An automatic conveying device for potato vermicelli processing

By designing an automatic conveying device, the problem of low efficiency in traditional vermicelli processing by manual operation was solved, realizing the automated conveying and uniform distribution of vermicelli, thereby improving production efficiency and product quality.

CN120887227BActive Publication Date: 2026-01-30BEIJING GREAT NEW ENERGY TECHNOLOGY CO LTD

Patent Information

Application Number
CN202511252618.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-09-03
Publication Date
2026-01-30
Estimated Expiration
2045-09-03

AI Technical Summary

Technical Problem

In traditional potato vermicelli processing, the handling of cut vermicelli relies on manual operation, which leads to low efficiency, high labor intensity, and a high risk of occupational diseases. The speed of manual operation is limited by individual skills and physical strength.

Method used

Design an automatic conveying device for potato vermicelli processing, including a first conveyor belt, a vermicelli collection mechanism, a vermicelli equalization mechanism, and a transfer mechanism. The device utilizes speed difference, vibration, and compression rotation to achieve automated conveying and uniform distribution of vermicelli.

Benefits of technology

The process of processing vermicelli has been automated, which has improved production efficiency, reduced labor intensity, and ensured the uniform distribution of vermicelli and product quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention relates to the field of potato vermicelli processing and conveying technology, specifically to an automatic conveying device for potato vermicelli processing. The device includes a first conveyor belt with a vermicelli-collecting gap in the middle. It further includes: a vermicelli-collecting mechanism that automatically collects vermicelli at the gap and distributes it evenly using a speed difference; a first drive mechanism that controls the up-and-down movement of the vermicelli-collecting mechanism to move it away from the first conveyor belt; and a second drive mechanism that drives the vermicelli-collecting mechanism to rotate back and forth to move it to the next processing step. This invention automates the conveying, vermicelli-collecting, and even distribution processes in potato vermicelli processing, reducing manual operation, improving production efficiency, and reducing labor intensity.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of vermicelli processing and conveying, and particularly relates to a potato vermicelli processing and conveying device. BACKGROUND

[0002] In the traditional potato vermicelli processing technology, the process generally includes screening, cleaning, chopping, pulping, filtering, sedimentation, coating, kneading, powder leakage, cooking, cooling and finally drying and packaging of raw materials. The cutting and conveying of the vermicelli is a key step connecting the vermicelli forming and the subsequent drying process, and directly affects the quality and production efficiency of the product.

[0003] Traditionally, the cutting and conveying of the vermicelli mainly relies on manual operation. The specific process is as follows: first, the worker needs to string the cut vermicelli of a certain length one by one with a special vermicelli stick (a kind of long bamboo or plastic tool). This process requires the operator to be skilled to avoid the mutual entanglement of the vermicelli, which affects the subsequent processing. Then, the strung vermicelli needs to be evenly distributed on the vermicelli stick. This step is particularly critical because uneven distribution will lead to uneven heating during the drying process, thereby affecting the taste and quality of the vermicelli. However, the process of manually stringing and evenly distributing the vermicelli has some shortcomings, such as the speed of manual operation being limited by individual skills and physical strength, which greatly affects the processing efficiency. Long-term repetitive manual operation not only consumes a lot of physical strength of the worker, but also easily causes occupational diseases. SUMMARY

[0004] Therefore, the present application aims to provide a potato vermicelli processing and conveying device to solve the problem of the speed of manual operation being limited by individual skills and physical strength, which greatly affects the processing efficiency.

[0005] To achieve the above purpose, the present application provides a potato vermicelli processing and conveying device, which comprises a first conveying belt, the middle part of the first conveying belt having a powder taking gap, and further comprises a powder taking mechanism for automatically taking powder at the powder taking gap and evenly distributing the vermicelli by using the speed difference, a first driving mechanism for controlling the powder taking mechanism to move up and down so that the vermicelli leaves the first conveying belt, and a second driving mechanism for driving the powder taking mechanism to rotate back and forth so that the vermicelli moves to the next process.

[0006] Optionally, the powder taking mechanism comprises a base arranged on one side of the first conveying belt, a rack rotatably arranged above the base, grooves arranged on both sides of the rack, a mounting frame slidingly connected to the grooves, a second conveying belt mounted on the mounting frame, protrusions arranged on the second conveying belt for increasing the friction between the second conveying belt and the vermicelli, and the conveying speed of the second conveying belt being greater than the conveying speed of the first conveying belt.

