Rice flour automatic packaging equipment

By designing automatic rice noodle packaging equipment and utilizing components such as conveyor belts and roller conveyors, the automatic positioning and box packaging of rice noodles can be achieved, solving the problem of low manual operation efficiency, improving production efficiency and reducing labor intensity.

CN117401241BActive Publication Date: 2025-10-10JIANGXI GAOMEIGAO HEALTH FOOD CO LTD
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Patent Information

Application Number
CN202311551730.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-11-21
Publication Date
2025-10-10
Estimated Expiration
2043-11-21

AI Technical Summary

Technical Problem

The existing rice noodle packaging process relies on manual operation, resulting in low production efficiency. Especially in large-scale production, it is difficult to keep up with the accumulation of rice noodles, affecting production efficiency.

Method used

An automatic rice noodle packaging equipment was designed, including a conveying structure and a feeding structure. The equipment used components such as a conveyor belt, a roller conveyor, and a servo motor to achieve automatic positioning and box packaging of rice noodles. The rice noodles were automatically separated and dropped into cartons through the cooperation of guide plates, partition plates, and movable plates.

Benefits of technology

The automatic packaging of rice noodles into boxes is realized, which reduces the labor intensity of staff, improves production efficiency and ensures the efficient packaging of rice noodles.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application provides a kind of rice powder automatic packaging equipment, including conveying structure, conveying structure includes first conveying caterpillar, one end of first conveying caterpillar is provided with feeding structure, feeding structure includes two roller conveyors, the side of two roller conveyors opposite is provided with lower housing, the inside of lower housing is provided with second conveying caterpillar, the output surface of second conveying caterpillar is provided with multiple top block bodies, the side of lower housing away from first conveying caterpillar is provided with vertical plate, the side of vertical plate close to lower housing is provided with fixed plate, the side of fixed plate close to first conveying caterpillar is equally divided and provided with two partition plates, the two sides of fixed plate are symmetrically provided with moving plate.The device can automatically pack rice powder into boxes, effectively reducing the labor intensity of workers, and improving the packaging efficiency of rice powder, speeding up the production efficiency of rice powder.
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Description

Technical Field

[0001] The invention relates to the technical field of rice noodle production, in particular to automatic rice noodle packaging equipment. Background Art

[0002] Rice noodles are divided into dry rice noodles and wet rice noodles. Common dry rice noodles are long strips with a certain degree of hardness and toughness. When purchasing rice noodles, retailers usually choose to buy rice noodles in large boxes.

[0003] In the existing large-scale packaging of whole boxes of rice noodles, staff usually place a food-grade plastic sealed bag in a larger-sized carton. Then, the staff takes the processed rice noodles from a conveyor and places them in a plastic bag for regular stacking. After stacking, they are weighed and the rice noodles are increased or decreased according to the actual weight. Then, the staff carry and transfer them, and the staff of the next link seals the plastic bag and then seals the box to complete the packaging of the rice noodles.

[0004] Although the existing packaging technology can package rice noodles, the manual packaging method is relatively traditional. When the production volume is large, the efficiency of the staff cannot keep up, which often leads to the accumulation of rice noodles and affects the production efficiency of rice noodles. Therefore, an automatic rice noodle packaging device is provided to solve the above-mentioned problems. Summary of the Invention

[0005] To achieve the above object, the present invention provides the following technical solutions:

[0006] Disclosed is an automatic rice noodle packaging device, comprising a conveying structure, the conveying structure comprising a first conveying crawler, a feeding structure being provided at one end of the first conveying crawler, the feeding structure comprising two roller conveyors, a lower shell being provided on opposite sides of the two roller conveyors, a second conveying crawler being provided inside the lower shell, a plurality of top block bodies being provided on the output surface of the second conveying crawler, a vertical plate being provided on a side of the lower shell away from the first conveying crawler, a fixed plate being provided on a side of the vertical plate close to the lower shell, two partition plates being equally divided on a side of the fixed plate close to the first conveying crawler, and movable plates being symmetrically provided on both sides of the fixed plate.

