of users, and realizes an automated feeding and forming process.
Smart Images

Figure CN120362007A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of Qi Ai processing, in particular to a Qi Ai processing device integrating high-efficiency rolling and impurity removal. Background Art
[0002] Qi Ai is a soft, cotton-like item obtained by repeatedly drying, pounding, and crushing mugwort leaves, and sifting out impurities and dust. Mugwort wool is the raw material for making moxa sticks and is also the main material used in moxibustion. It is made from the dried leaves of the wormwood plant of the Asteraceae family. It is grayish white in color, soft like velvet, flammable but not flame-prone, and has a fragrant smell, making it suitable for moxibustion. It can be coarse or fine according to the degree of processing. The coarse ones are mostly used for warming needles or making moxa sticks, and the fine ones are mostly used for making moxa cones. The aged ones have the best texture.
[0003] When the existing Qi Ai processing device is in use, such as the application number CN202421310364.5 discloses a Qi Ai wool processing and pounding device, including a roller and a pounding hammer, support components are installed at both ends of the roller, and the support component includes a sleeve plate and a bracket, a feed component is installed on the sleeve plate, and the feed component includes a hopper and an inlet, and a rotating component is installed at the bottom of the roller, and the rotating component includes a motor 1 and a gear, and a drive component is installed on the sleeve plate, and the drive component includes a motor 2 and a crankshaft, and a transmission component is installed on the crankshaft. The Qi Ai wool processing and pounding device can automatically turn over the Qi Ai after the pounding operation is completed. Operation, thereby effectively ensuring the uniformity of the pounding of Qi Ai, avoiding the situation that Qi Ai is over-pounded or under-pounded, improving the processing quality of Qi Ai, ensuring that the pounding of Qi Ai is carried out while adding and discharging, reducing the time wasted in adding and discharging, and improving work efficiency, is suitable for the pounding processing of Qi Ai; however, in the above technology, after the Qi Ai is crushed, it is not easy to discharge the material effectively, and it also needs subsequent manual shaping processing. The long-term processing imposes an effective burden on manpower and is inefficient. For this reason, we propose a Qi Ai processing device that integrates efficient kneading and impurity removal to solve the above problems. Summary of the invention
[0004] In view of the above problems, the present invention proposes a Qi Ai processing device with integrated high-efficiency kneading and impurity removal. The Qi Ai processing device with integrated high-efficiency kneading and impurity removal mainly utilizes the output operation of the lower through-duct to open the lower pneumatic valve plate, so that the material is input between the force-bearing plate and the kneading plate, and finally the transmission motor on the connecting frame outputs power to drive the output end to operate, so that the turntable, hinge rod, and articulated base perform reciprocating hinge transmission, so that the kneading process between the force-bearing plate and the kneading plate can effectively shape the processed material, while reducing the processing burden of users, it can effectively improve the processing efficiency and quality of the equipment.
[0005] To achieve the above object, the present invention provides the following technical solutions:
[0006] An integrated processing device for efficient kneading and impurity removal of Artemisia argyi includes a shock-absorbing loading and feeding component and a kneading and discharging component. A hammering and pulverizing mechanism is arranged inside the top end of the shock-absorbing loading and feeding component through bolt socketing. A vibration screening and impurity removal mechanism is arranged inside the middle part of the shock-absorbing loading and feeding component through bolt assembly. A kneading and discharging component is arranged inside the lower part of the shock-absorbing loading and feeding component.
[0007] As a further technical solution, the shock-absorbing loading and feeding component includes a base plate, a bolt support, a shock absorber, a lifting frame, a side seat, a through cabin, a feeding nozzle and a cover plate. Bolt supports are arranged above the four sides of the base plate through bolt assembly. Shock absorbers are arranged above the outer ends of the bolt supports. A lifting frame is arranged above the shock absorbers. A side seat is arranged at the top end of the lifting frame through bolt assembly. A through cabin is arranged on the inner side of the side seat. A feeding nozzle is arranged above one end of the through cabin. A cover plate is arranged at the top end of the feeding nozzle.
[0008] As a further technical solution, the hammering and pulverizing mechanism includes a drum box, a gear disk, a bearing frame, a rotating motor, a driving gear, a chassis base, a speed-changing gearbox, a driving motor, a meshing gear set, a pulley, a belt pulley, a rotating shaft, a rotating base, a steel cable, a hammering ball and a pulverizing knife. The drum box is arranged on the inner side of the through cabin. A gear disk is arranged on the inner side of the drum box. Bearing frames are sleeved at both ends of the gear disk through bearings. Rotating motors are arranged on the outer sides of both ends of the bearing frames. A driving gear is arranged at the output end of the rotating motor. The chassis base is bolted above one end of the side seat.
