Vegetable production and packaging system
The fully automated vegetarian vegetable production and packaging system solves the problem of incomplete draining in automated vegetarian vegetable production, achieving efficient draining, cutting, weighing, and packaging, improving production efficiency and product quality, and adapting to the needs of different types and forms of vegetarian vegetables.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-01-30
- Publication Date
- 2026-03-27
AI Technical Summary
In existing technologies, automated production and packaging systems for vegetarian vegetables lack efficient and controllable drainage structures, making it difficult to completely remove residual moisture from the surface of vegetables, affecting weighing accuracy and product shelf life, and also resulting in a low degree of automation.
A vegetarian food production and packaging system was designed, including a washing module, a draining module, a cutting module, a vegetarian food packaging module, a labeling and weighing module, a ingredient package packaging and weighing module, and a final packaging module. It adopts bubble cleaning, vibration draining, automatic cutting, weighing and labeling, and automatic packaging technologies to achieve fully automated production.
It improved production efficiency, reduced labor costs, ensured product quality and hygiene standards, eliminated free moisture, inhibited microbial growth, and enhanced material compatibility and applicability.
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Figure CN121734745A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of food processing automation technology, specifically a vegetarian vegetable production and packaging system. Background Technology
[0002] Currently, in the food processing industry, the production and packaging of vegetarian dishes largely rely on manual operation or semi-automated equipment, resulting in low production efficiency and difficulty in ensuring hygiene. As consumers increasingly demand food safety and efficiency, automated production and packaging technologies are gradually becoming an industry trend.
[0003] Existing automated equipment is mainly focused on the packaging of meat or pre-prepared vegetables. There are few dedicated automated production and packaging systems for vegetarian vegetables, especially in the area of non-mixed packaging, where there is a technological gap. In the current field of automated production and packaging of vegetarian vegetables, the typical automated equipment usually includes a washing unit, a conveyor belt, a cutting device, and a packaging mechanism arranged in sequence. However, in the draining process, they mostly use static draining or simple vibrating screens, which lack efficient and controllable draining structures. As a result, it is difficult to completely remove residual moisture from the surface of vegetables, affecting the subsequent weighing accuracy and product shelf life. Summary of the Invention
[0004] To address the shortcomings of existing technologies, this invention provides a vegetarian vegetable production and packaging system, which solves the problem of low automation in vegetarian vegetable packaging in existing technologies.
[0005] To achieve the above objectives, the present invention provides the following technical solution: a vegetarian vegetable production and packaging system, comprising a machine body, wherein the machine body is provided with a washing module, a draining module, a cutting module, a vegetarian vegetable packaging module, a labeling and weighing module, a ingredient package packaging and weighing module, and a final packaging module in sequence. The drainage module also includes a drainage plate, a winding plate, a fixing plate, an outer rod, and an inner rod. The surface of the drainage plate is provided with drainage holes. The inner rod is provided with a second spring, and the two ends of the second spring are respectively connected to the inner rod and the outer rod. The bottom surface of the fixing plate is fixedly installed with an undulating seat. The surface of the undulating seat is provided with a wave-shaped groove. The two sides of the inner rod are fixedly connected with undulating rods, and the undulating rods extend into the wave-shaped grooves on the surface of the undulating seat. The cleaning module also includes a first conveyor belt and a conveyor plate; The cutting module also includes a slide bar, a top plate, an electric push rod, a pressure plate, and a cutting blade; The labeling and weighing module includes a labeling machine and a sixth conveyor belt.
[0006] Preferably, a partition is provided at the junction between the cleaning module and the draining module, the first conveyor belt is disposed inside the machine body, the conveyor plates are fixedly distributed on the surface of the first conveyor belt, and a second conveyor belt is provided between the first conveyor belt and the draining plate.
[0007] Preferably, the draining module further includes a winding plate, a scraper, teeth, and a sprocket. The winding plate is disposed on the inner side of the machine body and is positioned above the draining plate. The teeth are formed on the inner wall of the winding plate. The sprockets are symmetrically disposed on the inner side of the winding plate and are meshed with the teeth. The scraper is fixedly installed on the outer surface of the winding plate.
