A fig deep processing equipment and process
The fig deep-processing equipment, which integrates a washing tank, a pulley assembly, and a slicing assembly, solves the problem of low fig processing efficiency, achieves efficient integrated processing of washing, draining, and slicing, automatically removes the rootstock, and improves production efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- SHAANXI MEINONG NETWORK TECH CO LTD
- Filing Date
- 2025-03-27
- Publication Date
- 2026-06-02
AI Technical Summary
In existing fig processing equipment, the steps of washing, draining and slicing figs are carried out independently, resulting in low processing efficiency. In addition, the roots need to be removed manually, which reduces efficiency.
Design a fig deep processing equipment, including a washing tank, a pulley assembly, an aeration mechanism and a slicing assembly. The equipment uses a rotating motor to drive a transmission belt to achieve integrated processing of fig washing, draining and slicing. It also utilizes ozone sterilization and centrifugal force to accelerate the removal of dirt and automatically cuts off the root.
The process of washing, draining, and slicing figs is completed in the same equipment, which significantly improves processing efficiency, reduces transfer steps, and automatically removes the root stems, thus reducing manual operation.
Smart Images

Figure CN119949535B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of fig processing technology, specifically to a deep processing equipment and process for figs. Background Technology
[0002] Figs are pear-shaped or round with soft, sweet flesh. They are rich in vitamins, minerals, and dietary fiber, and have high nutritional and medicinal value, making them popular all over the world. However, figs are not easy to preserve, so they need to be processed.
[0003] Chinese Patent No. CN111802602B discloses a fig deep processing equipment and process. The process first uses a cleaning tank in conjunction with an ozone generator to disinfect and clean the figs. Then, a drain conveyor belt is used to transport the figs. After that, a slicing mechanism is used to slice the figs. Finally, a draining mechanism and a saccharification mechanism are used to drain and saccharify the sliced figs. The equipment has a high degree of automation and good production efficiency and capacity.
[0004] However, the above-mentioned existing technology has the following drawbacks: the steps of washing, draining and slicing figs are all independent. Each step requires transporting the figs to the processing equipment for that step, which takes a certain amount of time, resulting in low processing efficiency. In addition, the above-mentioned existing technology does not have a structure for removing the fig root, which requires manual removal, further reducing the processing efficiency of figs. Summary of the Invention
[0005] The purpose of this invention is to address the problems existing in the background technology by proposing a fig deep processing equipment and process.
[0006] The technical solution of this invention: A fig deep processing equipment, comprising a washing tank, a hollow plate, and a telescopic component a, wherein the hollow plate is slidably disposed inside the washing tank, and the telescopic component a is installed at the bottom of the inner side of the washing tank and connected to the hollow plate; further comprising:
[0007] The cleaning mechanism is located inside the cleaning tank and has multiple components. The cleaning mechanism includes two pulley assemblies. The two pulley assemblies are arranged in a "V" shape. Each pulley assembly includes a rotary motor, plate a, a transmission pulley, and a transmission belt. There are two plates a and they are connected to the inner wall of the cleaning tank. There are two transmission pulleys and they are rotatably connected to plate a. The transmission belt is connected to the two transmission pulleys. The rotary motor is connected to the transmission pulleys for transmission.
[0008] The aeration mechanism includes a blower, an ozone generator, pipe a, and pipe b; the blower and ozone generator are both located inside the cleaning tank; two pipes a are connected to the blower and the ozone generator respectively, and the two pipes a are connected to the two ends of pipe b respectively; the surface of pipe b is connected to a hollow plate through pipe c; multiple aeration valves are evenly distributed on the top of the hollow plate and communicate with it.
[0009] The side wall of the washing pool is equipped with a slicing component for slicing figs, and the top of the washing pool is equipped with a limiting component for limiting the position of the figs.
[0010] Preferably, the surface of the cleaning tank is provided with an inclined guide plate near the slicing assembly, the side wall of the cleaning tank is provided with a dustproof net near the bottom, the inside of the cleaning tank is provided with a vibration motor, and the side wall of the cleaning tank is provided with multiple drain pipes; the drain pipes are provided with solenoid valves.