[0009] As a further technical solution, a speed-changing gearbox is arranged inside the upper part of the chassis base. A driving motor is arranged on one side above the speed-changing gearbox. A meshing gear set is arranged at the output end of the driving motor. A pulley is arranged at the output end of the meshing gear set. A belt pulley is arranged at the output end of the pulley through belt drive connection. A rotating shaft is arranged at the output end of the belt pulley. A rotating base is arranged on the outer side of the rotating shaft. A steel cable is arranged on the outer side of the outer group of the rotating base. A hammering ball is arranged at one end of the steel cable. A pulverizing knife is arranged on the outer side of the inner group of the rotating base.
[0010] As a further technical solution, the vibration screening and impurity removal mechanism includes a bolt substrate, an outer frame, a bearing base, a vibration motor, a vibration cylinder, an eccentric wheel group, a screening machine case, an upper through duct, an upper pneumatic valve plate, an inclined spacer, an upper screening mesh, a lower screening mesh, a side opening plate, a non-woven fabric sheet, an inclined patch, a cleaning box, an electrostatic suction mesh, a sleeve cylinder, and a pushing sheet. The bolt substrate is bolted to the side of the elevation frame. An outer frame is provided on the outer side of the bolt substrate. A bearing base is provided at the outer end of the outer frame, and a vibration motor is provided on the outer side of the bearing base. The output end of the vibration motor is provided with a vibration cylinder, and an eccentric wheel group is provided inside the vibration cylinder.
[0011] As a further technical solution, a screening machine case is provided on the inner side of the bolt substrate, and an upper through duct is provided above the middle of the screening machine case. The output end of the upper through duct is provided with an upper pneumatic valve plate. An inclined spacer is provided on the inner side of the screening machine case, and an upper screening mesh is provided on the inner upper side of the inclined spacer, and a lower screening mesh is provided on the inner lower side of the inclined spacer.
[0012] As a further technical solution, side opening plates assembled by bolts are provided at both ends of the screening machine case, and a non-woven fabric sheet is provided on the inner middle side of the side opening plate. An inclined patch is provided on the outer upper side of the side opening plate, and a cleaning box is provided on the inner side of the inclined patch. An electrostatic suction mesh is provided inside the cleaning box. A sleeve cylinder is provided on the inner lower side of the side opening plate, and the output end of the sleeve cylinder is provided with a pushing sheet.
[0013] As a further technical solution, the rolling and discharging component includes a connecting sleeve frame, a transmission motor, a turntable, a hinge rod, a hinge base, a rolling plate, a slider, a stress sheet, a damper, a lower through duct, and a lower pneumatic valve plate. The connecting sleeve frame is provided in the inner middle of the bolt support base. A transmission motor is provided below the connecting sleeve frame, and the output end of the transmission motor is provided with a turntable. A hinge rod is provided above the turntable, and a hinge base is provided above the hinge rod. A rolling plate is provided above the hinge base, and sliders are provided above both ends of the rolling plate.
[0014] As a further technical solution, a stress sheet is provided above the slider, and dampers are provided above the four sides of the stress sheet. A lower through duct is provided on the inner side of the stress sheet, and a lower pneumatic valve plate is provided on the inner side of the lower through duct.
[0015] Compared with the prior art, the beneficial effects of the present invention are:
[0016] The inventive device mainly utilizes the output operation of the lower through-duct to open the lower pneumatic valve plate, so that the material is input between the force-receiving piece and the kneading plate. Finally, the transmission motor on the connecting sleeve frame outputs power to drive the output end to operate, so that the turntable, hinge rod, and hinge base perform reciprocating hinge transmission, and the material between the force-receiving piece and the kneading plate is kneaded and processed so that the processed material can be effectively formed, which can effectively improve the processing efficiency and quality of the equipment while reducing the processing burden of users. Description of the Drawings
[0017] Figure 1 It is a schematic structural diagram of an integrated Qiai processing device for efficient kneading and impurity removal;
[0018] Figure 2 It is a schematic structural diagram of the present invention when viewed from below;
[0019] Figure 3 It is a schematic sectional structural diagram of the present invention;
[0020] Figure 4 It is a schematic structural diagram of the hammering and crushing mechanism of the present invention;
[0021] Figure 5 It is a schematic structural diagram of the vibrating screening and impurity removal mechanism of the present invention;
[0022] Figure 6 It is a schematic structural diagram of the eccentric wheel group of the present invention;
[0023] Figure 7 It is a schematic structural diagram of the kneading and discharging component of the present invention.
