A feeding device for a dough mixer and its usage method

By designing a dough machine loading device including a rotating drum, a C-frame, a moving drum and a disturbing mechanism, the problem of incomplete mixing of flour is solved, and automatic stirring and transportation is realized, ensuring that the flour remains loose during feeding, improving the stability of the dough effect and the quality of the flour.

CN119563665BActive Publication Date: 2025-05-30HANGZHOU XIAOSHAN COMMERCIAL MASCH CO LTD
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Patent Information

Application Number
CN202411502029.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-10-25
Publication Date
2025-05-30
Estimated Expiration
2044-10-25

AI Technical Summary

Technical Problem

The existing flour kneading machine feeding device requires manual stirring of flour before loading to prevent agglomeration, resulting in incomplete crushing of flour and affecting the mixing effect.

Method used

A dredging machine feeding device including a rotating drum, a C-frame, a moving drum and a disturbing mechanism is designed. The rotating cylinder is driven by the motor, which drives the C-frame and the mobile cylinder to rotate simultaneously. The combination of the oblique rod and the crank rod is used to drive the fan and conical cylinder to rotate, increase the air flow in the storage silo and disperse the agglomeration in the flour.

Benefits of technology

Automatic flour mixing and transportation is realized to ensure that the flour remains loose when loading, and improves the stability of the dough effect and the quality of the flour.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of dough kneading and feeding, and discloses a feeding device for a dough kneading machine and its usage method. One side of the storage bin close to the motor is fixedly connected with an electric push rod, the output end of the electric push rod is fixedly connected with a baffle, and the output end of the motor is sleeved and connected with a belt. With the continuous entry of gas, the gas will push the spring baffle through the conical air outlet. At this time, the ejected gas can further penetrate the flour layer, break up tiny lumps, ensure the loose state of the flour, drive the flour to surge, keep the flour in a loose state, ensure the stable quality of the flour output from the storage bin to the dough kneading machine, and will not affect the dough kneading effect due to lumping.
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Description

Technical Field

[0001] The present invention relates to the technical field of dough kneading and feeding, and specifically to a feeding device for a dough kneading machine and its use method. Background Art

[0002] A dough kneading machine belongs to a kind of pasta machine, and its main function is to evenly mix flour and water.

[0003] Before feeding, the above-mentioned device needs to invert the flour into the feeding container. Since the flour in the storage bin before feeding is prone to caking due to reasons such as moisture and extrusion, especially in an environment with higher humidity, the caking problem is more serious, resulting in easy influence on the subsequent dough kneading effect during feeding. Generally, before the feeding device starts to feed, manual stirring is usually used to crush the caked flour. Since it is difficult to completely crush the flour manually and it cannot be carried out during the feeding process, there will still be tiny cakings in the flour during feeding and mixing, resulting in influence on the subsequent dough kneading effect during feeding. Summary of the Invention

[0004] The purpose of the present invention is to provide a feeding device for a dough kneading machine and its use method to solve the problems raised in the above background art.

[0005] To solve the above technical problems, the present invention is realized through the following technical solutions:

[0006] The present invention is a feeding device for a dough kneading machine, including a main body. A motor is fixedly connected to the top of the main body, a conveyor belt is fixedly connected to the top of the main body, a storage bin is fixedly connected to the top of the main body. The bottom of the storage bin is open. An electric push rod is fixedly connected to one side of the storage bin close to the motor. A baffle is fixedly connected to the output end of the electric push rod. A belt is sleeved and connected to the output end of the motor. It also includes;

[0007] An auxiliary mechanism, which includes a rotating cylinder rotatably connected inside the storage bin. Two fixed disks are fixedly connected to the outer surface of the rotating cylinder. A plurality of convex blocks are fixedly connected to the side wall of the fixed disk. The plurality of convex blocks are circumferentially arranged around the middle of the inner cylinder. One side of the rotating cylinder close to the motor penetrates through the outer wall of the storage bin and extends to the outside;

[0008] A moving mechanism, which includes two C-shaped frames arranged on the inner wall of the inner cylinder. One side of the C-shaped frame far from the middle of the inner cylinder is fixedly connected to the side wall of the rotating cylinder. The middle of the C-shaped frame close to the first fixed rod is rotatably connected to the outer surface of the first fixed rod. The middle of the C-shaped frame close to the second fixed rod is rotatably connected to the outer surface of the second fixed rod. A moving cylinder slides inside the C-shaped frame.

[0009] Further, the outer surface of the extension end of the rotating cylinder is drivingly connected to the motor through a belt. An inner cylinder is fixedly connected inside the rotating cylinder. A first fixing rod is rotatably connected inside the rotating cylinder. One side of the first fixing rod close to the motor penetrates through the extension section of the rotating cylinder and extends to the outside. A fixing bracket is fixedly connected to the extension end of the first fixing rod. The fixing bracket is fixedly connected to the outer wall of the storage bin. A second fixing rod is rotatably connected inside the rotating cylinder. One end of the second fixing rod far from the first fixing rod is fixedly connected to the inner wall of the back surface of the storage bin. A plurality of conical air outlet holes are fixedly connected to the inner wall of the rotating cylinder. A spring baffle is fixedly connected to the top of the conical air outlet hole. The middle part of the inner cylinder is open.