[0008] Preferably, a worm gear is fixedly connected to the bottom end of the outer rod, a worm is meshed with one side of the worm gear, a connecting belt is connected between the end of the worm and one of the sprockets via a pulley, a motor is installed inside the machine body, and the output end of the motor is connected to the worm.
[0009] Preferably, the slide bar is fixedly installed on the top surface of the machine body, the top plate is fixedly installed on the top of the slide bar, the electric push rod is fixedly installed at the inner center of the top plate, the pressure plate is fixedly installed on the telescopic end of the electric push rod, and the cutter is fixedly installed on the bottom surface of the pressure plate.
[0010] Preferably, the inner wall of the outer rod is provided with a snap-fit groove, and a snap-fit block is slidably installed inside the snap-fit groove. The snap-fit block is fixedly connected to the inner rod, and a rubber ball is fixedly connected to the top of the inner rod, and the rubber ball abuts against the bottom of the drain plate.
[0011] Preferably, the sixth conveyor belt is located on the inner side of the machine body, the labeling machine is installed above the sixth conveyor belt, and a weighing device is installed on the inner side of the sixth conveyor belt.
[0012] Preferably, the machine body is provided with a fourth conveyor belt inside, and the fourth conveyor belt is located below the cutter. A third conveyor belt is provided between the drain plate and the fourth conveyor belt, and a fifth conveyor belt is provided between the fourth conveyor belt and the sixth conveyor belt.
[0013] Preferably, extension plates are fixedly installed on both sides of the drain plate, and a plurality of first springs are connected to the bottom surface of the extension plates.
[0014] Preferably, the overall packaging module includes a seventh conveyor belt, which is disposed inside the machine body and below the sixth conveyor belt.
[0015] Working principle: During use, the vegetables to be cleaned are transported into the cleaning module. The built-in bubble cleaner is turned on to clean the vegetables. The first conveyor belt is turned on and continuously transports the cleaned vegetables to the second conveyor belt, which then transports them to the surface of the drain plate. The motor is turned on, which drives the worm gear to rotate. The worm gear drives the worm wheel to rotate, which in turn drives the outer rod to rotate. The outer rod drives the inner rod to rotate, which in turn drives the undulating rods on both sides to rotate. The undulating rods slide along the wave-shaped grooves on the surface of the undulating seat, thereby causing the inner rod to undulate up and down. The inner rod can drive the rubber ball to move up and down, thereby vibrating the bottom of the drain plate. The drain plate is vibrated, which in turn drains the vegetables on top of it. After draining, the water droplets on the surface of the vegetables are removed, thus ensuring the accuracy of subsequent weighing. When the worm gear rotates, it can synchronously drive the connecting belt to rotate. The connecting belt drives one of the sprockets to rotate, and the sprocket drives the winding plate to rotate. The winding plate drives the scraper to transport the vegetables on the surface of the draining plate. The transported vegetables can be transferred to the surface of the third conveyor belt. The third conveyor belt can transfer the vegetables to the surface of the fourth conveyor belt. At this time, the electric push rod can be activated. The electric push rod drives the pressure plate to move down, and the pressure plate drives the cutter to move down. The cutter cuts the vegetables placed on the surface of the fourth conveyor belt. The fourth conveyor belt transports the cut vegetables to the fifth conveyor belt and places them in the vegetable packaging module area. The vegetable packaging module has a built-in vegetable packaging machine that can package the vegetables and transport them to the sixth conveyor belt. The pressure sensor built into the sixth conveyor belt can detect the weight information of the packaged vegetables and transmit the weight information to the labeling machine. The labeling machine prints paper labels with the weight information and affixes them to the surface of the vegetable packaging. Subsequently, the weighed vegetables are transported to the seventh conveyor belt. The seasoning ingredients are added to the weighing module beforehand. The built-in packaging machine in the weighing module can quantitatively package the seasoning bags, ensuring that the weight is within a preset range. The packaged seasoning bags are then transferred to the surface of the seventh conveyor belt. The seventh conveyor belt transports the packaged seasoning bags and vegetable bags to the main packaging module. The built-in automatic bag packaging machine in the main packaging module can then package the vegetables and seasonings together to form a complete product.
