Gluten cut-off plate mounting structure
Through the installation structure of the first cutting board and the second cutting board, the existing gluten cutting equipment has been solved, and stable cutting and efficient rolling are achieved, and the overall performance of the gluten machine is improved.
Patent Information
- Application Number
- CN202422360557.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-26
- Publication Date
- 2025-09-02
- Estimated Expiration
- 2034-09-26
AI Technical Summary
The existing gluten cutting equipment has large space occupancy, high cost, affects the arrangement of other mechanisms, and is unstable in cutting, which cannot meet the needs of efficient rolling.
The installation structure of the first cutting board and the second cutting board is adopted, and the connecting plate is driven by the cutting board driving member, combined with the limit adjustment of the screw and nut, the stable up and down movement of the cutting board is achieved, reducing space occupation and reducing costs.
It realizes stable gluten cutting, reduces equipment space usage, reduces costs, and improves the quality and efficiency of gluten rolling.
Smart Images

Figure CN223289929U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to gluten production and processing equipment, in particular to a gluten cutting plate installation structure. Background Art
[0002] Gluten is a food that we are all familiar with. Since gluten is a colloidal mixed protein unique to wheat flour, composed of gliadin and glutenin, gluten has a high nutritional value and is a high-protein, low-fat, low-sugar, low-calorie food. It also contains various trace elements such as calcium, iron, phosphorus, and potassium. It is a traditional delicacy and is therefore loved by the public. After gluten is produced, it generally needs to be rolled into gluten rolls (the more common roasted gluten on the market), but it is currently mainly rolled manually, which not only requires a large workload but also has low efficiency and cannot meet market demand. Moreover, when rolling manually, the uniformity of the gluten rolls depends entirely on the worker's experience and feel, which will result in the gluten rolls being of different sizes and not being firm enough, making it impossible to guarantee the edible taste of the gluten rolls. There will also be hygiene and safety issues.
[0003] Among them, in order to solve this problem in the prior art, a screw extrusion method is generally used to extrude the gluten and then cut it, and then the gluten is directly rolled by a gluten rolling mechanism. Among them, for example, the application number is: 202410162908.6, and the patent name is: A gluten rolling mechanism of a gluten machine, which is used to roll the cut gluten. After the conventional gluten is cut, the gluten is fed into the gluten rolling mechanism, and the cut gluten is generally pushed to move to the location for rolling by the fed gluten. However, the gluten tastes poor when using the screw extrusion method. Therefore, it is considered to adopt a spiral conveying method, that is, a spiral groove is provided to convey the gluten through the spiral groove. During the process of conveying by the spiral groove, a spiral component matching the spiral groove is also provided above the spiral groove. The spiral component moves up and down and rotates back and forth at a certain angle to realize the conveyance of the gluten dough along the spiral groove. In addition, during the conveying process, the spiral component can be used to knead the gluten dough. When the gluten is fed out of the spiral groove, the gluten is cut by a cutter. The conventional cutting design method is to directly use the cylinder to drive the cutter up and down to achieve the cutting of the gluten. However, in this structure, other mechanisms need to be set up at the outlet to send the cut gluten away. The cylinder is not easy to arrange, which may affect the arrangement of other mechanisms. In addition, the vertical space occupied at this location is large, which will also affect the arrangement of other mechanisms of the gluten machine. At the same time, if you consider setting up a first reflux groove at the spiral groove to return part of the gluten to knead the dough again, you also need to set up another cutter to cut the gluten that needs to be refluxed to facilitate reflux. In this way, you also need to set up a cylinder to drive it, that is, each cutter needs a drive component to drive it, which will be more expensive and will also affect the arrangement of the spiral component. Summary of the Invention
[0004] The utility model aims to provide a gluten cutting plate installation structure, by using the structure, the stable cutting of gluten is achieved, and the arrangement of other mechanisms of the gluten machine is convenient.
[0005] To achieve the above object, the technical solution adopted by the present invention is: a gluten cutting plate installation structure, comprising a frame and a first cutting plate, wherein the first cutting plate is connected to the frame via a first connecting plate, the right end of the first connecting plate is rotatably connected to the frame, and the top of the first cutting plate is connected to the left end of the first connecting plate via a first connecting member;
[0006] The frame is provided with a shear plate tension spring for pulling the left end of the first connecting plate to rotate upward;
[0007] A cutting plate driving member for pulling the left end of the first connecting plate downward is provided on the frame below the first connecting plate;
[0008] The first connecting member includes a first sleeve and a first screw. The side of the first sleeve is connected to the first connecting plate. The top of the first cutting plate is connected to the bottom of the first screw. The top of the first screw passes through the first sleeve and is arranged directly above the first sleeve.