[0007] As a preferred solution of the present invention, the output surface of the roller conveyor is provided with several carton bodies, the lower surface of the carton body is in contact with the output surface of the roller conveyor and is frictionally connected, the upper surface of the lower shell is provided with a movable groove, the output surface of the second conveying belt is flush with the upper surface of the movable groove, and the second transmission rollers are symmetrically arranged at both ends of the interior of the second conveying belt, the outer wall of the second transmission roller is in contact with the inner wall of the second conveying belt and is meshingly connected, a plurality of support shafts are arranged between the two second transmission rollers, and the two end axes of the support shaft are provided with connecting shafts, the outer wall of one side of the connecting shaft is in contact with the one side axis of the support shaft and is welded, the outer wall of the other side of the connecting shaft is in contact with the inner wall of the lower shell and is rotatably connected, and the outer walls of both ends of the second transmission roller are in contact with the inner wall of the lower shell and are rotatably connected.

[0008] As a preferred solution of the present invention, first transmission rollers are symmetrically arranged at both ends of the interior of the first conveyor belt, the outer walls of the first transmission rollers are in contact with the inner wall of the first conveyor belt and are meshedly connected, baffles are symmetrically arranged at both ends of the first transmission roller, support legs are symmetrically arranged at the ends of the two baffles away from each other, the upper end of the outer wall of one side of the support leg is in contact with the lower end of the outer wall of one side of the baffle and is bolted, and the outer walls at both ends of the first transmission roller are in contact with the outer wall of one side of the baffle and are rotatably connected.

[0009] As a preferred solution of the present invention, a slide groove is provided on the upper surface of the vertical plate, and a screw body is provided inside the slide groove. Both ends of the screw body are in contact with the inner wall of the slide groove and are rotatably connected. A screw motor is provided on the upper end of the outer wall of one side of the vertical plate, and the outer wall of the screw motor is in contact with the outer wall of the vertical plate and is connected to the bracket. The output end of the screw motor passes through the outer wall of one side of the vertical plate and is in contact with the center of the outer wall of one end of the screw body and is transmission connected. A slider is provided on the outer wall of the screw body, and a threaded groove is provided on one side of the slider. The inner wall of the threaded groove is in contact with the outer wall of the screw body and is threadedly connected.

[0010] As a preferred solution of the present invention, a rotating motor is provided on the outer wall of the support leg away from the first transmission roller, the outer wall of the rotating motor is in contact with the outer wall of the support leg and is connected by a bracket, the output end of the rotating motor passes through the outer wall of the support leg and the baffle and is in contact with the center of the outer wall of the first transmission roller and is connected for transmission, and guide plates are symmetrically provided on the upper surface of the first conveyor belt near one end of the feeding structure, the outer walls of the two guide plates away from each other are in contact with the outer wall of one side of the baffle, and the guide plates and the baffle are connected by a bracket.

[0011] As a preferred solution of the present invention, a sliding rod is provided on the upper surface of the slider, and the lower surface of the sliding rod close to the slider is in contact with the upper surface of the slider and is bolted. A hydraulic rod is provided on the side of the lower surface of the sliding rod away from the slider, and the outer wall of the hydraulic rod away from the output end is in contact with the lower surface of the sliding rod and is bolted. The output end of the hydraulic rod is in contact with the upper surface of the fixed plate and is bolted.

[0012] As a preferred solution of the present invention, a servo motor is symmetrically arranged on the outer wall of one side of the lower shell, the outer wall of the servo motor is in contact with the outer wall of the lower shell and is connected to the bracket, the output end of the servo motor passes through the outer wall of the lower shell and is in contact with the axis of the outer wall of one side of the second transmission roller and is connected for transmission, and the outer wall of one side of the top block body is in contact with the outer wall of the second conveying crawler and is fixedly connected.

[0013] As a preferred solution of the present invention, a plurality of slots are equally spaced apart at the center of the outer wall of one side of the fixed plate close to the partition plate, a horizontal block is provided at the center of the outer wall of one side of the partition plate, one outer wall of the horizontal block is in contact with and fixedly connected to the outer wall of one side of the partition plate, a vertical block is provided on the outer wall of the side of the horizontal block away from the partition plate, one outer wall of the horizontal block is in contact with the lower end of the outer wall of one side of the vertical block and is fixedly connected, and the outer wall of the horizontal block is in contact with the inner wall of the movable plate and is snap-connected.

