Stirring device for producing amylodextrin
By designing a starch dextrin stirring device with centrifugal force that evenly distributes raw materials and prevents agglomeration, the problems of uneven distribution of raw materials and prone to agglomeration in the prior art are solved, and the effect of improving production efficiency and finished product quality is achieved.
Patent Information
- Application Number
- CN202421997539.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-16
- Publication Date
- 2025-06-06
- Estimated Expiration
- 2034-08-16
AI Technical Summary
In the existing starch dextrin stirring device, the raw material distribution is uneven, which leads to an increase in stirring time and affects production efficiency. The dextrin is prone to adhere to the inner wall of the stirring tank, affecting the quality of the finished product.
A stirring device including a stirring tank body and two pairs of support seats is designed, and the first and second fabric blocks are driven to rotate by driving the first motor to rotate, and the raw materials are evenly distributed in the stirring chamber by centrifugal force, and through a screen and repeated movement design to prevent dextrin from agglomerating.
The stirring time of the stirring tank is effectively reduced, the production efficiency of the starch dextrin production device is improved, and the quality of the finished product is improved by preventing agglomeration.
Smart Images

Figure CN222943322U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of starch dextrin production, in particular to a stirring device for producing starch dextrin. Background Art
[0002] Maltodextrin is a starch sugar derivative made from starch through gelatinization, enzymolysis and other processes. It is an excellent functional food raw material with good solubility, stability, low friction coefficient, good gloss and other characteristics. When starch is decomposed and hydrolyzed by heating or amylase, the macromolecular starch is first converted into a small molecular intermediate substance. At this time, the intermediate small molecule substance is called dextrin. Maltodextrin is a safe, non-toxic, non-allergenic food additive. It is widely used in the food industry for its excellent transparency, stability and taste. Candies, chewing gum, chocolate and other foods made from maltodextrin can increase the stability of their texture. Improve the quality of goods and let consumers feel a more comfortable taste. In addition, maltodextrin is also widely used in the fields of medicine, cosmetics, etc. It can be used to adjust the solubility of drugs, enhance the viscosity of cosmetics, etc. In addition, maltodextrin can also be used in the fields of medicine, cosmetics, etc. It has many unique functions. At present, when the existing starch dextrin stirring device is used, the input raw materials are unevenly distributed, which increases the stirring time of the stirring tank, thereby affecting the production efficiency of the starch dextrin production device. At the same time, in actual production, affected by the conveying device, the dextrin in the stirring tank cannot be discharged in time, and the finished product is prone to compaction and agglomeration, which will affect the quality of the finished starch dextrin.
[0003] For example, the utility model patent with publication number CN205731027U discloses a material storage and stirring device for producing starch or dextrin, including: a material storage bin, a stirring motor, supporting legs, a stirring mechanism, an I-beam, and a rotating shaft guard plate. The material storage bin is arranged as a cylindrical structure, an I-beam is arranged on the top of the material storage bin, a rotating shaft guard plate is arranged on the I-beam, a stirring motor is arranged on the rotating shaft guard plate, a rotating shaft of the stirring motor passes through the rotating shaft guard plate, and the end of the rotating shaft is connected to the stirring mechanism arranged in the material storage bin, a feeding port is arranged at one end of the top of the material storage bin, a discharging port is arranged at the bottom of the material storage bin, and supporting legs are evenly arranged on the side walls of the material storage bin. When the device is used, the raw materials input are unevenly distributed, which increases the stirring time of the stirring tank, thereby affecting the production efficiency of the starch dextrin production device. At the same time, the starch dextrin is easily attached to the inner wall of the stirring tank during stirring, which is inconvenient to clean and affects the subsequent use of the equipment. Utility Model Content
[0004] In view of the deficiencies in the prior art, the utility model provides a production device for producing starch dextrin, which solves the problem that when the existing starch dextrin stirring device is used, the input raw materials are unevenly distributed, the stirring time of the stirring tank is increased, and the production efficiency of the starch dextrin production device is affected.
[0005] To achieve the above objectives, the utility model is implemented through the following technical solutions: a stirring device for producing starch dextrin, comprising a stirring tank body and two pairs of support seats, the two pairs of support seats are arranged on the lower wall surface of the stirring tank body, a first motor is arranged on the upper wall surface of the stirring tank body, a first support column is arranged on the driving end of the first motor, a pretreatment chamber is arranged in the stirring tank body, a pair of feed hoppers are arranged on the stirring tank body, a first cloth block is arranged on the first support column and located in the pretreatment chamber, a second cloth block is arranged on the first support column and located below the first cloth block, a plurality of grooves are arranged on the second cloth block, a pair of the feed hoppers are provided with discharge ports, and the first cloth block is arranged below the discharge port of the feed hopper.
