Mud beating equipment for konjak food processing
By designing a mud-grinding device that allows for the tilting of the mud-grinding bucket and the switching of the filter plate position, the problem of large particles of konjac that have not been fully ground has been solved, achieving uniformity and continuous processing of konjac paste, avoiding clogging, and improving processing efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- HENAN XINCHUN FOOD IND CO LTD
- Filing Date
- 2026-04-03
- Publication Date
- 2026-05-05
AI Technical Summary
Existing slurry-making equipment often produces large particles that are not fully ground when processing konjac, which can clog conveying pipelines and affect the normal operation of subsequent processing steps.
A mud-making device was designed, which includes a mud-making bucket, a filter plate, a drive mechanism, and a purging component. The drive mechanism causes the mud-making bucket to flip and drives the spiral feed plate to rotate. With the position switching of the filter plate and the purging component, the uniformity of the taro mud and continuous processing are ensured.
This effectively avoids problems such as uneven taro paste particle size and filter plate clogging, enabling continuous processing and efficient processing of konjac.
Smart Images

Figure CN121972269A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of konjac processing technology, specifically a konjac food processing mud-pulverizing device. Background Technology
[0002] Konjac is a high-quality natural food rich in glucomannan and dietary fiber. It is characterized by low fat, low calories, and high satiety. Foods made from konjac, such as konjac tofu, konjac noodles, and konjac cakes, are highly favored by the market due to their unique taste and health benefits, making them an important raw material in the food processing industry. Konjac pulping is a core pre-processing step in the deep processing of konjac foods. After washing, peeling, and cutting, the konjac tubers need to be thoroughly crushed and ground using pulping equipment to transform the lumpy raw material into a uniform konjac paste. This process breaks down the dense fibrous structure of the konjac, fully releasing the internal glucomannan and other effective components, ensuring the smooth progress of subsequent processes such as blending, coagulation, and shaping. Furthermore, controlling the basic fineness of the konjac paste lays a crucial foundation for the taste, appearance, and quality of konjac products, making it a vital link in determining the quality of konjac food processing.
[0003] Currently, the internal cutting and grinding structure design of existing konjac pulping equipment is relatively simple. It usually uses high-speed rotating cutting and grinding rollers to pulp the konjac raw material. However, the konjac pulp processed by this type of structure often contains some large konjac particles that have not been fully ground. These large particles have uneven particle size and hard texture. If they are not treated in a secondary manner, they can easily block the conveying pipelines and filtering devices in subsequent processing, interfere with the normal progress of processes such as batching and coagulation, and affect the overall processing efficiency.
[0004] To address these issues, we provide a konjac food processing equipment for slurry preparation. Summary of the Invention
[0005] The purpose of this invention is to provide a slurry-making device for konjac food processing to solve the problems mentioned in the background art.
[0006] To achieve the above objectives, the present invention provides the following technical solution: A konjac food processing mud-making device includes a middle partition plate. A mounting frame is fixedly connected to one side of the middle partition plate, and a support frame is fixedly connected to the other side of the middle partition plate. A feeding hopper is fixedly connected to the upper end of the support frame. A mud-making barrel is provided between the middle partition plate and the mounting frame. A feeding drum is fixedly connected to one side of the mud-making barrel. The feeding drum is rotatably connected to the middle partition plate. A discharge pipe is fixedly connected to the lower end of the side of the feeding hopper near the mud-making barrel. The discharge pipe passes through the feeding drum. A sealed bearing is installed between the outer wall of the discharge pipe and the inner wall of the feeding drum. A hollow shaft is rotatably connected between the inside of the discharge pipe and the lower end of the feeding hopper. A spiral feeding plate is fixedly connected to the outer surface of the hollow shaft. A drive mechanism for driving the feeding drum and the spiral feeding plate to rotate is provided at the upper end of the support frame. Both ends of the mud-making barrel are fixedly connected to filter plates. A rotating cylinder is fixedly connected to the side of the mud-making barrel away from the feeding rotating cylinder. The rotating cylinder is concentric with the feeding rotating cylinder. A mud-making mechanism for mud-making konjac is provided inside the rotating cylinder. A discharge hopper is provided below the mud-making barrel. The two sides of the discharge hopper are fixedly connected to the middle partition and the mounting frame.