[0016] This invention provides the following beneficial effects: 1. In this invention, the entire production line adopts a fully automated design, from cutting and conveying to weighing and packaging, minimizing human intervention. This not only significantly improves production efficiency and reduces labor costs, but also achieves human-machine isolation, effectively avoiding secondary pollution during the production process, resulting in stable product quality and a high level of hygiene.
[0017] 2. In this invention, by optimizing the process of washing and draining before cutting, and combining it with automatic packaging technology, the free moisture inside the packaging is fundamentally eliminated, and the growth environment of microorganisms is inhibited. This allows the product to maintain its fresh taste and color while significantly reducing product loss and circulation risks.
[0018] 3. This invention has good material compatibility. By adjusting the cutting module and packaging parameters, it can quickly adapt to different types of vegetables and different forms of seasonings, thereby enabling rapid response to market changes and enhancing applicability. Attached Figure Description
[0019] Figure 1 This is a three-dimensional structural diagram of the present invention; Figure 2 This is a cross-sectional structural diagram of the present invention; Figure 3 This is a schematic diagram of the winding plate structure of the present invention; Figure 4 This is a schematic diagram of the undulating seat structure of the present invention; Figure 5 This is a schematic diagram of the cross-sectional structure of the outer rod of the present invention; Figure 6 This is a schematic diagram of the worm gear structure of the present invention; Figure 7 This is a schematic diagram of the drainage plate structure of the present invention; Figure 8 This is a schematic diagram of the cutting blade structure of the present invention; Figure 9 This is a schematic diagram of the system architecture of the present invention.
[0020] The components are as follows: 1. Machine body; 2. Cleaning module; 201. First conveyor belt; 202. Conveyor plate; 3. Draining module; 301. Second conveyor belt; 302. Partition plate; 303. Fixing plate; 304. Winding plate; 3041. Scraper; 3042. Toothed groove; 3043. Sprocket; 305. Draining plate; 3051. First spring; 3052. Draining hole; 3053. Extension plate; 306. Third conveyor belt; 307. Outer rod; 3071. Second spring; 3072. Snap-fit groove; 3073. Snap-fit block; 308. Inner rod. 309. Rubber ball; 310. Undulating rod; 311. Undulating seat; 312. Worm gear; 313. Worm; 314. Motor; 315. Connecting belt; 4. Cutting module; 401. Fourth conveyor belt; 402. Electric push rod; 403. Pressure plate; 404. Cutter; 405. Slide rod; 406. Top plate; 5. Vegetable packaging module; 501. Fifth conveyor belt; 6. Labeling and weighing module; 601. Labeling machine; 602. Sixth conveyor belt; 7. Material bag packaging and weighing module; 8. Overall packaging module; 801. Seventh conveyor belt. Detailed Implementation
[0021] The technical solution of the present invention will now be clearly and completely described with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of them. 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.
