Stock bin of gluten bisection machine
By designing the inclined silo and adjustable plate structure of the gluten cutter, the problems of low gluten drawing efficiency and high labor intensity are solved, and stable feeding and efficient cutting of gluten of different sizes are achieved, reducing operating costs and manual intervention.
Patent Information
- Application Number
- CN202422101409.4
- 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
During the existing gluten production process, the gluten is low in efficiency and labor intensity, and the silo needs to be replaced according to the gluten size, the amount of material stored is small, manual feeding is frequent, and operation is inconvenient.
A silo for a gluten-cutter is designed, and the inclined bottom surface and adjustable adjustment plate structure is used to adapt to gluten conveying of different lengths. Combined with the inclined surface and the connecting inclined plate, it can achieve stable feeding and directly feed into the trunking mechanism through the conveying assembly.
It improves the scope of application of gluten to the cutting machine, reduces the labor intensity of operators, increases the amount of material stored, reduces the frequency of manual feeding, and ensures the quality and aesthetics of cutting.
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Figure CN223200760U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of gluten production and processing, in particular to a silo of a gluten cutting machine. 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 generally needs to be drawn or spirally cut, cut into specific patterns, and then inserted into the skewers and unfolded. It is then baked to facilitate the absorption of seasonings. However, in the prior art, when drawing gluten, it is generally done manually using auxiliary tools. Application number: 201910416075.0, patent name: Food Cutting Mold. This method is relatively inefficient and requires manual operation, and the labor intensity is also relatively high. If you want to achieve fast bisection, you can set up cutters that are staggered up and down, and use a conveying mechanism to convey the gluten. However, in conventional designs, it is generally considered to set a silo directly on the conveying mechanism, and then put the gluten into the silo. The gluten falls from the silo onto the conveying mechanism and is conveyed by the conveying mechanism. However, this method can only be used for gluten of the same size. For gluten of different sizes, the corresponding size of the silo needs to be replaced. Moreover, with this structure, the silo needs to be set up vertically, and the gluten is stacked from bottom to top. It needs to be manually sorted and put in. In addition, the inventory is relatively small, and manual replenishment is required frequently, which is very inconvenient. Summary of the Invention
[0004] The purpose of the utility model is to provide a silo for a gluten cutting machine. By using this structure, it can be suitable for feeding gluten of different lengths stably, thereby ensuring that gluten of different lengths can be cut, reducing costs, and also reducing the labor intensity of operators.
[0005] To achieve the above-mentioned object, the technical solution adopted by the present invention is as follows: a silo for a gluten cutting machine, comprising a silo, a material cavity is provided in the silo, the top and left sides of the material cavity are respectively connected to the outside of the silo, the bottom surface of the silo is arranged upwardly inclined from right to left, a channel is provided at the right end of the silo communicating with the material cavity, and the bottom of the channel is arranged flush with the bottom surface of the material cavity;
[0006] An adjustment plate arranged parallel to the bottom surface of the cavity is rotatably mounted on the front side wall and the rear side wall of the cavity, and the outer end of the adjustment plate is rotatably connected to the inner wall of the cavity via a hinge;
[0007] When the inner ends of the adjustment plates rotate downward, the distance between the inner ends of the two adjustment plates is smaller than the bottom width of the material cavity; when the inner ends of the adjustment plates rotate upward, the adjustment plates rest against the inner walls of the corresponding sides of the material cavity and completely open the bottom of the material cavity.
[0008] 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;
[0009] The adjustment plate is arranged above the connecting inclined plate, and the hinge is arranged on the inclined surface above the connecting inclined plate.
[0010] In the above technical solution, when the inner end of the adjustment plate rotates downward, the adjustment plate abuts against the connecting inclined plate, the inner end of the adjustment plate is arranged directly above the bottom surface of the material cavity, and the distance between the inner ends of the adjustment plates on both sides is smaller than the width of the bottom surface of the material cavity;
[0011] When the inner end of the adjusting plate rotates upward, the adjusting plate abuts against the inclined surface, and the bottom of the material cavity is completely opened.
[0012] In the above technical solution, when the adjustment plate abuts against the connecting inclined plate, the inner end of the adjustment plate is arranged below the inner end of the connecting inclined plate.