[0007] As a further aspect of the present invention: the driving mechanism includes a transmission shaft, which is rotatably connected between the support frame and the upper end of the intermediate partition plate. The upper end of the support frame is provided with a servo reduction motor for driving the transmission shaft to rotate. A first gear is fixedly connected to one end of the transmission shaft, and a second gear is fixedly connected to the position where the feeding drum passes through the intermediate partition plate. The first gear and the second gear mesh. Both the end of the transmission shaft away from the first gear and the end of the hollow shaft that passes through the feeding hopper are fixedly connected to synchronous pulleys, and a synchronous belt is installed between the two synchronous pulleys.
[0008] As a further embodiment of the present invention: a belt cover is fixedly connected between the lower end of the feed hopper and the upper end of the support frame. The belt cover has a avoidance hole for avoiding the hollow shaft. The end of the hollow shaft that passes through the belt cover is provided with a first rotary joint. One end of the first rotary joint is connected to the hollow shaft. The other end of the first rotary joint is connected to a water inlet pipe. The water inlet pipe is fixedly connected to the belt cover. The end of the water inlet pipe away from the first rotary joint is provided with a pipe joint.
[0009] As a further embodiment of the present invention: a rotating ring is fixedly connected to the upper end of the mounting frame, and the rotating cylinder is rotatably connected to the rotating ring.
[0010] As a further embodiment of the present invention: the sludge-beating mechanism includes an inner casing, which is fixedly connected to the position where the rotating cylinder enters the sludge-beating barrel. A crushing shaft is rotatably connected in the middle of the inner casing, and several crushing blades are fixedly connected on the crushing shaft. A power shaft is rotatably connected inside the rotating cylinder. A second bevel gear is fixedly connected to both the power shaft and the crushing shaft at positions inside the inner casing. The two second bevel gears mesh with each other. A second motor for driving the power shaft to rotate is fixedly connected to the end of the rotating cylinder away from the inner casing.
[0011] As a further embodiment of the present invention: the upper ends of the mounting frame and the middle partition are provided with sliding vertical grooves, and a sliding horizontal frame is provided between the two sliding vertical grooves. Both ends of the sliding horizontal frame are fixedly connected with sliding tenons, which are slidably connected to the sliding vertical grooves. The upper ends of the middle partition and the mounting frame near the sliding tenons and the sliding tenons are fixedly connected with hook posts. Both ends of the sliding horizontal frame are provided with tension springs, and both ends of the tension springs are hooked onto the hook posts. Both ends of the lower end face of the sliding tenons are rotatably connected with rollers. The upper and lower sides of the mud-cleaning bucket are fixedly connected with limiting cams that cooperate with the rollers. The sliding horizontal frame is provided with a purging assembly for purging the filter plate.
[0012] As a further embodiment of the present invention: the purging assembly includes a drive box, which is fixedly connected to the middle of the sliding crossbeam. A hollow air tube is rotatably connected to the middle of the drive box. A avoidance hole for avoiding the hollow air tube is opened in the middle of the sliding crossbeam. A hollow strip is fixedly connected to the lower end of the hollow air tube. A plurality of air blowing holes are provided at the lower end of the hollow strip. A rotating assembly for driving the hollow air tube to rotate is provided on the drive box. A second rotating joint is provided at the end of the hollow air tube away from the hollow strip. One port of the second rotating joint is connected to the upper end of the hollow air tube. The other port of the second rotating joint is connected to an air inlet pipe. A solenoid valve is connected to the air inlet pipe. A bracket for fixing the air inlet pipe is provided at the upper end of both the drive box and the mounting frame.