[0022] Please see the appendix Figure 1 - Appendix Figure 9 This invention provides a vegetarian vegetable production and packaging system, including a machine body 1. Inside the machine body 1 are sequentially arranged a washing module 2, a draining module 3, a cutting module 4, a vegetarian vegetable packaging module 5, a labeling and weighing module 6, a ingredient package packaging and weighing module 7, and a final packaging module 8. The drainage module 3 also includes a drainage plate 305, a winding plate 304, a fixing plate 303, an outer rod 307, and an inner rod 308. The surface of the drainage plate 305 is provided with drainage holes 3052. The inner rod 308 is provided with a second spring 3071 inside, and the two ends of the second spring 3071 are respectively connected to the inner rod 308 and the outer rod 307. The bottom surface of the fixing plate 303 is fixedly installed with an undulating seat 311. The surface of the undulating seat 311 is provided with a wave-shaped groove. The two sides of the inner rod 308 are fixedly connected with undulating rods 310, and the undulating rods 310 extend into the wave-shaped groove on the surface of the undulating seat 311. The cleaning module 2 also includes a first conveyor belt 201 and a conveyor plate 202. The first conveyor belt 201 is disposed inside the machine body 1, and the conveyor plate 202 is fixedly distributed on the surface of the first conveyor belt 201. The cutting module 4 also includes a slide bar 405, a top plate 406, an electric push rod 402, a pressure plate 403, and a cutter 404. The slide bar 405 is fixedly installed on the top surface of the machine body 1, the top plate 406 is fixedly installed on the top of the slide bar 405, the electric push rod 402 is fixedly installed at the center of the inner side of the top plate 406, the pressure plate 403 is fixedly installed at the telescopic end of the electric push rod 402, and the cutter 404 is fixedly installed on the bottom surface of the pressure plate 403. The labeling and weighing module 6 includes a labeling machine 601 and a sixth conveyor belt 602. The sixth conveyor belt 602 is located inside the machine body 1. The labeling machine 601 is installed above the sixth conveyor belt 602, and a weighing device is installed inside the sixth conveyor belt 602.
[0023] Specifically, the cleaning module 2 has a built-in bubble cleaner for cleaning vegetables placed inside the machine body 1 and within the cleaning module 2. The surface of the first conveyor belt 201 has multiple air holes, which, in conjunction with the bubble cleaner, utilize the physical action of air-water mixing to complete the cleaning. The principle is as follows: an aeration pipe or microporous aeration disc is installed at the bottom or a specific location of the cleaning tank. A blower or air compressor continuously forces air into the aeration pipe. This air is then released into the water through tiny holes in the pipe, forming countless fine, evenly rising bubbles. When these dense clusters of bubbles rise from the bottom, they violently agitate the water, causing the water in the cleaning tank to boil. The vegetables soaking in the water are constantly agitated and tumbled in this turbulent flow, and the bubbles... The moment the air bubbles come into contact with and leave the surface of the vegetables, a slight bursting and scouring effect is generated. This continuous tumbling and scouring effectively shakes off and rubs away the mud, insect eggs, hair, and some pesticide residues attached to the surface of the vegetables. For vegetables with complex shapes (such as the gaps in broccoli, chives, and celery), the air bubbles can reach areas that are difficult for the brush to reach for cleaning. The bursting and stirring action of the air bubbles in the water accelerates the contact and exchange between the water and the surface of the vegetables, resulting in a better removal effect for water-soluble pesticide residues, thus ensuring the cleaning effect of the vegetables. The conveyor plate 202 is fixedly installed on the surface of the first conveyor belt 201 and is separated. When the first conveyor belt 201 is in motion, it can transport the cleaned vegetables to the area of the draining module 3. At the same time, the limiting action of the conveyor plate 202 can prevent the vegetables from slipping. The draining module 3 is adjacent to the washing module 2. After the washing module 2 finishes washing the vegetables, the vegetables can be transferred to the draining module 3 area. Since a large amount of water droplets remain on the surface of the vegetables after washing, these droplets will affect the subsequent weighing accuracy and shelf life. Therefore, it is necessary to drain the water droplets from their surface. When the vegetables enter the draining module area, the outer rod 307 can be rotated. The outer rod 307 drives the inner rod 308 to rotate, and the inner rod 308 drives the undulating rods 310 on both sides to rotate. The rod 310 slides along the wavy groove on the surface of the undulating seat 311, and can then move up and down along the wavy groove, thereby driving the inner rod 308 to extend and retract up and down. The inner rod 308 and the outer rod 307 are connected by a movable connection, which ensures that the inner rod 308 can extend and retract back and forth inside the outer rod 307. When the inner rod 308 extends and retracts, it can continuously push upward against the drain plate 305, thereby causing the vegetables placed on top of the drain plate 305 to be vibrated, shaking off the water droplets on the surface of the vegetables, thus achieving the effect of draining the vegetables. The sixth conveyor belt 602 is equipped with a pressure sensor. When the vegetables are conveyed to the surface of the sixth conveyor belt 602, the pressure sensor can detect the mass information of the vegetables placed on the surface of the sixth conveyor belt 602 and convert it into weight information. At the same time, the weight information is transmitted to the labeling machine 601 in the form of an electrical signal. The labeling machine 601 rotates to print the weight information of the vegetables and affixes the label to the surface of the vegetable packaging, thereby greatly increasing the automation. Since the labeling machine 601 is a mature technology, its specific structure and principle will not be described in detail here. When the vegetable is moved to the area of the cutting module 4, the electric push rod 402 can be activated. The electric push rod 402 can drive the pressure plate 403 to move down, and the pressure plate 403 can drive the cutter 404 to move down. The cutter 404 can cut the vegetable by continuously moving down. The pressure plate 403 and the slide rod 405 are connected by a sliding connection. Therefore, when the electric push rod 402 drives the pressure plate 403 to move down, the pressure plate 403 can slide on the slide rod 405, thereby ensuring the stability and directionality of the downward movement of the pressure plate 403 and the cutter 404.