[0013] In the above technical solution, a vertical plate is respectively provided on the front and rear sides of the bottom of the material cavity, and a horizontal plate parallel to the bottom surface of the material cavity is installed on the top of the vertical plate. The outer end of the horizontal plate is arranged on the outer side of the vertical plate, and the inner end of the horizontal plate is arranged on the inner side of the vertical plate. The inclined surface on the corresponding side is connected to the top of the outer end of the horizontal plate, and the inner end of the connecting inclined plate is connected to the inner end of the horizontal plate.
[0014] In the above technical solution, the top surface of the channel is arranged flush with the bottom surface of the right end of the horizontal plate.
[0015] In the above technical solution, the right end of the adjustment plate is arranged close to the right side wall of the material chamber, and the left end of the adjustment plate is arranged close to the left end of the material chamber.
[0016] Due to the application of the above technical solution, the utility model has the following advantages compared with the prior art:
[0017] 1. The bottom of the material chamber of the present invention adopts an inclined structure, and adjustment plates are respectively provided on the front and rear side walls of the material chamber, so that the conveying assembly can be directly arranged inside the material chamber, and the gluten in the material chamber is directly conveyed to the left by the conveying assembly. At the same time, the setting of the adjustment plate can fully open the bottom of the material chamber when the adjustment plate is rotated outward, so that it can be used for conveying longer gluten. When the adjustment plate is rotated inward, the front and rear sides of the material chamber can be partially blocked, which is used for conveying shorter gluten, thereby expanding the scope of application and reducing costs.
[0018] 2. The front and rear side walls of the material chamber in the present invention both adopt an inclined structure, and a channel is provided at the right end of the silo, so that the conveying component can be directly placed into the silo. During the operation of the conveying component, the gluten is directly delivered from the silo, so that more gluten can be placed in the silo, reducing the frequency of staff adding gluten and reducing the labor intensity of operators. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 This is a schematic diagram of the structure of the first embodiment of the present invention (the inner end of the adjustment plate is rotated downward and abuts against the connecting inclined plate);
[0020] Figure 2 yes Figure 1 Schematic diagram of the cross-section structure in ;
[0021] Figure 3 This is a structural diagram of the first embodiment of the present invention in which the silo, the conveying assembly, and the bisection mechanism are connected;
[0022] Figure 4 yes Figure 3 Schematic diagram of the cross-sectional structure when the intermediate silo is connected to the conveying component.
[0023] Among them: 21, silo; 211, material chamber; 212, adjustment plate; 213, inclined plane; 214, connecting inclined plate; 215, channel; 216, hinge; 217, vertical plate; 218, horizontal plate;
[0024] 22. Conveying assembly; 221. Chain; 222. Gluten conveying material stop;
[0025] 4. Cutting mechanism. DETAILED DESCRIPTION
[0026] The present invention will be further described below with reference to the accompanying drawings and embodiments:
[0027] Example 1: See Figures 1 to 4As shown, a silo of a gluten cutting machine includes a silo 21, wherein a material cavity 211 is provided in the silo 21, and the top and left sides of the material cavity 211 are respectively connected to the outside of the silo 21, and the bottom surface of the silo 21 is arranged upwardly from right to left, and a channel 215 communicating with the material cavity 211 is provided at the right end of the silo 21, and the bottom of the channel 215 is arranged flush with the bottom surface of the material cavity 211;
[0028] An adjustment plate 212 parallel to the bottom surface of the cavity 211 is rotatably mounted on the front and rear side walls of the cavity 211, and the outer end of the adjustment plate 212 is rotatably connected to the inner wall of the cavity 211 via a hinge 216.
[0029] When the inner ends of the adjustment plates 212 rotate downward, the distance between the inner ends of the two adjustment plates 212 is smaller than the bottom width of the material cavity 211; when the inner ends of the adjustment plates 212 rotate upward, the adjustment plates 212 rest against the inner walls of the corresponding sides of the material cavity 211, and the adjustment plates 212 are tilted upward from the inside to the outside, and the bottom of the material cavity 211 is completely opened.