[0006] Preferably, a stirring chamber is provided in the stirring tank body and below the pretreatment chamber, a pair of fixed blocks are provided on the first support column and within the stirring chamber, a scraper is provided on the pair of fixed blocks, the scraper is movably provided on the inner wall of the stirring chamber, and a stirring blade is provided on the first support column.
[0007] Preferably, a pair of multi-stage electric telescopic cylinders are provided on the mixing tank body, and support blocks are respectively provided on the telescopic ends of the pair of multi-stage electric telescopic cylinders. A pair of baffles are slidably provided in the mixing tank body and below the mixing chamber, and the baffles are provided on the support blocks.
[0008] Preferably, a limiting block is arranged on the lower wall surface of the baffle, a pair of limiting grooves is arranged on the stirring tank body, and the limiting block is movably arranged in the limiting grooves.
[0009] Preferably, a discharge chamber is provided in the mixing tank body and below the baffle, a second motor is provided in the discharge chamber, a cam is provided on the driving end of the second motor, a first connecting rod is rotatably provided on the cam, a second connecting rod is rotatably provided on the first connecting rod, a pair of second support columns are provided in the discharge chamber, a screen is movably provided on the second support columns, and the second connecting rod is provided on the screen.
[0010] Preferably, a pair of inclined guide plates are provided on the discharge chamber and above the screen, and a pair of second support columns are respectively provided with springs, one end of the spring is provided on the inner wall of the discharge chamber, and the other end of the spring is provided on the screen.
[0011] Beneficial Effects
[0012] The utility model provides a stirring device for producing starch dextrin, which has the following beneficial effects:
[0013] This design drives the first motor to rotate, which drives the first support column to rotate, and then the first cloth block and the second cloth block to rotate. The dextrin production raw materials enter the processing chamber through the feed hopper and fall on the first cloth block. The first cloth block rotates to make the dextrin production raw materials fall on the second cloth block. The movement radius of the dextrin raw material is proportional to the centrifugal force it is subjected to. The closer the dextrin raw material is to the first support column, the smaller the centrifugal force it is subjected to. During the rotation of the second cloth block, the dextrin raw materials are arranged in sequence according to the size of the centrifugal force they are subjected to, and are evenly scattered in the mixing chamber through the grooves, thereby reducing the mixing time of the mixing tank and thereby improving the production efficiency of the starch dextrin production device.
[0014] This design drives the second motor to rotate, which drives the cam to rotate, moves the first connecting rod, controls the movement of the second connecting rod, and then makes the screen move repeatedly along the direction of the second support column. The screen can disperse the agglomerated dextrin, thereby improving the quality of the finished product of starch dextrin. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 It is a schematic diagram of the whole of the utility model.
[0016] Figure 2 It is a schematic diagram of the screen of the utility model.
[0017] Figure 3 It is a schematic diagram of the first fabric block and the second fabric block of the utility model.
[0018] In the figure: 1. first motor; 2. feed hopper; 3. pretreatment chamber; 4. stirring blade; 5. first support column; 6. scraper; 7. fixing block; 8. support block; 9. limit groove; 10. screen; 11. discharge chamber; 12. support seat; 13. second support column; 14. second motor; 15. limit block; 16. baffle; 17. multi-stage electric telescopic cylinder; 18. stirring chamber; 19. second distribution block; 20. first distribution block; 21. inclined guide plate; 22. spring; 23. stirring tank body; 24. first connecting rod; 25 cam; 26. second connecting rod; 27. groove. DETAILED DESCRIPTION
[0019] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.