[0010] Further, a connecting plate is rotatably connected to the inner wall of one side of the moving cylinder far from the middle part of the inner cylinder. A crank rod is rotatably connected to one side of the connecting plate close to the middle part of the inner cylinder. Straight grooves are formed in both the top and bottom side walls of the moving cylinder. One end of the crank rod close to the straight groove penetrates through the outer wall of the straight groove and extends to the outside of the C-shaped frame. A fan is fixedly connected to the extension end of the crank rod. An inclined rod is rotatably connected to one side of the moving cylinder far from the middle part of the inner cylinder. The inclined rod and the moving cylinder are eccentrically arranged. The inclined rod close to the first fixing rod is rotatably connected to the side wall of the first fixing rod. The inclined rod and the first fixing rod are eccentrically arranged. One end of the inclined rod far from the moving cylinder close to the second fixing rod is rotatably connected to the second fixing rod. The second fixing rod and the inclined rod are eccentrically arranged.

[0011] Further, a rotating mechanism is arranged inside the inner cylinder. The rotating mechanism includes a protruding rod fixedly connected to one side of the moving cylinder far from the inclined rod. A bidirectional threaded sleeve is slidably connected to the outer surface of the protruding rod. A conical cylinder is fixedly connected to the outer surface of the bidirectional threaded sleeve. A triangular plate is rotatably connected between the two conical cylinders. The side wall of the triangular plate is rotatably connected to the middle part of the inner cylinder.

[0012] Further, a disturbing mechanism is arranged inside the storage bin. The disturbing mechanism includes a second fixing disk rotatably connected to the outer surface of the rotating cylinder. A plurality of arc-shaped blocks are fixedly connected to one side of the second fixing disk close to the storage bin. A plurality of springs are fixedly connected to one side of the rotating cylinder close to the arc-shaped blocks. One ends of the plurality of springs far from the second fixing disk are fixedly connected to the inner wall of the storage bin. An annular groove is formed in the inner wall of the top of the annular groove on one side of the second fixing disk far from the arc-shaped blocks. A plurality of teeth are fixedly connected to the inner wall of the top of the annular groove. A rotating ring is rotatably connected to one side of the second fixing disk far from the arc-shaped blocks. A plurality of C-shaped plates are rotatably connected to one side of the rotating ring far from the second fixing disk. A pushing plate is rotatably connected to the inside of the C-shaped plate. One end of the pushing plate far from the C-shaped plate is rotatably connected to the outer surface of the rotating cylinder. A rotating block is rotatably connected to the inside of the C-shaped plate. The rotating cylinder is in communication with the outside of the storage bin through the second fixing rod.

[0013] Furthermore, a scraping mechanism is provided on the side wall of the rotating block. The scraping mechanism includes a toothed shaft rotatably connected to one side of the rotating block close to the second fixed disk. One end of the toothed shaft away from the second fixed disk penetrates through the side wall of the rotating block and extends to the outside. A rotating plate is fixedly connected between the extending ends of the two toothed shafts. A second connecting plate is provided on the top of the toothed shaft. One end of the second connecting plate close to the toothed shaft is rotatably connected to the side wall of the rotating block. An activity plate is rotatably connected inside the second connecting plate. An arc-shaped plate is rotatably connected between the two second connecting plates. Two square grooves are provided on the side wall of the arc-shaped plate. One end of the arc-shaped plate close to the second connecting plate is in contact with the side wall of the second fixed disk.

[0014] Furthermore, a vibration mechanism is provided on the side wall of the arc-shaped plate. The vibration mechanism includes a T-shaped plate arranged inside the square groove. The middle of the T-shaped plate is rotatably connected inside the square groove. A screw rod is fixedly connected between the two T-shaped plates. The bottom of the T-shaped plate is fixedly connected to the activity plate. An elastic plate is fixedly connected to one side of the T-shaped plate close to the screw rod. A spring block is fixedly connected between the two elastic plates. The top of the spring block is fixedly connected to the arc-shaped plate.

[0015] Furthermore, a using method of a feeding device for a dough mixer. For the feeding device of the dough mixer, the method includes the following steps.

[0016] S1: First, start the conveyor belt and the motor through an external power source. When the motor is working, it will drive the rotating cylinder to rotate through the belt. Then, place the flour to be conveyed into the storage bin.

[0017] S2: Then, when the rotating cylinder rotates, the rotating cylinder will stir the flour. Then, start the electric push rod. When the electric push rod is working, it will drive the baffle to move.

[0018] S3: When the baffle moves, it will disengage from the opening at the bottom of the storage bin. At this time, the stirred flour will fall onto the conveyor belt through the opening at the bottom of the storage bin. Then, when the conveyor belt is working, it will drive the flour for conveying and feeding.

[0019] The present invention has the following beneficial effects:

[0020] 1. In the present invention, when the motor drives the rotating cylinder to rotate through a belt, the rotating rotating cylinder rotates on the surfaces of the first fixed rod and the second fixed rod. At the same time, when the rotating cylinder rotates, it also drives two C-shaped frames to rotate synchronously. When the rotating cylinder drives the C-shaped frames to rotate, the rotating C-shaped frames drive the moving cylinder to rotate synchronously through the crank rods. When the moving cylinder rotates, it drives the inclined rod to rotate. Since the inclined rod is eccentrically arranged with the moving cylinder and is also eccentrically arranged with the inclined rod and the crank rod, when the moving cylinder rotates, the inclined rod will exert a pushing and pulling effect on the moving cylinder. After being pushed and pulled, the moving cylinder slides reciprocally inside the C-shaped frame. At the same time, when the moving cylinder slides, the sliding moving cylinder pushes and pulls the crank rod through the connecting plate, causing the crank rod to perform a rotation similar to that of a crank. When the crank rod rotates, the rotating crank rod drives the fans at both ends to rotate synchronously. Since the rotating cylinder is communicatively arranged with the outside of the external storage bin through the second fixed rod, when the fans on the crank rod rotate, they draw external gas into the inner cylinder through the second fixed rod. Then, when the moving cylinder reciprocates, the moving moving cylinder drives the protruding rod to move synchronously. When the protruding rod moves, it slides inside the bidirectional threaded sleeve through the protrusions on its surface. When the protruding rod slides, it drives the conical cylinder to rotate through the bidirectional threaded sleeve. When the conical cylinder rotates, the internal spiral structure can accelerate the flow of the gas inside the inner cylinder, enabling the gas inside the inner cylinder to flow more quickly to the space between the inner cylinder and the rotating cylinder. As the gas continuously enters, the gas pushes the spring baffle through the conical air holes. At this time, the ejected gas can further penetrate the flour layer, break up tiny lumps, ensure the loose state of the flour, drive the flour to surge, keep the flour in a loose state, and ensure the stable quality of the flour output from the storage bin to the dough mixer, without affecting the dough mixing effect due to lumping.