[0009] A first upper nut and a first lower nut are screwed onto the first screw rod. The bottom surface of the first upper nut abuts against the top surface of the first sleeve, and the top surface of the first lower nut abuts against the bottom surface of the first sleeve.
[0010] In the above technical solution, the first connecting member further includes a first mounting plate, the first sleeve is connected to the first connecting plate via the first mounting plate, and the first sleeve is mounted on a side wall of the first mounting plate.
[0011] In the above technical solution, the first mounting plate is connected to the first connecting plate via two bolts;
[0012] The first mounting plate is provided with two first strip grooves parallel to the first connecting plate, and the two bolts respectively pass through one of the first strip grooves and are connected to the first connecting plate.
[0013] In the above technical solution, a downward-extending tension spring hanging plate is provided at the bottom of the first connecting plate, and the tension spring hanging plate is arranged on the right side of the first cutting plate. There are two cutting plate tension springs, and the two cutting plate tension springs are respectively arranged on both sides of the first connecting plate. The top of the cutting plate tension spring is connected to the frame, and the bottom of the cutting plate tension spring is connected to the bottom of the tension spring hanging plate.
[0014] In the above technical solution, the frame is further provided with a connecting plate limiting plate, the bottom of the connecting plate limiting plate is provided with a connecting plate limiting groove, and the middle part of the first connecting plate is movably arranged in the connecting plate limiting groove.
[0015] In the above technical solution, a second cutting plate is further provided, the second cutting plate is connected to the first connecting plate via a second connecting member, and the second cutting plate is arranged between the first cutting plate and the cutting plate driving member;
[0016] The second connecting member includes a second mounting plate and a second screw, the top of the second mounting plate is connected to the first connecting plate, the top of the second cutting plate is connected to the bottom of the second screw, and the top of the second screw is connected to the second mounting plate;
[0017] And / or, a second through hole is provided on the second mounting plate, and a top portion of the second screw rod passes through the second through hole and is provided above the second through hole;
[0018] A second upper nut and a second lower nut are threaded onto the second screw rod. The second upper nut abuts against the second mounting plate above the second through hole, and the second lower nut abuts against the second mounting plate below the second through hole. The second upper nut and the second lower nut connect the top of the second screw rod to the second mounting plate.
[0019] In the above technical solution, the top of the second mounting plate is rotatably connected to the first connecting plate, and a second cutting plate tension spring is provided. One end of the second cutting plate tension spring is connected to the second mounting plate, and the other end of the second cutting plate tension spring is connected to the frame or the cutting plate driving member. The second cutting plate tension spring pulls the second cutting plate to move left or right.
[0020] In the above technical solution, the cutting plate driving member includes a pull rod, a pull rod connecting plate, a cutting plate power component and a transmission plate. The top of the pull rod connecting plate is rotatably connected to the first connecting plate, the right end of the transmission plate is rotatably connected to the frame, the top of the pull rod is connected to the bottom of the pull rod connecting plate, the bottom of the pull rod is rotatably connected to the left end of the transmission plate, and the cutting plate power component is configured to drive the left end of the transmission plate to move downward.
[0021] In the above technical solution, the pull rod is also connected to the pull rod connecting plate through an adjustment frame with a hollow structure, the top of the adjustment frame is connected to the bottom of the pull rod connecting plate, and the bottom of the adjustment frame is provided with a pull rod connecting hole. The top of the pull rod passes through the pull rod connecting hole and is inserted into the inside of the adjustment frame; two pull rod limiting nuts are screwed above the pull rod, one of the pull rod limiting nut rests on the adjustment frame above the pull rod connecting hole, and the top surface of the other pull rod limiting nut rests on the bottom surface of the adjustment frame.
[0022] In the above technical solution, the transmission plate includes a right transmission plate and a left transmission plate. The right end of the right transmission plate is rotatably connected to the frame, and the two ends of the left transmission plate are respectively rotatably connected to the left end of the right transmission plate and the bottom of the pull rod. The cutting plate power component is configured to drive the left end of the right transmission plate to move downward.
[0023] Due to the application of the above technical solution, the utility model has the following advantages compared with the prior art:
[0024] 1. In the present invention, the right end of the first connecting plate is rotatably connected to the frame, and the left end of the first connecting plate is driven to rotate downward by the cutting plate driving member, thereby driving the first cutting plate to move downward. The cutting plate tension spring pulls the left end of the first connecting plate upward to achieve the upward movement of the first cutting plate. In this manner, the space above the first cutting plate is not occupied, the arrangement of other mechanisms is not affected, and the stability of gluten cutting can be ensured.