[0020] See also Figure 1-3 The utility model provides a technical solution: a stirring device for producing starch dextrin, comprising a stirring tank body 23 and two pairs of support seats 12, the two pairs of support seats 12 are arranged on the lower wall surface of the stirring tank body 23, a first motor 1 is arranged on the upper wall surface of the stirring tank body 23, a first support column 5 is arranged on the driving end of the first motor 1, a pretreatment chamber 3 is arranged in the stirring tank body 23, a pair of feed hoppers 2 are arranged on the stirring tank body 23, a first cloth block 20 is arranged on the first support column 5 and located in the pretreatment chamber 3, a second cloth block 19 is arranged on the first support column 5 and located below the first cloth block 20, a plurality of grooves 27 are arranged on the second cloth block 19, a pair of the feed hoppers 2 are provided with discharge ports, and the first cloth block 20 is arranged below the discharge port of the feed hopper 2;
[0021] The first cloth block 20 is a conical cloth block, and the second cloth block 19 is an annular cloth block;
[0022] The first motor 1 is driven to rotate, which drives the first support column 5 to rotate, and then the first cloth block 20 and the second cloth block 19 are rotated. The dextrin production raw materials enter the processing chamber 3 through the feed hopper 2 and fall on the first cloth block 20. The first cloth block 20 rotates to make the dextrin production raw materials fall on the second cloth block 19. The movement radius of the dextrin raw material is proportional to the centrifugal force it is subjected to. The closer the dextrin raw material is to the first support column 5, the smaller the centrifugal force it is subjected to. During the rotation of the second cloth block 19, the dextrin raw materials are arranged in sequence according to the size of the centrifugal force it is subjected to, and are evenly scattered in the mixing chamber 18 through the grooves 27, thereby reducing the mixing time of the mixing tank and thereby improving the production efficiency of the starch dextrin production device.
[0023] The present embodiment is further configured such that a stirring chamber 18 is provided in the stirring tank body 23 and below the pretreatment chamber 3, a pair of fixed blocks 7 are provided on the first support column 5 and in the stirring chamber 18, a scraper 6 is provided on the pair of fixed blocks 7, and the scraper 6 is movably provided on the inner wall of the stirring chamber 18, and a stirring blade 4 is provided on the first support column 5;
[0024] The first motor 1 is driven to rotate, which drives the first support column 5 to rotate, so that the fixed block 7 moves, and then the scraper 6 moves on the inner wall of the mixing chamber 18 to remove the dextrin remaining on the inner wall of the mixing chamber 18;
[0025] The first motor 1 is driven to rotate, which drives the first support column 5 to rotate, and drives the stirring blade 4 to move, so as to stir the dextrin raw material.
[0026] This embodiment is further configured such that a pair of multi-stage electric telescopic cylinders 17 are provided on the mixing tank body 23, and support blocks 8 are respectively provided on the telescopic ends of the pair of multi-stage electric telescopic cylinders 17, and a pair of baffles 16 are slidably provided in the mixing tank body 23 and below the mixing chamber 18, and the baffles 16 are provided on the support blocks 8;
[0027] The multi-stage electric telescopic cylinder 17 is driven to extend and retract, thereby driving the support block 8 to move, and then the baffle 16 to move, so as to control the opening and closing of the mixing chamber 18 and the discharge chamber 11 .
[0028] This embodiment is further configured that a limit block 15 is provided on the lower wall surface of the baffle 16, a pair of limit grooves 9 are provided on the mixing tank body 23, and the limit block 15 is movably arranged in the limit grooves 9;
[0029] The limiting block 15 is movably disposed in the limiting groove 9 to prevent the baffle 16 from moving out of the mixing tank body 23 .
[0030] The present embodiment is further configured such that a discharge chamber 11 is provided in the mixing tank body 23 and below the baffle 16, a second motor 14 is provided in the discharge chamber 11, a cam 25 is provided on the driving end of the second motor 14, a first connecting rod 24 is rotatably provided on the cam 25, a second connecting rod 26 is rotatably provided on the first connecting rod 24, a pair of second support columns 13 are provided in the discharge chamber 11, a screen 10 is movably provided on the second support columns 13, and the second connecting rod 26 is provided on the screen 10;
[0031] The second motor 14 is driven to rotate, which drives the cam 25 to rotate, so that the first connecting rod 24 moves, and the second connecting rod 26 is controlled to move, so that the screen 10 moves repeatedly along the direction of the second support column 13. The screen 10 can disperse the agglomerated dextrin, thereby improving the quality of the finished product of starch dextrin.
[0032] This embodiment is further configured such that a pair of inclined guide plates 21 are provided on the discharge chamber 11 and above the screen 10, and a pair of second support columns 13 are respectively provided with springs 22, one end of the spring 22 is provided on the inner wall of the discharge chamber 11, and the other end of the spring 22 is provided on the screen 10;
[0033] The inclined guide plate 21 can guide the dextrin produced in the mixing chamber 18 to the screen 10;
[0034] When the screen 10 moves toward the spring 22 along the direction of the second support column 13, the screen 10 squeezes the spring 22, causing the spring 22 to generate elastic force. When the screen 10 moves away from the spring 22, the interaction force generated by the spring 22 can assist the cam 25 in pushing the screen 10 to move repeatedly along the direction of the second support column 13.