[0021] 2. In the present invention, when the motor drives the rotating cylinder to rotate through a belt, the rotation of the rotating cylinder will drive the fixed disk to rotate synchronously. When the fixed disk rotates, it will periodically squeeze the arc-shaped block through the bump on its side wall. After being squeezed, the arc-shaped block will push the second fixed disk to slide on the surface of the rotating cylinder. When the second fixed disk slides, the sliding second fixed disk will squeeze the C-shaped plate through the rotating ring. When the C-shaped plate is squeezed, it will push the rotating block and the tooth shaft to move upward. At the same time, when the rotating cylinder rotates, the rotation of the rotating cylinder will drive the C-shaped plate to rotate synchronously through the pushing plate. When the second fixed disk moves, the annular groove on the surface of the second fixed disk can be located on the outer surface of the tooth shaft. Then, when the C-shaped plate pushes the tooth shaft to move upward, the upward movement of the tooth shaft will engage with the teeth in the annular groove. Then, when the rotation of the rotating cylinder drives the C-shaped plate to rotate through the pushing plate, the tooth shaft will contact and rotate with the teeth in the annular groove. When the tooth shaft rotates, the rotating tooth shaft will drive the rotating plate to rotate synchronously. When the rotating plate rotates, it can disturb the airflow ejected inside the rotating cylinder, disperse and weaken the impact force of the airflow, keep the flour in a relatively stable state, and reduce the flying phenomenon.

[0022] 3. In the present invention, when the arc-shaped block is squeezed by the fixed disk to drive the second fixed disk to slide, the sliding of the second fixed disk will squeeze the C-shaped plate through the rotating ring. After being squeezed, the C-shaped plate will push the rotating block to move upward. While the rotating block moves upward, it will drive the arc-shaped plate to move upward synchronously through the second connecting plate. At the same time, when the second fixed disk moves, the second fixed disk will squeeze one end of the arc-shaped plate away from the spring block. When one end of the arc-shaped plate is squeezed and the arc-shaped plate rises, a deformation with a bulging middle will be formed. When the arc-shaped plate deforms, it will drive the second connecting plate to rotate on the top of the rotating block. When the second connecting plate rotates, it will squeeze the bottom of the T-shaped plate through the movable plate. After the bottom of the T-shaped plate is squeezed, it will rotate in the square groove opened on the arc-shaped plate. When the T-shaped plate rotates, it will pull the screw rod. Then, when the arc-shaped plate rises, the screw rod can contact the inner wall of the storage bin. Then, when the rotating cylinder rotates, the screw rod can clean the flour remaining on the inner wall of the storage bin, prevent the flour from accumulating and deteriorating on the inner wall of the storage bin for a long time, reduce the waste of materials, and at the same time, ensure the purity and quality of the flour in the subsequent processing process.

[0023] 4. In the present invention, when the rotation of the second connecting plate pushes the T-shaped plate through the movable plate, the rotation of the T-shaped plate will squeeze the spring block through the elastic plate. After the spring block is squeezed, it will move downward. Since the elastic plate is elastic, when the gas agitates the flour, the surging of the flour will cause the spring block to drive the elastic plate to shake. At the same time, the rotation of the rotating plate will also intermittently strike the bottom of the spring block, causing the spring block to shake between the two elastic plates. The vibration force generated when the spring block shakes will be transmitted to the screw rod through the T-shaped plate. When the screw rod is cleaning the residual flour, the vibration generated when the spring block shakes can loosen the stubborn residues, effectively removing the flour residues attached to the inner wall. At the same time, the shaking of the spring block is transmitted to the flour, which helps to further loosen the adhesion and caking between the flour particles, making the flour more loose and beneficial to the subsequent stirring and processing processes.

[0024] Of course, it is not necessary for any product implementing the present invention to achieve all the above-mentioned advantages simultaneously. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.

[0026] Figure 1 Schematic diagram of the overall structure of the present invention;

[0027] Figure 2 Schematic diagram of the partial sectional structure of the present invention;

[0028] Figure 3 Schematic diagram of the main body of the present invention;

[0029] Figure 4 Schematic diagram of the internal part structure of the present invention;

[0030] Figure 5 Schematic diagram of the auxiliary mechanism structure of the present invention;

[0031] Figure 6 For the present invention Figure 5 Enlarged view at A in;

[0032] Figure 7 Schematic diagram of the moving mechanism structure of the present invention;

[0033] Figure 8 For the present invention Figure 7 Enlarged view at B in;

[0034] Figure 9 Schematic diagram of the disturbing mechanism structure of the present invention;

[0035] Figure 10 This is a schematic structural diagram of the scraping mechanism of the present invention;

[0036] Figure 11 This is a flowchart of the usage method of the present invention.