[0011] Preferably, the slicing assembly includes an outer frame and blades; the outer frame has a structure that is wider at the top and narrower at the bottom; the blades are evenly distributed inside the outer frame.
[0012] Preferably, the limiting assembly includes a telescopic component b, plate b, plate c, a sliding rod, and a stop block; the telescopic component b is located at both ends of plate b and connected thereto; multiple plates c are provided and connected to the bottom end of plate b; the sliding rod is slidably located at one end of plate c and its bottom end is slidably connected to the stop block; the stop block is magnetically connected to the outer frame; and an airbag layer is provided at the bottom end of plate c.
[0013] Preferably, the transmission belt has a mesh structure and its surface is covered with nap.
[0014] Preferably, both pipes a are retractable flexible hoses and are equipped with electrically controlled valves.
[0015] This invention also proposes a deep processing technology for figs, using the aforementioned processing equipment, comprising the following steps:
[0016] S1. Placing figs: Place the figs to be cleaned side by side inside the cleaning mechanism, then block the slicing component by lowering the slide bar, then fill the cleaning tank with water so that the figs float up. After the figs float up, their roots face down. Then open the telescopic component b so that the plate c moves down and presses the figs into the water to form a squeezing force with the surface of the transmission belt.
[0017] S2. Cleaning figs: Turn on the vibration motor, which drives the cleaning tank to vibrate, thus causing the water to vibrate. Then, use the aeration mechanism to inject ozone into the water, which causes the water to tumble and also has a bactericidal effect. At the same time, turn on the rotating motors on both sides and make them rotate in the same direction, so that the transmission belts on both sides drive the figs to rotate. Under the action of centrifugal force, the dirt on the surface of the figs is quickly removed, and the lint can also play a certain role in cleaning the surface of the figs, improving the cleaning quality and efficiency of the figs.
[0018] S3. Draining figs: Using the telescopic component a to move the hollow plate down, the water level drops until the water contacts the drain pipe. At this time, the water separates from the figs. Under the centrifugal force generated by the rotation of the figs, the water stains on their surface can be removed more quickly. At the same time, the blower is turned on, and the airflow generated is sprayed out through the aeration valve, which can accelerate the draining of the figs.
[0019] S4. Fig Slicing: First, reset the limit component, turn off the rotary motor, and move the stop block upward via the slide rod. Then, turn the rotary motor back on so that the two rotary motors rotate in opposite directions, enabling the conveyor belt to transport the figs. When the figs pass through the slicing component, they will be sliced into pieces at once and fall onto the guide plate. At the same time, the stems will fall into the water inside the washing tank. After slicing, open the solenoid valve on the drain pipe to drain the water and stems.
[0020] Compared with the prior art, the above-mentioned technical solution of the present invention has the following beneficial technical effects:
[0021] This invention incorporates a cleaning mechanism and an aeration mechanism within a cleaning tank. By placing figs to be cleaned side-by-side inside the cleaning mechanism, the cleaning and aeration mechanisms work together to achieve both cleaning and draining of the figs. Furthermore, by including a slicing component, automatic slicing is achieved when all figs with their stems facing down pass through the slicing component. This allows for the washing, draining, and slicing of figs to be performed within the same device, significantly reducing the number of transfer steps and improving processing efficiency. Simultaneously, the invention enables the removal of fig stems during processing, eliminating the need for manual removal and reducing workload, further enhancing processing efficiency. Attached Figure Description
[0022] Figure 1 A three-dimensional representation of an embodiment of the present invention Figure 1 ;
[0023] Figure 2 A three-dimensional representation of an embodiment of the present invention Figure 2 ;
[0024] Figure 3 A three-dimensional representation of an embodiment of the present invention Figure 3 ;
[0025] Figure 4 This is a schematic diagram of the internal structure of the cleaning tank in one embodiment of the present invention;
[0026] Figure 5 This is a schematic diagram of the structure of figs placed in the cleaning mechanism in one embodiment of the present invention;
[0027] Figure 6This is a schematic cross-sectional view of the slicing component in one embodiment of the present invention;
[0028] Figure 7 This is a cross-sectional structural diagram of the aeration mechanism in one embodiment of the present invention.