[0014] As a preferred solution of the present invention, a symmetrically provided clearance groove is provided on the upper surface of the fixed plate, the inner wall of the clearance groove is in contact with the outer wall of the movable plate, a pull-out groove is symmetrically provided on the inner wall of one side of the clearance groove, a pull rod is provided inside the pull-out groove, one end of the pull rod is in contact with the inner wall of the pull-out groove and is connected by a buckle, the other end of the pull rod is in contact with the outer wall of one side of the movable plate and is fixedly connected, and a plurality of first snap grooves are provided on one side of the pull rod.

[0015] As a preferred solution of the present invention, two second snap grooves are symmetrically opened on the outer wall of one side of the fixing plate, and the position of the second snap groove matches the position of the first snap groove. A snap block is provided inside the second snap groove, and the outer wall of the snap block contacts the inner wall of the second snap groove and is frictionally connected. One end of the snap block extends into the first snap groove and contacts the inner wall of the first snap groove and is magnetically connected.

[0016] In summary, the present invention mainly has the following beneficial effects: the device can automatically pack rice noodles into boxes, effectively reducing the labor intensity of staff, and improving the packaging efficiency of rice noodles, thereby accelerating the production efficiency of rice noodles;

[0017] The device is structurally provided with a fixed plate, so that the fixed plate, the partition plate and the movable plate are inserted into the carton body to divide the interior of the carton body into spaces. Then, the rice noodles are aligned with one of the spaces through the guide plate. After completing one package, the second conveyor belt under the carton body moves to move the carton body, so that the rice noodles fall into the next space. After the packaging is completed, the fixed plate is moved out of the carton body, and then, it is pushed by the top block body to the next roller conveyor and conveyed away, and the cycle is repeated. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 This is an axonometric view of the present invention in its entirety in a non-working state;

[0019] Figure 2 This is an axonometric diagram of the overall working state of the present invention;

[0020] Figure 3 This is an axonometric view of the lower housing of the present invention;

[0021] Figure 4 is an isometric view of the interior of the lower housing of the present invention;

[0022] Figure 5 for Figure 3 A magnified view of the structure at center A;

[0023] Figure 6 An exploded view of the fixed plate structure of the present invention;

[0024] Figure 7 This is an axonometric view of the screw body related structure of the present invention.

[0025] Description of the drawings: 100, conveying structure; 111, first conveying crawler; 112, first transmission roller; 113, support leg; 114, rotating motor; 115, baffle; 116, guide plate; 200, feeding structure; 211, roller conveyor; 212, carton body; 221, vertical plate; 222, slide; 223, screw body; 224, screw motor; 225, slider; 2251, thread groove; 226, slide rod; 227, hydraulic rod; 228, fixed plate; 22 81. Give way slot; 2282. Pull-out slot; 229. Partition plate; 230. Movable plate; 2283. Pull rod; 2284. First snap slot; 2285. Second snap slot; 2286. Snap block; 2287. Slot hole; 2288. Horizontal block; 2289. Vertical block; 231. Lower shell; 232. Movable slot; 233. Second conveyor belt; 234. Top block body; 235. Second transmission roller; 236. Support shaft; 237. Connecting shaft; 238. Servo motor. DETAILED DESCRIPTION

[0026] The technical solutions in the embodiments of the present invention will be described clearly and completely below with reference to the accompanying drawings in the embodiments of the present invention.

[0027] Example

[0028] It should be noted that the device is provided with an external control panel, which adopts a conventional multi-function control device with a touch screen and an audio system, and realizes normal operation based on the corresponding setting of the program in terms of function;

[0029] Please refer to Figure 1 and Figure 2 As shown, an automatic rice noodle packaging device includes a conveying structure 100, which is used to transmit dry rice noodles so that they fall into a feeding structure 200, and the conveying structure 100 includes a first conveying crawler 111, and first transmission rollers 112 are symmetrically arranged at both ends of the first transmission crawler 111, and the outer wall of the first transmission roller 112 is in contact with the inner wall of the first transmission crawler 111 and is meshedly connected, and baffles 115 are symmetrically arranged at both ends of the first transmission roller 112, and the two baffles 115 are symmetrically provided with support legs 113 away from one end facing each other, and the upper end of the outer wall of one side of the support leg 113 is in contact with the lower end of the outer wall of one side of the baffle 115 and is bolted, and the outer walls of both ends of the first transmission roller 112 are in contact with the outer wall of one side of the baffle 115 and are rotatably connected;