[0037] In the attached drawings, the list of components represented by each reference numeral is as follows:

[0038] In the figure: 1. Main body; 101. Motor; 102. Conveyor belt; 103. Storage bin; 104. Electric push rod; 105. Baffle; 2. Auxiliary mechanism; 201. Rotating cylinder; 202. Fixed disk; 203. Inner cylinder; 204. First fixing rod; 205. Second fixing rod; 206. Conical air outlet; 207. Spring baffle; 3. Moving mechanism; 301. C-shaped frame; 302. Moving cylinder; 303. Connecting plate; 304. Inclined rod; 305. Crank rod; 4. Rotating mechanism; 401. Raised rod; 402. Double-threaded sleeve; 403. Conical cylinder; 404. Triangular plate; 5. Disturbing mechanism; 501. Second fixed disk; 502. Arc-shaped block; 503. Rotating ring; 504. C-shaped plate; 505. Rotating block; 506. Pushing plate; 6. Scraping mechanism; 601. Tooth shaft; 602. Rotating plate; 603. Second connecting plate; 604. Movable plate; 605. Arc-shaped plate; 7. Vibration mechanism; 701. T-shaped plate; 702. Screw rod; 703. Elastic plate; 704. Spring block. Detailed implementation manners

[0039] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0040] Please refer to Figures 1-10 As shown, the present invention is a feeding device for a dough mixer, including a main body 1. A motor 101 is fixedly connected to the top of the main body 1. A conveyor belt 102 is fixedly connected to the top of the main body 1. A storage bin 103 is fixedly connected to the top of the main body 1. The bottom of the storage bin 103 is open. An electric push rod 104 is fixedly connected to one side of the storage bin 103 close to the motor 101. A baffle 105 is fixedly connected to the output end of the electric push rod 104. A belt is sleeved on the output end of the motor 101. It also includes;

[0041] Auxiliary mechanism 2, the auxiliary mechanism 2 includes a rotating cylinder 201 rotatably connected to the inside of the storage bin 103, the outer surface of the rotating cylinder 201 is fixedly connected to two fixed disks 202, the side walls of the fixed disks 202 are fixedly connected to a plurality of protrusions, and the plurality of protrusions are arranged in a circular array with the middle of the inner cylinder 203 as the center, and the side of the rotating cylinder 201 close to the motor 101 penetrates the outer wall of the storage bin 103 and extends to the outside;

[0042] The moving mechanism 3 includes two C-shaped frames 301 arranged on the inner wall of the inner cylinder 203. The side of the C-shaped frame 301 away from the middle of the inner cylinder 203 is fixedly connected to the side wall of the rotating cylinder 201, the middle part of the C-shaped frame 301 close to the fixed rod 1 204 is rotatably connected to the outer surface of the fixed rod 1 204, and the middle part of the C-shaped frame 301 close to the fixed rod 205 is rotatably connected to the outer surface of the fixed rod 205. A moving cylinder 302 slides inside the C-shaped frame 301. When the motor 101 drives the rotating cylinder 201 to rotate through the belt, the rotating rotating cylinder 201 will rotate on the surfaces of the fixed rod 1 204 and the fixed rod 205. At the same time, when the rotating cylinder 201 rotates, it will also drive the two C-shaped frames 301 to rotate synchronously. When the rotating cylinder 201 drives the C-shaped frame 301 to rotate, the rotating C-shaped frame 301 will drive the moving cylinder 302 to rotate synchronously through the crank rod 305.

[0043] The outer surface of the extended end of the rotating drum 201 is connected to the motor 101 through a belt, the inner drum 203 is fixedly connected to the inside of the rotating drum 201, and the inner part of the rotating drum 201 is rotatably connected to a fixed rod 204, the side of the fixed rod 204 close to the motor 101 penetrates the extended section of the rotating drum 201 and extends to the outside, the extended end of the fixed rod 204 is fixedly connected to a fixed frame, the fixed frame is fixedly connected to the outer wall of the storage bin 103, and the inner part of the rotating drum 201 is rotatably connected to a fixed rod 205 One end of the fixed rod 205 away from the fixed rod 1 204 is fixedly connected to the inner wall of the back side of the storage bin 103, and a plurality of conical air outlet holes 206 are fixedly connected to the inner wall of the rotating cylinder 201. A spring baffle 207 is fixedly connected to the top of the conical air outlet holes 206. The middle part of the inner cylinder 203 is open. When the rotating cylinder 201 rotates, the rotating rotating cylinder 201 will stir the flour, and then the electric push rod 104 will be started, and the electric push rod 104 will drive the baffle 105 to move when working.

[0044] One side of the moving cylinder 302 away from the inner wall of the middle part of the inner cylinder 203 is rotatably connected with a connecting plate 303. One side of the connecting plate 303 close to the middle part of the inner cylinder 203 is rotatably connected with a crank rod 305. Straight grooves are formed on both the top and bottom side walls of the moving cylinder 302. One end of the crank rod 305 close to the straight groove penetrates through the outer wall of the straight groove and extends to the outside of the C-shaped frame 301. The extended end of the crank rod 305 is fixedly connected with a fan. One side of the moving cylinder 302 away from the middle part of the inner cylinder 203 is rotatably connected with an inclined rod 304. The inclined rod 304 is eccentrically arranged with the moving cylinder 302. The inclined rod 304 close to the first fixed rod 204 is rotatably connected with the side wall of the first fixed rod 204. The inclined rod 304 is eccentrically arranged with the first fixed rod 204. One end of the inclined rod 304 away from the moving cylinder 302 close to the second fixed rod 205 is rotatably connected with the second fixed rod 205. The second fixed rod 205 is eccentrically arranged with the inclined rod 304. Then, the inclined rod 304 will generate a pushing and pulling effect on the moving cylinder 302. After being pushed and pulled, the moving cylinder 302 will reciprocally slide inside the C-shaped frame 301. At the same time, when the moving cylinder 302 slides, the sliding moving cylinder 302 will push and pull the crank rod 305 through the connecting plate 303, causing the crank rod 305 to rotate similarly to a crank. When the crank rod 305 rotates, the rotating crank rod 305 will drive the fans at both ends to rotate synchronously.