[0029] Reference numerals: 1. Cleaning tank; 2. Guide plate; 3. Pulley assembly; 31. Rotary motor; 32. Transmission belt; 33. Plate a; 4. Outer frame; 5. Plate b; 6. Plate c; 7. Stop block; 8. Telescopic component b; 9. Dustproof net; 10. Airbag layer; 11. Drain pipe; 12. Telescopic component a; 13. Ozone generator; 14. Pipe a; 15. Pipe b; 16. Hollow plate; 17. Fan; 18. Aeration valve; 19. Blade; 20. Slide rod; 21. Vibrating motor. Detailed Implementation
[0030] Example 1, as Figure 1-5 As shown, the present invention proposes a fig deep processing equipment, including a washing tank 1, a hollow plate 16, a telescopic component a12, a washing mechanism, and an aeration mechanism. The side wall of the washing tank 1 is provided with an inspection door near the bottom. The hollow plate 16 is slidably disposed inside the washing tank 1. The telescopic component a12 is installed at the bottom of the inner side of the washing tank 1 and connected to the hollow plate 16. The telescopic component a12 includes, but is not limited to, a cylinder or other device that can drive the hollow plate 16 to rise and fall. The telescopic component a12 drives the hollow plate 16 to rise and fall, which can adjust the water level inside the washing tank 1.
[0031] The cleaning mechanism is located inside the cleaning pool 1 and has multiple components. The cleaning mechanism includes two pulley assemblies 3. The two pulley assemblies 3 are arranged in a "V" shape, and there is space between the pulley assemblies 3 for placing figs. The pulley assembly 3 includes a rotary motor 31, a plate a33, a transmission pulley, and a transmission belt 32. There are two plates a33 and they are connected to the inner wall of the cleaning pool 1. There are two transmission pulleys and they are rotatably connected to the plates a33. The transmission belt 32 is connected to the two transmission pulleys. The rotary motor 31 is connected to the transmission pulleys. The transmission belt 32 has a mesh structure and its surface is covered with fluff. The mesh structure can increase the friction between the transmission belt 32 and the figs, and the fluff has a certain elasticity, which can play a buffering role and avoid damage to the figs by squeezing.
[0032] In this embodiment, the rotation directions of the rotating motors 31 on both sides of the pulley assembly 3 are the same, so that the transmission belts 32 on both sides can drive the figs to rotate and generate centrifugal force. The centrifugal force accelerates the rapid removal of dirt from the surface of the figs, and the fibers can also play a certain role in cleaning the dirt on the surface of the figs, further improving the cleaning efficiency and quality of the figs. When the water level drops and the figs are separated, the centrifugal force of the rotating figs can be used to accelerate the removal of water stains from their surface and improve the draining rate. When the rotation directions of the rotating motors 31 on both sides of the pulley assembly 3 are opposite, the transmission belts 32 on both sides can realize the function of conveying figs.
[0033] The aeration mechanism includes a blower 17, an ozone generator 13, pipe a14, and pipe b15. Both the blower 17 and the ozone generator 13 are located inside the cleaning tank 1. Two pipes a14 are connected to the blower 17 and the ozone generator 13 respectively, and the two pipes a14 are connected to both ends of pipe b15 respectively. The surface of pipe b15 is connected to the hollow plate 16 through pipe c. The top of the hollow plate 16 is evenly provided with multiple aeration valves 18 that communicate with it. The aeration valves 18 are existing technology, and their specific structure and working principle will not be described in detail here. Both pipes a14 are telescopic hoses and are equipped with electrically controlled valves. The telescopic pipes a14 can ensure the connection function between pipe b15 and ozone generator 13 and blower 17 while realizing the lifting and lowering of the hollow plate 16.