[0007] Optionally, the first driving mechanism comprises a slide rod vertically arranged in the groove and penetrating through the mounting frame, the slide rod being in sliding connection with the mounting frame, and a screw rod being in threaded connection with the mounting frame, one end of the screw rod being in transmission connection with a first motor.

[0008] The slide rod and the screw rod are vertically arranged in the groove and penetrate through the mounting frame, the slide rod being in sliding connection with the mounting frame to provide guidance, and the screw rod being in threaded connection with the mounting frame. The first motor drives the screw rod to rotate, according to the threaded transmission principle, so as to drive the mounting frame to move up and down along the slide rod, thereby driving the powder taking mechanism to move up and down. The structure is simple and reliable, the mounting frame is accurately moved up and down by driving the screw rod by the motor, and then the powder taking mechanism accurately controls the noodles to leave the first conveying belt. Since the middle part of the noodles is uniformly distributed on the second conveying belt, when the noodles move upward to leave the first conveying belt, the two sides of the noodles will also be uniformly distributed under the action of gravity.

[0009] Optionally, the second driving mechanism comprises a gear ring sleeved on the lower side of the rack, a first gear meshing with the gear ring, and a second motor connected with the first gear to drive the driving gear to rotate.

[0010] Optionally, the conveying device further comprises a powder distributing mechanism arranged on the side of the powder taking mechanism away from the first conveying belt, the powder distributing mechanism being used to further distribute the noodles on the second conveying belt uniformly.

[0011] Optionally, the powder distributing mechanism comprises a bracket symmetrically arranged on one side of the powder taking mechanism, a first electric cylinder arranged on the top of the bracket, connecting rods connected with the telescopic rods of the first electric cylinder, a powder distributing shaft rotationally connected between the two connecting rods, and a pressing driving mechanism cooperating with the powder distributing shaft to press the noodles and drive the powder distributing shaft to rotate by a predetermined angle. When the second conveying belt moves downward from top to bottom, the noodles on the second conveying belt pass through the powder distributing shaft. After the first electric cylinder is elongated to drive the powder distributing shaft to move from below the second conveying belt to one side of the second conveying belt, the first electric cylinder moves back and forth for a short distance to generate a vibration effect, so as to make one side of the noodles uniformly distributed on the powder distributing shaft. The powder distributing shaft cooperates with the pressing driving mechanism to press the noodles and drive the powder distributing shaft to rotate by a predetermined angle. The second conveying belt further descends to lose support for the noodles. Since one side of the noodles is clamped and uniformly distributed, the other side of the noodles is also uniformly distributed under the action of gravity.

[0012] When the second conveying belt moves from top to bottom, the noodles pass through the powder uniformizing shaft, the first electric cylinder extends to drive the powder uniformizing shaft to move from below the second conveying belt to one side, then the first electric cylinder moves back and forth in a short distance to generate a vibration effect, so that the noodles are evenly distributed on one side of the powder uniformizing shaft, the pressing driving mechanism cooperates with the noodles to press and drive the powder uniformizing shaft to rotate clockwise by a predetermined angle, the second conveying belt descends to lose the support to the noodles, and due to the uniform distribution of the noodles on one side, the other side is also uniformly distributed under the action of gravity. Through the unique vibration and pressing rotation mode, further uniform distribution of the noodles is realized, and the product quality is improved.

[0013] Optionally, the pressing driving mechanism comprises a second electric cylinder arranged on the support, a sliding rail slidingly connected to the top of the support and connected to the second electric cylinder, an arc-shaped pressing plate slidingly connected to the sliding rail, a second gear meshed with the protruding teeth arranged on one side of the arc-shaped pressing plate, and a third motor in transmission connection with the second gear.

[0014] Optionally, the surface of the arc-shaped pressing plate for contacting the noodles is provided with an elastic pad.

[0015] Optionally, the conveying device further comprises a transfer mechanism for transferring the noodles on the second conveying belt.