[0045] A rotating mechanism 4 is arranged inside the inner cylinder 203. The rotating mechanism 4 includes a protruding rod 401 fixedly connected to the side of the moving cylinder 302 away from the inclined rod 304. A bidirectional threaded sleeve 402 is slidably connected to the outer surface of the protruding rod 401. A conical cylinder 403 is fixedly connected to the outer surface of the bidirectional threaded sleeve 402. A triangular plate 404 is rotatably connected between the two conical cylinders 403. The side wall of the triangular plate 404 is rotatably connected to the middle part of the inner cylinder 203. Then, when the moving cylinder 302 reciprocates, the moving moving cylinder 302 will drive the protruding rod 401 to move synchronously. When the protruding rod 401 moves, it will slide inside the bidirectional threaded sleeve 402 through the protrusions on its surface. When the protruding rod 401 slides, it will drive the conical cylinder 403 to rotate through the bidirectional threaded sleeve 402.

[0046] Inside the storage bin 103, a disturbing mechanism 5 is provided. The disturbing mechanism 5 includes a second fixed plate 501 rotatably connected to the outer surface of the rotating cylinder 201. On the side of the second fixed plate 501 close to the storage bin 103, a number of arc-shaped blocks 502 are fixedly connected. On the side of the rotating cylinder 201 close to the arc-shaped blocks 502, a number of springs are fixedly connected. One end of the number of springs away from the second fixed plate 501 is fixedly connected to the inner wall of the storage bin 103. On the side of the second fixed plate 501 away from the arc-shaped blocks 502, an annular groove is formed. On the top inner wall of the annular groove, a number of teeth are fixedly connected. On the side of the second fixed plate 501 away from the arc-shaped blocks 502, a rotating ring 503 is rotatably connected. On the side of the rotating ring 503 away from the second fixed plate 501, a number of C-shaped plates 504 are rotatably connected. Inside the C-shaped plate 504, a pushing plate 506 is rotatably connected. One end of the pushing plate 506 away from the C-shaped plate 504 is rotatably connected to the outer surface of the rotating cylinder 201. Inside the C-shaped plate 504, a rotating block 505 is rotatably connected. The rotating cylinder 201 is in communication with the outside of the storage bin 103 through a second fixed rod 205. When the fixed plate 202 rotates, it will periodically squeeze the arc-shaped block 502 through the convex block on its side wall. After being squeezed, the arc-shaped block 502 will push the second fixed plate 501 to slide on the surface of the rotating cylinder 201. When the second fixed plate 501 slides, the sliding second fixed plate 501 will squeeze the C-shaped plate 504 through the rotating ring 503.

[0047] A scraping mechanism 6 is provided on the side wall of the rotating block 505. The scraping mechanism 6 includes a tooth shaft 601 rotatably connected to the side of the rotating block 505 close to the second fixed plate 501. One end of the tooth shaft 601 away from the second fixed plate 501 penetrates through the side wall of the rotating block 505 and extends to the outside. A rotating plate 602 is fixedly connected between the extending ends of the two tooth shafts 601. On the top of the tooth shaft 601, a second connecting plate 603 is provided. One end of the second connecting plate 603 close to the tooth shaft 601 is rotatably connected to the side wall of the rotating block 505. Inside the second connecting plate 603, a movable plate 604 is rotatably connected. An arc-shaped plate 605 is rotatably connected between the two second connecting plates 603. Two square grooves are formed on the side wall of the arc-shaped plate 605. One end of the arc-shaped plate 605 close to the second connecting plate 603 is in contact with the side wall of the second fixed plate 501. Then when the C-shaped plate 504 pushes the tooth shaft 601 to move upward, the upward movement of the tooth shaft 601 will engage with the teeth in the annular groove. Then when the rotation of the rotating cylinder 201 drives the C-shaped plate 504 to rotate through the pushing plate 506, the tooth shaft 601 will contact and rotate with the teeth in the annular groove.

[0048] The side wall of the arc-shaped plate 605 is provided with a vibration mechanism 7. The vibration mechanism 7 includes a T-shaped plate 701 arranged inside the square groove. The middle of the T-shaped plate 701 is rotatably connected inside the square groove. A screw rod 702 is fixedly connected between the two T-shaped plates 701. The bottom of the T-shaped plate 701 is fixedly connected to the movable plate 604. One side of the T-shaped plate 701 close to the screw rod 702 is fixedly connected to an elastic plate 703. A spring block 704 is fixedly connected between the two elastic plates 703. The top of the spring block 704 is fixedly connected to the arc-shaped plate 605. After the bottom of the T-shaped plate 701 is squeezed, it will rotate in the square groove opened on the arc-shaped plate 605. When the T-shaped plate 701 rotates, it will pull the screw rod 702.

[0049] A method of using a feeding device for a dough mixer, the feeding device for a dough mixer, the method includes the following steps.

[0050] S1: First, start the conveyor belt 102 and the motor 101 through an external power supply. When the motor 101 is working, it will drive the rotating cylinder 201 to rotate through a belt. Then, place the flour to be conveyed into the storage bin 103.

