Gluten bisection conveying mechanism

By designing the gluten cutting conveying mechanism, using chain transmission and misaligned groove design, combined with the material pushing mechanism, the automated gluten cutting is realized, solving the problems of low efficiency and high labor intensity in the existing technology, and improving the grafting efficiency and stability.

CN223201192UActive Publication Date: 2025-08-08SUZHOU BIYUAN ENVIRONMENTAL PROTECTION ENG
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Patent Information

Application Number
CN202422102116.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-28
Publication Date
2025-08-08
Estimated Expiration
2034-08-28

AI Technical Summary

Technical Problem

In the prior art, the gluten drawing process relies on manual operation, is inefficient and has high labor intensity, making it difficult to achieve stable delivery and efficient cutting of gluten.

Method used

A gluten cutting conveying mechanism is designed, and a chain drive is used to drive the gluten conveying material barrier, and misaligned upper and lower cut grooves are set. The automatic gluten cutting of the gluten is achieved by combining the upper and lower annular cutting knife, and the stable conveying and gluten cutting of the material is ensured through the material pushing mechanism.

Benefits of technology

The automatic cutting of gluten is realized, the cutting efficiency is improved, the stability and quality of cutting are ensured, and the labor intensity of the operator is reduced.

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Abstract

The utility model discloses a gluten bisection conveying mechanism which is characterized in that the gluten bisection conveying mechanism comprises a stock bin and a conveying assembly which are installed on a machine frame, the right end of the conveying assembly is arranged in the stock bin, and the top face of the conveying assembly is obliquely arranged upwards from right to left; the conveying assembly comprises two chains which are arranged in a front-back spaced mode, a conveying driving component and a plurality of groups of gluten conveying material blocking pieces, the gluten conveying material blocking pieces are arranged in parallel at intervals, the two ends of each gluten conveying material blocking piece are connected with the two chains respectively, and a gluten conveying containing space is formed between every two adjacent gluten conveying material blocking pieces; a plurality of upper cutting grooves are formed in the top face of the gluten conveying blocking part at intervals from front to back, a plurality of lower cutting grooves are formed in the bottom face of the gluten conveying blocking part at intervals from front to back, the upper cutting grooves and the lower cutting grooves are arranged in a staggered mode, and each lower cutting groove is formed between the adjacent upper cutting grooves. According to the utility model, automatic feeding and bisection of gluten are realized, and the labor intensity of operators is reduced.
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Description

Technical Field

[0001] The utility model relates to the field of gluten production and processing, in particular to a gluten bisection and conveying mechanism. Background Art

[0002] Wheat flour is kneaded into a gluten dough with fresh water and then washed with water to obtain a colloidal mixed protein, commonly known as gluten. It is a common ingredient that can be cooked into a variety of delicious and nutritious dishes.

[0003] Before baking, gluten is usually cut into specific patterns or spirals, and then inserted into the sticks and unfolded. Figure 1 As shown, it is a structure in which the gluten 01 is stretched after being cut and drawn, and the gluten has a gluten cutting groove 02 on it. It is then baked to facilitate the flavoring of the seasoning. However, in the prior art, when drawing gluten, it is generally done manually with auxiliary tools. Application number: CN201910416075.0, patent name: Food Cutting Mold. In this method, the efficiency is relatively low, and manual operation is required, and the labor intensity is also relatively high. If you want to achieve fast cutting, you can set a cutter with upper and lower offset settings, but how to achieve stable transportation of gluten through the cutter and how to stably cut the gluten by the cutter is a direction that those skilled in the art need to work hard on. Summary of the Invention

[0004] The utility model aims to provide a gluten cutting and conveying mechanism, by using the structure, the stable conveying of gluten is achieved, the normal cutting of gluten is ensured, and the cutting quality and stability of gluten are ensured.