[0024] In the figure: 1. Shock-absorbing loading and feeding assembly; 101. Base cushion plate; 102. Bolt support; 103. Shock absorber; 104. Lifting frame; 105. Side seat; 106. Penetrating cabin; 107. Feeding nozzle; 108. Cover plate; 2. Hammering and crushing mechanism; 201. Drum box; 202. Tooth disc; 203. Bearing frame; 204. Rotating motor; 205. Driving gear; 206. Chassis base; 207. Speed-changing gearbox; 208. Driving motor; 209. Meshing gear set; 2010. Pulley; 2011. Driving pulley; 2012. Rotating shaft; 2013. Rotating base; 2014. Steel cable; 2015. Hammering ball; 2016. Crushing knife; 3. Vibration screening and impurity removal mechanism; 301. Bolt base plate; 302. Outer frame; 303. Bearing base; 304. Vibration motor; 305. Vibration cylinder; 306. Eccentric wheel set; 307. Screening chassis; 308. Upper penetrating duct; 309. Upper pneumatic valve plate; 3010. Inclined spacer; 3011. Upper screening mesh; 3012. Lower screening mesh; 3013. Side opening plate; 3014. Non-woven fabric sheet; 3015. Inclined patch; 3016. Cleaning box; 3017. Electrostatic suction net; 3018. Sleeve cylinder; 3019. Pushing piece; 4. Kneading and discharging component; 401. Connecting sleeve frame; 402. Transmission motor; 403. Turntable; 404. Hinge rod; 405. Hinge base; 406. Kneading plate; 407. Slide block; 408. Stress piece; 409. Damper; 4010. Lower penetrating duct; 4011. Lower pneumatic valve plate. Detailed implementation mode
[0025] In the description of the present invention, it should be understood that the orientation or positional relationship indicated by the terms "center", "longitudinal", "transverse", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present invention. In addition, the terms "first", "second", etc. are only used for descriptive purposes, and cannot be understood as indicating or implying relative importance or implicitly indicating the quantity of the indicated technical features. Thus, the features defined with "first", "second", etc. may explicitly or implicitly include one or more of such features. In the description of the present invention, unless otherwise specified, the meaning of "a plurality" is two or more.
[0026] In the description of the present invention, it should be noted that unless otherwise clearly specified and defined, the terms "installed", "connected", and "coupled" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two components. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific situations.
[0027] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with 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.
[0028] Please refer to Figure 1-7 , in the embodiment of the present invention, an integrated processing device for efficient kneading and impurity removal of Artemisia argyi includes a shock-absorbing loading and feeding component 1 and a kneading and discharging component 4. A hammering and crushing mechanism 2 is arranged inside the top end of the shock-absorbing loading and feeding component 1 in a bolt-socketed manner, a vibrating screening and impurity removal mechanism 3 is arranged inside the middle of the shock-absorbing loading and feeding component 1 in a bolt-assembled manner, and a kneading and discharging component 4 is arranged inside the lower part of the shock-absorbing loading and feeding component 1.
[0029] The shock-absorbing loading and feeding component 1 includes a base plate 101, a bolt bracket 102, a shock absorber 103, a lifting frame 104, a side seat 105, a through cabin 106, a feeding nozzle 107, and a cover plate 108. Bolt brackets 102 are arranged above the four circumferences of the base plate 101 in a bolt-assembled manner, shock absorbers 103 are arranged above the outer ends of the bolt brackets 102, a lifting frame 104 is arranged above the shock absorbers 103, side seats 105 are arranged at the top ends of the lifting frames 104 in a bolt-assembled manner, a through cabin 106 is arranged on the inner side of the side seats 105, a feeding nozzle 107 is arranged above one end of the through cabin 106, and a cover plate 108 is arranged at the top end of the feeding nozzle 107.