[0030] The outer wall of the supporting leg 113 away from the first transmission roller 112 is provided with a rotating motor 114, the outer wall of the rotating motor 114 is in contact with the outer wall of one side of the supporting leg 113 and is connected by a bracket, the output end of the rotating motor 114 passes through the outer wall of one side of the supporting leg 113 and the baffle 115, is in contact with the center of the outer wall of one side of the first transmission roller 112 and is transmission-connected, the upper surface of the first conveying crawler 111 is symmetrically provided with a guide plate 116 near one end of the feeding structure 200, the two guide plates 116 are in contact with the outer wall of one side of the baffle 115 away from the opposite side, and the guide plates 116 and the baffle 115 are connected by a bracket. It should be noted that the function of the guide plate 116 is to enable the rice noodles to be introduced between the partition plate 229 and the movable plate 230 or between the partition plate 229 and the partition plate 229, so the angle setting of the guide plate 116 is adjusted according to the actual situation on site, and no further details will be given here.

[0031] When the processed rice noodles need to be transported:

[0032] First, the staff adjusts the angle of the guide plate 116. Then, the staff places the processed rice noodles on the upper surface of the first conveyor belt 111 at a certain distance. Then, the output end of the rotating motor 114 rotates, causing the first transmission roller 112 to rotate, and then the first conveyor belt 111 to rotate, driving the rice noodles to move. When the rice noodles come into contact with the guide plate 116, under the combined action of the friction force and the rotational force of the first conveyor belt 111, the rice noodles are changed in position on the guide plate 116, so that they move toward the feeding structure 200.

[0033] The device can automatically position the rice noodles and assist the subsequent feeding structure 200 to automatically package the rice noodles.

[0034] Please refer to Figure 1-Figure 7 As shown, a feeding structure 200 is provided at one end of the first conveyor belt 111, and the feeding structure 200 includes two roller conveyors 211. The output surface of the roller conveyor 211 is provided with a plurality of carton bodies 212. The lower surface of the carton body 212 is in contact with the output surface of the roller conveyor 211 and is frictionally connected. The roller conveyor 211 adopts the existing technical structure for transporting the carton body 212. A lower shell 231 is provided on the side facing each other of the two roller conveyors 211. A movable groove 232 is provided on the upper surface of the lower shell 231. A second conveyor belt 233 is provided inside the lower shell 231. The output surface of the second conveyor belt 233 is in contact with the movable groove 232. The upper surface of the movable groove 232 is flush, and second transmission rollers 235 are symmetrically provided at both ends of the interior of the second transmission crawler 233. The outer walls of the second transmission rollers 235 are in contact with and meshed with the inner wall of the second transmission crawler 233. A plurality of support shafts 236 are provided between the two second transmission rollers 235. The axis centers of both ends of the support shafts 236 are provided with connecting shafts 237. The outer wall of one side of the connecting shaft 237 is in contact with and welded to the axis center of one side of the support shaft 236, and the outer wall of the other side of the connecting shaft 237 is in contact with the inner wall of the lower shell 231 and is rotatably connected. The outer walls of both ends of the second transmission rollers 235 are in contact with and rotatably connected to the inner wall of the lower shell 231.

[0035] A servo motor 238 is symmetrically provided on the outer wall of one side of the lower housing 231. The outer wall of the servo motor 238 contacts the outer wall of the lower housing 231 and is connected to the bracket. The output end of the servo motor 238 passes through the outer wall of the lower housing 231 and contacts the axis of the outer wall of one side of the second transmission roller 235 and is in transmission connection. The output surface of the second transmission crawler 233 is provided with multiple top block bodies 234. The outer wall of one side of the top block body 234 contacts the outer wall of the second transmission crawler 233 and is fixedly connected. It should be noted that: when the roller conveyor 211 After the carton body 212 is transferred to the upper surface of the second conveyor belt 233, under the action of the roller conveyor 211, one end of the carton body 212 is pressed against the outer wall of one side of the top block body 234. As the second conveyor belt 233 continues to rotate, the contact area between the carton body 212 and the second conveyor belt 233 becomes larger and larger until it is completely in contact with the output end of the second conveyor belt 233. At this time, the other end of the carton body 212 also contacts the outer wall of the other top block body 234, completing the movement and positioning of the carton body 212.

