Quantitative gluten breaking and feeding device

By designing a gluten quantitative disconnection and feeding device, the combination of the insertion silo, cutting baffle and lower hopper is used to solve the blockage problems and poor gluten quality in the existing gluten machines in gluten transportation, realizing quantitative and stable delivery of gluten balls, improving the taste and kneading quality of gluten.

CN222941616UActive Publication Date: 2025-06-06SUZHOU BIYUAN ENVIRONMENTAL PROTECTION ENG
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Patent Information

Application Number
CN202421679921.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-16
Publication Date
2025-06-06
Estimated Expiration
2034-07-16

AI Technical Summary

Technical Problem

The existing gluten machines have blockage problems during the gluten transportation process, and the taste and kneading quality of the gluten are poor, making it difficult to achieve quantitative and stable transportation of gluten balls.

Method used

A gluten quantitative distributing and feeding device is designed, including a plug-in silo, a cutting baffle and a lower hopper. By cutting the movement of the cut baffle and the rotation of the lower hopper, the gluten mass is divided and quantitatively transported.

Benefits of technology

It improves the taste and kneading quality of the gluten, avoids clogging problems, and achieves accurate and stable transportation of gluten balls.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a gluten quantitative breaking and feeding device which is characterized in that the gluten quantitative breaking and feeding device comprises a material inserting bin, a cutting-off baffle and a discharging hopper, the material inserting bin is of a hollow structure with the two ends penetrating through, and the cutting-off baffle is movably arranged between the discharging hopper and the material inserting bin and used for opening or closing the bottom of the material inserting bin; a material receiving cavity is formed in the top of the discharging hopper, and the discharging hopper is rotationally arranged below the cut-off baffle. When the discharging hopper rotates to the first position, the material receiving cavity is arranged right opposite to the cut-off baffle. And when the discharging hopper rotates to the second position, the material receiving cavity is arranged downwards. According to the utility model, accurate quantitative cutting and conveying are realized, and the subsequent dough kneading quality is ensured.
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Description

Technical Field

[0001] The utility model relates to a gluten machine, in particular to a gluten quantitative cutting and feeding device. Background Art

[0002] Knead wheat flour into gluten dough with running water, and wash it 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] In the prior art, gluten is generally made by semi-automatic production, and there are relatively few fully automatic gluten machines. Among them, for example, patent number: CN201720456810.7, patent name: a fully automatic gluten machine, which adopts a screw feeding method. In this structure, the screw extrudes the gluten, and the taste of the gluten is not good. At the same time, the gluten extruded by the screw is directly fed into the back-end process in a long strip, which is prone to blockage, resulting in the inability to accurately and stably deliver the gluten, and requires frequent manual adjustment.

[0004] Among them, on this basis, it is considered to directly cut the gluten into gluten balls, and then send the gluten balls into the subsequent kneading mechanism. However, if the amount of gluten in each ball is basically consistent and fed at a set speed, it is a direction that technical personnel in this field need to work hard on. Summary of the invention

[0005] The utility model aims to provide a gluten quantitative dividing and feeding device. By using the structure, the dividing and quantitative feeding of gluten balls are realized, the subsequent kneading quality of gluten is improved, and the taste of gluten is also improved.

[0006] To achieve the above-mentioned purpose, the technical solution adopted by the utility model is: a gluten quantitative cutting and feeding device, comprising a material insertion bin, a cutting baffle and a lower hopper, the material insertion bin is a hollow structure with two ends passing through, the cutting baffle is movably arranged between the lower hopper and the material insertion bin, and is used to open or close the bottom of the material insertion bin;

[0007] A material receiving cavity is provided on the top of the lower hopper, and the lower hopper is rotatably arranged below the cutting baffle;

[0008] When the lower hopper rotates to the first position, the material receiving chamber is arranged opposite to the cutting baffle; when the lower hopper rotates to the second position, the material receiving chamber is arranged downward.