[0025] 2. In the present invention, the first cutting plate is connected to the first sleeve via a first screw, and the first screw is limited on the first sleeve via first upper and lower nuts. This allows for convenient adjustment of the inclination angle and vertical movement distance of the first cutting plate, thereby conveniently cutting gluten of different shapes, facilitating subsequent gluten rolling, and ensuring the quality of subsequent gluten rolling.
[0026] 3. The present invention also provides a second cutting plate, which is also connected to the first connecting plate. When the first connecting plate rotates around the frame, it can simultaneously drive the first and second cutting plates to move up and down, thereby achieving the cutting action of the gluten. The same cutting plate driving member can simultaneously drive the two cutting plates to move up and down synchronously, which not only reduces space occupation but also reduces costs. BRIEF DESCRIPTION OF THE DRAWINGS
[0027] Figure 1 This is a schematic structural diagram of the first embodiment of the present invention;
[0028] Figure 2 yes Figure 1 Schematic diagram of the three-dimensional structure;
[0029] Figure 3 yes Figure 1 A schematic diagram of the three-dimensional structure from another perspective;
[0030] Figure 4 This is a schematic structural diagram of the first embodiment of the present invention in combination with the gluten feeding mechanism;
[0031] Figure 5 This is a schematic diagram of the exploded structure of the gluten feeding mechanism in the first embodiment of the present invention;
[0032] Figure 6 It is a top view of the first cutting plate, the second cutting plate and the spiral stirring and conveying channel in Example 1 of the present invention (the dotted line and the arrow above the dotted line are the conveying direction of gluten).
[0033] Wherein: 1, frame; 12, bottom plate; 22, spiral stirring and conveying channel; 25, stirring assembly; 27, bracket; 213, arc-shaped reflux channel;
[0034] 31. First cutting plate; 32. First connecting plate; 33. Cutting plate tension spring; 341. First sleeve; 342. First screw; 343. First upper nut; 344. First lower nut; 345. First mounting plate; 346. First strip groove; 347. Tension spring mounting plate; 35. Connecting plate limiting plate; 351. Connecting plate limiting groove; 361. Pull rod; 362. Pull rod connecting plate; 363. Transmission plate; 364. Adjustment frame; 365. Pull rod limiting nut; 3631. Right transmission plate; 3632. Left transmission plate; 37. Second cutting plate; 371. Second mounting plate; 372. Second screw; 373. Second upper nut; 374. Second lower nut; 375. Second cutting plate tension spring. DETAILED DESCRIPTION
[0035] The present invention will be further described below with reference to the accompanying drawings and embodiments:
[0036] Example 1: See Figures 1 to 6 As shown, a gluten cutting plate installation structure includes a frame 1 and a first cutting plate 31, wherein the first cutting plate 31 is connected to the frame 1 via a first connecting plate 32, the right end of the first connecting plate 32 is rotatably connected to the frame 1, and the top of the first cutting plate 31 is connected to the left end of the first connecting plate 32 via a first connecting member;
[0037] The frame is provided with a shear plate tension spring 33 for pulling the left end of the first connecting plate 32 to rotate upward;
[0038] A cutting plate driving member is provided on the frame 1 below the first connecting plate 32 to pull the left end of the first connecting plate downward;
[0039] The first connecting member includes a first sleeve 341 and a first screw 342. The side of the first sleeve 341 is connected to the first connecting plate 32. The top of the first cutting plate 31 is connected to the bottom of the first screw 342. The top of the first screw 342 passes through the first sleeve 341 and is located directly above the first sleeve 341.
[0040] A first upper nut 343 and a first lower nut 344 are screwed onto the first screw rod 342 . The bottom surface of the first upper nut 343 abuts against the top surface of the first sleeve, and the top surface of the first lower nut 344 abuts against the bottom surface of the first sleeve.