[0030] In the embodiment of the present invention, when in use, after being assembled through the base plate 101 and the bolt bracket 102, the shock absorbers 103 and the lifting frame 104 are used to splice each component, so that the shock-absorbing effect can be achieved during the operation of the device. After the assembly is completed, the cover plate 108 is opened to input a sufficient amount of materials into the feeding nozzle 107, and the cover plate 108 closes the feeding nozzle 107.
[0031] The hammering and crushing mechanism 2 includes a drum box 201, a gear disk 202, a bearing frame 203, a rotating motor 204, a driving gear 205, a chassis base 206, a speed-changing gearbox 207, a driving motor 208, a meshing gear set 209, a pulley 2010, a belt pulley 2011, a rotating shaft 2012, a rotating base 2013, a steel cable 2014, a hammer ball 2015, and a crushing knife 2016. The drum box 201 is arranged on the inner side of the through cabin 106. A gear disk 202 is arranged on the inner side of the drum box 201, and bearing frames 203 sleeved with bearings are arranged at both ends of the gear disk 202. Rotating motors 204 are arranged on the outer sides of both ends of the bearing frame 203, and driving gears 205 are arranged at the output ends of the rotating motors 204. The chassis base 206 is bolted above one end of the side seat 105.
[0032] In an embodiment of the present invention, then the rotating motors 204 arranged on the outer sides of both ends of the bearing frame 203 are used to output power to drive the output ends to operate, so that the driving gears 205 rotate. After the driving gears 205 rotate, they can drive the gear disks 202 to perform meshing transmission, so that the drum box 201 performs preliminary rolling operation on the materials.
[0033] A speed-changing gearbox 207 is arranged on the inner side above the chassis base 206, and a driving motor 208 is arranged on one side above the speed-changing gearbox 207. A meshing gear set 209 is arranged at the output end of the driving motor 208, a pulley 2010 is arranged at the output end of the meshing gear set 209, a belt pulley 2011 connected by belt drive is arranged at the output end of the pulley 2010, a rotating shaft 2012 is arranged at the output end of the belt pulley 2011, a rotating base 2013 is arranged on the outer side of the rotating shaft 2012, a steel cable 2014 is arranged on the outer side of the outer group of the rotating base 2013, a hammer ball 2015 is arranged at one end of the steel cable 2014, and a crushing knife 2016 is arranged on the outer side of the inner group of the rotating base 2013.
[0034] In an embodiment of the present invention, then the driving motor 208 on the outer side above the speed-changing gearbox 207 is used to output power to drive the output ends to operate, so that after the driving motor 208 outputs power to operate, it drives the meshing gear set 209 inside the speed-changing gearbox 207 to perform meshing transmission operation, so that the pulley 2010 and the belt pulley 2011 perform belt drive operation, and after the rotating shaft 2012, the rotating base 2013, the steel cable 2014, the hammer ball 2015, and the crushing knife 2016 rotate together, the materials achieve the effect of crushing and hammering.
[0035] The vibration screening and impurity removal mechanism 3 includes a bolt substrate 301, an outer frame 302, a bearing base 303, a vibration motor 304, a vibration cylinder 305, an eccentric wheel group 306, a screening machine box 307, an upper through duct 308, an upper pneumatic valve plate 309, an inclined spacer 3010, an upper screening mesh 3011, a lower screening mesh 3012, a side opening plate 3013, a non-woven fabric sheet 3014, an inclined patch 3015, a cleaning box 3016, an electrostatic suction mesh 3017, a sleeved cylinder 3018, and a pushing piece 3019. The bolt substrate 301 is bolted to the side of the elevation frame 104. An outer frame 302 is provided on the outer side of the bolt substrate 301. A bearing base 303 is provided at the outer end of the outer frame 302. A vibration motor 304 is provided on the outer side of the bearing base 303. The output end of the vibration motor 304 is provided with a vibration cylinder 305. An eccentric wheel group 306 is provided inside the vibration cylinder 305.
[0036] In an embodiment of the present invention, then the vibration motor 304 on the outer side of the bearing base 303 outputs power to drive the output end to operate, so that after the output operation, the eccentric wheel group 306 inside the vibration cylinder 305 is driven to operate, so as to make the device produce an effective vibration effect.
[0037] A screening machine box 307 is provided on the inner side of the bolt substrate 301. An upper through duct 308 is provided above the middle of the screening machine box 307. The output end of the upper through duct 308 is provided with an upper pneumatic valve plate 309. An inclined spacer 3010 is provided on the inner side of the screening machine box 307. An upper screening mesh 3011 is provided on the inner side above the inclined spacer 3010. A lower screening mesh 3012 is provided on the inner side below the inclined spacer 3010.