[0009] In the above technical solution, cutting baffle guide grooves are respectively provided on both sides below the material insertion bin, and both sides of the cutting baffle are respectively slidably disposed in the cutting baffle guide grooves on both sides.

[0010] In the above technical solution, a second driving connection member is further provided, and the second driving connection member drives the cutting baffle to move forward and backward along the cutting baffle guide groove through a second driving mechanism to open or close the bottom of the insertion bin.

[0011] In the above technical solution, the second driving connecting member includes a second rotating shaft, a second mounting plate and a second connecting plate, and the second rotating shaft is rotatably arranged at the front side of the insertion bin;

[0012] The second connecting plate is installed at one end of the second rotating shaft, and the other end of the second connecting plate is connected to the second driving mechanism, and the second driving mechanism drives the second rotating shaft to rotate via the second connecting plate;

[0013] The top of the second mounting plate is connected to the middle of the second rotating shaft, and the bottom of the second mounting plate is connected to the front end of the cutting baffle via an intermediate connecting plate;

[0014] One end of the intermediate connecting plate is rotatably connected to the bottom of the second mounting plate, and the other end of the intermediate connecting plate is rotatably connected to the front end of the cutting baffle.

[0015] In the above technical solution, a third rotating shaft is rotatably installed below the lower hopper, and the bottom of the lower hopper is connected to the middle part of the third rotating shaft via a hopper connecting piece.

[0016] In the above technical solution, a third driving mechanism is further provided, and the third driving mechanism is configured to drive the third rotating shaft to rotate, and drive the lower hopper to rotate to the first position or the second position.

[0017] In the above technical solution, a first protrusion is provided on the top outer surface of the right end of the third rotating shaft, and a second protrusion is provided on the bottom outer surface of the left end of the third rotating shaft;

[0018] The third driving mechanism is arranged on the right side of the lower hopper, a reset mechanism is arranged on the left side of the lower hopper, the reset mechanism is connected to the second protrusion, and the third driving mechanism is connected to the first protrusion.

[0019] In the above technical solution, the reset mechanism includes a tension spring and a second chain, the rear end of the tension spring is connected to a frame, and the two ends of the second chain are respectively connected to the second protrusion and the front end of the tension spring; the third driving mechanism is connected to the first protrusion via the third chain;

[0020] And / or, the third driving mechanism drives the third rotating shaft to rotate in one direction via the third chain, and causes the lower hopper to rotate to the first position;

[0021] The reset mechanism drives the third rotating shaft to rotate in another direction, and causes the lower hopper to rotate to the second position.

[0022] In the above technical solution, a material insertion cavity is provided inside the material insertion bin, and the two ends of the material insertion cavity are respectively connected to the top and the bottom of the material insertion bin, and a notch connected to the material insertion cavity is provided on the upper rear side of the material insertion bin;

[0023] A material insertion limit plate is installed on the top of the material insertion cavity, and there is a vertical spacing between the bottom of the material insertion limit plate and the bottom of the notch. The material insertion limit plate is provided with a socket, and a plug plate is movably inserted in the socket, and the bottom of the plug plate is inserted in the material insertion cavity.

[0024] In the above technical solution, the bottom of the receiving cavity is provided with at least one through hole communicating with the bottom of the lower hopper;

[0025] And / or, a vertical plate is provided on the rear side of the insertion bin, and the bottom of the vertical plate is arranged on the rear side of the cutting baffle and the lower hopper;

[0026] When the cutting baffle moves backward, the rear end of the cutting baffle approaches or abuts against the vertical plate;

[0027] When the lower hopper rotates to the first position, the rear side wall of the lower hopper is close to or against the vertical plate.