[0005] To achieve the above object, the technical solution adopted by the utility model is: a gluten bisection conveying mechanism, comprising a silo and a conveying assembly mounted on a frame, wherein the right end of the conveying assembly is arranged in the silo, and the top surface of the conveying assembly is arranged upwardly and tilted from right to left;

[0006] The conveying assembly includes two chains spaced apart in front and behind, a conveying driving component for driving the two chains to rotate, and a plurality of groups of gluten conveying blocking members, wherein the plurality of groups of gluten conveying blocking members are parallel to each other and spaced apart, and the two ends of the gluten conveying blocking members are respectively connected to the two chains, and a gluten conveying placement space is formed between adjacent gluten conveying blocking members;

[0007] The top surface of the gluten conveying stopper is provided with a plurality of upper grooves spaced from front to back, and the bottom surface of the gluten conveying stopper is provided with a plurality of lower grooves spaced from front to back. The upper grooves and the lower grooves are staggered, and each lower groove is provided between adjacent upper grooves.

[0008] In the above technical solution, the frame is further provided with a surrounding support plate, the two chains are respectively wound around the outside of the support plate, the gluten conveying stopper is arranged on the outside of the support plate, and a notch is also provided on the support plate.

[0009] In the above technical solution, the front end and the rear end of the gluten conveying material stopper are respectively provided with a baffle extending toward one end, and the end of the baffle is arranged close to the adjacent gluten conveying material stopper.

[0010] In the above technical solution, the conveying drive component includes a driving shaft, a driven shaft and a conveying drive motor, the driving shaft and the driven shaft are rotatably arranged on the left and right sides of the frame respectively, and the conveying drive motor is configured to drive the driving shaft to rotate;

[0011] The two ends of the driving shaft are respectively provided with driving gears, the two ends of the driven shaft are respectively provided with driven gears, and the two ends of each chain are respectively wound around one of the driving gear and the driven gear.

[0012] In the above technical solution, a material cavity is provided in the silo, the top and left side of the material cavity are respectively connected to the outside of the silo, the right end of the conveying component is inserted into the material cavity, and the front and rear sides of the right end of the conveying component are respectively arranged close to the front inner wall and rear inner wall of the material cavity.

[0013] In the above technical solution, adjustment plates are respectively provided in the material chambers on the front and rear sides of the conveying assembly, and the adjustment plates are rotatably connected to the inner wall of the material chamber via hinges.

[0014] In the above technical solution, the front side wall and the rear side wall of the material chamber are inclined surfaces arranged outward from bottom to top, and each of the inclined surfaces is provided with a connecting inclined plate, the outer end of the connecting inclined plate is connected to the middle part of the inclined surface, and the connecting inclined plate is arranged outward from bottom to top;

[0015] The adjustment plate is arranged above the connecting inclined plate, and the hinge is arranged on the inclined surface above the connecting inclined plate.

[0016] In the above technical solution, when the adjustment plate rotates inward, the adjustment plate abuts against the connecting inclined plate, the inner end of the adjustment plate is arranged directly above the conveying assembly, and the distance between the inner ends of the adjustment plates on both sides is smaller than the width of the conveying assembly;

[0017] When the adjusting plate rotates outward, the adjusting plate abuts against the inclined surface, and the top of the conveying component in the silo is completely exposed in the material cavity.

[0018] In the above technical solution, a pushing mechanism is also provided above the conveying assembly on the left side of the silo. The pushing mechanism includes a pushing component and a pushing drive component that drives the pushing component to rotate. The pushing component is arranged directly above the conveying assembly, and there is a distance between the bottom surface of the pushing component and the top surface of the conveying assembly.

[0019] In the above technical solution, the pushing component includes a pushing shaft and a plurality of pushing plates arranged on the outer surface of the pushing shaft. The pushing shaft is arranged parallel to the gluten conveying blocking component. The bottom surface of the bottom push plate is arranged close to the top surface of the conveying component. The pushing drive component is configured to drive the pushing shaft to rotate.