[0036] A vertical plate 221 is provided on the side of the lower housing 231 away from the first conveyor belt 111, and a slide groove 222 is provided on the upper surface of the vertical plate 221. A screw body 223 is provided inside the slide groove 222. Both ends of the screw body 223 are in contact with the inner wall of the slide groove 222 and are rotatably connected. A screw motor 224 is provided on the upper end of the outer wall of one side of the vertical plate 221. The outer wall of the screw motor 224 is in contact with the outer wall of the vertical plate 221 and is connected to the bracket. The output end of the screw motor 224 passes through the outer wall of one side of the vertical plate 221 and is in contact with the center of the outer wall of one end of the screw body 223 and is transmission connected. A slider 225 is sleeved on the outer wall of the screw body 223. A threaded groove 2251 is provided on one side of the slider 225. The inner wall of the threaded groove 2251 is in contact with the outer wall of the screw body 223 and is threadedly connected.

[0037] The upper surface of the slider 225 is provided with a slide bar 226, and the lower surface of the slide bar 226 near one end of the slider 225 contacts the upper surface of the slider 225 and is bolted. The lower surface of the slide bar 226 is provided with a hydraulic rod 227 on the side away from the slider 225, and the outer wall of the hydraulic rod 227 away from the output end contacts the lower surface of the slide bar 226 and is bolted. A side of the vertical plate 221 near the lower shell 231 is provided with a fixing plate 228, and the output end of the hydraulic rod 227 contacts the upper surface of the fixing plate 228 and is bolted. The fixing plate 228 is equally divided into two dividing plates 229 on a side close to the first conveyor belt 111. It should be noted that because the interior of the carton is not high and the rice noodles have a certain elasticity and hardness, the rice noodles will only be broken in a very rare case when they fall, so the broken rice noodles are not considered.

[0038] The fixing plate 228 is provided with a plurality of slots 2287 at the center of the outer wall of one side of the partition plate 229, and a horizontal block 2288 is provided at the center of the outer wall of one side of the partition plate 229. The outer wall of one side of the horizontal block 2288 contacts and is fixedly connected to the outer wall of one side of the partition plate 229. The outer wall of one side of the horizontal block 2288 contacts and is fixedly connected to the lower end of the outer wall of one side of the vertical block 2289. The outer wall of the horizontal block 2288 contacts and is fixedly connected to the inner wall of the movable plate 230. It should be noted that the number of the partition plates 229 can be increased or decreased according to actual needs. By first inserting the upper end of the vertical block 2289 into the slot 2287 and then inserting the lower end of the vertical block 2289 into the slot 2287, the partition plate 229 is firmly fixed on the fixing plate 228 under the action of its own gravity.

[0039] The movable plates 230 are symmetrically arranged on both sides of the fixed plate 228. The upper surface of the fixed plate 228 is symmetrically penetrated with a clearance groove 2281. The inner wall of the clearance groove 2281 contacts the outer wall of the movable plate 230. A pull-out groove 2282 is symmetrically arranged on the inner wall of one side of the clearance groove 2281. A pull rod 2283 is arranged inside the pull-out groove 2282. One end of the pull rod 2283 contacts the inner wall of the pull-out groove 2282 and is connected by a buckle. The other end of the pull rod 2283 contacts the outer wall of one side of the movable plate 230 and is fixedly connected. A plurality of first buckle grooves 2284 are opened on one side of the pull rod 2283.

[0040] Two second snap grooves 2285 are symmetrically provided on the outer wall of one side of the fixing plate 228, and the second snap groove 2285 matches the position of the first snap groove 2284. A snap block 2286 is provided inside the second snap groove 2285, and the outer wall of the snap block 2286 contacts the inner wall of the second snap groove 2285 and is frictionally connected. One end of the snap block 2286 extends into the first snap groove 2284 and contacts the inner wall of the first snap groove 2284 and is magnetically connected. It should be noted that: the snap block 2286 can be removed by taking out a magnetic force greater than the magnetic force of the snap block 2286 and the pull rod 2283.

