Processing device and production method for preventing adhesion of steamed stuffed bun wrappers
By designing a processing device including an installation part, a forming part and a feeding part, the problem of bun skin adhesion in bun production is solved, efficient and stable bun skin collection and processing is achieved, and production efficiency and quality are improved.
Patent Information
- Application Number
- CN202510239654.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-03
- Publication Date
- 2025-05-27
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
During the production process of buns, the traditional method of collecting buns is inefficient, which can easily lead to damage, deformation or adhesion of buns, affecting production quality and efficiency.
A processing device including a mounting part, a forming part and a feeding part is designed. Through components such as sliding seat, motor, adapter plate, positioning rod, push shaft, placement plate and magnet, the efficient and stable collection and treatment of the bun skin is achieved to prevent adhesion.
Through this device, it is possible to effectively prevent the adhesion of the bun skin, improve the efficiency and quality of the bun production, and reduce production costs.
Smart Images

Figure CN120036354A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the field of steamed stuffed bun production, and particularly relates to a processing device and a production method for preventing the adhesion of steamed stuffed bun wrappers. Background Art
[0002] Steamed stuffed buns are a very popular type of Chinese pastry. They are made by steaming round dough cakes made of fermented or unfermented flour wrapped with various fillings. The shape of steamed stuffed buns is usually round, and there is a pleated opening at the top.
[0003] During the production process of steamed stuffed buns, a dough sheeter can efficiently and quickly process a large number of steamed stuffed bun wrappers. However, how to safely, efficiently, and stably collect the steamed stuffed bun wrappers just processed by the dough sheeter has become a key link in ensuring the production quality and efficiency of steamed stuffed buns. Traditional collection methods have many drawbacks. For example, manual collection not only has low efficiency but also easily causes damage, deformation, or adhesion of the steamed stuffed bun wrappers due to improper manual operation. If ordinary trays are used for random collection, it is difficult to ensure the placement state of the steamed stuffed bun wrappers in the trays, and problems such as the flipping of the steamed stuffed bun wrappers and irregular stacking will occur. This not only affects the subsequent stuffing process but also may lead to waste of the steamed stuffed bun wrappers and increase production costs.
[0004] In summary, it is urgent to develop a processing device and a production method for preventing the adhesion of steamed stuffed bun wrappers to solve the above technical problems. Summary of the Invention
[0005] In order to overcome the above disadvantages of the prior art, the present invention provides a processing device and a production method for preventing the adhesion of steamed stuffed bun wrappers.
[0006] The technical implementation scheme of the present invention is as follows: A processing device for preventing the adhesion of steamed stuffed bun wrappers includes an installation part, a forming part, and a material receiving part. The material receiving part is installed on the left side of the installation part, and the forming part is arranged on the right side of the installation part; the material receiving part includes a sliding seat, a motor, a transfer disk, a positioning rod, a pushing shaft, a placing disk, and a magnet. The sliding seat is slidably connected inside the guiding seat. The installation part is fixedly connected with a motor. The output shaft at the top of the motor is detachably connected with a transfer disk. A pushing shaft is arranged at an eccentric position at the bottom of the transfer disk. A positioning rod is arranged at the center of the top of the transfer disk. A positioning groove is formed at the bottom of the placing disk, and the positioning groove fits with the positioning rod. Magnets are concentrically arranged at the center of the bottom of the placing disk and the center of the top of the transfer disk. After the placing disk is placed on the top of the transfer disk, the positioning rod is inserted into the positioning groove, and the placing disk and the transfer disk are attracted by the magnets.
[0007] Furthermore, the installation part includes an installation frame, a sliding frame, a fastening bolt, a guiding seat, and a concave plate. The sliding frame is slidably arranged on the right part of the installation frame. The sliding frame is fixed on the installation frame by the fastening bolt. The guiding seat is fixedly connected to the left side of the top of the installation frame. The concave plate is fixedly connected to the rear side of the top of the guiding seat. The pushing shaft cooperates with the concave plate.
[0008] Further, it further includes a buffer fan. At least two buffer fans are installed on the upper left side of the sliding frame, and the air outlets of the buffer fans are in a horizontal state.