[0041] In the present invention, in actual use, the first cutting plate will be set at the outlet of the gluten feeding mechanism, and the gluten feeding mechanism will include a bottom plate 12, a spiral stirring and conveying channel 22 provided on the bottom plate 12, and a stirring and conveying mechanism provided directly above the spiral stirring and conveying channel 22. The middle part of the spiral stirring and conveying channel 22 is an inlet, and the left end is an outlet. The gluten dough falls into the inlet from above, and the stirring and conveying mechanism moves the gluten dough from the inlet along the spiral stirring and conveying channel toward the outlet and sends it out from the outlet. Among them, the spiral stirring and conveying channel is arranged counterclockwise, and the stirring and conveying mechanism includes a bracket 27 and a stirring assembly 25 installed on the bracket. The bottom of the bracket passes through the bottom plate and is arranged below the bottom plate. The bottom plate is installed on the frame. The stirring assembly is arranged in a spiral shape, which is directly opposite to the spiral stirring and conveying channel. A driving component is provided on the frame below the bottom plate. The driving component drives the stirring and conveying mechanism to move up and down and reciprocate a certain angle. During the gluten dough conveying process, the driving component drives the stirring and conveying mechanism to move downward, so that the stirring component presses down on the gluten, and then the stirring and conveying mechanism rotates a certain angle (for example, 5°~15°), and then moves upward to separate from the gluten dough, and then rotates in the opposite direction to reset to the original position, and then continues to move downward, rotate, move upward, and rotate in the opposite direction to reset, and so on. During the downward movement and rotation process of the stirring component, not only can the gluten dough be conveyed from the inlet to the outlet, but the gluten can also be kneaded, thereby improving the taste of the gluten.
[0042] Among them, in the present invention, a gluten rolling mechanism will be set at the rear end, such as application number: 202410162908.6, patent name: A gluten rolling mechanism of a gluten machine, which is used to roll the gluten, wherein, after the gluten is sent out from the outlet of the spiral stirring and conveying channel, it is necessary to use a first cutting plate to cut it into a shape suitable for rolling by the gluten rolling mechanism (diamond shape is most suitable), and then use other mechanisms to move the cut gluten to the gluten rolling mechanism for rolling. Therefore, if a cylinder is used to directly drive the first cutting plate to move up and down, it may affect the movement of the gluten by other mechanisms. Therefore, in this embodiment, a first connecting plate is set to connect with the first cutting plate, and the right end of the first connecting plate is rotatably connected to the frame. The first connecting plate can be directly set above the stirring and conveying mechanism, and the cutting plate driving member is set below the bottom plate, which does not affect the normal operation of the stirring and conveying mechanism. When cutting is required, the cutting plate driving member pulls the left end of the first connecting plate downward, that is, pulls the right end of the first connecting plate to rotate counterclockwise around the frame, so that when the left end of the first connecting plate moves downward (the cutting plate tension spring will be stretched at this time), the first cutting plate is synchronously driven to move downward. The first cutting plate is at the outlet of the spiral stirring channel. The first cutting plate moves downward and rests on the bottom plate to cut the gluten dough. Then the cutting plate driving member releases the downward pulling force on the first connecting plate, and the restoring force of the cutting plate tension spring will pull the first connecting plate to rotate clockwise, so that the left end of the first connecting plate moves upward, and drives the first cutting plate to move upward, thereby realizing self-resetting of the first cutting plate. In this way, the cutting plate driving part can adopt a cam mechanism, and the rotation of the cam mechanism can be used to give the first connecting plate a downward pulling force, thereby realizing the downward movement of the left end of the first connecting plate. The cam mechanism can use the same motor to drive the other mechanisms of the gluten machine, thereby reducing the power mechanism, saving energy consumption, and reducing costs. Of course, a cylinder can also be used to pull the first connecting plate downward without occupying the space above.
[0043] Among them, in order to ensure that the first cutting plate can cut out the shape that is most suitable for the rolling of the gluten rolling mechanism, the first cutting plate is connected by a first screw and a first sleeve. The first screw can rotate and move axially in the first sleeve, and then the first upper nut and the first lower nut are used to limit the first screw on the first sleeve, so as to facilitate the adjustment of the angle and distance of the first cutting plate relative to the outlet of the spiral stirring and conveying channel, so as to facilitate the adjustment of the cutting effect and shape of the gluten and ensure the subsequent quality of the rolled gluten. Among them, when it is necessary to adjust the angle and downward distance of the first cutting plate, the first upper nut and the second upper nut are loosened so that the first screw can rotate and move axially relative to the first sleeve. After the adjustment is completed, the first upper nut and the first lower nut are tightened so that they are respectively against the two ends of the first sleeve, so that the first screw can be limited so that the first screw will not rotate and move relative to the first sleeve. In this way, when the left end of the first connecting plate moves up and down, the first cutting plate moves up and down stably to cut the gluten dough.