[0024] Please see the appendix Figure 2 A partition 302 is provided at the junction between the cleaning module 2 and the draining module 3, and a second conveyor belt 301 is provided between the first conveyor belt 201 and the draining plate 305.
[0025] Specifically, the partition 302 is set at the junction between the draining module 3 and the washing module 2. The partition 302 can separate the draining module 3 and the washing module 2, thereby preventing the cleaning water inside the washing module 2 from flowing into the draining module 3. The second conveyor belt 301 is close to the first conveyor belt 201 and the draining plate 305. The first conveyor belt 201 can transfer the washed vegetables to the second conveyor belt 301, and the second conveyor belt 301 can transfer the washed vegetables to the surface of the draining plate 305, which facilitates the draining of the vegetables.
[0026] Please see the appendix Figure 3 The draining module 3 also includes a winding plate 304, a scraper 3041, a toothed pattern 3042, and a sprocket 3043. The winding plate 304 is located on the inner side of the machine body 1 and is positioned above the draining plate 305. The toothed pattern 3042 is formed on the inner wall of the winding plate 304. The sprocket 3043 is symmetrically arranged on the inner side of the winding plate 304 and is meshed with the toothed pattern 3042. The scraper 3041 is fixedly installed on the outer surface of the winding plate 304.
[0027] Specifically, the winding principle of the winding plate 304 is similar to that of the scraper 3041 conveyor. The toothed 3042 and the sprocket 3043 are connected by meshing, and the two sprockets 3043 support the winding plate 304. When the sprocket 3043 rotates, it can drive the winding plate 304 to rotate through meshing with the toothed 3042. When the winding plate 304 rotates, it can drive the scraper 3041 on its surface to rotate. The scraper 3041 is close to the top of the drain plate 305. When the scraper 3041 rotates to the bottom, it can push the vegetables on the surface of the drain plate 305 to one side, thereby completing the continuous conveying of vegetables.
[0028] Please see the appendix Figure 6 The bottom end of the outer rod 307 is fixedly connected to a worm gear 312, and a worm 313 is meshed with one side of the worm gear 312. The end of the worm 313 and one of the sprockets 3043 are connected by a connecting belt 315 through a pulley. A motor 314 is installed inside the machine body 1, and the output end of the motor 314 is connected to the worm 313.
[0029] Specifically, by turning on the motor 314, the motor 314 drives the worm gear 313 to rotate, which in turn drives the worm wheel 312 to rotate. The worm wheel 312 drives the outer rod 307 to rotate, which in turn drives the inner rod 308 to rotate. The inner rod 308 drives the undulating rods 310 on both sides to rotate around the wave-shaped groove on the surface of the undulating seat 311, thereby causing the inner rod 308 to extend and retract up and down. This vibrates the drain plate 305, which in turn drains the vegetables placed on the surface of the drain plate 305. At the same time, when the worm gear 313 rotates, it drives the connecting belt 315 to rotate. The connecting belt 315 drives one of the sprockets 3043 to rotate, which in turn drives the winding plate 304 to rotate. The winding plate 304 can then transport the vegetables on the surface of the drain plate 305, thus ensuring the linkage of the equipment during use.