[0009] Further, the forming part includes a protective cover, a conveyor belt, a storage bin, a feeding pipe, a roller brush, spring I, a cylinder, a cutter, a limiting ring, a connecting rod, an extrusion column, and spring II. A protective cover is fixedly connected to the top of the sliding frame. A conveyor belt is fixedly connected inside the protective cover. On the right part of the upper inner wall of the protective cover, storage bins are symmetrically arranged on the left and right. Feeding pipes are arranged at the bottoms of the storage bins. Roller brushes are rotatably and slidably connected to the protective cover below the feeding pipes. Spring I is connected between the roller brush and the protective cover. Cylinders are fixedly connected to the front and rear sides of the protective cover. A cutter is connected between the telescopic ends of the cylinders. Connecting rods extending to the left are symmetrically arranged on the front and rear of the top of the cutter. The left parts of the connecting rods pass through the upper wall of the protective cover, and a limiting ring is fixedly connected between the left ends of the connecting rods. An extrusion column is slidably connected to the protective cover above the limiting ring. The limiting ring is sleeved on the lower part of the extrusion column, and spring II is connected between the upper part of the extrusion column and the protective cover.
[0010] Further, the forming part further includes a support plate. A support plate is fixedly connected to the lower part inside the protective cover, and the upper side of the support plate is attached to the inner side of the conveyor belt.
[0011] Further, the forming part further includes a limiting plate. Limiting plates are symmetrically and fixedly connected to the front and rear inside the protective cover above the conveyor belt, and the bottom of the limiting plate is attached to the top of the conveyor belt.
[0012] Further, at least one row of feeding holes is formed on the left side surface of the left feeding pipe.
[0013] Further, it further includes a powder adding part. A powder adding part is installed above the placing plate. The powder adding part includes an arc-shaped block, a powder storage box, a feeding roller, a cylindrical block, a torsion spring, a push rod, spring III, a sliding shaft, and a hot air blower. An arc-shaped block is evenly spaced and installed in a circle on the edge of the transfer disk. A powder storage box is fixedly connected to the sliding seat through a bracket. A feeding roller is rotatably connected to the lower part inside the powder storage box. The front end of the feeding roller passes through the powder storage box and is connected to a cylindrical block. A milling groove is formed on the cylindrical block. A torsion spring is connected between the feeding roller and the powder storage box. A push rod is slidably connected to the bracket for installing the powder storage box. Spring III is connected between the push rod and the bracket. The lower part of the push rod partially overlaps with the arc-shaped block in the left-right direction. The top end of the push rod is rotatably connected to a sliding shaft, and the end of the sliding shaft is in the milling groove. Hot air blowers are fixedly connected to the left and right sides of the powder storage box.
[0014] Further, it further includes a vibrating part. A vibrating part is connected between the sliding seat and the transfer disk. The vibrating part includes a ring, a convex block, a top rod, and spring IV. A ring is concentrically arranged at the bottom of the transfer disk. Convex blocks are evenly spaced and arranged inside the ring. Top rods are fixedly connected to the left and right sides of the sliding seat. The top rods partially overlap with the convex blocks in the vertical direction. Spring IV is connected between the transfer disk and the output shaft of the motor.
[0015] A production method for preventing the sticking of steamed bun wrappers, the specific steps are as follows:
[0016] S1. Place the kneaded dough on the conveyor belt. The conveyor belt intermittently conveys the dough to the left. When the dough is conveyed under the cutter, the cutter moves downward to contact the roller brush, and the roller brush applies flour on the surface of the cutter to prevent the cutter from sticking to the dough after cutting the dough;
[0017] S2. After cutting the dough, reset it. The dough continues to be conveyed to the left. When the cut dough passes under the feeding hole, flour falls on the surface of the dough through the feeding hole. When the cut dough moves under the extrusion column, the extrusion column moves downward to press the cut dough into a round shape. Because there is flour on the surface of the dough, it can prevent the extrusion column from sticking to the dough, and the dough continues to be conveyed to the left;
[0018] S3. The dough extruded into a round shape falls from the conveyor belt onto the transfer disk. At the same time, the motor drives the transfer disk to rotate, so that the dough will not be stacked in one place. After the transfer disk rotates one circle, under the cooperation of the push shaft and the concave plate, the transfer disk moves to the right by a distance greater than the round dough to prevent the dough from sticking after falling, and then continues to receive the formed dough;
[0019] S4. After the space on the transfer disk is filled, the motor stops working, the transfer disk is removed from the left, and a new transfer disk is replaced to continue receiving the formed dough.