[0051] S2: Then, when the rotating cylinder 201 rotates, the rotating rotating cylinder 201 will agitate the flour. Then, start the electric push rod 104. When the electric push rod 104 is working, it will drive the baffle 105 to move.

[0052] S3: When the baffle 105 moves, it will be separated from the opening at the bottom of the storage bin 103. At this time, the agitated flour will fall onto the conveyor belt 102 through the opening at the bottom of the storage bin 103. Then, when the conveyor belt 102 is working, it will drive the flour for conveying and feeding.

[0053] During use, first start the conveyor belt 102 and the motor 101 through an external power supply. When the motor 101 is working, it will drive the rotating cylinder 201 to rotate through a belt. Then, place the flour to be conveyed into the storage bin 103. Then, when the rotating cylinder 201 rotates, the rotating rotating cylinder 201 will agitate the flour. Then, start the electric push rod 104. When the electric push rod 104 is working, it will drive the baffle 105 to move. When the baffle 105 moves, it will be separated from the opening at the bottom of the storage bin 103. At this time, the agitated flour will fall onto the conveyor belt 102 through the opening at the bottom of the storage bin 103. Then, when the conveyor belt 102 is working, it will drive the flour for conveying and feeding.

[0054] When the motor 101 drives the rotating cylinder 201 to rotate through a belt, the rotating rotating cylinder 201 will rotate on the surfaces of the first fixed rod 204 and the second fixed rod 205. At the same time, when the rotating cylinder 201 rotates, it will also drive the two C-shaped frames 301 to rotate synchronously. When the rotating cylinder 201 drives the C-shaped frame 301 to rotate, the rotating C-shaped frame 301 will drive the moving cylinder 302 to rotate synchronously through the crank rod 305. When the moving cylinder 302 rotates, it will drive the inclined rod 304 to rotate. Since the inclined rod 304 and the moving cylinder 302 are eccentrically arranged, and the inclined rod 304 and the crank rod 305 are also eccentrically arranged, when the moving cylinder 302 rotates, the inclined rod 304 will exert a pushing and pulling force on the moving cylinder 302. After being pushed and pulled, the moving cylinder 302 will reciprocally slide inside the C-shaped frame 301. At the same time, when the moving cylinder 302 slides, the sliding moving cylinder 302 will push and pull the crank rod 305 through the connecting plate 303, causing the crank rod 305 to perform a movement similar to crank rotation. When the crank rod 305 rotates, the rotating crank rod 305 will drive the fans at both ends to rotate synchronously. Since the rotating cylinder 201 is communicatively arranged with the outside of the external storage bin 103 through the second fixed rod 205, when the fans on the crank rod 305 rotate, they will extract the external gas into the inner cylinder 203 through the second fixed rod 205. Then, when the moving cylinder 302 reciprocates, the moving moving cylinder 302 will drive the protruding rod 401 to move synchronously. When the protruding rod 401 moves, it will slide inside the bidirectional threaded sleeve 402 through the protrusions on its surface. When the protruding rod 401 slides, it will drive the conical cylinder 403 to rotate through the bidirectional threaded sleeve 402. When the conical cylinder 403 rotates, the spiral structure inside it can accelerate the flow of the gas inside the inner cylinder 203, so that the gas inside the inner cylinder 203 can accelerate and flow between the inner cylinder 203 and the rotating cylinder 201. As the gas continuously enters, the gas will push the spring baffle 207 through the conical air holes 206. At this time, the ejected gas can further penetrate the flour layer, break up small lumps, ensure the loose state of the flour, and drive the flour to surge, so that the flour remains in a loose state, ensuring the stable quality of the flour output from the storage bin to the dough mixer and preventing the dough mixing effect from being affected by lumps.

[0055] When the motor 101 drives the rotating cylinder 201 to rotate through a belt, the rotation of the rotating cylinder 201 will drive the fixed disk 202 to rotate synchronously. When the fixed disk 202 rotates, it will periodically squeeze the arc-shaped block 502 through the bumps on its side wall. After being squeezed, the arc-shaped block 502 will push the second fixed disk 501 to slide on the surface of the rotating cylinder 201. When the second fixed disk 501 slides, the sliding second fixed disk 501 will squeeze the C-shaped plate 504 through the rotating ring 503. When the C-shaped plate 504 is squeezed, it will push the rotating block 505 and the tooth shaft 601 to move upward. At the same time, when the rotating cylinder 201 rotates, the rotation of the rotating cylinder 201 will drive the C-shaped plate 504 to rotate synchronously through the push plate 506. When the second fixed disk 501 moves, the annular groove on the surface of the second fixed disk 501 can be located on the outer surface of the tooth shaft 601. Then, when the C-shaped plate 504 pushes the tooth shaft 601 to move upward, the upward movement of the tooth shaft 601 will engage with the teeth in the annular groove. Then, when the rotation of the rotating cylinder 201 drives the C-shaped plate 504 to rotate through the push plate 506, the tooth shaft 601 will contact and rotate with the teeth inside the annular groove. When the tooth shaft 601 rotates, the rotating tooth shaft 601 will drive the rotating plate 602 to rotate synchronously. When the rotating plate 602 rotates, it can disturb the airflow ejected inside the rotating cylinder 201, disperse and weaken the impact force of the airflow, keep the flour in a relatively stable state, and reduce the flying phenomenon.