[0030] Please see the appendix Figure 5 The inner wall of the outer rod 307 is provided with a snap-fit groove 3072, and a snap-fit block 3073 is slidably installed inside the snap-fit groove 3072, and the snap-fit block 3073 is fixedly connected to the inner rod 308.
[0031] Specifically, the snap-fit block 3073 is slidably installed inside the snap-fit groove 3072. Thus, when the inner rod 308 slides inside the outer rod 307, the snap-fit block 3073 can slide inside the snap-fit groove 3072, thereby ensuring the directional and stability of the extension and retraction of the inner rod 308 inside the outer rod 307. At the same time, when the outer rod 307 rotates, the snap-fit groove 3072 limits the snap-fit block 3073, ensuring the synchronous rotation of the inner rod 308 and the outer rod 307, indirectly ensuring the vibration of the drain plate 305 and the drainage effect on vegetables.
[0032] Please see the appendix Figure 4A rubber ball 309 is fixedly connected to the top of the inner rod 308, and the rubber ball 309 abuts against the bottom of the drain plate 305.
[0033] Specifically, when the inner rod 308 extends and retracts, it can cause the rubber ball 309 to extend and retract. The rubber ball 309 abuts against the bottom of the drain plate 305, thereby continuously impacting the bottom of the drain plate 305. This ensures the vibration effect of the drain plate 305 and increases the drainage effect on vegetables.
[0034] Please see the appendix Figure 2 The machine body 1 is provided with a fourth conveyor belt 401, which is located below the cutter 404. A third conveyor belt 306 is provided between the drain plate 305 and the fourth conveyor belt 401, and a fifth conveyor belt 501 is provided between the fourth conveyor belt 401 and the sixth conveyor belt 602.
[0035] Specifically, the third conveyor belt 306 is positioned below the drain plate 305 and the fourth conveyor belt 401, allowing the scraper 3041 to convey the drained vegetables to the surface of the third conveyor belt 306. The third conveyor belt 306 is adjacent to the fourth conveyor belt 401, thus conveying the vegetables to the surface of the fourth conveyor belt 401. The fourth conveyor belt 401 then conveys the vegetables to the fifth conveyor belt 501, which continuously conveys the vegetables to the sixth conveyor belt 602, thereby completing the continuous conveying of the vegetables and increasing the automation of the equipment.
[0036] Please see the appendix Figure 7 An extension plate 3053 is fixedly installed on both sides of the drain plate 305, and multiple first springs 3051 are connected to the bottom surface of the extension plate 3053.
[0037] Specifically, the inner wall of the body 1 has a groove, and the size of the groove is slightly larger than that of the extension plate 3053. The extension plate 3053 and the first spring 3051 are both located inside the groove. When the rubber ball 309 pushes the drain plate 305 upward, the drain plate 305 can move upward, and at the same time, it will stretch the first spring 3051. When the rubber ball 309 returns to its original position, the first spring 3051 can pull the drain plate 305 downward through the reverse force, thus ensuring the return of the drain plate 305. When the rubber ball 309 repeatedly pushes the drain plate 305, the drain plate 305 can move up and down repeatedly, thus ensuring the draining effect on vegetables. At the same time, when the rubber ball 309 pushes the drain plate 305 upward, the upward movement of the drain plate 305 can counteract the upward pressure of the rubber ball 309 and prevent the drain plate 305 from breaking.
[0038] Please see the appendix Figure 2 The main packaging module 8 includes a seventh conveyor belt 801, which is located inside the machine body 1 and below the sixth conveyor belt 602.