[0020] Due to the application of the above technical solution, the utility model has the following advantages compared with the prior art:

[0021] 1. In the utility model, the gluten conveying stopper is driven by the transmission of the chain to move, and the gluten in the hopper is conveyed to the left by the gluten conveying stopper, and the upper and lower cutting grooves are staggered on the gluten conveying stopper. In this way, when the gluten passes through the upper and lower annular cutters, the upper and lower cutting grooves can make way for the upper and lower annular cutters. When the gluten passes through the upper and lower annular cutters, the gluten is blocked by the gluten conveying stopper, so that the upper and lower annular cutters can stably cut the gluten, thereby realizing automatic cutting of the gluten, improving the efficiency of cutting the gluten, and ensuring the stability and quality of cutting.

[0022] 2. In the present invention, the gluten conveying block is used to convey the gluten, so that the gluten can be stably conveyed to the bisection mechanism for bisection, thereby realizing rapid bisection of large quantities of gluten;

[0023] 3. The present invention also provides a pushing mechanism to push the gluten above the gluten conveying stopper to the right so that it falls back into the hopper or falls between adjacent gluten conveying stoppers, so that the gluten can stably enter the cutting mechanism and be cut. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 This is a schematic diagram of the structure of the gluten after being cut in half and stretched in the utility model;

[0025] Figure 2 This is a schematic structural diagram of the first embodiment of the present invention;

[0026] Figure 3 This is a schematic diagram of the structure of the first embodiment of the present invention in a cross-sectional state;

[0027] Figure 4 This is a structural diagram of the gluten conveying material blocking member in the first embodiment of the present utility model;

[0028] Figure 5 This is a structural diagram of the pusher component in the first embodiment of the present utility model;

[0029] Figure 6 This is a schematic structural diagram of the silo in Example 1 of the present utility model;

[0030] Figure 7 This is a schematic cross-sectional view of the silo in Example 1 of the present utility model;

[0031] Figure 8 This is a schematic diagram of the structure of the first embodiment of the present invention in which a bisection mechanism is installed;

[0032] Figure 9 yes Figure 8 Schematic diagram of the cross-sectional structure of the cutting mechanism.

[0033] Among them: 01, gluten; 02, gluten cutting groove; 1, frame; 11, support plate; 12, notch;

[0034] 21. Material bin; 211. Material chamber; 212. Adjustment plate; 213. Inclined surface; 214. Connecting inclined plate;

[0035] 22. Conveying assembly; 221. Chain; 222. Gluten conveying material stopper; 2221. Upper notch; 2222. Lower notch; 2223. Baffle; 223. Driving shaft; 224. Driven shaft; 225. Conveying drive motor; 226. Driving gear; 227. Driven gear;

[0036] 4. Bisection mechanism; 41. Upper cutter assembly; 42. Lower cutter assembly; 412. Upper annular cutter; 422. Lower annular cutter;

[0037] 5. Pushing mechanism; 51. Pushing component; 52. Pushing drive assembly; 511. Pushing shaft; 512. Pushing plate. DETAILED DESCRIPTION

[0038] The present invention will be further described below with reference to the accompanying drawings and embodiments:

[0039] Example 1: See Figures 1 to 9 As shown, a gluten bisection conveying mechanism comprises a silo 21 and a conveying assembly 22 mounted on a frame 1, wherein the right end of the conveying assembly 22 is disposed in the silo 21, and the top surface of the conveying assembly 22 is tilted upward from right to left;

[0040] The conveying assembly 22 includes two chains 221 spaced apart from each other, a conveying driving component for driving the two chains 221 to rotate, and a plurality of groups of gluten conveying blocking members 222. The plurality of groups of gluten conveying blocking members 222 are parallel to each other and spaced apart. The two ends of the gluten conveying blocking members 222 are respectively connected to the two chains 221. A gluten conveying placement space is formed between adjacent gluten conveying blocking members 222.