[0013] As a further embodiment of the present invention: the rotating component includes a first motor, which is fixedly connected to one side of the drive box. The output end of the first motor and the hollow air tube located inside the drive box are both fixedly connected to a first bevel gear, and the two first bevel gears mesh with each other.
[0014] As a further embodiment of the present invention: both sides of the rotating cylinder away from the mud-making bucket are fixedly connected to actuating blocks, the mounting frame is equipped with a limit switch that cooperates with the actuating blocks at the position above the rotating cylinder, and the lower end of the support frame is also provided with an electrical control box.
[0015] As a further embodiment of the present invention: a gear cover for covering the second gear and the first gear is fixedly connected to the intermediate partition plate, and the gear cover is provided with a avoidance opening for avoiding the transmission shaft and the discharge pipe.
[0016] Compared with the prior art, the beneficial effects of the present invention are: This invention utilizes a pulverizing mechanism to crush konjac inside a pulverizing bucket, transforming it into konjac paste. A driving mechanism simultaneously rotates the pulverizing bucket, ensuring continuous collisions between the konjac and the blades, preventing grinding dead zones. Combined with a filter plate, only konjac paste meeting the required particle size passes through, guaranteeing uniformity and preventing uneven particle size distribution. The two filter plates can switch positions, allowing one to discharge konjac paste while the other is in a cleaning position, preventing clogging of the filter plate's holes. Furthermore, the driving mechanism, while rotating the pulverizing bucket, also drives a spiral feeder to feed the konjac, enabling continuous processing. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the structure of the present invention.
[0018] Figure 2 This is a schematic diagram of the structure on the other side of the present invention.
[0019] Figure 3 This is a schematic diagram of the mud-beating bucket in this invention.
[0020] Figure 4 This is a schematic diagram of the feed hopper in this invention.
[0021] Figure 5 This is a schematic diagram of the belt cover structure in this invention.
[0022] Figure 6 This is a schematic diagram of the drive mechanism in this invention.
[0023] Figure 7 This is a schematic diagram of the mud-removing mechanism in this invention.
[0024] Figure 8 This is a partial structural diagram of the present invention.
[0025] Figure 9 This is a schematic diagram of the internal structure of the drive box in this invention.
[0026] The components are as follows: 1. Intermediate partition; 2. Electrical control box; 3. Support frame; 4. Drive mechanism; 5. Rotating ring; 6. Feed hopper; 7. Gear cover; 8. Sludge removal mechanism; 9. Sealed bearing; 10. Sludge removal bucket; 11. Mounting frame; 12. Discharge hopper; 13. Limit switch; 14. Spiral feed plate; 15. Discharge pipe; 16. Rotating drum; 17. Actuating block; 18. Hollow shaft; 19. Water inlet pipe; 20. First rotary joint; 21. Filter plate; 22. Belt cover; 23. Feeding drum.
[0027] First gear; 402, servo geared motor; 403, synchronous pulley; 404, synchronous belt; 405, second gear; 406, drive shaft; 701. Sliding crossbar; 702. First motor; 703. Hollow air pipe; 704. Hollow strip; 705. Drive box; 706. Second rotary joint; 707. Air inlet pipe; 708. Solenoid valve; 709. Sliding vertical groove; 710. Sliding tenon; 711. Tension spring; 712. First bevel gear; 713. Roller; 714. Limiting cam; 801. Power shaft; 802. Second bevel gear; 803. Crushing blade; 804. Crushing shaft; 805. Inner casing; 806. Second motor. Detailed Implementation
[0028] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0029] Please see Figures 1-9In this embodiment of the invention, a konjac food processing mud-making device includes a middle partition plate 1. A mounting frame 11 is fixedly connected to one side of the middle partition plate 1, and a support frame 3 is fixedly connected to the other side of the middle partition plate 1. A feeding hopper 6 is fixedly connected to the upper end of the support frame 3. A mud-making bucket 10 is provided between the middle partition plate 1 and the mounting frame 11. A feeding rotary drum 23 is fixedly connected to one side of the mud-making bucket 10 and is rotatably connected to the middle partition plate 1. A discharge pipe 15 is fixedly connected to the lower end of the feeding hopper 6 near the mud-making bucket 10. The discharge pipe 15 passes through the feeding rotary drum 23, and a gap is formed between the outer wall of the discharge pipe 15 and the inner wall of the feeding rotary drum 23. Equipped with a sealed bearing 9, the discharge pipe 15 is rotatably connected to the lower end of the feed hopper 6 via a hollow shaft 18. A spiral feeding plate 14 is fixedly connected to the outer surface of the hollow shaft 18. The upper end of the support frame 3 is provided with a drive mechanism 4 for driving the feed drum 23 and the spiral feeding plate 14 to rotate. The drive mechanism 4 is used to drive the mud-making bucket 10 to rotate intermittently during operation, so that the mud-making bucket 10 can switch the positions of the two filter plates 21 by rotating 180 degrees each time. At the same time, the drive mechanism 4 can also drive the hollow shaft 18 and the spiral feeding plate 14 fixed on the hollow shaft 18 to rotate, so as to convey konjac into the mud-making bucket 10 and realize the continuous mud-making processing of konjac.