[0016] Optionally, the transfer mechanism comprises two groups of third electric cylinders arranged symmetrically, a support plate arranged on each third electric cylinder, a noodle stick placed on each support plate, a guide plate slidingly connected to one side of each support plate, a first guide groove and a second guide groove arranged on the guide plate, an adjusting mechanism arranged between the first guide groove and the second guide groove and used for controlling the noodle stick to move to the first guide groove or the second guide groove, and a fourth motor and an adjusting plate connected to the rotating shaft of the fourth motor, wherein when the noodle stick is located in the first adjusting groove, the noodle stick is misaligned with the second conveying belt in the vertical direction, so that the second conveying belt can move downward and at the same time the noodle stick limits one side of the noodles, and when the noodle stick is located in the second adjusting groove, the noodle stick is located in the same plane as the second conveying belt in the vertical direction, and when the height of the noodle stick exceeds the height of the powder uniformizing shaft, the noodle stick supports the noodles.

[0017] The first conveying belt conveys the cut noodles, and the noodle taking mechanism automatically takes the noodles when the noodles reach the noodle taking gap. The speed difference between the noodle taking mechanism and the first conveying belt makes the noodles evenly distributed. The first driving mechanism controls the noodle taking mechanism to move up and down, so that the noodles leave the first conveying belt, and the second driving mechanism drives the noodle taking mechanism to rotate back and forth, so that the noodles are moved to the next process. The present application realizes the automation of conveying, noodle taking and uniform distribution in the processing of potato noodles, reduces manual operation, improves production efficiency and reduces labor intensity. BRIEF DESCRIPTION OF DRAWINGS

[0018] In order to make the technical solutions in the present application or prior art clearer, the drawings needed in the embodiments or prior art description will be briefly introduced below. Obviously, the drawings in the following description are only a part of the present application, and other drawings can also be obtained by those skilled in the art without any creative effort on the basis of these drawings.

[0019] Figure 1 It is a top view of the first conveying belt of the embodiment of the present application.

[0020] Figure 2 It is a structural schematic view of the powder taking mechanism in the front direction of the embodiment of the present application.

[0021] Figure 3 It is a structural schematic view of the powder taking mechanism in the side direction of the embodiment of the present application.

[0022] Figure 4 It is a position schematic view of the adjusting plate guiding the powder stick to move to the first guide groove of the embodiment of the present application.

[0023] Figure 5 It is a position schematic view of the adjusting plate guiding the powder stick to move to the second guide groove of the embodiment of the present application.

[0024] The reference numerals in the drawings are as follows:

[0025] 1, first conveying belt; 2, powder taking mechanism; 3, base; 4, frame; 5, mounting frame; 6, second conveying belt; 7, slide rod; 8, screw rod; 9, first motor; 10, gear ring; 11, first gear; 12, second motor; 13, support; 14, first electric cylinder; 15, connecting rod; 16, powder mixing shaft; 17, second electric cylinder; 18, slide rail; 19, arc-shaped pressing plate; 20, second gear; 21, third electric cylinder; 22, supporting plate; 23, powder stick; 24, guide plate; 25, first guide groove; 26, second guide groove; 27, adjusting plate. DETAILED DESCRIPTION

[0026] In order to make the technical solutions in the present application or prior art clearer, the drawings needed in the present application or prior art description will be briefly introduced below. Obviously, the drawings in the following description are only a part of the present application, and other drawings can also be obtained by those skilled in the art without any creative effort on the basis of these drawings.

[0027] It should be noted that the technical terms or scientific terms used in the present application should be the general meaning understood by those skilled in the art unless otherwise defined. The "first", "second" and similar words used in the present application do not represent any order, quantity or importance, but are only used to distinguish different components. "Include" or "contain" and similar words mean that the elements or objects before the word cover the elements or objects listed after the word and their equivalents, without excluding other elements or objects. "Connected" or "connected" and similar words are not limited to physical or mechanical connection, but can include electrical connection, whether direct or indirect. "Up", "down", "left", "right" and the like are only used to represent the relative positional relationship, when the absolute position of the described object changes, the relative positional relationship may also change accordingly.

[0028] As shown in Figure 1 A kind of automatic conveying device for potato noodle processing, including first conveyor belt 1, the middle part of the first conveyor belt 1 has powder taking gap, still including: powder taking mechanism 2 is automatically taken powder at the powder taking gap and is uniformly distributed using speed difference, the first drive mechanism of the first drive mechanism and the second drive mechanism of the second drive mechanism are driven to move to the next process place by controlling the up and down movement of powder taking mechanism 2 so that noodle leaves the first conveyor belt 1.