[0034] In this example, the ozone generated by the ozone generator 13 is transported to the inside of the pipe b15 through the pipe a14 on one side, and then to the inside of the hollow plate 16. Finally, it is sprayed into the water through the aeration valve 18 and causes the water to tumble, improving the cleaning efficiency of the figs. At the same time, the ozone can achieve the sterilization and disinfection function of the figs.
[0035] The side wall of the washing pool 1 is provided with a slicing component for slicing figs; the top of the washing pool 1 is provided with a limiting component for limiting the position of the figs.
[0036] Example 2, as Figure 1-4As shown, the present invention proposes a fig deep processing equipment. Compared with Embodiment 1, this embodiment further details the structure of the limiting component. The limiting component includes a telescopic component b8, a plate b5, a plate c6, a sliding rod 20, and a stop block 7. The telescopic component b8 is located at both ends of the plate b5 and connected to it. The telescopic component b8 includes, but is not limited to, devices such as cylinders that can drive the plate b5 to rise and fall. The telescopic component b8 is not limited to being installed on the side wall of the washing pool 1. Multiple plates c6 are provided and connected to the bottom end of the plate b5. The sliding rod 20 is slidably located at one end of the plate c6 and its bottom end is slidably connected to the stop block 7. The stop block 7 is magnetically connected to the outer frame 4. The surface of the stop block 7 is provided with a rubber layer, which, together with the magnetic attraction, can enhance the sealing between the stop block 7 and the outer frame 4 and improve the waterproof performance of the stop block 7. The bottom end of the plate c6 is provided with an airbag layer 10, which can play a buffering role and prevent damage to the figs when the plate c6 presses down on them.
[0037] In this embodiment, before water is injected into the cleaning tank 1, the slide rod 20 drives the stop block 7 to move down, so that the stop block 7 blocks the slicing component and prevents water from flowing away through the slicing component. After water is injected into the cleaning tank 1, the figs will float up with their roots facing upwards. At this time, the figs are not in contact with the transmission belt 32. By opening the telescopic component b8, the telescopic component b8 drives the plate b5 to move down, which in turn drives the plate c6 to move down, so that the plate c6 presses the figs down into the water and generates a squeezing force between the plate c6 and the transmission belt 32. The squeezing force is very small, just enough to generate enough friction between the transmission belt 32 and the figs to make the figs rotate.
[0038] Example 3, as Figure 1-2 and Figure 4 and Figure 6 As shown, the fig deep processing equipment proposed in this invention, compared with Embodiment 2, also details the structure of the slicing assembly. The slicing assembly includes an outer frame 4 and blades 19. The outer frame 4 has a structure that is wider at the top and narrower at the bottom. The blades 19 are evenly arranged inside the outer frame 4. The blades 19 are arranged layer by layer from top to bottom.
[0039] In this embodiment, the outer frame 4 has a trapezoidal structure that is wider at the top and narrower at the bottom. In order to adapt to the shape of the fig and ensure that the blade 19 can slice the fig, the fig passes through the slicing assembly one by one under the conveying action of the transmission belt 32. During the process of passing through the slicing assembly, the blades 19 of each layer slice the fig at the same time, cutting the whole fig into slices at once, thus improving the slicing efficiency.
[0040] Example 4, as Figure 1-3As shown, the fig deep processing equipment proposed in this invention, compared with Embodiment 3, further includes an inclined guide plate 2 on the surface of the washing tank 1 near the slicing assembly, and a conveyor belt (not shown in the figure) below the guide plate 2; the conveyor belt is connected to existing equipment for drying figs; the inclined guide plate 2 facilitates the automatic sliding of the sliced figs onto the conveyor belt, and also facilitates the separation of stacked sliced figs from each other; a dustproof net 9 is provided on the side wall of the washing tank 1 near the bottom, and the dustproof net 9 allows for ventilation and heat dissipation in the space inside the washing tank 1 where the vibration motor 21, ozone generator 13, and aeration mechanism are installed. It also serves as a dustproofing agent. The washing tank 1 is equipped with a vibration motor 21, which can drive the washing tank 1 to vibrate, causing the water inside the washing tank 1 to vibrate. The vibration of the water can generate tiny shock waves to further accelerate the disintegration and removal of dirt on the surface of the figs. The vibration of the washing tank 1 will drive the guide plate 2 to vibrate, accelerating the sliding of the fig slices on the guide plate 2, and at the same time helping the stacked fig slices to separate quickly. The side wall of the washing tank 1 is equipped with multiple drain pipes 11, and the drain pipes 11 are equipped with solenoid valves. When the hollow plate 16 moves down to below the drain pipes 11, the solenoid valves are opened to allow water to be discharged through the drain pipes 11.