[0028] Due to the application of the above technical solution, the utility model has the following advantages compared with the prior art:

[0029] 1. In the utility model, the cut gluten dough is inserted into the inserting bin by means of an inserting plate, the gluten dough is kneaded and stored once by the inserting bin, and then the gluten dough is pressed into the receiving cavity by means of the inserting plate, and the gluten dough is cut by means of a cutting baffle, so that the gluten dough in the receiving cavity is a set amount, and finally the gluten dough in the receiving cavity is poured out by the rotation of the lower hopper, so as to realize the segmentation and quantitative transportation of the gluten dough, thereby making the kneading quality in the subsequent kneading process better and improving the taste of the gluten. BRIEF DESCRIPTION OF THE DRAWINGS

[0030] Figure 1 It is a schematic diagram of the structure of the first embodiment of the present utility model;

[0031] Figure 2 It is a schematic cross-sectional view of the structure of the first embodiment of the present utility model;

[0032] Figure 3 It is a schematic diagram of the structure of the first embodiment of the utility model (the plug-in plate limiting plate is not shown);

[0033] Figure 4This is a schematic diagram of the structure of the first embodiment of the utility model in the rear side viewing state (the plug-in plate limit plate is not shown);

[0034] Figure 5 This is a schematic diagram of the structure of the first embodiment of the utility model in the bottom viewing state (the plug-in plate limit plate is not shown);

[0035] Figure 6 It is a structural schematic diagram of the connection between the lower hopper and the third rotating shaft in the first embodiment of the utility model.

[0036] Among them: 1. Insertion bin; 2. Cut-off baffle; 3. Lower hopper; 4. Receiving cavity; 5. Cut-off baffle guide groove; 6. Second rotating shaft; 7. Second mounting plate; 8. Second connecting plate; 9. Middle connecting plate; 10. Vertical plate; 11. Third rotating shaft; 12. Hopper connecting piece; 13. First protrusion; 14. Second protrusion; 15. Tension spring; 16. Second chain; 17. Frame; 18. Third chain; 19. Insertion cavity; 20. Notch; 21. Insertion limit plate; 22. Socket; 23. Insertion plate; 24. Through hole; DETAILED DESCRIPTION

[0037] The utility model is further described below in conjunction with the accompanying drawings and embodiments:

[0038] Example 1: See Figure 1-6 As shown, a gluten quantitative cutting and feeding device comprises a feeding bin 1, a cutting baffle 2 and a lower hopper 3. The feeding bin 1 is a hollow structure with two ends passing through. The cutting baffle 2 is movably arranged between the lower hopper 3 and the feeding bin 1 to open or close the bottom of the feeding bin 1.

[0039] A material receiving chamber 4 is provided at the top of the lower hopper 3, and the lower hopper 3 is rotatably arranged below the cutting baffle 2;

[0040] When the lower hopper 3 rotates to the first position, the material receiving chamber 4 is arranged opposite to the cutting baffle 2; when the lower hopper 3 rotates to the second position, the material receiving chamber 4 is arranged downward.

[0041] In this embodiment, in the initial state, the lower hopper is in the first position, and the cutting baffle is directly below the insertion bin, closing the bottom of the insertion bin. The gluten dough or gluten strip enters directly from the top of the insertion bin and moves downward, and it will first rest on the cutting baffle, and then the cutting baffle moves to open the bottom of the insertion bin, and the material (gluten dough or gluten strip) can move downward and enter the material receiving chamber, and the other part is in the insertion bin, and then the cutting baffle moves and inserts between the insertion bin and the lower hopper, cutting off the material between the insertion bin and the hopper, and can also block the material in the insertion bin, and then the lower hopper rotates to the second position, at which time the material receiving chamber will be set downward, and the material in the material receiving chamber will automatically fall under the weight. Since the volume of the receiving chamber is fixed, the material can be cut and quantitatively fed into the next process (kneading process), and each time a quantitative gluten dough is fed into the kneading process, the kneading effect is better, the gluten dough will be tighter, the taste of the gluten dough will be better, and there will be no problem of gluten blockage in the kneading process. When the material in the lower hopper falls out, the lower hopper continues to flip back to the first position, and then the cutting baffle continues to move away, so that the material in the insertion bin continues to move downward into the receiving chamber, and the cycle continues. Among them, in the process of the lower hopper rotating from the first position to the second position and then rotating from the second position to the first position, the material in the insertion bin can be quickly replenished, so that when the cutting baffle is removed next time, the material in the insertion bin can quickly enter the receiving chamber, ensuring that the receiving chamber is full of material every time and that the amount of gluten dough is basically within a range each time.