[0030] The drive mechanism 4 includes a drive shaft 406, which is rotatably connected between the support frame 3 and the upper end of the intermediate partition 1. The upper end of the support frame 3 is equipped with a servo reduction motor 402 for driving the drive shaft 406 to rotate. A first gear 401 is fixedly connected to one end of the drive shaft 406, and a second gear 405 is fixedly connected to the position where the feed drum 23 passes through the intermediate partition 1. The first gear 401 and the second gear 405 mesh. Synchronous pulleys 403 are fixedly connected to both the end of the drive shaft 406 away from the first gear 401 and the end of the hollow shaft 18 that extends out of the feed hopper 6. A synchronous belt 404 is installed between the pulleys 403. During operation, the servo geared motor 402 rotates intermittently according to the control settings. When the servo geared motor 402 rotates, it drives the transmission shaft 406 to rotate. The rotation of the transmission shaft 406 drives the first gear 401 to rotate. The first gear 401 drives the second gear 405 to rotate. The rotation of the second gear 405 drives the feeding drum 23 and the mud-making bucket 10 to rotate 180 degrees. At the same time, when the transmission shaft 406 rotates, it drives the synchronous pulley 403 and the synchronous belt 404 to rotate, which in turn drives the hollow shaft 18 and its spiral feeding plate 14 to rotate, so as to convey konjac into the mud-making bucket 10.
[0031] A belt cover 22 is fixedly connected between the lower end of the feed hopper 6 and the upper end of the support frame 3. The belt cover 22 has a avoidance hole for avoiding the hollow shaft 18. The end of the hollow shaft 18 that passes through the belt cover 22 is provided with a first rotary joint 20. One end of the first rotary joint 20 is connected to the hollow shaft 18, and the other end of the first rotary joint 20 is connected to a water inlet pipe 19. The water inlet pipe 19 is fixedly connected to the belt cover 22. The end of the water inlet pipe 19 away from the first rotary joint 20 is provided with a pipe joint. The water inlet pipe 19 can be connected to a water supply pipe and water is supplied to the mud-making bucket 10 through the first rotary joint 20 and the hollow shaft 18 to improve the viscosity of the taro paste and increase its fluidity, so that the taro paste that reaches the particle size can pass smoothly through the filter plate 21.