[0039] Specifically, the vegetable packaging module 5 and the seasoning package packaging and weighing module 7 are respectively a vegetable packaging machine and a seasoning package packaging machine. The seasoning package packaging machine is equipped with a quantitative feeding mechanism, which can ensure that the quality of each packaged seasoning package is within a set range. After the vegetable packaging module 5 and the seasoning package packaging and weighing module 7 have finished packaging the vegetables and seasonings, they can be simultaneously conveyed to the seventh conveyor belt 801. The first conveyor belt 201 is placed below the sixth conveyor belt 602, which ensures that after the vegetable packaging module 5 has finished packaging the vegetables, it is conveyed by the sixth conveyor belt 602 to the surface of the seventh conveyor belt, and then by the seventh conveyor belt 801 to the main packaging machine. The main packaging module 8 used in this solution is actually a bag-type automatic packaging machine. When a vegetable package and seasoning package are conveyed to the main packaging machine by the seventh conveyor belt 801, rotating the packaging module can package this vegetable and seasoning package into a complete product.
[0040] This embodiment provides a vegetarian vegetable production and packaging system. In use, the vegetarian vegetables to be packaged are transported to the cleaning module 2. The built-in bubble cleaner in the cleaning module 2 is activated to clean the vegetables. The first conveyor belt 201 is activated, continuously transporting the cleaned vegetables to the second conveyor belt 301, which then transports them to the surface of the drain plate 305. The motor 314 is activated, driving the worm gear 313 to rotate. The worm gear 313 drives the worm wheel 312 to rotate, which in turn drives the outer rod 307 to rotate. The outer rod 307 drives the inner rod 308 to rotate, which in turn drives the undulating rods 310 on both sides to rotate. The undulating rods 310 slide along the wave-shaped grooves on the surface of the undulating seat 311, thereby causing the inner rod 308 to undulate up and down. The inner rod 308 can also drive the rubber ball 309 to move up and down, thus vibrating the bottom of the drain plate 305. The drain plate 305 is vibrated, thus draining the vegetables on top. After draining, the water droplets on the surface of the vegetables are removed, thus ensuring the accuracy of subsequent weighing. When the worm gear 313 rotates, it can synchronously drive the connecting belt 315 to rotate. The connecting belt 315 drives one of the sprockets 3043 to rotate. The sprocket 3043 drives the winding plate 304 to rotate. The winding plate 304 drives the scraper 3041 to transport the vegetables on the surface of the draining plate 305. The transported vegetables can be transferred to the surface of the third conveyor belt 306. The third conveyor belt 306 can transfer the vegetables to the surface of the fourth conveyor belt 401. At this time, the electric push rod 402 can be turned on. The electric push rod 402 drives the pressure plate 403 to move down. The pressure plate 403 drives the cutter 404 to move down. The cutter 404 cuts the vegetables placed on the surface of the fourth conveyor belt 401. The fourth conveyor belt 401 transports the cut vegetables to the fifth conveyor belt 501 and places them in the area of the vegetable packaging module 5. The vegetable packaging module 5 has a built-in vegetable packaging machine that can package the vegetables and continuously transport them to the sixth conveyor belt 602. The pressure sensor built into the sixth conveyor belt 602 can detect the weight information of the packaged vegetables and transmit the weight information to the labeling machine 601. The labeling machine 601 prints a paper label with the weight information and affixes it to the surface of the vegetable packaging. Subsequently, the weighed vegetables are transported to the seventh conveyor belt 801. The seasoning ingredients are added to the area of the seasoning package weighing module 7 beforehand. The seasoning package packaging weighing module 7 has a built-in seasoning package packaging machine that can quantitatively package the seasoning bags so that the weight is within a preset range. Then, the packaged seasoning bags are transferred to the surface of the seventh conveyor belt 801. The seventh conveyor belt 801 transports the packaged seasoning bags and vegetable bags to the area of the main packaging module 8. The automatic bag-feeding packaging machine built into the main packaging module 8 can then package the vegetables and seasonings together to make them into a complete product.