[0029] The first conveyor belt 1 conveys the cut noodle, when the noodle reaches the powder taking gap, the powder taking mechanism 2 is automatically taken powder, and the noodle is uniformly distributed using the speed difference between the powder taking mechanism 2 and the first conveyor belt 1. The first drive mechanism controls the up and down movement of the powder taking mechanism 2, so that the noodle leaves the first conveyor belt 1; the second drive mechanism drives the back and forth rotation of the powder taking mechanism 2, and moves the noodle to the next process place. The present application realizes the automation of conveying, powder taking and uniform distribution in potato noodle processing, reduces manual operation, improves production efficiency and reduces labor intensity.

[0030] As shown in Figure 1 And Figure 2 In some embodiments, the powder taking mechanism 2 includes a base 3 arranged on one side of the first conveyor belt 1, a rack 4 rotatably arranged above the base 3, grooves are arranged on both sides of the rack 4, mounting frames 5 are slidably connected to the grooves, second conveyor belts 6 are mounted on the mounting frames 5, the second conveyor belts 6 have protrusions for increasing the friction with the noodle, and the conveying speed of the second conveyor belts 6 is greater than the conveying speed of the first conveyor belt 1.

[0031] The base 3 is fixed on one side of the first conveying belt 1, the frame 4 is rotatably arranged above the base 3, the mounting frame 5 in the groove body is slidable, and the second conveying belt 6 mounted on the mounting frame 5 has protrusions. When the powder is taken, the second conveying belt 6 cooperates with the first conveying belt 1, the speed difference and the increased friction of the protrusions are utilized to take the noodle from the first conveying belt 1 to the second conveying belt 6. Because the conveying speed of the second conveying belt 6 is greater than that of the first conveying belt 1, the gap between the noodles increases when the noodles move to the second conveying belt 6, and the uniform distribution effect is realized.

[0032] As shown in Figure 2 some embodiments, the first driving mechanism includes a slide rod 7 vertically arranged in the groove body and penetrating through the mounting frame 5, and a screw rod 8, the slide rod 7 is in sliding connection with the mounting frame 5, the screw rod 8 is in threaded connection with the mounting frame 5, and one end of the screw rod 8 is in transmission connection with a first motor 9.

[0033] The slide rod 7 and the screw rod 8 are vertically arranged in the groove body and penetrate through the mounting frame 5, the slide rod 7 is in sliding connection with the mounting frame 5 to provide guidance, and the screw rod 8 is in threaded connection with the mounting frame 5. The first motor 9 drives the screw rod 8 to rotate, according to the threaded transmission principle, the mounting frame 5 moves up and down along the slide rod 7, thereby driving the powder taking mechanism 2 to move up and down. The structure is simple and reliable, the accurate up-and-down movement of the mounting frame 5 is realized by driving the screw rod 8 by the motor, and then the powder taking mechanism 2 accurately moves the noodles away from the first conveying belt 1. Since the middle part of the noodles is uniformly distributed on the second conveying belt 6, when the noodles move upward away from the first conveying belt 1, the two sides of the noodles will also be uniformly distributed under the action of gravity.

[0034] As shown in Figure 2 some embodiments, the second driving mechanism includes a gear ring 10 sleeved on the lower side of the frame 4, a first gear 11 in meshing connection with the gear ring 10, and a second motor 12 in connection with the first gear 11 to drive the driving gear to rotate. The gear ring 10 is sleeved on the lower side of the frame 4, the first gear 11 is in meshing connection with the gear ring 10, the second motor 12 drives the first gear 11 to rotate, according to the gear transmission principle, the gear ring 10 is driven to rotate, and then the frame 4 is driven to rotate back and forth, which can rotate back and forth by 180 degrees, and the powder taking mechanism 2 moves the noodles to the next process.

[0035] In some embodiments, the conveying device further includes a powder distributing mechanism arranged on the side of the powder taking mechanism 2 away from the first conveying belt 1, and the powder distributing mechanism is used to further uniformly distribute the noodles on the second conveying belt 6.