[0030] In this embodiment, a bisection mechanism 4 is located at the upper left of the silo. The bisection mechanism 4 is equipped with an upper annular cutter and a lower annular cutter. A conveyor assembly 22 is also provided. The right end of the conveyor assembly is located within the silo, while the left end of the conveyor assembly enters the bisection mechanism. A passage allows the conveyor assembly to enter the silo from the right side, allowing the conveyor assembly to move and make way. The silo is used to store gluten. The top of the conveyor assembly moves from right to left, moving the gluten at the bottom of the silo to the left and feeding it into the bisection mechanism. The gluten is then bisectioned by the upper and lower annular cutters. Among them, gluten generally has two categories, namely large gluten and small gluten, and the diameters and lengths of the two gluten are different. Among them, the width of the conveying component will be slightly larger than the length of the large gluten. Therefore, when feeding the large gluten, the inner end of the adjustment plate is rotated upward so that the adjustment plate is against the inner wall of the corresponding side of the material cavity, so that the top of the conveying component in the material cavity is completely exposed, so that the large gluten can fall normally onto the conveying component (the conveying component includes two chains 221 arranged in front and behind and a plurality of gluten conveying stoppers 222 arranged between the two chains 221, and the two ends of the gluten conveying stoppers are respectively connected to the two chains, and the gluten can fall between the adjacent gluten conveying stoppers and be conveyed to the left by the gluten conveying stoppers), and be conveyed by the gluten conveying stoppers. If small-sized gluten is conveyed, there may be two gluten sheets in the same longitudinal direction, and the two gluten sheets are staggered, so the gluten sheets are not centered. In this way, when cutting, the cutting effect is poor, and the distance between the ends of the gluten sheets and the cut grooves is long or short, which is not beautiful. Moreover, the structure of the gluten sheets is smaller at both ends (and asymmetrical), so there is a situation where the ends of the gluten sheets are completely cut off, resulting in a shorter gluten length, making the gluten unqualified. Therefore, when conveying and cutting small gluten sheets, the inner ends of the adjustment plates are flipped downward, and the distance between the inner ends of the two adjustment plates is slightly larger than the length of the small gluten sheets, so that the gluten sheets are centered as much as possible, ensuring the quality and aesthetics of the cutting.
[0031] At the same time, if the gluten has other sizes, just replace the adjustment plate of the corresponding length, and the replacement is also convenient and quick.
[0032] See also Figures 1 to 4 As shown, 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 plate 214 is arranged outwardly from bottom to top.
[0033] The adjustment plate 212 is disposed above the connecting inclined plate 214 , and the hinge 216 is disposed on the inclined surface 213 above the connecting inclined plate 214 .
[0034] See also Figures 1 to 4 As shown, when the inner end of the adjusting plate 212 rotates downward, the adjusting plate 212 abuts against the connecting inclined plate 214, and the inner end of the adjusting plate 212 is arranged directly above the bottom surface of the material cavity 211, and the distance between the inner ends of the adjusting plates 212 on both sides is smaller than the width of the bottom surface of the material cavity 211;
[0035] When the inner end of the adjusting plate 212 rotates upward, the adjusting plate 212 abuts against the inclined surface 213 , and the bottom of the material cavity 211 is completely opened.
[0036] The inclined surface, connecting inclined plate, and adjustment plate are all inclined structures. The bottom surfaces of the adjustment plate, inclined surface, and connecting inclined plate are all parallel to the bottom surface of the hopper chamber. They are tilted upward from the inside to the outside, allowing the gluten to move toward the conveyor assembly under its own weight, ensuring that the gluten is stably delivered from the hopper. Furthermore, when the inner end of the adjustment plate rotates downward, the connecting inclined plate can also support the adjustment plate, preventing the adjustment plate from colliding with the conveyor assembly and affecting its normal operation.
[0037] When the adjustment plate 212 abuts against the connecting inclined plate 214 , the inner end of the adjustment plate 212 is disposed below the inner end of the connecting inclined plate 214 .