[0020] The present invention has the following advantages: When the cutter moves downward to cut the dough in the present invention, the cutter contacts the roller brush, and the roller brush applies flour on the surface of the cutter to prevent the cutter from sticking to the dough after cutting the dough; when the cut dough passes under the feeding hole, flour falls on the surface of the dough through the feeding hole. When the cut dough moves under the extrusion column, the extrusion column moves downward to press the cut dough into a round shape. Because there is flour on the surface of the dough, it can prevent the extrusion column from sticking to the dough; after the transfer disk rotates one circle, under the cooperation of the push shaft and the concave plate, the transfer disk moves to the right by a distance greater than the round dough to prevent the dough from sticking after falling. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 is a three-dimensional structural schematic diagram of the present invention.
[0022] Figure 2 is a three-dimensional structural schematic diagram of another perspective of the present invention.
[0023] Figure 3 is a three-dimensional structural schematic diagram of the installation part of the present invention.
[0024] Figure 4 is a three-dimensional structural schematic diagram of the forming part of the present invention.
[0025] Figure 5 This is a schematic three-dimensional structure diagram of the internal parts of the forming section of the present invention.
[0026] Figure 6 This is a schematic three-dimensional structure diagram of the material receiving section of the present invention.
[0027] Figure 7 This is an exploded view of the material receiving section of the present invention.
[0028] Figure 8 This is a bottom view of the exploded material receiving section of the present invention.
[0029] Figure 9 This is a schematic three-dimensional structure diagram of the powder adding section of the present invention.
[0030] Figure 10 This is a right view of the powder adding section of the present invention.
[0031] Figure 11 This is a schematic three-dimensional structure diagram of the vibration section of the present invention.
[0032] The meanings of the reference numerals in the figure: 1: mounting section, 101: mounting frame, 102: sliding frame, 103: fastening bolt, 104: guide seat, 105: concave plate, 106: buffer fan, 2: forming section, 201: protective cover, 202: conveyor belt, 203: storage bin, 204: blanking pipe, 205: roller brush, 206: spring I, 207: cylinder, 208: cutter, 209: limiting ring, 2010: connecting rod, 2011: extrusion column, 2012: spring II, 2013: blanking hole, 2014: support plate, 2015: limiting plate, 3: material receiving section, 301: sliding seat, 302: motor, 303: adapter plate, 304: positioning rod, 305: push shaft, 306: placing plate, 307: positioning groove, 308: magnet, 4: powder adding section, 401: arc-shaped block, 402: powder storage bin, 403: blanking roller, 404: cylindrical block, 405: milling groove, 406: torsion spring, 407: push rod, 408: spring III, 409: sliding shaft, 4010: hot air blower, 5: vibration section, 501: ring, 502: convex block, 503: ejector rod, 504: spring IV. Detailed implementation manners
[0033] Reference to an embodiment herein means that a particular feature, structure, or characteristic described in connection with the embodiment can be included in at least one embodiment of the present invention. The phrase appears in various places in the specification and does not necessarily refer to the same embodiment, nor is it an independent or alternative embodiment mutually exclusive with other embodiments. Those skilled in the art will explicitly and implicitly understand that the embodiments described herein can be combined with other embodiments.
[0034] Embodiment: A processing device and production method for preventing the sticking of steamed bun wrappers, asFigures 1 - 8 As shown in the figure, it includes an installation part 1, a forming part 2 and a material receiving part 3. The material receiving part 3 is installed on the left side of the installation part 1, and the forming part 2 is arranged on the right side of the installation part 1.