[0041] Example 5, please refer to Figure 1-7 The present invention also proposes a fig deep processing equipment, which adopts the processing device described in any one of embodiments one to four above, and includes the following steps:
[0042] S1. Placing figs: Place the figs to be cleaned side by side inside the cleaning mechanism, then lower the block 7 via the slide bar 20 to block the slicing component, then inject water into the cleaning tank 1 to make the figs float up. After the figs float up, their roots face down. Then open the telescopic component b8 to lower the plate c6 and press the figs into the water to form a squeezing force with the surface of the transmission belt 32.
[0043] S2. Cleaning figs: Turn on the vibration motor 21, which drives the cleaning tank 1 to vibrate, thereby causing the water to vibrate. Then, ozone is injected into the water using the aeration mechanism, which causes the water to tumble. At the same time, the ozone can also kill bacteria. Simultaneously, turn on the rotating motors 31 on both sides and make them rotate in the same direction, so that the transmission belts 32 on both sides drive the figs to rotate. Under the action of centrifugal force, the dirt on the surface of the figs is quickly removed. At the same time, the lint can also play a certain role in cleaning the surface of the figs, improving the cleaning quality and efficiency of the figs.
[0044] S3. Draining figs: The hollow plate 16 is moved down by the telescopic component a12, so that the water level drops until the water contacts the drain pipe 11. At this time, the water separates from the figs. Under the centrifugal force generated by the rotation of the figs, the water stains on their surface can be removed more quickly. At the same time, the blower 17 is turned on, and the airflow generated is sprayed out through the aeration valve 18, which can accelerate the draining of the figs.
[0045] S4. Fig slicing: First, reset the limiting component, turn off the rotary motor 31, and move the stop block 7 upward through the slide rod 20. Then, turn the rotary motor 31 back on, so that the two rotary motors 31 rotate in opposite directions, so that the transmission belt 32 realizes the function of conveying figs. When the figs pass through the slicing component, they will be sliced into slices at once and fall onto the guide plate 2. At the same time, the roots will fall into the water inside the washing tank 1. After slicing is completed, open the solenoid valve on the drain pipe 11 to drain the water and roots.
[0046] In summary, when using this invention, the figs to be cleaned are first placed side by side in the space formed between the pulley assemblies 3 in the cleaning mechanism. Then, the stop block 7 is moved down by the slide rod 20, causing the stop block 7 to move to the outer frame 4 of the slicing assembly, blocking the slicing assembly. The magnetic attraction between the outer frame 4 and the stop block 7 enhances the waterproofness of the stop block 7, preventing water in the cleaning pool 1 from flowing away through the outer frame 4. Then, water is injected into the cleaning pool 1, causing the figs to float. After the figs float, their stems will face downwards. Then, the telescopic component b8 is activated, causing plate b5 to descend, which in turn drives plate c6 to descend. Plate c6 presses the floating figs into the water, creating a squeezing force between them and the transmission belt 32 (the stems of the figs always face downwards during the descent in the water). Then, the rotary motor 31 on the pulley assembly 3 is turned on, so that the rotary motors 31 on both pulley assemblies 3 rotate in the same direction. This allows the transmission belt 32 to rotate the figs. The centrifugal force generated by the rotation allows dirt on the surface of the figs to be quickly removed. At the same time, the lint on the surface of the transmission belt 32 can also help clean the dirt, improving cleaning efficiency. Simultaneously, the vibration motor 21 and the ozone generator 13 are turned on. The ozone generated by the ozone generator 13 is transported through one side pipe a14 to the inside of pipe b15 (the electrically controlled valve on pipe a14 connected to the blower 17 is in the closed state), and then to the inside of the hollow plate 16. Finally, it is sprayed into the water through the aeration valve 18, causing the water to tumble. At the same time, the ozone can achieve the sterilization and disinfection function of the figs. The vibration motor 21 can drive the cleaning tank 1 to vibrate, causing the water inside the cleaning tank 1 to vibrate. The vibration of the water can generate small shock waves to further accelerate the disintegration and removal of dirt on the surface of the figs, improving the cleaning quality and efficiency of the figs.