[0041] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A vegetarian food production and packaging system, characterized in that, The machine includes a body (1), and inside the body (1) are arranged a cleaning module (2), a draining module (3), a cutting module (4), a vegetable packaging module (5), a labeling and weighing module (6), a seasoning package packaging and weighing module (7), and a total packaging module (8). The draining module (3) also includes a draining plate (305), a winding plate (304), a fixing plate (303), an outer rod (307), and an inner rod (308). The surface of the draining plate (305) is provided with draining holes (3052). The inner rod (308) is provided with a second spring (3071), and the two ends of the second spring (3071) are respectively connected to the inner rod (308) and the outer rod (307). The bottom surface of the fixing plate (303) is fixedly installed with an undulating seat (311). The surface of the undulating seat (311) is provided with a wave-shaped groove. The two sides of the inner rod (308) are fixedly connected with undulating rods (310), and the undulating rods (310) extend into the wave-shaped groove on the surface of the undulating seat (311). The cleaning module (2) also includes a first conveyor belt (201) and a conveyor plate (202); The cutting module (4) also includes a slide bar (405), a top plate (406), an electric push rod (402), a pressure plate (403), and a cutter (404). The labeling and weighing module (6) includes a labeling machine (601) and a sixth conveyor belt (602).
2. The vegetarian food production and packaging system according to claim 1, characterized in that, A partition (302) is provided at the junction between the cleaning module (2) and the draining module (3). The first conveyor belt (201) is located inside the machine body (1). The conveyor plate (202) is fixedly distributed on the surface of the first conveyor belt (201). A second conveyor belt (301) is provided between the first conveyor belt (201) and the draining plate (305).
3. The vegetarian food production and packaging system according to claim 1, characterized in that, The draining module (3) further includes a winding plate (304), a scraper (3041), a toothed pattern (3042), and a sprocket (3043). The winding plate (304) is located on the inner side of the body (1) and is positioned above the draining plate (305). The toothed pattern (3042) is formed on the inner wall of the winding plate (304). The sprocket (3043) is symmetrically arranged on the inner side of the winding plate (304) and is meshed with the toothed pattern (3042). The scraper (3041) is fixedly installed on the outer surface of the winding plate (304).
4. A vegetarian food production and packaging system according to claim 3, characterized in that, The bottom end of the outer rod (307) is fixedly connected to a worm gear (312), and a worm (313) is meshed with one side of the worm gear (312). The end of the worm (313) and one of the sprockets (3043) are connected by a connecting belt (315) through a pulley. A motor (314) is installed inside the machine body (1), and the output end of the motor (314) is connected to the worm (313).
5. A vegetarian food production and packaging system according to claim 1, characterized in that, The slide bar (405) is fixedly installed on the top surface of the machine body (1), the top plate (406) is fixedly installed on the top of the slide bar (405), the electric push rod (402) is fixedly installed at the center of the inner side of the top plate (406), the pressure plate (403) is fixedly installed at the telescopic end of the electric push rod (402), and the cutter (404) is fixedly installed on the bottom surface of the pressure plate (403).
6. A vegetarian food production and packaging system according to claim 1, characterized in that, The inner wall of the outer rod (307) is provided with a snap-fit groove (3072), and a snap-fit block (3073) is slidably installed inside the snap-fit groove (3072). The snap-fit block (3073) is fixedly connected to the inner rod (308). A rubber ball (309) is fixedly connected to the top of the inner rod (308), and the rubber ball (309) abuts against the bottom of the drain plate (305).
7. A vegetarian food production and packaging system according to claim 1, characterized in that, The sixth conveyor belt (602) is located inside the machine body (1), the labeling machine (601) is installed above the sixth conveyor belt (602), and a weighing device is installed inside the sixth conveyor belt (602).
8. A vegetarian food production and packaging system according to claim 1, characterized in that, The machine body (1) is provided with a fourth conveyor belt (401) inside, and the fourth conveyor belt (401) is located below the cutter (404). A third conveyor belt (306) is provided between the drain plate (305) and the fourth conveyor belt (401), and a fifth conveyor belt (501) is provided between the fourth conveyor belt (401) and the sixth conveyor belt (602).
9. A vegetarian food production and packaging system according to claim 1, characterized in that, Extension plates (3053) are fixedly installed on both sides of the drain plate (305), and a plurality of first springs (3051) are connected to the bottom surface of the extension plates (3053).
10. A vegetarian food production and packaging system according to claim 1, characterized in that, The overall packaging module (8) includes a seventh conveyor belt (801), which is located inside the machine body (1) and below the sixth conveyor belt (602).
Citation Information
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