[0041] When rice noodles need to be automatically packaged:

[0042] First, the staff puts a plastic bag into the carton body 212 and places it on the roller conveyor 211 at equal distances. Then, under the action of the roller conveyor 211, one end of the carton body 212 is pressed against the outer wall of one side of the top block body 234. Then, the servo motor 238 starts to work, and its output end rotates to drive the second transmission roller 235 to rotate, thereby rotating the second transmission crawler 233 engaged with the second transmission roller 235. As the second transmission crawler 233 continues to rotate, the contact area between the carton body 212 and the second transmission crawler 233 becomes larger and larger until it completely contacts the output end of the second transmission crawler 233. At this time, the other end of the carton body 212 also contacts the outer wall of another top block body 234, completing the movement and positioning of the carton body 212.

[0043] Next, the roller conveyor 211 and the servo motor 238 stop working, and the output end of the hydraulic rod 227 moves downward, so that the fixed plate 228 is inserted into the plastic bag of the carton body 212. At this time, the partition plate 229 and the movable plate 230 separate the space inside the carton body 212 and make the first compartment match the falling direction of the rice noodles;

[0044] Then, ground rice hits fixed plate 228 successively from conveying structure 100 and drops in the compartment, after dropping a certain amount of ground rice, servo motor 238 starts working, and second transmission crawler belt 233 rotates, and makes next compartment complementary with the falling direction of ground rice, and by that analogy, until completing the ground rice packing of a box, then, conveying structure 100 stops working, simultaneously, after the sensor that roller conveyor 211 edge is provided with detects that carton body 212 is arranged, also stops working automatically, second transmission crawler belt 233 rotates, drives top block body 234 to promote carton body 212, carton body 212 is moved on next roller conveyor 211, transported out by next roller conveyor 211, when top block body 234 moves to the front end of next carton, roller conveyor 211 starts working, and carton is pushed on the second transmission crawler belt 233, circulates successively.

[0045] The device can automatically pack rice noodles into boxes, effectively reducing the labor intensity of staff.

[0046] The working principle of the present invention is:

[0047] Firstly, the staff adjusts the angle of the guide plate 116 and puts the paper box body 212 into the plastic bag and equidistantly on the roller conveyor 211, then under the action of the roller conveyor 211, one end of the paper box body 212 is on one side of the outer wall of the top block body 234, then the servo motor 238 starts to work, the output end rotates to drive the second transmission roller 235 to rotate, and then the second transmission belt 233 connected with the second transmission roller 235 rotates, with the continuous rotation of the second transmission belt 233, the contact area between the paper box body 212 and the second transmission belt 233 becomes larger and larger, until the output end of the second transmission belt 233 is completely contacted, at this time, the other end of the paper box body 212 also contacts with the outer wall of the other top block body 234, completing the movement and positioning of the paper box body 212;

[0048] At the same time, the staff places the finished rice powder at intervals on the upper surface of the first transmission belt 111, then the output end of the rotary motor 114 rotates to rotate the first transmission roller 112, and then the first transmission belt 111 rotates to drive the rice powder to displace, when the rice powder contacts with the guide plate 116, under the combined action of the friction force and the rotating force of the first transmission belt 111, the rice powder is changed in position on the guide plate 116 and moves towards the feeding structure 200.

[0049] Then, the roller conveyor 211 and the servo motor 238 stop working, the output end of the hydraulic rod 227 moves downward, and the fixed plate 228 is inserted into the plastic bag of the paper box body 212, at this time, the partition plate 229 and the moving plate 230 separate the space inside the paper box body 212 and match the first compartment with the falling direction of the rice powder;

[0050] Then, the rice powder from the conveying structure 100 hits the fixed plate 228 in turn and falls into the compartment, when a certain amount of rice powder falls, the servo motor 238 starts to work, the second transmission belt 233 rotates, and the next compartment is matched with the falling direction of the rice powder, and so on, until the rice powder packaging of one box is completed, then the conveying structure 100 stops working, at the same time, the sensor arranged on the edge of the roller conveyor 211 detects the paper box body 212 and also automatically stops working, the second transmission belt 233 rotates to drive the top block body 234 to push the paper box body 212, so that the paper box body 212 moves to the next roller conveyor 211 and is transported out by the next roller conveyor 211, when the top block body 234 moves to the front end of the next paper box, the roller conveyor 211 starts to work to push the paper box to the second transmission belt 233, and then circulates.