[0042] See also Figure 1-5 As shown, cutting baffle guide grooves 5 are respectively provided on both sides below the inserting bin 1, and both sides of the cutting baffle 2 are respectively slidably arranged in the cutting baffle guide grooves 5 on both sides.

[0043] The setting of the cutting baffle guide groove is used to limit the movement of the cutting baffle, so that the cutting baffle can always move in a predetermined direction to cut the gluten dough. At the same time, the cutting baffle can also be supported. When the material moves down in the insertion bin, the material can be blocked by the cutting baffle so that the material will not fall into the insertion cavity.

[0044] See also Figure 1-5 As shown, a second driving connection member is also provided, and the second driving connection member drives the cutting baffle 2 to move forward and backward along the cutting baffle guide groove 5 through a second driving mechanism to open or close the bottom of the insertion bin 1.

[0045] The second driving connecting member includes a second rotating shaft 6, a second mounting plate 7 and a second connecting plate 8, and the second rotating shaft 6 is rotatably arranged at the front side of the insertion bin 1;

[0046] The second connecting plate 8 is installed at one end of the second rotating shaft 6, and the other end of the second connecting plate 8 is connected to the second driving mechanism (the second driving mechanism is not shown in the figure), and the second driving mechanism drives the second rotating shaft 6 to rotate through the second connecting plate 8;

[0047] The top of the second mounting plate 7 is fixedly connected to the middle of the second rotating shaft 6, and the bottom of the second mounting plate 7 is connected to the front end of the cutting baffle 2 via the intermediate connecting plate 9;

[0048] One end of the intermediate connecting plate 9 is rotatably connected to the bottom of the second mounting plate 7 , and the other end of the intermediate connecting plate 9 is rotatably connected to the front end of the cutting baffle 2 .

[0049] Among them, the second driving mechanism is not shown in the figure. The second driving mechanism is a mechanism that can drive the second rotating shaft to rotate, such as a combination of a motor, a cam and a spring, or a cylinder, a hydraulic cylinder, if a combination of a motor, a cam and a spring is used. In this embodiment, taking the cylinder as an example of the second driving mechanism, one end of the cylinder is rotatably connected to the frame, and the output shaft at the other end is rotatably connected to the bottom of the second connecting plate. In the process of extending and retracting the cylinder output shaft, the bottom of the second connecting plate is pushed to rotate. Due to the rotation of the second connecting plate, the second rotating shaft will be driven to rotate. When the second rotating shaft rotates, it drives the second mounting plate to rotate. When the bottom of the second mounting plate rotates forward, it drives the cutting baffle to move forward. When the cylinder output shaft retracts, the bottom of the second mounting plate moves backward, driving the cutting baffle to move backward to cut the gluten.

[0050] Furthermore, a vertical plate 10 is provided on the rear side of the insertion bin 1, and the bottom of the vertical plate 10 is arranged on the rear side of the cutting baffle 2 and the lower hopper 3;

[0051] When the cutting baffle 2 moves backward, the rear end of the cutting baffle 2 abuts against the vertical plate 10;

[0052] When the lower hopper 3 rotates to the first position, the rear side wall of the lower hopper 3 abuts against the vertical plate 10 .

[0053] When the cutting baffle moves backward, the rear end of the cutting baffle contacts the vertical plate, which can effectively ensure that the gluten is cut. When the lower hopper is turned over so that the receiving cavity faces the cutting baffle, the upper part of the rear side wall of the lower hopper abuts against the vertical plate, and the vertical plate also limits the excessive rotation of the lower hopper, so that the receiving cavity faces the inserting cavity to receive the gluten dough.