[0036] The powder uniformizing mechanism is arranged on the side of the powder taking mechanism 2 away from the first conveying belt 1. After the powder taking mechanism 2 preliminarily and uniformly distributes the noodles, the powder uniformizing mechanism further processes the noodles on the second conveying belt 6 to make the noodles more uniformly distributed. The distribution uniformity of the noodles is further optimized, the product quality is improved, and it is ensured that the noodles can be uniformly heated, dried and the like in the subsequent process, thereby improving the overall quality of the product.

[0037] As shown in Figure 2 and Figure 3 In some embodiments, the powder uniformizing mechanism includes a bracket 13 symmetrically arranged on one side of the powder taking mechanism 2, a first electric cylinder 14 arranged on the top of the bracket 13, a connecting rod 15 connected with the telescopic rod of the first electric cylinder 14, a powder uniformizing shaft 16 rotatably connected between the two connecting rods 15, and a pressing driving mechanism cooperating with the powder uniformizing shaft 16 to press the noodles and drive the powder uniformizing shaft 16 to rotate by a predetermined angle. When the second conveying belt 6 moves from top to bottom, the noodles on the second conveying belt 6 pass through the powder uniformizing shaft 16. After the first electric cylinder 14 is elongated to drive the powder uniformizing shaft 16 to move from below the second conveying belt 6 to one side of the second conveying belt 6, the first electric cylinder 14 moves back and forth by a short distance to generate a vibration effect, so as to make one side of the noodles uniformly distributed on the powder uniformizing shaft 16. The pressing driving mechanism cooperates with the powder uniformizing shaft 16 to press the noodles and drive the powder uniformizing shaft 16 to rotate by a predetermined angle. The second conveying belt 6 further descends to lose the support for the noodles. Since one side of the noodles uniformly distributed is clamped, the other side of the noodles is also uniformly distributed under the action of gravity.

[0038] When the second conveying belt 6 moves from top to bottom, the noodles pass through the powder uniformizing shaft 16. After the first electric cylinder 14 is elongated to drive the powder uniformizing shaft 16 to move from below the second conveying belt 6 to one side of the second conveying belt 6, the first electric cylinder 14 moves back and forth by a short distance to generate a vibration effect, so as to make one side of the noodles uniformly distributed on the powder uniformizing shaft 16. The pressing driving mechanism cooperates with the powder uniformizing shaft 16 to press the noodles and drive the powder uniformizing shaft 16 to rotate by a predetermined angle. The second conveying belt 6 further descends to lose the support for the noodles. Since one side of the noodles uniformly distributed is clamped, the other side of the noodles is also uniformly distributed under the action of gravity. Through the unique vibration and pressing rotation mode, the noodles are further uniformly distributed, and the product quality is improved.

[0039] As shown in Figure 3 In some embodiments, the pressing driving mechanism includes a second electric cylinder 17 arranged on the bracket 13, a sliding rail 18 slidably connected to the top of the bracket 13 and connected with the telescopic shaft of the second electric cylinder 17, an arc-shaped pressing plate 19 slidably connected with the sliding rail 18, a second gear 20 provided with a protruding tooth on one side of the arc-shaped pressing plate 19 and engaged with the protruding tooth, and a third motor in transmission connection with the second gear 20.

[0040] The second electric cylinder 17 drives the sliding rail 18 to slide on the top of the support 13, so that the arc-shaped pressing plate 19 is in contact with the noodles, and the noodles are pressed tightly. The convex teeth on one side of the arc-shaped pressing plate 19 are engaged with the second gear 20, and the third motor drives the second gear 20 to rotate. According to the gear transmission principle, the arc-shaped pressing plate 19 is driven to rotate, and the powder distribution shaft 16 is further driven to rotate. Since the noodles are evenly distributed on one side and are clamped, the other side is also evenly distributed under the action of gravity, thereby achieving the effect of further evenly distributing the noodles.

[0041] In some embodiments, the surface of the arc-shaped pressing plate 19 in contact with the noodles is provided with an elastic pad. When the arc-shaped pressing plate 19 presses the noodles, the elastic pad is elastically deformed, which buffers the pressing force and avoids damaging the noodles. The setting of the elastic pad effectively protects the noodles, prevents the noodles from breaking or deforming during the pressing process, ensures the integrity and quality of the product, and improves the applicability and reliability of the equipment.