[0035] As Figure 3 shown in the figure, the installation part 1 includes an installation frame 101, a sliding frame 102, fastening bolts 103, a guide seat 104, a concave plate 105 and a buffer fan 106. A sliding frame 102 is vertically slidably arranged on the right part of the installation frame 101. The sliding frame 102 is fixed on the installation frame 101 by the fastening bolts 103. A guide seat 104 is fixedly connected to the left side of the top of the installation frame 101 by bolts. A concave plate 105 is fixedly connected to the rear side of the top of the guide seat 104 by bolts. At least two buffer fans 106 are installed on the left side of the upper part of the sliding frame 102, and the air outlets of the buffer fans 106 are in a horizontal state.
[0036] As Figure 4 and Figure 5As shown in the figure, the forming part 2 includes a protective cover 201, a conveyor belt 202, a storage bin 203, a feeding pipe 204, a roller brush 205, a spring I 206, a cylinder 207, a cutter 208, a limit ring 209, a connecting rod 2010, an extrusion column 2011, a spring II 2012, a support plate 2014 and a limit plate 2015. The top of the sliding frame 102 is fixedly connected with the protective cover 201 by bolts. The conveyor belt 202 is fixedly connected with the protective cover 201 by bolts. The right part of the upper wall inside the protective cover 201 is symmetrically provided with storage bins 203 on the left and right. The bottom of each storage bin 203 is provided with a feeding pipe 204. The protective cover 201 below the feeding pipe 204 is rotatably and slidably connected with a roller brush 205. A spring I 206 is connected between the roller brush 205 and the protective cover 201. Telescopic cylinders 207 with the telescopic ends facing upward are fixedly connected to the front and rear sides of the protective cover 201 by bolts. A cutter 208 is connected between the telescopic ends of the cylinders 207. The cutter 208 is slidably connected with the protective cover 201. The cutter 208 is between the two roller brushes 205. When the cutter 208 moves downward, it can push the roller brush 205 to rotate and move away from each other. Connecting rods 2010 extending to the left are symmetrically arranged on the front and rear of the top of the cutter 208. The left part of the connecting rod 2010 passes through the upper wall of the protective cover 201. A limit ring 209 is fixedly connected between the left ends of the connecting rods 2010 by bolts. An extrusion column 2011 is slidably connected with the protective cover 201 above the limit ring 209. The limit ring 209 is sleeved on the lower part of the extrusion column 2011. A spring II 2012 is connected between the upper part of the extrusion column 2011 and the protective cover 201. At least one row of feeding holes 2013 is opened on the left side surface of the left feeding pipe 204. The lower part inside the protective cover 201 is fixedly connected with a support plate 2014 by bolts. The upper side surface of the support plate 2014 is attached to the inner side surface of the conveyor belt 202. Limit plates 2015 are symmetrically fixedly connected to the front and rear of the protective cover 201 above the conveyor belt 202 by bolts. The bottom of the limit plate 2015 is attached to the top of the conveyor belt 202.
[0037] As Figures 6 - 8As shown in the figure, the material receiving part 3 includes a sliding seat 301, a motor 302, a transfer disk 303, a positioning rod 304, a push shaft 305, a placing disk 306 and a magnet 308. The sliding seat 301 is slidably connected in the guiding seat 104. The motor 302 is fixedly connected to the sliding seat 301 by bolts. The transfer disk 303 is detachably connected to the output shaft at the top of the motor 302. The transfer disk 303 can slide vertically on the output shaft of the motor 302. A push shaft 305 is arranged at an eccentric position at the bottom of the transfer disk 303. The push shaft 305 cooperates with the concave plate 105. A positioning rod 304 is arranged at the center of the top of the transfer disk 303. A positioning groove 307 is formed at the bottom of the placing disk 306. The positioning groove 307 is fitted with the positioning rod 304. Magnets 308 are concentrically arranged at the bottom of the placing disk 306 and the center of the top of the transfer disk 303. After the placing disk 306 is placed on the top of the transfer disk 303, the positioning rod 304 is inserted into the positioning groove 307, and the placing disk 306 and the transfer disk 303 are attracted by the magnets 308.