[0032] Both ends of the mud-beating bucket 10 are fixedly connected to filter plates 21. A rotating cylinder 16 is fixedly connected to the side of the mud-beating bucket 10 away from the feed rotating cylinder 23. The rotating cylinder 16 is concentric with the feed rotating cylinder 23. A discharge hopper 12 is provided below the mud-beating bucket 10. The two sides of the discharge hopper 12 are fixedly connected to the middle partition plate 1 and the mounting frame 11. A rotating ring 5 is fixedly connected to the upper end of the mounting frame 11. The rotating cylinder 16 is rotatably connected to the rotating ring 5. The rotating cylinder 16 is equipped with a mud-grinding mechanism 8 for grinding konjac into a paste. The mud-grinding mechanism 8 includes an inner casing 805, which is fixedly connected to the position where the rotating cylinder 16 enters the mud-grinding barrel 10. A crushing shaft 804 is rotatably connected to the middle of the inner casing 805. Several crushing blades 803 are fixedly connected to the crushing shaft 804. A power shaft 801 is rotatably connected inside the rotating cylinder 16. Both the power shaft 801 and the crushing shaft 804 are fixedly connected with second bevel teeth at their positions inside the inner casing 805. The rotating cylinder 16 has a wheel 802 and two second bevel gears 802 meshing with each other. The end of the rotating cylinder 16 away from the inner box 805 is fixedly connected to a second motor 806 for driving the power shaft 801 to rotate. During operation, the second motor 806 drives the power shaft 801 to rotate at high speed. The rotation of the power shaft 801 drives the second bevel gear 802 to rotate. The rotation of the second bevel gear 802 drives the crushing shaft 804 to rotate. The rotation of the crushing shaft 804 drives the crushing blade 803 to rotate at high speed. At the same time, the sludge-making bucket 10 is flipped to achieve the sludge-making of konjac.
[0033] The mounting frame 11 and the middle partition 1 both have sliding vertical grooves 709 at their upper ends. A sliding horizontal frame 701 is provided between the two sliding vertical grooves 709. Sliding tenons 710 are fixedly connected to both ends of the sliding horizontal frame 701, and the sliding tenons 710 are slidably connected to the sliding vertical grooves 709. Hook posts are fixedly connected to the upper ends of the middle partition 1 and the mounting frame 11 near the sliding tenons 710, as well as to the sliding tenons 710. Tension springs 711 are provided at both ends of the sliding horizontal frame 701, and the two ends of the tension springs 711 are respectively hooked onto the hook posts. Rollers 713 are rotatably connected to both ends of the lower end face of the sliding tenons 710. Limiting cams 714 that cooperate with the rollers 713 are fixedly connected to both sides of the upper and lower ends of the mud-scouring bucket 10. The sliding horizontal frame 701... The filter plate 21 is equipped with a back-blowing assembly for blowing back the filter plate 21. The back-blowing assembly is used to back-blow the filter plate 21 in the upper position, thereby blowing out the konjac stuck in the holes of the filter plate 21 to avoid blockage. At the same time, the roller 713, the limiting cam 714 and the tension spring 711 can make the sliding cross frame 701 rotate in coordination with the sludge bucket 10. When the sludge bucket 10 rotates, the limiting cam 714 rotates synchronously. The limiting cam 714 will push the roller 713 and the sliding cross frame 701 to move upward, thereby avoiding collision between the sludge bucket 10 and the limiting cam 714. After the sludge bucket 10 rotates to the position, the sliding cross frame 701 will be reset under the action of the tension spring 711, so that the hollow strip 704 is close to the filter plate 21, thereby ensuring the back-blowing effect.
[0034] The purging assembly includes a drive box 705, which is fixedly connected to the middle of a sliding crossbeam 701. A hollow air tube 703 is rotatably connected to the middle of the drive box 705. The sliding crossbeam 701 has a avoidance hole in the middle to avoid the hollow air tube 703. A hollow strip 704 is fixedly connected to the lower end of the hollow air tube 703. The lower end of the hollow strip 704 has several air blowing holes. The drive box 705 is equipped with a rotating assembly for driving the hollow air tube 703 to rotate. The hollow air tube 703 has a second rotary joint 706 at the end away from the hollow strip 704. One port of the second rotary joint 706 is connected to the upper end of the hollow air tube 703, and the other port of the second rotary joint 706 is connected to an air inlet pipe 707. A solenoid valve 708 is connected to the air inlet pipe 707. The upper ends of the drive box 705 and the mounting bracket 11 are both provided with brackets for fixing the air inlet pipe 707. The rotating assembly includes a first motor 702, which is fixedly connected to one side of the drive box 705. The output end of the first motor 702 and the hollow air tube 703 are located in the drive box. The first bevel gear 712 is fixedly connected to the internal position of 705, and the two first bevel gears 712 mesh with each other. During operation, the air inlet pipe 707 can be connected to the air compressor. When back-blowing the filter plate 21, high-pressure air enters from the air inlet pipe 707, and then passes through the second rotary joint 706, the hollow air pipe 703 and blows out from the air hole on the hollow strip 704. At the same time, the first motor 702 drives the first bevel gear 712 to rotate. The rotation of the first bevel gear 712 drives the hollow air pipe 703 to rotate, and the rotation of the hollow air pipe 703 drives the hollow strip 704 to rotate, so as to achieve a complete back-blowing of the filter plate 21.