[0038] In an embodiment of the present invention, then after the upper pneumatic valve plate 309 at the output end of the upper through duct 308 is opened, the processed material is input into the screening machine box 307, and is effectively separated and screened by the inclined spacer 3010, the upper screening mesh 3011, and the lower screening mesh 3012.
[0039] Bolt-assembled side opening plates 3013 are provided at both ends of the screening machine box 307. A non-woven fabric sheet 3014 is provided on the inner side of the middle of the side opening plate 3013. An inclined patch 3015 is provided on the outer side above the side opening plate 3013. A cleaning box 3016 is provided on the inner side of the inclined patch 3015. An electrostatic suction mesh 3017 is provided inside the cleaning box 3016. A sleeved cylinder 3018 is provided on the inner side below the side opening plate 3013. The output end of the sleeved cylinder 3018 is provided with a pushing piece 3019.
[0040] In an embodiment of the present invention, during the screening process, the electrostatic suction net 3017 in the cleaning box 3016 is output, so that fine materials are input into the cleaning box 3016 through the non-woven fabric sheet 3014 for temporary storage, and the sleeved cylinder 3018 outputs and operates to make the pushing sheet 3019 push the materials.
[0041] The rolling and discharging component 4 includes a connecting sleeve frame 401, a transmission motor 402, a turntable 403, a hinge rod 404, a hinged base 405, a rolling plate 406, a slider 407, a stress piece 408, a damper 409, a lower through duct 4010 and a lower pneumatic valve plate 4011. The connecting sleeve frame 401 is arranged inside the middle of the bolt support 102. A transmission motor 402 is arranged below the connecting sleeve frame 401, and a turntable 403 is arranged at the output end of the transmission motor 402. A hinge rod 404 is arranged above the turntable 403, and a hinged base 405 is arranged above the hinge rod 404. A rolling plate 406 is arranged above the hinged base 405, and sliders 407 are arranged above both ends of the rolling plate 406.
[0042] In an embodiment of the present invention, then the transmission motor 402 on the connecting sleeve frame 401 outputs power to drive the output end to operate, so that the turntable 403, the hinge rod 404, and the hinged base 405 output and operate to reciprocate the rolling plate 406, and thus the rolling plate 406 cooperates with the stress piece 408 to achieve the effect of rolling and processing into strips.
[0043] A stress piece 408 is arranged above the slider 407, dampers 409 are arranged above the periphery of the stress piece 408, a lower through duct 4010 is arranged on the inner side of the stress piece 408, and a lower pneumatic valve plate 4011 is arranged on the inner side of the lower through duct 4010.
[0044] In an embodiment of the present invention, then the lower pneumatic valve plate 4011 on the lower through duct 4010 is opened, so that the materials are input downward through the stress piece 408.
[0045] The working principle of the present invention is as follows: During use, after assembling through the base backing plate 101 and the bolt support 102, the shock absorber 103 and the elevation frame 104 are used to splice each component, so that the equipment achieves a shock-absorbing effect during operation. After the assembly is completed, the cover plate 108 is opened to input a sufficient amount of materials into the feed nozzle 107, and the cover plate 108 closes the feed nozzle 107. Then, the rotation motor 204 arranged on the outer sides of both ends of the bearing frame body 203 outputs power to drive the output end to operate, so that the driving gear 205 rotates. After the driving gear 205 rotates, it can drive the toothed disc 202 to engage and drive, so that the drum box 201 performs a preliminary rolling operation on the materials. Then, the driving motor 208 arranged on the outer side above the speed change gear box 207 outputs power to drive the output end to operate. After the driving motor 208 outputs power to operate, it drives the meshing gear set 209 inside the speed change gear box 207 to perform meshing transmission operation, so that the belt pulley 2010 and the transmission belt pulley 2011 perform belt transmission operation, and the common rotation of the rotating shaft 2012, the rotating base 2013, the steel cable 2014, the hammer ball 2015 and the crushing knife 2016 causes the materials to achieve the effect of crushing and hammering. Then, the vibration motor 304 arranged on the outer side of the bearing base 303 outputs power to drive the output end to operate. After the output operation, it drives the eccentric wheel set 306 inside the vibration cylinder 305 to operate, so that the equipment generates an effective vibration effect. Then, after the upper pneumatic valve plate 309 at the output end of the upper through duct 308 is opened, the processed materials are input into the screening machine box 307, and are effectively separated and screened by the inclined partition 3010, the upper screening mesh 3011 and the lower screening mesh 3012. During the screening process, the static electricity suction mesh 3017 in the cleaning box 3016 is output, so that the fine materials are input into the cleaning box 3016 through the non-woven fabric sheet 3014 for temporary storage, and the sleeve cylinder 3018 outputs operation to enable the pushing piece 3019 to push the materials. Then, the transmission motor 402 on the connecting sleeve frame 401 outputs power to drive the output end to operate. After the output operation of the turntable 403, the hinge rod 404 and the hinge base 405, the reciprocating operation of the kneading plate 406 is achieved, so that the kneading plate 406 cooperates with the stress receiving piece 408 to achieve the effect of kneading and processing into strips. Then, after the lower pneumatic valve plate 4011 on the lower through duct 4010 is opened, the materials are input to the lower part through the stress receiving piece 408.