[0038] See also Figure 2 As shown, a vertical plate 217 is respectively provided on the front and rear sides of the bottom of the material cavity 211, and a horizontal plate 218 parallel to the bottom surface of the material cavity 211 is installed on the top of the vertical plate 217. The outer end of the horizontal plate 218 is arranged on the outer side of the vertical plate 217, and the inner end of the horizontal plate 218 is arranged on the inner side of the vertical plate 217. The corresponding side of the inclined surface 213 is connected to the top of the outer end of the horizontal plate 218, and the inner end of the connecting inclined plate 214 is connected to the inner end of the horizontal plate 218.
[0039] The top surface of the channel is flush with the bottom surface of the right end of the horizontal plate.
[0040] In this embodiment, each chain is inserted between the horizontal plate and the bottom surface of the feed chamber, and the gluten conveying stopper is connected to the chains on both sides. In this way, the gluten falling downward will fall between the two horizontal plates and will not fall onto the chains or get stuck in the chains, thereby preventing the chains from contaminating the gluten. The channel is used for the passage of the chains and the gluten conveying stopper. The height of the channel is slightly greater than the height of the gluten conveying stopper, and its width is slightly greater than the distance between the two chains. In this way, when the gluten falls downward to the bottom of the feed chamber, it will not fall to the right through the channel.
[0041] See also Figure 1 、 2As shown, the right end of the adjustment plate 212 is disposed close to the right side wall of the cavity, and the left end of the adjustment plate is disposed close to the left end of the cavity. The right side wall of the cavity is tilted from top to bottom and is disposed toward the left, so that the gluten can fall stably downward onto the bottom surface of the cavity.
[0042] 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.
[0043] 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 silo for a gluten cutting machine, characterized in that: The invention comprises a silo, wherein a material cavity is provided in the silo, the top and left sides of the material cavity are respectively connected to the outside of the silo, the bottom surface of the silo is arranged upwardly inclined from right to left, and a channel is provided at the right end of the silo that is connected to the material cavity, and the bottom of the channel is arranged flush with the bottom surface of the material cavity; An adjustment plate arranged parallel to the bottom surface of the cavity is rotatably mounted on the front side wall and the rear side wall of the cavity, and the outer end of the adjustment plate is rotatably connected to the inner wall of the cavity via a hinge; When the inner ends of the adjustment plates rotate downward, the distance between the inner ends of the two adjustment plates is smaller than the bottom width of the material cavity; when the inner ends of the adjustment plates rotate upward, the adjustment plates rest against the inner walls of the corresponding sides of the material cavity and completely open the bottom of the material cavity.
2. The silo of the gluten cutting machine according to claim 1, 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.
3. The silo of the gluten cutting machine according to claim 2, characterized in that: When the inner end of the adjusting plate rotates downward, the adjusting plate abuts against the connecting inclined plate, the inner end of the adjusting plate is arranged directly above the bottom surface of the material cavity, and the distance between the inner ends of the adjusting plates on both sides is smaller than the width of the bottom surface of the material cavity; When the inner end of the adjusting plate rotates upward, the adjusting plate abuts against the inclined surface, and the bottom of the material cavity is completely opened.
4. The silo of the gluten cutting machine according to claim 3, characterized in that: When the adjustment plate abuts against the connecting inclined plate, the inner end of the adjustment plate is arranged below the inner end of the connecting inclined plate.
5. The silo of the gluten cutting machine according to claim 2, characterized in that: A vertical plate is respectively provided on the front and rear sides of the bottom of the material cavity, and a horizontal plate parallel to the bottom surface of the material cavity is installed on the top of the vertical plate. The outer end of the horizontal plate is arranged on the outer side of the vertical plate, and the inner end of the horizontal plate is arranged on the inner side of the vertical plate. The inclined surface on the corresponding side is connected to the top of the outer end of the horizontal plate, and the inner end of the connecting inclined plate is connected to the inner end of the horizontal plate.
6. The silo of the gluten cutting machine according to claim 5, characterized in that: The top surface of the channel is flush with the bottom surface of the right end of the horizontal plate.
7. The silo of the gluten cutting machine according to claim 1, characterized in that: The right end of the regulating plate is arranged close to the right side wall of the material cavity, and the left end of the regulating plate is arranged close to the left end of the material cavity.
Citation Information
Patent Citations
Food cutting mold
CN110037087A