[0038] When it is necessary to produce dough sheets, first place the kneaded dough on the conveyor belt 202, and then control the conveyor belt 202 to intermittently convey the dough to the left. When the dough is conveyed under the cutter 208, the conveyance of the dough stops at this time. Then the cylinder 207 shortens, driving the cutter 208 to move downward. During the downward movement of the cutter 208, the cutter 208 contacts the roller brush 205, driving the roller brushes 205 to move away from each other, and the spring I 206 is compressed. At the same time, during the process of the roller brushes 205 moving away from each other, they rotate under the frictional force of the cutter 208. The flour in the storage bin 203 falls on the roller brushes 205 through the feed pipe 204, and the roller brushes 205 apply the flour on the cutter 208, so that when the cutter 208 cuts the flour, it will not stick to the knife. At the same time, the roller brushes 205 rotate, causing the feed pipe 204 to shake slightly, and the flour in the feed pipe 204 falls on the dough below through the feed holes 2013. After the dough under the cutter 208 is cut, the cylinder 207 extends to drive the cutter 208 to move upward to reset, and at the same time, the roller brushes 205 reset under the action of the spring I 206. Then, under the action of the conveyor belt 202, the dough is continuously conveyed to the left. When the cut dough moves under the extrusion post 2011, the cutter 208 moves downward again to cut the dough, and at the same time, the cutter 208 drives the connecting rod 2010 to move downward, thereby driving the limit ring 209 to move downward, and at the same time driving the extrusion post 2011 to move downward, and the spring II 2012 is compressed. The extrusion post 2011 and the limit ring 209 move downward to extrude the cut dough, pressing the cut dough into a circular dough sheet. Because there is flour on the surface of the cut dough, the extrusion post 2011 will not stick to the dough. Then the cutter 208 moves upward to reset, driving the limit ring 209 to move upward to reset, and at the same time, under the action of the spring II 2012, the extrusion post 2011 moves upward to reset. The support plate 2014 can support the dough cut and formed by extrusion, and the limit plate 2015 can limit the conveying position of the dough;The formed dough drops from the left side of the conveyor belt 202. At this time, the buffer fan 106 starts to work. The falling dough reduces its falling speed under the action of the wind, preventing the dough sheet from falling too fast and causing damage to the dough sheet. When the placement tray 306 receives the dough sheet, the control motor 302 rotates counterclockwise, thereby driving the adapter plate 303 to rotate counterclockwise, and then driving the placement tray 306 to rotate counterclockwise, so that the dough sheet will not fall in one place. When a circle of dough sheets is placed on the placement tray 306, the push shaft 305 contacts the concave plate 105. Under the limiting action of the concave plate 105 on the push shaft 305, the adapter plate 303 moves to the right. The distance that the adapter plate 303 moves to the right is greater than the diameter of the dough sheet. The rightward movement of the adapter plate 303 drives the placement tray 306, the sliding seat 301, and the motor 302 to move to the right. Repeat this process until the placement tray 306 is full of dough sheets. Then, control the motor 302 to stop working. Subsequently, pull the placement tray 306 to the left to reset it, remove the placement tray 306, and replace it with a new placement tray 306 to receive the dough sheet. The positioning groove 307 and the positioning rod 304 can position the placement tray 306.;
[0039] As Figure 9 and Figure 10 shown, it further includes a powder adding part 4. A powder adding part 4 is installed above the placement tray 306. The powder adding part 4 includes an arc-shaped block 401, a powder storage box 402, a blanking roller 403, a cylindrical block 404, a torsion spring 406, a push rod 407, a spring III 408, a sliding shaft 409, and a hot air blower 4010. A circle of arc-shaped blocks 401 is evenly spaced and installed on the edge of the adapter plate 303. The powder storage box 402 is fixedly connected to the sliding seat 301 through bolts and brackets. The lower part of the powder storage box 402 is rotatably connected with a blanking roller 403. The front end of the blanking roller 403 passes through the powder storage box 402 and is connected with a cylindrical block 404. A milling groove 405 is opened on the cylindrical block 404. A torsion spring 406 is connected between the blanking roller 403 and the powder storage box 402. A push rod 407 is slidably connected to the bracket for installing the powder storage box 402. A spring III 408 is connected between the push rod 407 and the bracket. The lower part of the push rod 407 and the arc-shaped block 401 partially overlap in the left-right direction. The top end of the push rod 407 is rotatably connected with a sliding shaft 409. The end of the sliding shaft 409 is in the milling groove 405. The hot air blowers 4010 are fixedly connected to both the left and right sides of the powder storage box 402 through bolts. The air outlets of the hot air blowers 4010 face downward. After the dough sheet is placed on the placement tray 306, the hot air blowers 4010 keep the temperature of the dough sheet, so that the dough sheet remains in a soft state.