[0054] See also Figure 1-6 As shown, a third rotating shaft 11 is rotatably mounted below the lower hopper 3 , and the bottom of the lower hopper 3 is connected to the middle of the third rotating shaft 11 via a hopper connecting piece 12 .

[0055] A third driving mechanism (not shown in the figure) is also provided, and the third driving mechanism is configured to drive the third rotating shaft to rotate and drive the lower hopper to rotate to the first position or the second position.

[0056] The third driving mechanism is a mechanism capable of driving the third rotating shaft to rotate, such as a combination of a motor, a cam and a spring, or the third driving mechanism is a motor, a rotary cylinder, an air cylinder or an oil cylinder, as long as it can drive the third rotating shaft to rotate. The rotation of the third rotating shaft drives the lower hopper to rotate, so that the lower hopper is in the first position or the second position.

[0057] See also Figure 1-5 As shown, a first protrusion 13 is provided on the top outer surface of the right end of the third rotating shaft 11, and a second protrusion 14 is provided on the bottom outer surface of the left end of the third rotating shaft 11;

[0058] The third driving mechanism is arranged on the right side of the lower hopper 3 , and a reset mechanism is arranged on the left side of the lower hopper 3 . The reset mechanism is connected to the second protrusion 14 , and the third driving mechanism is connected to the first protrusion 13 .

[0059] The reset mechanism includes a tension spring 15 and a second chain 16, the rear end of the tension spring 15 is connected to a frame 17, and the two ends of the second chain 16 are respectively connected to the second protrusion 14 and the front end of the tension spring 15; the third driving mechanism is connected to the first protrusion 13 via a third chain 18;

[0060] The third driving mechanism drives the third rotating shaft 11 to rotate in one direction via the third chain 18, and causes the lower hopper 3 to rotate to the first position;

[0061] The reset mechanism drives the third rotating shaft 11 to rotate in another direction, and rotates the lower hopper 3 to the second position. The front end of the second chain is below the left end of the third rotating shaft, and the front end of the second chain is above the right end of the third rotating shaft.

[0062] In this embodiment, the third driving mechanism can be a cylinder, a hydraulic cylinder or a cam mechanism. If a cylinder or a hydraulic cylinder is used, taking the cylinder as an example, one end of the cylinder is connected to the frame, and the output shaft of the other end is connected to the rear end of the third chain. When the output shaft of the initial cylinder is extended, the first protrusion is on the bottom surface of the right end of the third rotating shaft, and the second protrusion is on the top surface of the left end of the third rotating shaft. At this time, the tension spring pulls the lower hopper to the second position, that is, the material receiving chamber faces downward. When the cylinder output shaft retracts, it will drive the third chain to move backward, and the front end of the third chain will pull the third rotating shaft to rotate after passing through the first protrusion, so that the material receiving chamber gradually turns up, until the cylinder output shaft is retracted, and the material receiving chamber faces upward. At this time, the second protrusion rotates to the bottom of the third rotating shaft, and will drive the tension spring to stretch through the second chain. When the cylinder output shaft gradually extends, the rear end of the third chain gradually moves forward, and the restoring force of the tension spring pulls the second chain to move backward, thereby driving the third rotating shaft to rotate, so that the lower hopper rotates to the second position, and the receiving cavity faces downward. In this way, the lower hopper is closer to the subsequent dough kneading mechanism, and there is a cutting baffle above the lower hopper, and there is insufficient space. This method is convenient for the arrangement of the third driving mechanism and the reset mechanism.

[0063] Of course, the third driving mechanism can also choose a cam mechanism. The cam is driven by a motor, and the motor drives the cam to rotate. A V-shaped plate is rotatably installed on the frame at the rear end of the third chain. One end of the V-shaped plate is connected to the rear end of the third chain, and the other end is connected to the third pull rod. The bottom of the cam is against the top surface of a support plate, and the left end of the support plate is rotatably connected to the frame, and the bottom of the third pull rod is connected to the right end of the support plate. The rotation of the cam can realize the downward movement of the right end of the support plate, and then the V-shaped plate is driven to rotate by the third pull rod, so that the movement of the third chain is driven by the rotation of the V-shaped plate.