[0056] When the arc-shaped block 502 is squeezed by the fixed disk 202 to drive the second fixed disk 501 to slide, the sliding of the second fixed disk 501 will squeeze the C-shaped plate 504 through the rotating ring 503. After being squeezed, the C-shaped plate 504 will push the rotating block 505 to move upward. While the rotating block 505 moves upward, it will drive the arc-shaped plate 605 to move upward synchronously through the second connecting plate 603. At the same time, when the second fixed disk 501 moves, the second fixed disk 501 will squeeze one end of the arc-shaped plate 605 away from the spring block 704. When one end of the arc-shaped plate 605 is squeezed and the arc-shaped plate 605 rises, a deformation with a bulging middle will be formed. When the arc-shaped plate 605 deforms, it will drive the second connecting plate 603 to rotate on the top of the rotating block 505. When the second connecting plate 603 rotates, it will squeeze the bottom of the T-shaped plate 701 through the movable plate 604. When the bottom of the T-shaped plate 701 is squeezed, it will rotate in the square groove opened on the arc-shaped plate 605. When the T-shaped plate 701 rotates, it will pull the screw rod 702. Then, when the arc-shaped plate 605 rises, the screw rod 702 can contact the inner wall of the storage bin 103. Then, when the rotating cylinder 201 rotates, the screw rod 702 can clean the flour remaining on the inner wall of the storage bin 103, prevent the flour from accumulating and deteriorating on the inner wall of the storage bin 103 for a long time, thereby reducing the waste of materials. At the same time, it also ensures the purity and quality of the flour in the subsequent processing process.

[0057] When the rotation of the connecting plate II 603 pushes the T-shaped plate 701 through the movable plate 604, the rotation of the T-shaped plate 701 will squeeze the spring block 704 through the elastic plate 703. After the spring block 704 is squeezed, it will move downward. Since the elastic plate 703 is elastic, when the gas agitates the flour, the surging of the flour will cause the spring block 704 to drive the elastic plate 703 to shake. At the same time, the rotation of the rotating plate 602 will also intermittently strike the bottom of the spring block 704, causing the spring block 704 to shake between the two elastic plates 703. The vibration force generated when the spring block 704 shakes will be transmitted to the screw rod 702 through the T-shaped plate 701. When the screw rod 702 cleans the residual flour, the vibration generated when the spring block 704 shakes can loosen stubborn residues, effectively removing the flour residues adhering to the inner wall. At the same time, the shaking of the spring block 704 is transmitted to the flour, which helps to further loosen the adhesion and caking between the flour particles, making the flour more loose and beneficial to the subsequent stirring and processing processes.

[0058] The preferred embodiments of the present invention disclosed above are only used to help explain the present invention. The preferred embodiments do not describe all the details in detail, nor do they limit the invention to the specific embodiments described. Obviously, many modifications and variations can be made according to the content of this specification. These embodiments are selected and specifically described in this specification to better explain the principles and practical applications of the present invention, so that those skilled in the art can well understand and utilize the present invention. The present invention is only limited by the claims and their full scope and equivalents.

Claims

1. A feeding device for a dough mixer, comprising a main body (1), a motor (101) being fixedly connected to the top of the main body (1), a conveyor belt (102) being fixedly connected to the top of the main body (1), a material storage bin (103) being fixedly connected to the top of the main body (1), the bottom of the material storage bin (103) being open, an electric push rod (104) being fixedly connected to a side of the material storage bin (103) close to the motor (101), a baffle (105) being fixedly connected to the output end of the electric push rod (104), and a belt being sleeved and connected to the output end of the motor (101), characterized in that: Also includes: An auxiliary mechanism (2), the auxiliary mechanism (2) comprising a rotating cylinder (201) rotatably connected to the inside of the material storage bin (103), two fixed disks (202) being fixedly connected to the outer surface of the rotating cylinder (201), a plurality of protrusions being fixedly connected to the side walls of the fixed disks (202), the plurality of protrusions being arranged in a circular array with the middle of the inner cylinder (203) as the center, and a side of the rotating cylinder (201) close to the motor (101) penetrating to the outer wall of the material storage bin (103) and extending to the outside; A moving mechanism (3), the moving mechanism (3) comprising two C-shaped frames (301) arranged on the inner wall of the inner cylinder (203), the side of the C-shaped frame (301) away from the middle of the inner cylinder (203) being fixedly connected to the side wall of the rotating cylinder (201), the middle part of the C-shaped frame (301) on the side close to the fixed rod one (204) being rotatably connected to the outer surface of the fixed rod one (204), and the middle part of the C-shaped frame (301) on the side close to the fixed rod two (205) being rotatably connected to the outer surface of the fixed rod two (205), and a moving cylinder (302) being slidably disposed inside the C-shaped frame (301); The outer surface of the extended end of the rotating cylinder (201) is connected to the motor (101) through a belt, the inner part of the rotating cylinder (201) is fixedly connected to the inner cylinder (203), the inner part of the rotating cylinder (201) is rotatably connected to a fixed rod 1 (204), the side of the fixed rod 1 (204) close to the motor (101) penetrates the extended section of the rotating cylinder (201) and extends to the outside, the extended end of the fixed rod 1 (204) is fixedly connected to a fixed frame, and the fixed frame is connected to the material storage The outer wall of the bin (103) is fixedly connected, and a second fixing rod (205) is rotatably connected inside the rotating cylinder (201). One end of the second fixing rod (205) away from the first fixing rod (204) is fixedly connected to the inner wall of the back side of the storage bin (103). The inner wall of the rotating cylinder (201) is fixedly connected with a plurality of conical air outlet holes (206), and the top of the conical air outlet holes (206) is fixedly connected with a spring baffle (207). The middle part of the inner cylinder (203) is open.