[0040] When the transfer plate 303 rotates counterclockwise, it drives the arc-shaped block 401 to rotate counterclockwise. When the arc-shaped block 401 rotates counterclockwise and contacts the push rod 407, it pushes the push rod 407 to move outward, compressing the spring III 408. The outward movement of the push rod 407 drives the sliding shaft 409 to move outward. Under the action of the milling groove 405, the cylindrical block 404 rotates to drive the blanking roller 403 to rotate, and the torsion spring 406 deforms, and the flour in the blanking roller 403 pours downward. The flour is poured on the placement plate 306, so that the dough wrapper can be prevented from sticking to the placement plate 306. When the arc-shaped block 401 rotates away from the push rod 407, the spring III 408 resets to drive the push rod 407 to reset, drives the sliding shaft 409 to move inward and reset, the torsion spring 406 resets to drive the blanking roller 403 to rotate and reset, and the blanking roller 403 continues to be filled with flour for pouring out and using next time.
[0041] As Figure 11 shown, it further includes a vibration part 5. A vibration part 5 is connected between the sliding seat 301 and the transfer plate 303. The vibration part 5 includes a ring 501, a convex block 502, a push rod 503 and a spring IV 504. A ring 501 is concentrically arranged at the bottom of the transfer plate 303. The convex blocks 502 are evenly spaced in the ring 501. The push rods 503 are fixedly connected to the left and right sides of the sliding seat 301 by bolts. The push rods 503 extend upward between the convex blocks 502. The push rods 503 and the convex blocks 502 partially overlap in the vertical direction. A spring IV 504 is connected between the transfer plate 303 and the output shaft of the motor 302.
[0042] When the transfer plate 303 rotates, it drives the ring 501 and the convex block 502 to rotate. When the convex block 502 contacts the push rod 503, it pushes the convex block 502 to move upward, thereby driving the transfer plate 303 and the placement plate 306 to move upward. When the bottom end of the convex block 502 leaves the push rod 503, under the action of the spring IV 504, the transfer plate 303 and the placement plate 306 move downward and reset. Repeating like this, the placement plate 306 can vibrate slightly during the process of receiving materials, so that the flour on the placement plate 306 can cover its surface, and better prevent the dough wrapper from sticking to the placement plate 306.
[0043] A production method for preventing the sticking of steamed bun wrappers, the specific steps are as follows:
[0044] S1. Place the kneaded dough on the conveyor belt 202. The conveyor belt 202 intermittently conveys the dough to the left. When the dough is conveyed below the cutter 208, the cutter 208 moves downward to contact the roller brush 205, and the roller brush 205 coats the surface of the cutter 208 with flour to prevent the cutter 208 from sticking to the dough after cutting the dough;
[0045] S2. Cut the dough and then reset it. The dough continues to be conveyed to the left. When the cut dough passes under the material discharge hole 2013, flour falls onto the surface of the dough through the material discharge hole 2013. When the cut dough moves under the extrusion column 2011, the extrusion column 2011 moves downward to press the cut dough into a circular shape. Since there is flour on the surface of the dough, it can prevent the extrusion column 2011 from sticking to the dough, and the dough continues to be conveyed to the left;
[0046] S3. The dough extruded into a circular shape falls from the conveyor belt 202 onto the transfer disk 303. At the same time, the motor 302 drives the transfer disk 303 to rotate, so that the dough does not pile up in one place. After the transfer disk 303 rotates one circle, under the cooperation of the push shaft 305 and the concave plate 105, the transfer disk 303 moves to the right by a distance greater than the circular dough to prevent the dough from sticking after falling, and then continues to receive the formed dough;
[0047] S4. After the space on the transfer disk 303 is filled, the motor 302 stops working. The transfer disk 303 is removed from the left and a new transfer disk 303 is replaced to continue receiving the formed dough.