[0046] It is obvious to those skilled in the art that the present invention is not limited to the details of the above-described exemplary embodiments, and that the present invention can be implemented in other specific forms without departing from the spirit or essential characteristics of the present invention. Therefore, in any aspect, the embodiments should be regarded as exemplary and non-limiting. The scope of the present invention is defined by the appended claims rather than the above description. Therefore, all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be embraced within the present invention. Any reference signs in the claims should not be construed as limiting the claims involved.
[0047] In addition, it should be understood that although this specification is described according to embodiments, not every embodiment only contains an independent technical solution. This narrative way of the specification is only for clarity. Those skilled in the art should regard the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. An integrated processing device for efficient kneading and impurity removal of Artemisia argyi Lévl. et Vant., comprising a shock-absorbing loading and feeding assembly (1) and a kneading and discharging component (4), characterized in that: Inside the top end of the shock-absorbing loading and feeding component (1), there is a hammering and crushing mechanism (2) sleeved with bolts. Inside the middle of the shock-absorbing loading and feeding component (1), there is a vibrating screening and impurity removing mechanism (3) assembled with bolts. Inside the lower part of the shock-absorbing loading and feeding component (1), there is a rolling and discharging component (4).
2. The integrated Qiai processing device for efficient rolling and impurity removal according to claim 1, characterized in that: The shock-absorbing loading and feeding component (1) includes a base cushion plate (101), a bolt support (102), a shock absorber (103), a lifting frame (104), a side seat (105), a through cabin (106), a feeding nozzle (107) and a cover plate (108). Above the four sides of the base cushion plate (101), there is a bolt support (102) assembled with bolts. Above the outer end of the bolt support (102), there is a shock absorber (103). Above the shock absorber (103), there is a lifting frame (104). At the top of the lifting frame (104), there is a side seat (105) assembled with bolts. Inside the inner side of the side seat (105), there is a through cabin (106). Above one end of the through cabin (106), there is a feeding nozzle (107). At the top of the feeding nozzle (107), there is a cover plate (108).
3. An Artemisia argyi processing device integrating efficient rolling and impurity removal according to claim 2, characterized in that: The hammering and crushing mechanism (2) includes a drum box (201), a gear disk (202), a bearing frame (203), a rotating motor (204), a driving gear (205), a machine base (206), a speed-changing gearbox (207), a driving motor (208), a meshing gear set (209), a pulley (2010), a driving belt pulley (2011), a rotating shaft (2012), a rotating base (2013), a steel cable (2014), a hammer ball (2015) and a crushing knife (2016). The drum box (201) is arranged inside the inner side of the through cabin (106). Inside the inner side of the drum box (201), there is a gear disk (202). At both ends of the gear disk (202), there is a bearing frame (203) sleeved with bearings. On the outer sides of both ends of the bearing frame (203), there is a rotating motor (204). At the output end of the rotating motor (204), there is a driving gear (205). The machine base (206) is bolted above one end of the side seat (105).