[0064] See also Figure 1-5 The insertion bin 1 has an insertion cavity 19 disposed therein, and both ends of the insertion cavity 19 are connected to the top and bottom of the insertion bin 1, respectively. A notch 20 connected to the insertion cavity 19 is disposed above the rear side of the insertion bin 1.

[0065] A material insertion limit plate 21 is installed on the top of the material insertion cavity 19, and there is a vertical spacing between the bottom of the material insertion limit plate 21 and the bottom of the notch 20. The material insertion limit plate 21 is provided with a socket 22, and a plug plate 23 is movably inserted in the socket 22, and the bottom of the plug plate 23 is inserted in the material insertion cavity 19.

[0066] The notch is connected to the inserting cavity, and an inserting limit plate and an inserting plate are arranged on the top of the inserting cavity, so that the gluten can be directly fed into the inserting cavity from the notch through the feeding channel. For example, the gluten ball is fed into the inserting cavity from the notch. Since the gluten ball is relatively soft, it may not be able to smoothly enter the inserting cavity, or it may not be able to smoothly or quickly fall downward from the inserting cavity to the receiving cavity. Therefore, the inserting plate is arranged so that when the inserting plate moves up, it is above the gluten ball, and then the inserting plate moves down, and the gluten ball is inserted into the inserting cavity through the inserting plate, and the gluten ball is driven to move to the bottom of the inserting cavity, so that the gluten ball is against the cutting baffle, or enters the receiving cavity. Moreover, when entering the receiving cavity, the inserting plate can make the gluten ball fill the receiving cavity, so that the amount of gluten ball sent out by the lower hopper each time will be within the set range.

[0067] In order to prevent the gluten balls from being blocked or stuck during cutting and conveying, water is generally added at the front end. In order to prevent excessive water accumulation in the receiving chamber and affect the amount of gluten balls in the receiving chamber, at least one through hole 24 connected to the bottom of the lower hopper 3 is provided at the bottom of the receiving chamber 4 to discharge most of the water therein, thereby ensuring that the gluten balls are filled in the receiving chamber and that the amount of gluten balls falling is within the set range.

[0068] In the description of the present invention, it should be understood that the terms "upper", "lower", "top", "bottom", "inner", "outer", etc., indicating the orientation or positional relationship, are based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on the present invention. In the description of the present invention, the meaning of "multiple" is two or more, unless otherwise clearly and specifically defined.

[0069] In the present utility model, unless otherwise clearly specified and limited, the terms "install", "connect", "connect", "fix" and the like should be understood in a broad sense, for example, it can be a fixed connection, or a detachable connection, or an integral one; it can be a mechanical connection, or an electrical connection; it can be directly connected, or indirectly connected through an intermediate medium, for example, the two can form a mechanical abutment or abutment connection through abutment, contact, etc., the two can also be directly hung or hung through an intermediate medium, etc., or it can be the internal connection of the two elements or the interaction relationship between the two elements. For ordinary technicians in this field, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.

Claims

1. A gluten quantitative cutting and feeding device, characterized in that: It includes a material insertion bin, a cutting baffle and a lower hopper. The material insertion bin is a hollow structure with two ends passing through. The cutting baffle is movably arranged between the lower hopper and the material insertion bin to open or close the bottom of the material insertion bin. A material receiving cavity is provided on the top of the lower hopper, and the lower hopper is rotatably arranged below the cutting baffle; When the lower hopper rotates to the first position, the material receiving chamber is arranged opposite to the cutting baffle; when the lower hopper rotates to the second position, the material receiving chamber is arranged downward.

2. The gluten quantitative cutting and feeding device according to claim 1 is characterized in that: Cutting baffle guide grooves are respectively arranged on both sides below the inserting bin, and both sides of the cutting baffle are respectively slidably arranged in the cutting baffle guide grooves on both sides.