[0047] After the figs are washed, the telescopic component a12 is activated, which moves the hollow plate 16 downward, causing the water level in the washing tank 1 to drop until the hollow plate 16 is below the drain pipe 11 (near the drain pipe 11). At this point, the water separates from the figs, and the water stains on the surface of the figs can be quickly removed by the centrifugal force generated by the rotation. At the same time, the electric control valve on the pipe a14 connected to the blower 17 is opened, and the electric control valve on the pipe a14 connected to the ozone generator 13 is closed. The blower 17 is turned on, and the airflow generated by the blower 17 enters the pipe b15 through the pipe a14, then enters the hollow plate 16, and finally is sprayed out through the aeration valve 18, which accelerates the air flow in the washing tank 1 and thus accelerates the draining of the figs.
[0048] After the figs are drained, the telescopic component b8 is activated again, causing plates b5 and c6 to move upwards and reset. Simultaneously, the slide rod 20 causes the stop block 7 to move upwards and reset, no longer obstructing the outer frame 4. Then, the rotation directions of the rotating motors 31 on the two side pulley assemblies 3 are reversed, enabling the transmission belt 32 to convey the figs. The figs pass through the slicing assembly one by one. During this process, the combined action of the blades 19 cuts the figs into multiple slices. The cut stems fall into the water in the washing tank 1, while the sliced figs fall onto the inclined guide plate 2. Because the washing tank 1 is vibrating, the guide plate 2 is also vibrating, which accelerates the sliding of the fig slices and helps separate the piled fig slices. The sliding fig slices fall onto the conveyor belt and are transported to the equipment for drying figs. This allows the washing, draining and slicing of figs to be carried out in the same equipment, significantly reducing the number of fig transfer steps and improving the processing efficiency of figs. At the same time, the fig root can be removed during the processing without the need for manual removal by the staff, reducing the workload of the staff and further improving the processing efficiency of figs.
[0049] Finally, open the solenoid valve on the drain pipe 11 to allow the wastewater generated during cleaning inside the cleaning tank 1 and the roots to be discharged through the drain pipe 11.
[0050] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited thereto. Various changes can be made within the scope of knowledge possessed by those skilled in the art without departing from the spirit of the present invention.
Claims
1. A fig deep processing equipment, comprising a washing tank (1), a hollow plate (16), and a telescopic component a (12), wherein the hollow plate (16) is slidably disposed inside the washing tank (1), and the telescopic component a (12) is installed at the bottom of the inner side of the washing tank (1) and connected to the hollow plate (16), and the telescopic component a (12) drives the hollow plate (16) to rise and fall, thereby adjusting the water level inside the washing tank (1); characterized in that, Also includes: The cleaning mechanism is located inside the cleaning pool (1) and has multiple components. The cleaning mechanism includes two pulley assemblies (3). The two pulley assemblies (3) are arranged in a "V" shape. The pulley assembly (3) includes a rotary motor (31), plate a (33), transmission pulleys and transmission belt (32). There are two plates a (33) and they are connected to the inner wall of the cleaning pool (1). There are two transmission pulleys and they are rotatably connected to plate a (33). The transmission belt (32) is connected to the two transmission pulleys. The rotary motor (31) is connected to the transmission pulleys. By controlling the rotary motors (31) on both sides to rotate in the same direction, the transmission belt (32) drives the figs to rotate and generate centrifugal force. By controlling the rotary motors (31) on both sides to rotate in opposite directions, the transmission belt (32) transports the figs. The aeration mechanism includes a blower (17), an ozone generator (13), pipe a (14), and pipe b (15); the blower (17) and the ozone generator (13) are both located inside the cleaning tank (1); pipe a (14) has two pipes that are connected to the blower (17) and the ozone generator (13) respectively, and the two pipes a (14) are connected to the two ends of pipe b (15) respectively; the surface of pipe b (15) is connected to the hollow plate (16) through pipe c; the top of the hollow plate (16) is uniformly provided with a plurality of aeration valves (18) connected to it. The side wall of the washing pool (1) is provided with a slicing component for slicing figs, and the top of the washing pool (1) is provided with a limiting component for limiting the figs. An inclined guide plate (2) is provided on the surface of the cleaning tank (1) near the slicing assembly. A dustproof net (9) is provided on the side wall of the cleaning tank (1) near the bottom. A vibration motor (21) is provided inside the cleaning tank (1). Multiple drain pipes (11) are provided on the side wall of the cleaning tank (1). A solenoid valve is provided on the drain pipe (11). The slicing assembly includes an outer frame (4) and a blade (19); the outer frame (4) has a structure that is wider at the top and narrower at the bottom; the blades (19) are evenly distributed inside the outer frame (4); The limiting assembly includes a telescopic component b (8), a plate b (5), a plate c (6), a slide rod (20), and a stop block (7); the telescopic component b (8) is located at both ends of the plate b (5) and connected to it; the plate c (6) is provided with multiple components and is connected to the bottom end of the plate b (5); the slide rod (20) is slidably located at one end of the plate c (6) and its bottom end is slidably connected to the stop block (7); the stop block (7) is magnetically connected to the outer frame (4); the bottom end of the plate c (6) is provided with an airbag layer (10).
2. The fig deep processing equipment according to claim 1, characterized in that, The transmission belt (32) has a mesh structure and its surface is covered with fluff.
3. The fig deep processing equipment according to claim 1, characterized in that, Both pipes a (14) are retractable flexible hoses and are equipped with electrically controlled valves.
4. A fig deep processing technology, employing the fig deep processing equipment described in any one of claims 2-3, characterized in that, Includes the following steps: S1. Place figs: Place the figs to be cleaned side by side inside the cleaning mechanism, then use the slide bar (20) to lower the stop block (7) to block the slicing component, then add water into the cleaning tank (1) so that the figs float up. After the figs float up, their roots face down. Then open the telescopic component b (8) so that the plate c (6) moves down and presses the figs into the water to form a squeezing force with the surface of the transmission belt. S2. Cleaning figs: Turn on the vibration motor (21), which drives the cleaning tank (1) to vibrate, thereby causing the water to vibrate. Then, use the aeration mechanism to inject ozone into the water, which causes the water to tumble. At the same time, the ozone has a bactericidal effect. At the same time, turn on the rotating motors (31) on both sides and make them rotate in the same direction, so that the transmission belts (32) on both sides drive the figs to rotate. Under the action of centrifugal force, the dirt on the surface of the figs is quickly removed, and the lint plays a certain cleaning role on the surface of the figs, improving the cleaning quality and efficiency of the figs. S3, Draining figs: Using the telescopic component a (12), the hollow plate (16) is moved down, so that the water level drops until the water contacts the drain pipe (11). At this time, the water separates from the figs. Under the centrifugal force generated by the rotation of the figs, the water stains on their surface are removed more quickly. At the same time, the blower (17) is turned on, and the airflow generated is sprayed out through the aeration valve (18) to accelerate the draining of the figs. S4. Fig slicing: First, reset the limiting component and turn off the rotary motor (31). Then, turn the rotary motor (31) back on so that the two rotary motors (31) turn in opposite directions, so that the transmission belt (32) can realize the function of conveying figs. When the figs pass through the slicing component, they will be sliced into pieces at once and fall onto the guide plate (2). At the same time, the roots will fall into the water inside the washing tank (1). After slicing, open the solenoid valve on the drain pipe (11) to drain the water and roots.