[0035] Both sides of the rotating cylinder 16 away from the mud-scouring bucket 10 are fixedly connected to actuating blocks 17. The mounting frame 11 is installed above the rotating cylinder 16 and is equipped with a limit switch 13 that cooperates with the actuating blocks 17. The limit switch 13 is used to control the on / off state of the solenoid valve 708 in cooperation with the actuating blocks 17, so that the hollow strip 704 is only blown after the mud-scouring bucket 10 is turned into place. The lower end of the support frame 3 is also equipped with an electrical control box 2. A gear cover 7 for covering the second gear 405 and the first gear 401 is fixedly connected to the middle partition plate 1. The gear cover 7 is provided with a avoidance opening for avoiding the transmission shaft 406 and the discharge pipe 15. During operation, the gear cover 7 and the belt cover 22 can protect the transmission components, prevent foreign objects from entering and prevent accidental injury to personnel.
[0036] The working principle of this invention is as follows: During operation, the pre-treated konjac is fed into the feeding hopper 6, and then the second motor 806 and the servo reduction motor 402 are started. After the servo geared motor 402 is started, it rotates intermittently according to the control settings. When the servo geared motor 402 rotates, it drives the transmission shaft 406 to rotate. The rotation of the transmission shaft 406 drives the first gear 401 to rotate. The first gear 401 drives the second gear 405 to rotate. The rotation of the second gear 405 drives the feeding drum 23 and the mud-making bucket 10 to rotate intermittently by 180 degrees. At the same time, when the transmission shaft 406 rotates, it drives the synchronous pulley 403 and the synchronous belt 404 to rotate, which in turn drives the hollow shaft 18 and its spiral feeding plate 14 to rotate, so as to convey konjac into the mud-making bucket 10. Meanwhile, the second motor 806 drives the power shaft 801 to rotate at high speed. The rotation of the power shaft 801 drives the second bevel gear 802 to rotate. The rotation of the second bevel gear 802 drives the crushing shaft 804 to rotate. The rotation of the crushing shaft 804 drives the crushing blade 803 to rotate at high speed. At the same time, in conjunction with the rotation of the mud-making bucket 10, the konjac is mud-made. During the taro paste making process, water is supplied to the taro paste bucket 10 through the first rotary joint 20 and the hollow shaft 18 to improve the viscosity and increase the fluidity of the taro paste, allowing taro paste of the correct particle size to pass smoothly through the filter plate 21. Since the positions of the two filter plates 21 can be switched, it can be ensured that one filter plate 21 normally discharges taro paste, while the other is in the cleaning position. The filter plate 21 in the cleaning position is blown in the opposite direction by the blowing component, which can blow out the konjac stuck in the holes of the filter plate 21 to avoid blockage. At the same time, the roller 713 and the limiting cam are also provided. 714 and tension spring 711 enable the sliding crossbar 701 to rotate in sync with the sludge bucket 10. When the sludge bucket 10 rotates, the limiting cam 714 rotates synchronously. The limiting cam 714 pushes the roller 713 and the sliding crossbar 701 to move upward, thereby preventing the sludge bucket 10 from colliding with the limiting cam 714. After the sludge bucket 10 rotates to its position, the sliding crossbar 701 will reset under the action of tension spring 711, so that the hollow strip 704 is close to the filter plate 21, thereby ensuring the backflushing effect and effectively preventing the holes on the filter plate 21 from becoming blocked. Meanwhile, each time the mud bucket 10 rotates 180 degrees, the toggle block 17 will touch the limit switch 13. When the limit switch 13 is triggered, the solenoid valve 708 opens; otherwise, the solenoid valve 708 is closed, so that the hollow bar 704 is only blown after the mud bucket 10 is flipped into place, which plays an energy-saving role.