[0042] As shown in Figure 4 and Figure 5 In some embodiments, the conveying device further comprises a transfer mechanism for transferring the noodles on the second conveying belt 6. Optionally, the transfer mechanism comprises two groups of third electric cylinders 21 symmetrically arranged, the third electric cylinders 21 are provided with support plates 22, the two support plates 22 are used to place noodle sticks 23, one side of the support plate 22 is slidably connected with a guide plate 24, the guide plate 24 has a first guide groove 25 and a second guide groove 26, and an adjusting mechanism for controlling the noodle stick 23 to move to the first guide groove 25 or the second guide groove 26 is arranged between the first guide groove 25 and the second guide groove 26. The adjusting mechanism comprises a fourth motor, and an adjusting plate 27 is connected with the rotating shaft of the fourth motor. When the noodle stick 23 is located in the first adjusting groove, the noodle stick 23 is vertically offset from the second conveying belt 6, so that the second conveying belt 6 can move downward, and at the same time, one side of the noodles is limited. When the noodle stick 23 is located in the second adjusting groove, the noodle stick 23 is located in the same plane as the second conveying belt 6 in the vertical direction. When the height of the noodle stick 23 exceeds the powder distribution shaft 16, the noodle stick 23 supports the noodles.

[0043] The support plate 22 on the third electric cylinder 21 of the two groups is used for placing the powder stick 23, the first guide groove 25 and the second guide groove 26 on the guide plate 24 cooperate with the adjusting mechanism, the fourth motor drives the adjusting plate 27 to rotate, when the adjusting plate 27 is rotated to different positions, the powder stick 23 can be guided to move into the first guide groove 25 or the second guide groove 26 in the rising process, when the powder stick 23 is located in the first guide groove 25, the powder stick 23 is staggered with the second conveying belt 6 in the vertical direction, the second conveying belt 6 can be moved downward and limited on one side of the noodle, when the powder stick 23 is located in the second guide groove 26, the powder stick 23 is in the same plane with the second conveying belt 6, when the height of the powder stick 23 exceeds the powder uniformizing shaft 16, the noodle is supported, the noodle is transferred from the second conveying belt 6 to the powder stick 23, the powder stick 23 can be taken out subsequently, and subsequent processes can be carried out, through the ingenious design of the guide groove and the adjusting mechanism, the accurate control of the position of the powder stick 23 and the automatic transfer of the noodle are realized, the structure is compact, the action is reliable, and the production automation level and the production efficiency are effectively improved.

[0044] Those skilled in the art should understand that the discussion of any of the above embodiments is merely exemplary and is not intended to suggest that the scope of the application (including the claims) is limited to these examples; under the teachings of the application, the above embodiments or technical features in different embodiments can be combined, steps can be implemented in any order, and there are many other variations of the different aspects of the application as described above, which are not provided in detail. In order to be brief, they are not provided in detail.

[0045] The present application is intended to cover all such alternatives, modifications and variations as fall within the broad scope of the appended claims. Accordingly, any and all such modifications, variations or equivalents that fall within the spirit and scope of the application are intended to be included within the scope of the application.