[0051] The embodiments of the present invention have been shown and described, but this specific embodiment is only an explanation of the invention and is not a limitation of the invention. The specific features, structures, materials or characteristics described may be combined in a suitable manner in any one or more embodiments or examples. After reading this specification, those skilled in the art may make non-creative modifications, substitutions and variations to the embodiments as needed without departing from the principles and purpose of the present invention. However, as long as they are within the scope of the claims of the present invention, they are protected by patent law.

Claims

1. An automatic rice noodle packaging device, comprising a conveying structure (100), characterized in that: The conveying structure (100) includes a first conveying crawler (111), a feeding structure (200) is provided at one end of the first conveying crawler (111), and the feeding structure (200) includes two roller conveyors (211), a lower shell (231) is provided on the opposite side of the two roller conveyors (211), a second conveying crawler (233) is provided inside the lower shell (231), and a plurality of top block bodies (234) are provided on the output surface of the second conveying crawler (233), a vertical plate (221) is provided on the side of the lower shell (231) away from the first conveying crawler (111), a fixed plate (228) is provided on the side of the vertical plate (221) close to the lower shell (231), two partition plates (229) are equally divided on the side of the fixed plate (228) close to the first conveying crawler (111), and movable plates (230) are symmetrically provided on both sides of the fixed plate (228); The upper surface of the vertical plate (221) is provided with a slide groove (222), and a screw body (223) is provided inside the slide groove (222). Both ends of the screw body (223) are in contact with the inner wall of the slide groove (222) and are rotatably connected. A screw motor (224) is provided at the upper end of the outer wall of one side of the vertical plate (221), and the outer wall of the screw motor (224) is in contact with the outer wall of the vertical plate (221) and is connected to the bracket. The output end of the screw motor (224) passes through the outer wall of one side of the vertical plate (221) and contacts the center of the outer wall of one end of the screw body (223) and is transmission-connected. A slider (225) is sleeved on the outer wall of the screw body (223), and a thread groove (2251) is provided on one side of the slider (225). The inner wall of the thread groove (2251) contacts the outer wall of the screw body (223) and is threadedly connected. A slide bar (226) is provided on the upper surface of the slider (225), and the lower surface of the slide bar (226) close to the slider (225) contacts the upper surface of the slider (225) and is bolted. A hydraulic rod (227) is provided on the side of the lower surface of the slide bar (226) away from the slider (225), and the outer wall of the hydraulic rod (227) away from the output end contacts the lower surface of the slide bar (226) and is bolted. The output end of the hydraulic rod (227) contacts the upper surface of the fixed plate (228) and is bolted.

2. A rice noodle automatic packaging equipment according to claim 1, characterized in that, The output surface of the roller conveyor (211) is provided with a plurality of carton bodies (212), the lower surface of the carton body (212) contacts the output surface of the roller conveyor (211) and is frictionally connected, the upper surface of the lower shell (231) is provided with a movable groove (232), the output surface of the second conveying crawler (233) is flush with the upper surface of the movable groove (232), the inner ends of the second conveying crawler (233) are symmetrically provided with second transmission rollers (235), the outer wall of the second transmission roller (235) is in contact with the second conveying crawler (233), and the outer wall of the second transmission roller (235) is in contact with the outer wall of the second conveying crawler (233). ) are in contact with the inner wall of the lower shell (231) and are meshedly connected, a plurality of support shafts (236) are provided between the two second transmission rollers (235), and the two end axes of the support shafts (236) are provided with connecting shafts (237), one side outer wall of the connecting shaft (237) is in contact with the one side axis of the support shaft (236) and is welded, and the other side outer wall of the connecting shaft (237) is in contact with the inner wall of the lower shell (231) and is rotationally connected, and the two end outer walls of the second transmission roller (235) are in contact with the inner wall of the lower shell (231) and are rotationally connected.