[0037] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Although this specification describes embodiments, not every embodiment contains only one technical solution. This method of description is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. A konjac food processing equipment for pulping, comprising a middle partition (1), characterized in that: A mounting frame (11) is fixedly connected to one side of the intermediate partition (1), and a support frame (3) is fixedly connected to the other side of the intermediate partition (1). A feed hopper (6) is fixedly connected to the upper end of the support frame (3). A mud-scraping bucket (10) is provided between the intermediate partition (1) and the mounting frame (11). A feed drum (23) is fixedly connected to one side of the mud-scraping bucket (10). The feed drum (23) is rotatably connected to the intermediate partition (1). The lower end of the feed hopper (6) near the mud-scraping bucket (10) is fixedly connected to... A discharge pipe (15) is connected to the feed drum (23). A sealed bearing (9) is installed between the outer wall of the discharge pipe (15) and the inner wall of the feed drum (23). A hollow shaft (18) is rotatably connected between the inside of the discharge pipe (15) and the lower end of the feed hopper (6). A spiral feed plate (14) is fixedly connected to the outer surface of the hollow shaft (18). A drive mechanism (4) for driving the feed drum (23) and the spiral feed plate (14) to rotate is provided at the upper end of the support frame (3). Both ends of the mud-beating bucket (10) are fixedly connected to filter plates (21). A rotating cylinder (16) is fixedly connected to the side of the mud-beating bucket (10) away from the feeding rotating cylinder (23). The rotating cylinder (16) is concentric with the feeding rotating cylinder (23). A mud-beating mechanism (8) for beating konjac is provided inside the rotating cylinder (16). A discharge hopper (12) is provided below the mud-beating bucket (10). The discharge hopper (12) is fixedly connected to the middle partition (1) and the mounting frame (11) on both sides.
2. The konjac food processing mud-pulverizing equipment according to claim 1, characterized in that, The drive mechanism (4) includes a drive shaft (406), which is rotatably connected between the support frame (3) and the upper end of the intermediate partition (1). The upper end of the support frame (3) is provided with a servo reduction motor (402) for driving the drive shaft (406) to rotate. A first gear (401) is fixedly connected to one end of the drive shaft (406). A second gear (405) is fixedly connected to the position where the feed drum (23) passes through the intermediate partition (1). The first gear (401) and the second gear (405) mesh. A synchronous pulley (403) is fixedly connected to the end of the drive shaft (406) away from the first gear (401) and the end of the hollow shaft (18) that passes through the feed hopper (6). A synchronous belt (404) is installed between the two synchronous pulleys (403).
3. The konjac food processing mud-pulverizing equipment according to claim 2, characterized in that, A belt cover (22) is fixedly connected between the lower end of the feed hopper (6) and the upper end of the support frame (3). The belt cover (22) has a avoidance hole for avoiding the hollow shaft (18). The hollow shaft (18) is provided with a first rotary joint (20) at one end of the belt cover (22). One end of the first rotary joint (20) is connected to the hollow shaft (18), and the other end of the first rotary joint (20) is connected to a water inlet pipe (19). The water inlet pipe (19) is fixedly connected to the belt cover (22), and a pipe joint is provided at the end of the water inlet pipe (19) away from the first rotary joint (20).
4. The konjac food processing mud-pulverizing equipment according to claim 1, characterized in that, The upper end of the mounting frame (11) is fixedly connected to a rotating ring (5), and the rotating cylinder (16) is rotatably connected to the rotating ring (5).