[0041] The top surface of the gluten conveying stopper 222 is provided with a plurality of upper grooves 2221 spaced from front to back, the bottom of the upper grooves 2221 is not connected to the bottom surface of the gluten conveying stopper 222, the bottom surface of the gluten conveying stopper 222 is provided with a plurality of lower grooves 2222 spaced from front to back, the top of the lower grooves 2222 is not connected to the top surface of the gluten conveying stopper 222, the upper grooves 2221 and the lower grooves 2222 are staggered, and each lower groove 2222 is arranged between adjacent upper grooves 2221.

[0042] In this embodiment, the chain forms a closed loop structure. The chain includes arc segments on both sides and straight segments respectively arranged between the arc segments on both sides. The two ends of the straight segments are connected to the ends of the arc segments on both sides. The straight segments are arranged upward from right to left. A cutting mechanism 4 is set on the left side of the silo. The cutting mechanism includes an upper cutter assembly 41 and a lower cutter assembly 42. The upper cutter assembly is arranged above the upper straight segment, and the lower cutter assembly is arranged below the upper straight segment. The upper cutter assembly is provided with multiple The upper annular cutter 412 is provided on the lower cutter assembly, and the bottom of each upper annular cutter is provided opposite to an upper cutting groove. The lower cutter assembly is provided with multiple lower annular cutters 422, and the top of each lower annular cutter is provided opposite to a lower cutting groove. The right side of the upper straight section is provided in the silo, the top of the arc section on the right is in the silo, and the rest is outside the silo. The right end of the lower straight section is in the lower right side of the silo, and the left side is in the upper left side of the silo, and the arc section on the left is in the upper left side of the silo. The two ends of the gluten conveying stopper are respectively connected to two chains, so that when the chain rotates, the top gluten conveying stopper is driven to move from right to left. The frame is also provided with a surrounding support plate 11, and the two chains are respectively wrapped around the outside of the support plate. The gluten conveying stopper is arranged on the outside of the support plate. The support plate is also provided with a notch 12, which is located in the upper left of the hopper and is opposite to the cutting mechanism. The top of the lower cutter assembly is located in the notch.

[0043] Among them, the gluten is placed in the hopper, and when the chain drives the gluten conveying stopper in the hopper to move to the left, the gluten at the bottom of the hopper will be conveyed to the left and away from the hopper, and the gluten is between the adjacent gluten conveying stoppers (in the gluten conveying placement space). The gluten will be driven to move to the left by the gluten conveying stoppers, and when it passes between the upper cutter assembly and the lower cutter assembly, it will contact the upper annular cutter and the lower annular cutter of the upper cutter assembly and the lower cutter assembly, and the upper annular cutter and the lower annular cutter are used to cut the gluten in half, thereby realizing automatic cutting of the gluten. After cutting and stretching, the gluten is as follows Figure 1 As shown in the figure, the upper and lower cutting grooves are used to make way for the upper and lower circular cutters, preventing them from colliding with the gluten conveying stop. When the upper and lower circular cutters come into contact with the gluten, the gluten is blocked by the gluten conveying stop on the right side, allowing the gluten to be cut smoothly.

[0044] Among them, since the amount of gluten in the silo is relatively large, in the process of the gluten conveying stopper moving to the left and leaving the silo, some gluten will also move to the left and leave the silo. Therefore, a pushing mechanism 5 is also provided above the conveying component on the left side of the silo. The pushing mechanism 5 includes a pushing component 51 and a pushing drive component 52 that drives the pushing component 51 to rotate. The pushing component 51 is arranged directly above the conveying component 22, and there is a distance between the bottom surface of the pushing component 51 and the top surface of the conveying component 22.

[0045] By setting up the pushing mechanism, the gluten on the gluten conveying stopper is pushed to the right so that it falls back into the silo, or falls between adjacent gluten conveying stoppers, wherein the width between adjacent gluten conveying stoppers is smaller than the length of the gluten, so part of the gluten will smoothly fall between the adjacent gluten conveying stoppers, and the top surface of the conveying component is tilted upward from right to left, so the height of the gluten at the conveying component outside the left side of the silo will be higher than the height of the gluten in the silo, and the remaining part of the gluten will fall back into the silo. In this way, it can be ensured that the gluten is either sent out normally by the conveying component or falls back into the silo, and will not fall on the ground, nor will it affect the normal cutting of the gluten.