3. A rice noodle automatic packaging equipment according to claim 1, characterized in that, First transmission rollers (112) are symmetrically arranged at both ends of the first transmission belt (111), and the outer wall of the first transmission roller (112) contacts and is meshed with the inner wall of the first transmission belt (111). Baffles (115) are symmetrically arranged at both ends of the first transmission roller (112), and support legs (113) are symmetrically arranged at the ends of the two baffles (115) away from each other. The upper end of the outer wall of one side of the support leg (113) contacts and is bolted to the lower end of the outer wall of one side of the baffle (115), and the outer walls of both ends of the first transmission roller (112) contact and are rotatably connected to the outer wall of one side of the baffle (115).

4. A rice noodle automatic packaging equipment according to claim 3, characterized in that, A rotating motor (114) is provided on the outer wall of one side of the support leg (113) away from the first transmission roller (112), the outer wall of the rotating motor (114) contacts the outer wall of one side of the support leg (113) and is connected by a bracket, the output end of the rotating motor (114) passes through the outer wall of one side of the support leg (113) and the baffle (115), contacts the center of the outer wall of one side of the first transmission roller (112) and is connected by transmission, and a guide plate (116) is symmetrically provided on the upper surface of the first conveying crawler (111) near one end of the feeding structure (200), the outer walls of the two guide plates (116) away from each other are in contact with the outer wall of one side of the baffle (115), and the guide plates (116) and the baffle (115) are connected by a bracket.

5. The automatic rice noodle packaging equipment according to claim 1, characterized in that: A servo motor (238) is symmetrically provided on the outer wall of one side of the lower housing (231), the outer wall of the servo motor (238) contacts the outer wall of the lower housing (231) and is connected to the bracket, the output end of the servo motor (238) passes through the outer wall of the lower housing (231) and contacts the axis of the outer wall of one side of the second transmission roller (235) and is connected to the transmission, and the outer wall of one side of the top block body (234) contacts the outer wall of the second transmission crawler (233) and is fixedly connected.

6. A rice noodle automatic packaging equipment according to claim 1, characterized in that, The fixing plate (228) is provided with a plurality of slots (2287) at equal intervals at the center of the outer wall of one side close to the partition plate (229), a horizontal block (2288) is provided at the center of the outer wall of one side of the partition plate (229), one outer wall of one side of the horizontal block (2288) is in contact with and fixedly connected to the outer wall of one side of the partition plate (229), a vertical block (2289) is provided on the outer wall of one side of the horizontal block (2288) away from the partition plate (229), one outer wall of one side of the horizontal block (2288) is in contact with the lower end of the outer wall of one side of the vertical block (2289) and is fixedly connected, and the outer wall of the horizontal block (2288) is in contact with the inner wall of the partition plate (229) and is snap-connected.

7. The automatic rice noodle packaging equipment according to claim 1, characterized in that: A symmetrically extending upper surface of the fixed plate (228) is provided with a clearance groove (2281), the inner wall of the clearance groove (2281) contacts the outer wall of the movable plate (230), and a symmetrically provided pull-out groove (2282) is provided on the inner wall of one side of the clearance groove (2281). A pull rod (2283) is provided inside the pull-out groove (2282), one end of the pull rod (2283) contacts the inner wall of the pull-out groove (2282) and is connected by a sliding buckle, and the other end of the pull rod (2283) contacts the outer wall of one side of the movable plate (230) and is fixedly connected, and a plurality of first snap grooves (2284) are provided on one side of the pull rod (2283).

8. The automatic rice noodle packaging equipment according to claim 7, characterized in that: Two second snap grooves (2285) are symmetrically provided on the outer wall of one side of the fixing plate (228), and the positions of the second snap grooves (2285) match those of the first snap grooves (2284). A snap block (2286) is provided inside the second snap groove (2285), and the outer wall of the snap block (2286) contacts the inner wall of the second snap groove (2285) and is frictionally connected. One end of the snap block (2286) extends into the first snap groove (2284) and contacts the inner wall of the first snap groove (2284) and is magnetically connected.

Citation Information

Patent Citations

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