5. The konjac food processing mud-pulverizing equipment according to claim 1, characterized in that, The mud-beating mechanism (8) includes an inner box (805), which is fixedly connected to the position where the rotating cylinder (16) enters the mud-beating bucket (10). A crushing shaft (804) is rotatably connected in the middle of the inner box (805). Several crushing blades (803) are fixedly connected on the crushing shaft (804). A power shaft (801) is rotatably connected inside the rotating cylinder (16). A second bevel gear (802) is fixedly connected to both the power shaft (801) and the crushing shaft (804) inside the inner box (805). The two second bevel gears (802) mesh with each other. A second motor (806) for driving the power shaft (801) to rotate is fixedly connected to one end of the rotating cylinder (16) away from the inner box (805).
6. The konjac food processing mud-pulverizing equipment according to claim 1, characterized in that, The upper ends of the mounting bracket (11) and the middle partition plate (1) are provided with sliding vertical grooves (709), and a sliding crossbar (701) is provided between the two sliding vertical grooves (709). Both ends of the sliding crossbar (701) are fixedly connected with sliding tenons (710). The sliding tenons (710) are slidably connected to the sliding vertical grooves (709). The upper ends of the middle partition plate (1) and the mounting bracket (11) near the sliding tenons (710) and the sliding tenons (710) are also provided with sliding tenons (710). All are fixedly connected with hook posts. Both ends of the sliding crossbeam (701) are provided with tension springs (711). Both ends of the tension springs (711) are hooked onto the hook posts. Both ends of the lower end face of the sliding tenon (710) are rotatably connected with rollers (713). Both sides of the upper and lower ends of the mud bucket (10) are fixedly connected with limiting cams (714) that cooperate with the rollers (713). The sliding crossbeam (701) is provided with a blowing assembly for blowing the filter plate (21).
7. The konjac food processing mud-pulverizing equipment according to claim 6, characterized in that, The purging assembly includes a drive box (705), which is fixedly connected to the middle of a sliding crossbeam (701). A hollow air tube (703) is rotatably connected to the middle of the drive box (705). A avoidance hole for avoiding the hollow air tube (703) is provided in the middle of the sliding crossbeam (701). A hollow strip (704) is fixedly connected to the lower end of the hollow air tube (703). A plurality of air holes are provided at the lower end of the hollow strip (704). The drive box (705) is provided with a means for driving the hollow air tube (703). 3) A rotating assembly for rotation, wherein the hollow air tube (703) is provided with a second rotating joint (706) at one end away from the hollow strip (704), one port of the second rotating joint (706) is connected to the upper end of the hollow air tube (703), and the other port of the second rotating joint (706) is connected to an air inlet pipe (707), and a solenoid valve (708) is connected to the air inlet pipe (707). The upper ends of the drive box (705) and the mounting bracket (11) are both provided with brackets for fixing the air inlet pipe (707).
8. The konjac food processing mud-pulverizing equipment according to claim 7, characterized in that, The rotating assembly includes a first motor (702), which is fixedly connected to one side of the drive box (705). The output end of the first motor (702) and the hollow air tube (703) located inside the drive box (705) are both fixedly connected to a first bevel gear (712), and the two first bevel gears (712) mesh with each other.
9. The konjac food processing mud-pulverizing equipment according to claim 1, characterized in that, Both sides of the rotating cylinder (16) away from the mud bucket (10) are fixedly connected to actuating blocks (17). The mounting frame (11) is located above the rotating cylinder (16) and is equipped with a limit switch (13) that cooperates with the actuating blocks (17). The lower end of the support frame (3) is also provided with an electrical control box (2).
10. A konjac food processing mud-pulverizing device according to claim 1, characterized in that, A gear cover (7) for covering the second gear (405) and the first gear (401) is fixedly connected to the intermediate partition (1). The gear cover (7) is provided with a avoidance opening for avoiding the transmission shaft (406) and the discharge pipe (15).