[0048] Although the present invention has been described in detail with reference to the above embodiments, it is obvious to those skilled in the art from this disclosure that various changes or modifications can be made to the present invention without departing from the principle and spirit scope defined by the claims. Therefore, the detailed description of the embodiments of this disclosure is only used to explain, rather than to limit the present invention, and the scope of protection is defined by the content of the claims.
Claims
1. A processing device for preventing bun wrappers from sticking, comprising a mounting portion (1), a shaping portion (2) and a material receiving portion (3), wherein the material receiving portion (3) is mounted on the left side of the mounting portion (1), and the shaping portion (2) is disposed on the right side of the mounting portion (1); wherein: The material receiving part (3) comprises a sliding seat (301), a motor (302), a transfer plate (303), a positioning rod (304), a push shaft (305), a placement plate (306) and a magnet (308); the sliding seat (301) is slidably connected in the guide seat (104); the mounting part (1) is fixedly connected to the motor (302); the transfer plate (303) is detachably connected to the output shaft at the top of the motor (302); the transfer plate (303) is provided with a push shaft (305) at an eccentric position at the bottom of the transfer plate (303); 03) A positioning rod (304) is provided at the center of the top, a positioning groove (307) is provided at the bottom of the placement plate (306), the positioning groove (307) is matched with the positioning rod (304), and magnets (308) are concentrically provided at the bottom of the placement plate (306) and the center of the top of the transfer plate (303). After the placement plate (306) is placed on the top of the transfer plate (303), the positioning rod (304) is inserted into the positioning groove (307), and the placement plate (306) and the transfer plate (303) are attracted by the magnet (308).
2. A processing device for preventing bun wrappers from sticking together according to claim 1, characterized in that: The mounting part (1) comprises a mounting frame (101), a sliding frame (102), a fastening bolt (103), a guide seat (104) and a concave plate (105); the sliding frame (102) is slidably arranged on the right part of the mounting frame (101); the sliding frame (102) is fixed to the mounting frame (101) by the fastening bolt (103); the guide seat (104) is fixedly connected to the left side of the top of the mounting frame (101); the concave plate (105) is fixedly connected to the rear side of the top of the guide seat (104); and the push shaft (305) cooperates with the concave plate (105).
3. A processing device for preventing bun wrappers from sticking together according to claim 2, characterized in that: It also includes a buffer fan (106). At least two buffer fans (106) are installed on the left side of the upper part of the sliding frame (102), and the air outlets of the buffer fans (106) are in a horizontal state.
4. A processing device and production method for preventing bun wrappers from sticking together according to claim 3, characterized in that: The forming section (2) comprises a protective cover (201), a conveyor belt (202), a material storage box (203), a feeding pipe (204), a roller brush (205), a spring I (206), a cylinder (207), a cutter (208), a limit ring (209), a connecting rod (2010), an extrusion column (2011) and a spring II (2012); the top of the sliding frame (102) is fixedly connected with the protective cover (201); the inside of the protective cover (201) is fixedly connected with the conveyor belt (202); the right part of the upper wall of the protective cover (201) is symmetrically provided with a material storage box (203); the bottom of the material storage box (203) is provided with a feeding pipe (204); the protective cover (201) below the feeding pipe (204) is rotatably and slidably connected with a roller brush (205); A spring I (206) is connected between the brush (205) and the protective cover (201), a cylinder (207) is fixedly connected to both the front and rear sides of the protective cover (201), a cutter (208) is connected between the telescopic ends of the cylinder (207), a connecting rod (2010) extending to the left side is symmetrically arranged at the top of the cutter (208), the left part of the connecting rod (2010) passes through the upper wall of the protective cover (201), a limiting ring (209) is fixedly connected between the left ends of the connecting rod (2010), an extrusion column (2011) is slidably connected to the protective cover (201) at the upper part of the limiting ring (209), the limiting ring (209) is sleeved on the lower part of the extrusion column (2011), and a spring II (2012) is connected between the upper part of the extrusion column (2011) and the protective cover (201).
5. A processing device for preventing bun wrappers from sticking together according to claim 4, characterized in that: The forming portion (2) also includes a support plate (2014), the support plate (2014) is fixedly connected to the lower inner portion of the protective cover (201), and the upper side surface of the support plate (2014) is in contact with the upper inner side surface of the conveyor belt (202).