3. The gluten quantitative cutting and feeding device according to claim 2 is characterized in that: A second driving connection piece is also provided, and the second driving connection piece drives the cutting baffle to move forward and backward along the cutting baffle guide groove through a second driving mechanism, so as to open or close the bottom of the insertion bin.

4. The gluten quantitative cutting and feeding device according to claim 3 is characterized in that: The second driving connecting member includes a second rotating shaft, a second mounting plate and a second connecting plate, and the second rotating shaft is rotatably arranged at the front side of the material insertion bin; The second connecting plate is installed at one end of the second rotating shaft, and the other end of the second connecting plate is connected to the second driving mechanism, and the second driving mechanism drives the second rotating shaft to rotate via the second connecting plate; The top of the second mounting plate is connected to the middle of the second rotating shaft, and the bottom of the second mounting plate is connected to the front end of the cutting baffle via an intermediate connecting plate; One end of the intermediate connecting plate is rotatably connected to the bottom of the second mounting plate, and the other end of the intermediate connecting plate is rotatably connected to the front end of the cutting baffle.

5. The gluten quantitative cutting and feeding device according to claim 1 is characterized in that: A third rotating shaft is rotatably mounted below the lower hopper, and the bottom of the lower hopper is connected to the middle of the third rotating shaft via a hopper connecting piece.

6. The gluten quantitative cutting and feeding device according to claim 5 is characterized in that: A third driving mechanism is also provided, and the third driving mechanism is configured to drive the third rotating shaft to rotate, and drive the lower hopper to rotate to the first position or the second position.

7. The gluten quantitative cutting and feeding device according to claim 6 is characterized in that: A first protrusion is provided on the top outer surface of the right end of the third rotating shaft, and a second protrusion is provided on the bottom outer surface of the left end of the third rotating shaft; The third driving mechanism is arranged on the right side of the lower hopper, a reset mechanism is arranged on the left side of the lower hopper, the reset mechanism is connected to the second protrusion, and the third driving mechanism is connected to the first protrusion.

8. The gluten quantitative cutting and feeding device according to claim 7 is characterized in that: The reset mechanism includes a tension spring and a second chain, the rear end of the tension spring is connected to a frame, and the two ends of the second chain are respectively connected to the second protrusion and the front end of the tension spring; the third driving mechanism is connected to the first protrusion via a third chain; And / or, the third driving mechanism drives the third rotating shaft to rotate in one direction via the third chain, and causes the lower hopper to rotate to the first position; The reset mechanism drives the third rotating shaft to rotate in another direction, and causes the lower hopper to rotate to the second position.

9. The gluten quantitative cutting and feeding device according to claim 1, characterized in that: The material insertion bin is provided with a material insertion cavity inside, the two ends of the material insertion cavity are respectively connected with the top and the bottom of the material insertion bin, and a notch connected with the material insertion cavity is provided on the upper rear side of the material insertion bin; A material insertion limit plate is installed on the top of the material insertion cavity, and there is a vertical spacing between the bottom of the material insertion limit plate and the bottom of the notch. The material insertion limit plate is provided with a socket, and a plug plate is movably inserted in the socket, and the bottom of the plug plate is inserted in the material insertion cavity.

10. The gluten quantitative cutting and feeding device according to claim 1, characterized in that: The bottom of the material receiving chamber is provided with at least one through hole communicating with the bottom of the lower hopper; And / or, a vertical plate is provided on the rear side of the insertion bin, and the bottom of the vertical plate is arranged on the rear side of the cutting baffle and the lower hopper; When the cutting baffle moves backward, the rear end of the cutting baffle approaches or abuts against the vertical plate; When the lower hopper rotates to the first position, the rear side wall of the lower hopper is close to or against the vertical plate.

Citation Information

Patent Citations

  • Full -automatic gluten machine

    CN206714046U