2. A dough mixer feeding device according to claim 1, characterized in that: The inner wall of one side of the movable cylinder (302) away from the middle of the inner cylinder (203) is rotatably connected to a connecting plate (303); the side of the connecting plate (303) close to the middle of the inner cylinder (203) is rotatably connected to a crank rod (305); the top and bottom side walls of the movable cylinder (302) are both provided with straight grooves; the end of the crank rod (305) close to the straight groove passes through the outer wall of the straight groove and extends to the outside of the C-shaped frame (301); the extended end of the crank rod (305) is fixedly connected to a fan; the movable cylinder (302) away from the inner cylinder (203) is 03) is rotatably connected to one side of the middle part thereof, and the slanted rod (304) is eccentrically arranged with the movable cylinder (302); the slanted rod (304) close to the fixed rod one (204) is rotatably connected to the side wall of the fixed rod one (204), and the slanted rod (304) is eccentrically arranged with the fixed rod one (204); the end of the slanted rod (304) close to the fixed rod two (205) away from the movable cylinder (302) is rotatably connected to the fixed rod two (205), and the fixed rod two (205) is eccentrically arranged with the slanted rod (304).

3. A dough mixer feeding device according to claim 2, characterized in that: A rotating mechanism (4) is arranged inside the inner cylinder (203), and the rotating mechanism (4) comprises a protruding rod (401) fixedly connected to a side of the moving cylinder (302) away from the inclined rod (304); a bidirectional threaded sleeve (402) is slidably connected to the outer surface of the protruding rod (401); a conical cylinder (403) is fixedly connected to the outer surface of the bidirectional threaded sleeve (402); a triangular plate (404) is rotatably connected between the two conical cylinders (403); and a side wall of the triangular plate (404) is rotatably connected to the middle of the inner cylinder (203).

4. A feeding device for a dough mixer according to claim 3, characterized in that: A disturbance mechanism (5) is arranged inside the material storage bin (103), and the disturbance mechanism (5) comprises a second fixed disk (501) rotatably connected to the outer surface of the rotating cylinder (201), a side of the second fixed disk (501) close to the material storage bin (103) is fixedly connected to a plurality of arc blocks (502), a side of the rotating cylinder (201) close to the arc blocks (502) is fixedly connected to a plurality of springs, one end of the plurality of springs away from the second fixed disk (501) is fixedly connected to the inner wall of the material storage bin (103), a side of the second fixed disk (501) away from the arc blocks (502) is provided with an annular groove, and the top inner wall of the annular groove is fixedly connected to the inner wall of the material storage bin (103). There are a plurality of teeth, the side of the second fixed disk (501) away from the arc block (502) is rotatably connected to a rotating ring (503), the side of the rotating ring (503) away from the second fixed disk (501) is rotatably connected to a plurality of C-shaped plates (504), the inside of the C-shaped plate (504) is rotatably connected to a push plate (506), one end of the push plate (506) away from the C-shaped plate (504) is rotatably connected to the outer surface of the rotating cylinder (201), the inside of the C-shaped plate (504) is rotatably connected to a rotating block (505), and the rotating cylinder (201) is connected to the outside of the storage bin (103) through the second fixed rod (205).

5. A dough mixer feeding device according to claim 4, characterized in that: The side wall of the rotating block (505) is provided with a scraping mechanism (6), and the scraping mechanism (6) comprises a gear shaft (601) rotatably connected to the side of the rotating block (505) close to the second fixed disk (501), and one end of the gear shaft (601) away from the second fixed disk (501) penetrates the side wall of the rotating block (505) and extends to the outside, and a rotating plate (602) is fixedly connected between the extended ends of the two gear shafts (601), and a connecting plate (2) is provided on the top of the gear shaft (601). 603), one end of the connecting plate 2 (603) close to the gear shaft (601) is rotatably connected to the side wall of the rotating block (505), the interior of the connecting plate 2 (603) is rotatably connected with a movable plate (604), an arc plate (605) is rotatably connected between the two connecting plates 2 (603), the side wall of the arc plate (605) is provided with two square grooves, and one end of the arc plate (605) close to the connecting plate 2 (603) is in contact with the side wall of the fixed disk 2 (501).

6. A feeding device for a dough mixer according to claim 5, characterized in that: A vibration mechanism (7) is provided on the side wall of the arc-shaped plate (605), and the vibration mechanism (7) comprises a T-shaped plate (701) arranged inside the square groove, the middle part of the T-shaped plate (701) is rotatably connected inside the square groove, a spiral rod (702) is fixedly connected between the two T-shaped plates (701), the bottom of the T-shaped plate (701) is fixedly connected to the movable plate (604), an elastic plate (703) is fixedly connected to one side of the T-shaped plate (701) close to the spiral rod (702), a spring block (704) is fixedly connected between the two elastic plates (703), and the top of the spring block (704) is fixedly connected to the arc-shaped plate (605).

7. A method for using a feeding device of a dough mixer, characterized in that: Using the dough mixer feeding device as claimed in claim 6, the method comprises the following steps: S1: First, the conveyor belt (102) and the motor (101) are started by an external power source. When the motor (101) is working, it drives the rotating drum (201) to rotate through the belt, and then the flour to be transported is placed inside the storage bin (103); S2: When the rotating drum (201) rotates, the rotating drum (201) stirs the flour, and then the electric push rod (104) is started. When the electric push rod (104) is working, it drives the baffle (105) to move; S3: When the baffle (105) moves, it will be separated from the opening at the bottom of the storage bin (103). At this time, the stirred flour will fall onto the conveyor belt (102) through the opening at the bottom of the storage bin (103). Then, when the conveyor belt (102) is working, it will drive the flour to be transported and loaded.

Citation Information

Patent Citations

  • A flour screening device for flour processing

    CN220941654U