[0046] See also Figure 2 、 5 As shown, the pushing component 51 includes a pushing shaft 511 and a plurality of pushing plates 512 distributed on the outer surface of the pushing shaft 511. The pushing shaft 511 is arranged parallel to the gluten conveying stopper 222. The bottom surface of the pushing plate 512 at the bottom is arranged close to the top surface of the conveying component 22. The pushing drive component 52 is configured to drive the pushing shaft 511 to rotate.

[0047] Among them, the pushing drive assembly adopts a pushing drive motor, which is installed on the frame. Its output shaft is connected to the pushing shaft, and it drives the pushing shaft to rotate counterclockwise, so that the pushing plate at the bottom rotates to the right, thereby pushing the gluten above the gluten conveying stopper to the right, pushing it to fall between adjacent gluten conveying stoppers or into the hopper.

[0048] See also Figures 2-4 As shown, the front and rear ends of the gluten conveying and blocking member 222 are respectively provided with baffles 2223 extending toward the left end or the right end, and the ends of the baffles 2223 are arranged close to the adjacent gluten conveying and blocking member 222. Each baffle 2223 is arranged close to one side of the chain, so that the baffles 2223 can be used to block both sides of the gluten to prevent the ends of the gluten from falling out from both sides, thereby ensuring that the gluten can contact the corresponding upper and lower annular cutters when passing through the cutting mechanism, ensuring normal cutting of the gluten.

[0049] See also Figure 2 、 8 As shown in , 9, the conveying drive component includes a driving shaft 223, a driven shaft 224 and a conveying drive motor 225. The driving shaft 223 and the driven shaft 224 are rotatably arranged on the left and right sides of the frame 1 respectively, and the conveying drive motor 225 is configured to drive the driving shaft 223 to rotate;

[0050] A driving gear 226 is provided at both ends of the driving shaft 223 , a driven gear 227 is provided at both ends of the driven shaft 224 , and both ends of each chain 221 are wound around one of the driving gears 226 and the driven gear 227 .

[0051] In this embodiment, the driving shaft is arranged at the upper left of the driven shaft. The conveying drive motor drives the driving shaft to rotate, thereby driving the driving gears on both sides to rotate, and then drives the two chains to rotate synchronously, driving the gluten conveying material block to move, thereby achieving the feeding of gluten. Furthermore, since gluten contains water, if the driving shaft is arranged at the lower right of the silo, the water in the trough may leak into the conveying drive motor and cause damage to it. Therefore, it is arranged at the upper left of the silo to prevent the conveying drive motor from being damaged by water ingress.

[0052] See also Figure 2 、 3As shown in Figures 6 to 8, a material chamber 211 is provided in the silo 21. The top and left sides of the material chamber 211 are respectively connected to the exterior of the silo 21. The right end of the conveying assembly 22 is inserted into the material chamber 211, and the front and rear sides of the right end of the conveying assembly 22 are respectively disposed adjacent to the front inner wall and rear inner wall of the material chamber 211. The gluten is placed in the material chamber, and the right end of the chain above the driven wheel is located in the material chamber, so that the gluten can be conveyed out to the left by the gluten conveying stopper in the material chamber.

[0053] See also Figure 2 、 3 As shown in , 6 to 8 , adjustment plates 212 are respectively provided in the material cavity 211 on the front and rear sides of the conveying assembly 22 , and the adjustment plates 212 are rotatably connected to the inner wall of the material cavity 211 via hinges.

[0054] The front side wall and the rear side wall of the material chamber 211 are inclined surfaces 213 arranged outwardly from bottom to top, and each of the inclined surfaces 213 is provided with a connecting inclined plate 214. The outer end of the connecting inclined plate 214 is connected to the middle of the inclined surface 213. The connecting inclined plates 214 are arranged outwardly from bottom to top.