[0044] See also Figures 1 to 3 As shown, the first connecting member further includes a first mounting plate 345 , the first sleeve 341 is connected to the first connecting plate 32 via the first mounting plate 345 , and the first sleeve 341 is mounted on the side wall of the first mounting plate 345 .
[0045] In order to facilitate the installation of the first sleeve and the first connecting plate, the first sleeve is connected through the first mounting plate and the first connecting plate.
[0046] See also Figures 1 to 3 As shown, the first mounting plate 345 is connected to the first connecting plate 32 via two bolts;
[0047] The first mounting plate 345 is provided with two first strip-shaped grooves 346 parallel to the first connecting plate 32 , and the two bolts pass through one of the first strip-shaped grooves 346 and are connected to the first connecting plate 32 .
[0048] In this embodiment, in order to ensure that the side of the first cutting plate can still fit against the side of the outlet of the spiral stirring and conveying channel when the angle of the first cutting plate is adjusted, the first strip groove is provided to adjust the position of the first cutting plate so that the first cutting plate can contact the side wall of the spiral stirring and conveying channel, thereby ensuring that the first cutting plate can stably cut the gluten and prevent adhesion. When the position of the first cutting plate relative to the first connecting plate needs to be adjusted, the bolts are loosened to move the first mounting plate along the first strip groove, thereby adjusting the position between the first mounting plate and the first connecting plate. After the adjustment is completed, the bolts are tightened to complete the adjustment.
[0049] See also Figures 1 to 3As shown, a downwardly extending tension spring hanging plate 347 is provided at the bottom of the first connecting plate 32, and the tension spring hanging plate 347 is arranged on the right side of the first cutting plate 31. There are two cutting plate tension springs 33, and the two cutting plate tension springs 33 are respectively arranged on both sides of the first connecting plate 32. The top of the cutting plate tension spring is connected to the frame hanging, and the bottom of the cutting plate tension spring is connected to the bottom of the tension spring hanging plate.
[0050] In this embodiment, in order to ensure the pulling force of the cutting plate tension spring on the first connecting plate, generally, the hanging position of the top of the cutting plate tension spring needs to be as far away from the hanging position of the first connecting plate as possible. Therefore, if the bottom of the cutting plate tension spring is directly hung on the first connecting plate, the hanging position of the top of the cutting plate tension spring needs to be relatively high, so that the height above the bottom plate will be relatively high, and the cost will be higher. Therefore, a downward tension spring hanging plate is provided at the bottom of the first connecting plate, and the top of the tension spring hanging plate is connected to the middle of the bottom surface of the first connecting plate. In this way, the distance between the top and the bottom of the cutting plate tension spring is relatively far, which can fully ensure that the cutting plate tension spring is in a stretched state, and can reduce the space occupied above, reduce the height occupancy of the equipment (other mechanisms normally need to be set under the bottom plate, which will not occupy too much space above), reduce costs, and use two cutting plate tension springs to make the first connecting plate more evenly subjected to the upward tension.
[0051] See also Figures 1 to 3 As shown, the frame 1 is further provided with a connecting plate limiting plate 35 , the bottom of the connecting plate limiting plate 35 is provided with a connecting plate limiting groove 351 , and the middle part of the first connecting plate 32 is movably set in the connecting plate limiting groove 351 .
[0052] In this embodiment, the right end of the first connecting plate is rotatably connected to the frame, and the first cutting plate is arranged at the left end of the first connecting plate. When the first cutting plate moves down to cut the gluten, the first connecting plate will also be affected by the feedback force of the first cutting plate. When used for a long time, the first connecting plate is prone to deformation and other problems, or there is a certain gap at the rotation connection between the first connecting plate and the frame, resulting in a slight offset in the downward position of the first cutting plate during the rotation, thereby making the cutting inaccurate. Therefore, by providing a connecting plate limiting plate and providing a connecting plate limiting groove on the chain plate limiting plate, the connecting plate can stably rotate according to the predetermined position when rotating around the frame.
[0053] See also Figures 1 to 3As shown, the cutting plate driving member includes a pull rod 361, a pull rod connecting plate 362, a cutting plate power component and a transmission plate 363 (the cutting plate power component is not shown). The top of the pull rod connecting plate 362 is rotatably connected to the first connecting plate 32, and the right end of the transmission plate 32 is rotatably connected to the frame 1. The top of the pull rod 361 is connected to the bottom of the pull rod connecting plate 362, and the bottom of the pull rod 361 is rotatably connected to the left end of the transmission plate 32. The cutting plate power component is configured to drive the left end of the transmission plate 32 to move downward.