Claims

1. A potato noodle processing automatic conveying device, comprising a first conveying belt (1), the middle part of the first conveying belt (1) has a powder taking gap, characterized in that, Also include: The powder taking mechanism (2) automatically takes powder at the powder taking gap and uniformly distributes the powder strips by using the speed difference, the first driving mechanism controls the powder taking mechanism (2) to move up and down so that the powder strips leave the first conveying belt (1), and the second driving mechanism drives the powder taking mechanism (2) to rotate back and forth so that the powder strips move to the next process; The powder taking mechanism (2) includes a base (3) arranged on one side of the first conveying belt (1), a rack (4) rotatably arranged above the base (3), two sides of the rack (4) are provided with grooves, the mounting frame (5) is slidably connected in the grooves, the second conveying belt (6) is mounted on the mounting frame (5), the second conveying belt (6) has protrusions for increasing the friction with the powder strips, and the conveying speed of the second conveying belt (6) is greater than that of the first conveying belt (1); The conveying device further comprises a powder uniformizing mechanism arranged on the side of the powder taking mechanism (2) away from the first conveying belt (1), and the powder uniformizing mechanism is used for further uniformly distributing the powder strips on the second conveying belt (6); The powder uniformizing mechanism includes a support (13) symmetrically arranged on one side of the powder taking mechanism (2), a first electric cylinder (14) arranged on the top of the support (13), connecting rods (15) connected with the telescopic rods of the first electric cylinder (14), a powder uniformizing shaft (16) rotatably connected between the two connecting rods (15), and a compression driving mechanism cooperating with the powder uniformizing shaft (16) to compress the powder strips and drive the powder uniformizing shaft (16) to rotate by a predetermined angle; when the second conveying belt (6) moves from top to bottom, the powder strips on the second conveying belt (6) pass through the powder uniformizing shaft (16), after the first electric cylinder (14) is elongated to drive the powder uniformizing shaft (16) to move from below the second conveying belt (6) to one side of the second conveying belt (6), the first electric cylinder (14) moves back and forth by a short distance to generate a vibration effect, which is used for uniformly distributing one side of the powder strips on the powder uniformizing shaft (16), the powder uniformizing shaft (16) cooperates with the compression driving mechanism to compress the powder strips and drive the powder uniformizing shaft (16) to rotate by a predetermined angle, and the second conveying belt (6) further descends to lose the support of the powder strips; due to that one side of the powder strips is clamped and uniformly distributed, the other side of the powder strips is also uniformly distributed under the action of gravity; The compression driving mechanism includes a second electric cylinder (17) arranged on the support (13), a slide rail (18) slidably connected on the top of the support (13) and connected with the telescopic shaft of the second electric cylinder (17), an arc-shaped pressing plate (19) slidably connected with the slide rail (18), a second gear (20) meshed with the protrusions arranged on one side of the arc-shaped pressing plate (19), and a third motor in transmission connection with the second gear (20).

2. The automatic potato noodle processing and conveying device according to claim 1, characterized in that, The first driving mechanism includes a slide rod (7) and a screw rod (8) vertically arranged in the groove and penetrating through the mounting frame (5), the slide rod (7) is slidably connected with the mounting frame (5), the screw rod (8) is threadedly connected with the mounting frame (5), and one end of the screw rod (8) is in transmission connection with a first motor (9).

3. The automatic potato noodle processing and conveying device according to claim 2, characterized in that, The second driving mechanism comprises a gear ring (10) sleeved on the lower side of the frame (4), a first gear (11) engaged with the gear ring (10), and a second motor (12) connected with the first gear (11) to drive the first gear (11) to rotate.

4. The automatic potato noodle processing and conveying device according to claim 1, characterized in that, The arc-shaped pressing plate (19) is provided with an elastic pad on the surface in contact with the noodles.

5. The automatic potato-fries processing conveyor according to claim 1, characterized in that, The conveying device further comprises a transfer mechanism for transferring the noodles on the second conveying belt (6).

6. A potato chip processing automatic conveying device according to claim 5, characterized in that, The transfer mechanism comprises two groups of symmetrically arranged third electric cylinders (21), the third electric cylinders (21) are provided with support plates (22), noodles (23) are placed on the two support plates (22), a guide plate (24) is slidably connected to one side of the support plate (22), the guide plate (24) is provided with a first guide groove (25) and a second guide groove (26), an adjusting mechanism for controlling the noodles (23) to move to the first guide groove (25) or the second guide groove (26) is arranged between the first guide groove (25) and the second guide groove (26), the adjusting mechanism comprises a fourth motor, an adjusting plate (27) is connected to the rotating shaft of the fourth motor, when the noodles (23) are located in the first adjusting groove, the noodles (23) are out of position with the second conveying belt (6) in the vertical direction, so that the second conveying belt (6) can move downward, and at the same time, the second conveying belt (6) can limit one side of the noodles, when the noodles (23) are located in the second adjusting groove, the noodles (23) are located in the same plane as the second conveying belt (6) in the vertical direction, when the height of the noodles (23) exceeds the height of the noodle uniformizing shaft (16), the noodles (23) can support the noodles.

Citation Information

Patent Citations

  • A automatic loosening machine constructs for bean noodles production line

    CN208676349U

  • Conveying device for vermicelli production

    CN215556429U

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