[0055] The adjustment plate 212 is disposed above the connecting inclined plate 214 , and the hinge is disposed on the inclined surface above the connecting inclined plate 214 .

[0056] When the adjustment plate 212 rotates inward, the adjustment plate 212 abuts against the connecting inclined plate 214 , and the inner end of the adjustment plate 212 is disposed directly above the conveying assembly 22 , and the distance between the inner ends of the adjustment plates 212 on both sides is smaller than the width of the conveying assembly 22 ;

[0057] When the adjusting plate 212 rotates outward, the adjusting plate 212 abuts against the inclined surface 213 , and the top of the conveying assembly 22 in the silo 21 is completely exposed in the material cavity.

[0058] Gluten generally has two or three categories, generally two categories, namely large gluten and small gluten, the two types of gluten have different diameters and lengths, wherein the distance between the two baffles is slightly larger than the length of the large gluten. Therefore, when feeding the large gluten, the inner end of the adjustment plate is rotated outward so that the adjustment plate rests on the inclined surface, thereby completely exposing the top of the conveying component in the material cavity, so that the large gluten can normally fall between the adjacent gluten conveying material blocks (in the gluten conveying placement space) and be conveyed by the gluten conveying material blocks. If small-sized gluten is conveyed, there may be two gluten in the same longitudinal direction, and the two gluten are staggered, and the gluten is not centered. In this way, when bisecting, the bisecting effect is poor, resulting in the distance between the gluten end and the cut groove being long and short, which is not aesthetically pleasing. Moreover, the structure of the gluten is a structure with smaller ends (and asymmetry), so there is a possibility that the end of the gluten is completely cut off, resulting in a shorter gluten length, making the gluten unqualified. Therefore, when the small gluten is transported and cut, the adjustment plate is flipped inward so that the adjustment plate rests on the connecting inclined plate. The distance between the inner ends of the two adjustment plates is slightly larger than the length of the small gluten, so that the gluten is centered as much as possible, ensuring the quality and aesthetics of the cutting.

[0059] At the same time, the inclined surface, the connecting inclined plate and the adjusting plate are all inclined structures. The bottom surfaces of the adjusting plate, the inclined surface and the connecting inclined plate are all arranged parallel to the top surface of the conveying component, and they are arranged upward from the inside to the outside, so that the gluten moves toward the conveying component by its own weight, ensuring that the gluten is stably delivered from the silo.

[0060] In the description of the present invention, it should be understood that the terms "upper," "lower," "top," "bottom," "inner," "outer," and the like, indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings and are intended solely to facilitate and simplify the description of the present invention. They are not intended to indicate or imply that the devices or elements referred to must have a specific orientation, be constructed, or operate in a specific orientation. Therefore, they should not be construed as limitations on the present invention. In the description of the present invention, "plurality" means two or more, unless otherwise expressly and specifically defined.

[0061] In this utility model, unless otherwise clearly specified or limited, the terms "installed", "connected", "connected", "fixed" and the like should be understood in a broad sense. For example, they can be fixedly connected, detachably connected, or integrated; they can be mechanically connected or electrically connected; they can be directly connected or indirectly connected through an intermediate medium. For example, the two can be connected by abutting or touching to form a mechanical abutment or abutment. The two can also be directly hung or hung through an intermediate medium. It can also be the internal connection of two elements or the interaction relationship between two elements. For ordinary technicians in this field, the specific meanings of the above terms in this invention can be understood according to specific circumstances.