[0054] In this embodiment, the cutting plate power component and the transmission plate are located below the base plate, and the pull rod passes through the base plate and connects to the pull rod connecting plate. The cutting plate power component can be a combination of a motor and a cam. The motor drives the cam to rotate, and the bottom outer surface of the cam abuts the top surface of the transmission plate. When the cam rotates, the cam's major axis abuts the transmission plate, pushing the left end of the transmission plate downward. As the left end of the transmission plate moves downward, the pull rod moves downward, thereby driving the left end of the first connecting plate downward through the pull rod connecting plate, achieving counterclockwise rotation of the first connecting plate. When the minor axis of the cam rotates to the transmission plate, the presence of the cutting plate tension spring pulls the left end of the first connecting plate upward, causing the pull rod to move upward. In this way, the top surface of the transmission plate always contacts the bottom outer surface of the cam. In this method, a single motor drives the cam, which can also drive other mechanisms, thereby reducing the number of power components (motor or cylinder) and reducing costs. Of course, the cutting plate power component can also use other mechanisms as long as they can drive the left end of the transmission plate downward.
[0055] See also Figures 1 to 3 As shown, the pull rod 361 is also connected to the pull rod connecting plate 362 through an adjusting frame 364 with a hollow structure. The top of the adjusting frame 364 is connected to the bottom of the pull rod connecting plate 362. The bottom of the adjusting frame 364 is provided with a pull rod connecting hole. The top of the pull rod 361 passes through the pull rod connecting hole and is inserted into the adjusting frame 364; two pull rod limiting nuts 365 are screwed above the pull rod 361, one of the pull rod limiting nut 365 rests on the adjusting frame 364 above the pull rod connecting hole, and the top surface of the other pull rod limiting nut 365 rests on the bottom surface of the adjusting frame 364.
[0056] In this embodiment, the vertical distance between the first cutting plate and the first connecting plate can be adjusted. To ensure that the first cutting plate can stably cut the gluten after the position of the first cutting plate is adjusted, or to conveniently adjust the vertical movement distance of the first connecting plate, a hollow adjustment frame is provided, and a pull rod is directly inserted into the pull rod connection hole. Pull rod limit nuts are provided at both ends to connect and fix the pull rod and the adjustment frame. At the same time, after loosening the pull rod limit nut, the relative distance between the top of the pull rod and the first connecting plate can be adjusted. After the adjustment is completed, the two pull rod limit nuts can be tightened again. In this way, the position of the pull rod relative to the first connecting plate and the rotation angle of the first connecting plate can be adjusted.
[0057] At the same time, in order to ensure that the first connecting plate can rotate normally when the pull rod and the pull rod connecting plate move downward, the pull rod connecting plate is rotatably connected to the first connecting plate, thereby ensuring that the first connecting plate can rotate normally relative to the frame and preventing the first connecting plate from getting stuck. At the same time, the adjustment frame can also be rotatably connected to the pull rod connecting plate to further ensure the smooth rotation of the first connecting plate when the pull rod moves up and down.
[0058] See also Figures 1 to 3 As shown, the transmission plate 363 includes a right transmission plate 3631 and a left transmission plate 3632. The right end of the right transmission plate 3631 is rotatably connected to the frame 1, and the two ends of the left transmission plate 3632 are respectively rotatably connected to the left end of the right transmission plate 3631 and the bottom of the pull rod 361. The cutting plate power component is configured to drive the left end of the right transmission plate 3631 to move downward.
[0059] Among them, since the connection between the right end of the transmission plate and the frame will not have left and right displacement, in order to reduce the rotation amplitude of the pull rod and prevent the pull rod and the base plate from colliding, the size of the opening on the base plate is reduced (a hole needs to be opened on the base plate to make room for the pull rod). Therefore, the transmission plate adopts a left transmission plate and a right transmission plate, and the two are rotatably connected. In this way, when the right transmission plate receives the driving force of the cut-off power component, it can drive the pull rod to move downward through the left transmission plate, reducing the tilt amplitude of the pull rod during the downward movement, preventing it from contacting the base plate and getting stuck, and ensuring the smooth movement of the pull rod.
[0060] See also Figures 1 to 3 As shown, a second cutting plate 37 is also provided, which is connected to the first connecting plate 32 via a second connecting member, and the second cutting plate 37 is arranged between the first cutting plate 31 and the cutting plate driving member; wherein, in this embodiment, the second cutting plate is arranged between the first cutting plate and the pull rod.