6. A processing device for preventing bun wrappers from sticking together according to claim 5, characterized in that: The forming section (2) further comprises a limiting plate (2015), the limiting plate (2015) being symmetrically fixedly connected front and back inside the protective cover (201) above the conveyor belt (202), and the bottom of the limiting plate (2015) is in contact with the top of the conveyor belt (202).
7. A processing device for preventing bun wrappers from sticking together according to claim 6, characterized in that: At least one row of discharge holes (2013) is provided on the left side of the discharge pipe (204) on the left.
8. A processing device for preventing bun wrappers from sticking together according to claim 7, characterized in that: The invention also comprises a powder adding part (4), which is installed above the placing plate (306), and the powder adding part (4) comprises an arc block (401), a powder storage box (402), a feeding roller (403), a columnar block (404), a torsion spring (406), a push rod (407), a spring III (408), a sliding shaft (409) and a hot air blower (4010). A circle of arc blocks (401) are evenly spaced on the edge of the transfer plate (303), and the sliding seat (301) is fixedly connected to the powder storage box (402) through a bracket. The lower part of the powder storage box (402) is rotatably connected to the feeding roller (403), and the front end of the feeding roller (403) passes through the powder storage box. (402) is connected to a columnar block (404), a milling groove (405) is opened on the columnar block (404), a torsion spring (406) is connected between the unloading roller (403) and the powder storage box (402), a push rod (407) is slidably connected to the bracket on which the powder storage box (402) is installed, a spring III (408) is connected between the push rod (407) and the bracket, the lower part of the push rod (407) partially overlaps with the arc block (401) in the left and right directions, the top of the push rod (407) is rotatably connected to a sliding shaft (409), the end of the sliding shaft (409) is in the milling groove (405), and hot air blowers (4010) are fixedly connected to the left and right sides of the powder storage box (402).
9. A processing device for preventing bun wrappers from sticking together according to claim 5, characterized in that: The invention also comprises a vibration part (5), wherein the vibration part (5) is connected between the sliding seat (301) and the adapter plate (303), the vibration part (5) comprises a circular ring (501), a convex block (502), a push rod (503) and a spring IV (504), the bottom of the adapter plate (303) is concentrically provided with a circular ring (501), the convex blocks (502) are evenly spaced inside the circular ring (501), the left and right sides of the sliding seat (301) are fixedly connected with push rods (503), the push rods (503) and the convex blocks (502) partially overlap in the vertical direction, and the spring IV (504) is connected between the adapter plate (303) and the output shaft of the motor (302).
10. A production method for preventing bun wrappers from sticking, characterized in that: A processing device for preventing bun wrappers from sticking together according to any one of claims 1 to 9 specifically comprises the following steps: S1, placing the kneaded dough on the conveyor belt (202), the conveyor belt (202) intermittently conveys the dough to the left, the dough is conveyed to the bottom of the cutter (208), the cutter (208) moves downward and contacts the roller brush (205), the roller brush (205) applies flour on the surface of the cutter (208) to prevent the cutter (208) from sticking to the dough after cutting the dough; S2, after the dough is cut, it is reset, and the dough continues to be transported to the left side. When the cut dough passes under the discharge hole (2013), flour falls on the surface of the dough through the discharge hole (2013). When the cut dough moves under the extrusion column (2011), the extrusion column (2011) moves downward to press the cut dough into a round shape. Because there is flour on the surface of the dough, the extrusion column (2011) can be prevented from sticking to the dough, and the dough continues to be transported to the left side. S3, the dough extruded into a round shape falls from the conveyor belt (202) onto the transfer plate (303), and the motor (302) drives the transfer plate (303) to rotate, so that the dough will not be piled up in one place. After the transfer plate (303) rotates one circle, the transfer plate (303) moves to the right by a distance greater than the round dough under the cooperation of the push shaft (305) and the concave plate (105) to prevent the dough from sticking after falling, and then continues to receive the shaped dough; S4. After the space on the transfer plate (303) is completely filled, the motor (302) stops working, the transfer plate (303) is removed from the left side, and a new transfer plate (303) is replaced to continue to receive the formed dough.