Claims

1. A gluten cutting and conveying mechanism, characterized in that: It includes a silo and a conveying assembly mounted on a frame, wherein the right end of the conveying assembly is arranged in the silo, and the top surface of the conveying assembly is arranged upwardly and tilted from right to left; The conveying assembly includes two chains spaced apart in front and behind, a conveying driving component for driving the two chains to rotate, and a plurality of groups of gluten conveying blocking members, wherein the plurality of groups of gluten conveying blocking members are parallel to each other and spaced apart, and the two ends of the gluten conveying blocking members are respectively connected to the two chains, and a gluten conveying placement space is formed between adjacent gluten conveying blocking members; The top surface of the gluten conveying stopper is provided with a plurality of upper grooves spaced from front to back, and the bottom surface of the gluten conveying stopper is provided with a plurality of lower grooves spaced from front to back. The upper grooves and the lower grooves are staggered, and each lower groove is provided between adjacent upper grooves.

2. The gluten cutting and conveying mechanism according to claim 1, characterized in that: The frame is also provided with a surrounding support plate, the two chains are respectively wound around the outer sides of the support plate, the gluten conveying blocking member is arranged on the outer sides of the support plate, and the support plate is also provided with a notch.

3. The gluten cutting and conveying mechanism according to claim 1, characterized in that: The front end and the rear end of the gluten conveying material blocking member are respectively provided with a baffle extending toward one end, and the end portion of the baffle is arranged close to the adjacent gluten conveying material blocking member.

4. The gluten cutting and conveying mechanism according to claim 1, characterized in that: The conveying drive component includes a driving shaft, a driven shaft and a conveying drive motor, wherein the driving shaft and the driven shaft are rotatably arranged on the left and right sides of the frame respectively, and the conveying drive motor is configured to drive the driving shaft to rotate; The two ends of the driving shaft are respectively provided with driving gears, the two ends of the driven shaft are respectively provided with driven gears, and the two ends of each chain are respectively wound around one of the driving gear and the driven gear.

5. The gluten cutting and conveying mechanism according to claim 1, characterized in that: A material cavity is provided in the material silo, the top and left side of the material cavity are respectively connected to the outside of the material silo, the right end of the conveying component is inserted in the material cavity, and the front and rear sides of the right end of the conveying component are respectively arranged close to the front inner wall and rear inner wall of the material cavity.

6. The gluten cutting and conveying mechanism according to claim 1, characterized in that: Adjustment plates are respectively provided in the material cavities at the front and rear sides of the conveying component, and the adjustment plates are rotatably connected to the inner wall of the material cavity via hinges.

7. The gluten cutting and conveying mechanism according to claim 6, characterized in that: The front side wall and the rear side wall of the material chamber are respectively inclined surfaces arranged outwardly from bottom to top, and each of the inclined surfaces is respectively provided with a connecting inclined plate, the outer end of the connecting inclined plate is connected to the middle part of the inclined surface, and the connecting inclined plate is arranged outwardly from bottom to top; The adjustment plate is arranged above the connecting inclined plate, and the hinge is arranged on the inclined surface above the connecting inclined plate.

8. The gluten cutting and conveying mechanism according to claim 7, characterized in that: When the adjustment plate rotates inward, the adjustment plate abuts against the connecting inclined plate, the inner end of the adjustment plate is arranged directly above the conveying assembly, and the distance between the inner ends of the adjustment plates on both sides is smaller than the width of the conveying assembly; When the adjusting plate rotates outward, the adjusting plate abuts against the inclined surface, and the top of the conveying component in the silo is completely exposed in the material cavity.

9. The gluten cutting and conveying mechanism according to claim 1, characterized in that: A pushing mechanism is also provided above the conveying assembly on the left side of the silo. The pushing mechanism includes a pushing component and a pushing drive component that drives the pushing component to rotate. The pushing component is arranged directly above the conveying assembly, and there is a distance between the bottom surface of the pushing component and the top surface of the conveying assembly.

10. The gluten cutting and conveying mechanism according to claim 9, characterized in that: The pushing component includes a pushing shaft and a plurality of pushing plates arranged on the outer surface of the pushing shaft. The pushing shaft is arranged parallel to the gluten conveying blocking component. The bottom surface of the bottom push plate is arranged close to the top surface of the conveying component. The pushing drive component is configured to drive the pushing shaft to rotate.

Citation Information

Patent Citations

  • Food cutting mold

    CN110037087A