[0061] The second connecting member includes a second mounting plate 371 and a second screw 372. The top of the second mounting plate 371 is connected to the first connecting plate 32. The top of the second cutting plate 37 is connected to the bottom of the second screw 372. The top of the second screw 372 is connected to the second mounting plate 371.
[0062] A second through hole is formed on the second mounting plate 371, and the top of the second screw rod 372 passes through the second through hole and is disposed above the second through hole;
[0063] A second upper nut 373 and a second lower nut 374 are threaded onto the second screw rod 372. The second upper nut 373 rests on the second mounting plate 371 above the second through hole, and the second lower nut 374 rests on the second mounting plate 371 below the second through hole. The second upper nut 373 and the second lower nut 374 connect the top of the second screw rod 372 to the second mounting plate 371.
[0064] In this embodiment, in order to improve the kneading effect of gluten, an arc-shaped reflux channel 213 is provided in the middle of the spiral stirring and conveying channel, so that part of the gluten flows back to the inlet of the spiral stirring and conveying channel and is mixed with the new gluten. In order to ensure that part of the gluten can enter the arc-shaped reflux channel, part of the gluten is normally conveyed toward the outlet of the spiral stirring and conveying channel. Therefore, a second cutting plate is provided and the gluten at the arc-shaped reflux channel is cut by the second cutting plate, so that part of the gluten enters the arc-shaped reflux channel to reflux and mix with the new gluten, and part of the gluten is conveyed normally, thereby improving the kneading effect of the gluten and improving the taste of the gluten.
[0065] The second through hole and the second upper nut and the second lower nut are arranged so that the height and the inclination angle of the second cutting plate can be adjusted by loosening the second upper and lower nuts (after the adjustment is completed, the second upper and lower nuts can be locked), and the amount of gluten entering the arc-shaped reflux channel can be adjusted to improve the kneading effect and taste of the gluten as much as possible.
[0066] See also Figures 1 to 3 The top of the second mounting plate 371 is rotatably connected to the first connecting plate 32, and is further provided with a second cutting plate tension spring 375. One end of the second cutting plate tension spring 375 is connected to the second mounting plate 371, and the other end of the second cutting plate tension spring 375 is connected to the frame 1 or the cutting plate driving member. The second cutting plate tension spring 375 pulls the second cutting plate 37 to move left or right.
[0067] In this embodiment, the downward movement of the first cutting plate is predetermined. Therefore, in order to ensure that the second cutting plate maintains a stable position during its downward movement and is always able to cut the gluten, the second mounting plate is rotatably connected to the first connecting plate. In order to ensure that the second cutting plate effectively cuts the gluten, a second cutting plate tension spring is provided. The second cutting plate tension spring pulls the second cutting plate to rotate toward one side, so that the second cutting plate partially contacts the side wall of the spiral stirring and conveying channel, thereby ensuring the cutting effect. Of course, the second mounting plate can also be fixedly connected to the first connecting plate. In this way, when the first connecting plate rotates, the downward cutting position of the second cutting plate is relatively fixed, and the inclination angle of the second cutting plate is inconvenient to adjust.
[0068] In this embodiment, the left end of the second cutting plate tension spring 375 is connected to the second mounting plate 371, which is in turn connected to the adjustment frame 364. The second cutting plate tension spring pulls the bottom of the second cutting plate to the right, causing the middle portion of the second cutting plate to rest against the side wall of the spiral stirring and conveying channel. Part of the second cutting plate is removed from the spiral stirring and conveying channel, while the remaining portion is located in the arc-shaped reflux channel. This allows some gluten to enter the spiral stirring and conveying channel normally and be transported toward the outlet, while the remaining portion enters the arc-shaped reflux channel and is transported toward the inlet of the spiral stirring and conveying channel to mix with new gluten, ensuring stable cutting of the gluten within the spiral stirring and conveying channel.
[0069] 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.
[0070] 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 plate installation structure, characterized in that: The machine comprises a frame and a first cutting plate, wherein the first cutting plate is connected to the frame via a first connecting plate, the right end of the first connecting plate is rotatably connected to the frame, and the top of the first cutting plate is connected to the left end of the first connecting plate via a first connecting member; The frame is provided with a shear plate tension spring for pulling the left end of the first connecting plate to rotate upward; A cutting plate driving member for pulling the left end of the first connecting plate downward is provided on the frame below the first connecting plate; The first connecting member includes a first sleeve and a first screw. The side of the first sleeve is connected to the first connecting plate. The top of the first cutting plate is connected to the bottom of the first screw. The top of the first screw passes through the first sleeve and is arranged directly above the first sleeve. A first upper nut and a first lower nut are screwed onto the first screw rod. The bottom surface of the first upper nut abuts against the top surface of the first sleeve, and the top surface of the first lower nut abuts against the bottom surface of the first sleeve.