4. An Artemisia argyi processing device integrating efficient rolling and impurity removal according to claim 3, characterized in that: Above the inner side of the chassis base (206), a speed change gearbox (207) is provided. On one side above the speed change gearbox (207), a driving motor (208) is provided. At the output end of the driving motor (208), a meshing gear set (209) is provided. At the output end of the meshing gear set (209), a pulley (2010) is provided. At the output end of the pulley (2010), a driving belt pulley (2011) connected by a belt drive is provided. At the output end of the driving belt pulley (2011), a rotating shaft (2012) is provided. On the outer side of the rotating shaft (2012), a rotating base (2013) is provided. On the outer side of the rotating base (2013), a steel cable (2014) is provided. At one end of the steel cable (2014), a hammer ball (2015) is provided. On the outer side of the inner set of the rotating base (2013), a crushing knife (2016) is provided.
5. An Artemisia argyi processing device integrating efficient kneading and impurity removal according to claim 2, characterized in that: The vibration screening and impurity removal mechanism (3) includes a bolt substrate (301), an outer frame (302), a bearing base (303), a vibration motor (304), a vibration cylinder (305), an eccentric wheel set (306), a screening chassis (307), an upper through duct (308), an upper pneumatic valve plate (309), an inclined spacer (3010), an upper screening mesh (3011), a lower screening mesh (3012), a side opening plate (3013), a non-woven fabric sheet (3014), an inclined patch (3015), a cleaning box (3016), an electrostatic suction mesh (3017), a sleeve cylinder (3018), and a pushing piece (3019). The bolt substrate (301) is bolted to the side of the elevation frame (104). On the outer side of the bolt substrate (301), an outer frame (302) is provided. At the outer end of the outer frame (302), a bearing base (303) is provided. On the outer side of the bearing base (303), a vibration motor (304) is provided. At the output end of the vibration motor (304), a vibration cylinder (305) is provided. Inside the vibration cylinder (305), an eccentric wheel set (306) is provided.
6. An Artemisia argyi processing device integrating efficient rolling and impurity removal according to claim 5, characterized in that: On the inner side of the bolt substrate (301), a screening chassis (307) is provided. Above the middle of the screening chassis (307), an upper through duct (308) is provided. At the output end of the upper through duct (308), an upper pneumatic valve plate (309) is provided. On the inner side of the screening chassis (307), an inclined spacer (3010) is provided. Above the inner side of the inclined spacer (3010), an upper screening mesh (3011) is provided. Below the inner side of the inclined spacer (3010), a lower screening mesh (3012) is provided.
7. An Artemisia argyi processing device integrating efficient rolling and impurity removal according to claim 5, characterized in that: Both ends of the screening machine box (307) are provided with side opening plates (3013) assembled by bolts. Inside the middle of the side opening plate (3013), there is a non-woven fabric sheet (3014). Outside the upper part of the side opening plate (3013), there is an inclined patch (3015). Inside the inner side of the inclined patch (3015), there is a cleaning box (3016). Inside the cleaning box (3016), there is an electrostatic suction net (3017). Inside the lower part of the side opening plate (3013), there is a sleeve cylinder (3018). The output end of the sleeve cylinder (3018) is provided with a pushing sheet (3019).
8. An Artemisia argyi processing device integrating efficient rolling and impurity removal according to claim 2, characterized in that: The rolling and discharging component (4) includes a connecting sleeve frame (401), a transmission motor (402), a turntable (403), a hinge rod (404), a hinge base (405), a rolling plate (406), a slider (407), a stress piece (408), a damper (409), a lower through duct (4010) and a lower pneumatic valve plate (4011). The connecting sleeve frame (401) is arranged inside the middle of the bolt support (102). Below the connecting sleeve frame (401), there is a transmission motor (402). The output end of the transmission motor (402) is provided with a turntable (403). Above the turntable (403), there is a hinge rod (404). Above the hinge rod (404), there is a hinge base (405). Above the hinge base (405), there is a rolling plate (406). Above the two ends of the rolling plate (406), there are sliders (407).
9. An Artemisia argyi processing device integrating efficient rolling and impurity removal according to claim 8, characterized in that: Above the slider (407), there is a stress piece (408). Above the periphery of the stress piece (408), there are dampers (409). Inside the inner side of the stress piece (408), there is a lower through duct (4010). Inside the inner side of the lower through duct (4010), there is a lower pneumatic valve plate (4011).
Citation Information
Patent Citations
Hammering and mashing device for processing Chinese mugwort floss
CN222842198U
Raw material rolling equipment for wormwood texturing
CN211303299U
Kneading machine used in traditional Chinese medicine processing
CN211461261U
Chili mincing device for chili sauce processing
CN211755703U
Moxa extraction equipment
CN217368670U