2. The gluten cutting plate installation structure according to claim 1, characterized in that: The first connecting member further includes a first mounting plate, the first sleeve is connected to the first connecting plate via the first mounting plate, and the first sleeve is mounted on a side wall of the first mounting plate.
3. The gluten cutting plate installation structure according to claim 2, characterized in that: The first mounting plate is connected to the first connecting plate via two bolts; The first mounting plate is provided with two first strip grooves parallel to the first connecting plate, and the two bolts respectively pass through one of the first strip grooves and are connected to the first connecting plate.
4. The gluten cutting plate installation structure according to claim 1, characterized in that: A downward-extending tension spring hanging plate is provided at the bottom of the first connecting plate, and the tension spring hanging plate is arranged on the right side of the first cutting plate. There are two cutting plate tension springs, and the two cutting plate tension springs are respectively arranged on both sides of the first connecting plate. The top of the cutting plate tension spring is connected to the frame, and the bottom of the cutting plate tension spring is connected to the bottom of the tension spring hanging plate.
5. The gluten cutting plate installation structure according to claim 4, characterized in that: The frame is further provided with a connecting plate limiting plate, the bottom of which is provided with a connecting plate limiting groove, and the middle portion of the first connecting plate is movably arranged in the connecting plate limiting groove.
6. The gluten cutting plate installation structure according to claim 1, characterized in that: A second cutting plate is further provided, the second cutting plate being connected to the first connecting plate via a second connecting member, and the second cutting plate being arranged between the first cutting plate and the cutting plate driving member; The second connecting member includes a second mounting plate and a second screw, the top of the second mounting plate is connected to the first connecting plate, the top of the second cutting plate is connected to the bottom of the second screw, and the top of the second screw is connected to the second mounting plate; And / or, a second through hole is provided on the second mounting plate, and a top portion of the second screw rod passes through the second through hole and is provided above the second through hole; A second upper nut and a second lower nut are threaded onto the second screw rod. The second upper nut abuts against the second mounting plate above the second through hole, and the second lower nut abuts against the second mounting plate below the second through hole. The second upper nut and the second lower nut connect the top of the second screw rod to the second mounting plate.
7. The gluten cutting plate installation structure according to claim 6, characterized in that: The top of the second mounting plate is rotatably connected to the first connecting plate, and is further provided with a second cutting plate tension spring, one end of the second cutting plate tension spring is connected to the second mounting plate, and the other end of the second cutting plate tension spring is connected to the frame or the cutting plate driving member, and the second cutting plate tension spring pulls the second cutting plate to move left or right.
8. The gluten cutting plate installation structure according to claim 1, characterized in that: The cutting plate driving member includes a pull rod, a pull rod connecting plate, a cutting plate power component and a transmission plate. The top of the pull rod connecting plate is rotatably connected to the first connecting plate, the right end of the transmission plate is rotatably connected to the frame, the top of the pull rod is connected to the bottom of the pull rod connecting plate, and the bottom of the pull rod is rotatably connected to the left end of the transmission plate. The cutting plate power component is configured to drive the left end of the transmission plate to move downward.
9. The gluten cutting plate installation structure according to claim 8, characterized in that: The pull rod is also connected to the pull rod connecting plate through an adjusting frame with a hollow structure. The top of the adjusting frame is connected to the bottom of the pull rod connecting plate. A pull rod connecting hole is provided at the bottom of the adjusting frame. The top of the pull rod passes through the pull rod connecting hole and is inserted into the adjusting frame. Two pull rod limiting nuts are screwed on the top of the pull rod, one of the pull rod limiting nut rests on the adjusting frame above the pull rod connecting hole, and the top surface of the other pull rod limiting nut rests on the bottom surface of the adjusting frame.
10. The gluten cutting plate installation structure according to claim 9, characterized in that: The transmission plate includes a right transmission plate and a left transmission plate. The right end of the right transmission plate is rotatably connected to the frame, and the two ends of the left transmission plate are respectively rotatably connected to the left end of the right transmission plate and the bottom of the pull rod. The cutting plate power component is configured to drive the left end of the right transmission plate to move downward.
Citation Information
Patent Citations
Gluten rolling mechanism of gluten machine
CN117941771A