[0035] Embodiment: When the starch dextrin stirring device is used, the first motor 1 is driven to rotate, which drives the first support column 5 to rotate, and then the first cloth block 20 and the second cloth block 19 are rotated. The dextrin production raw material enters the processing chamber 3 through the feed hopper 2 and falls on the first cloth block 20. The first cloth block 20 causes the dextrin production raw material to fall on the second cloth block 19 by rotating. The movement radius of the dextrin raw material is proportional to the centrifugal force it is subjected to. The closer the dextrin raw material is to the first support column 5, the smaller the centrifugal force it is subjected to. During the rotation of the second cloth block 19, the dextrin raw material is arranged in sequence according to the size of the centrifugal force it is subjected to, and is evenly scattered in the stirring chamber 18 through the groove 27, thereby reducing the stirring time of the stirring tank, thereby improving the production efficiency of the starch dextrin production device. The first motor 1 is driven to rotate, which drives the first support column 5 rotates, driving the stirring blade 4 to move, which is used to stir the dextrin raw material, driving the first motor 1 to rotate, driving the first support column 5 to rotate, so that the fixed block 7 moves, and then the scraper 6 moves on the inner wall of the stirring chamber 18, which is used to remove the dextrin remaining on the inner wall of the stirring chamber 18. After the dextrin is stirred, the multi-stage electric telescopic cylinder 17 is driven to extend and retract, driving the support block 8 to move, and then the baffle 16 moves, so that the stirring chamber 18 and the discharge chamber 11 are connected, and the dextrin moves to the screen 10 through the inclined guide plate 21, and the second motor 14 is driven to rotate, driving the cam 25 to rotate, so that the first connecting rod 24 moves, and the second connecting rod 26 is controlled to move, so that the screen 10 is repeatedly moved along the direction of the second support column 13, and the agglomerated dextrin can be dispersed through the screen 10, thereby improving the quality of the finished product of starch dextrin.
[0036] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A stirring device for producing starch dextrin, comprising a stirring tank body (23) and two pairs of support seats (12), wherein the two pairs of support seats (12) are arranged on the lower wall surface of the stirring tank body (23), characterized in that: A first motor (1) is arranged on the upper wall surface of the stirring tank body (23), a first support column (5) is arranged on the driving end of the first motor (1), a pretreatment chamber (3) is arranged in the stirring tank body (23), a pair of feed hoppers (2) are arranged on the stirring tank body (23), a first material distribution block (20) is arranged on the first support column (5) and located in the pretreatment chamber (3), a second material distribution block (19) is arranged on the first support column (5) and located below the first material distribution block (20), a plurality of grooves (27) are arranged on the second material distribution block (19), a pair of the feed hoppers (2) are provided with discharge ports, and the first material distribution block (20) is arranged below the discharge port of the feed hopper (2).
2. A stirring device for producing starch dextrin according to claim 1, characterized in that: A stirring chamber (18) is arranged inside the stirring tank body (23) and below the pretreatment chamber (3); a pair of fixed blocks (7) are arranged on the first support column (5) and inside the stirring chamber (18); a scraper (6) is arranged on the pair of fixed blocks (7); the scraper (6) is movably arranged on the inner wall of the stirring chamber (18); and a stirring blade (4) is arranged on the first support column (5).
3. A stirring device for producing starch dextrin according to claim 2, characterized in that: A pair of multi-stage electric telescopic cylinders (17) are provided on the stirring tank body (23), and support blocks (8) are respectively provided on the telescopic ends of the pair of multi-stage electric telescopic cylinders (17). A pair of baffles (16) are slidably provided in the stirring tank body (23) and below the stirring chamber (18), and the baffles (16) are provided on the support blocks (8).
4. A stirring device for producing starch dextrin according to claim 3, characterized in that: A limiting block (15) is provided on the lower wall surface of the baffle (16), a pair of limiting grooves (9) is provided on the stirring tank body (23), and the limiting block (15) is movably arranged in the limiting grooves (9).
5. A stirring device for producing starch dextrin according to claim 4, characterized in that: A discharge chamber (11) is arranged in the stirring tank body (23) and below the baffle (16); a second motor (14) is arranged in the discharge chamber (11); a cam (25) is arranged on the driving end of the second motor (14); a first connecting rod (24) is rotatably arranged on the cam (25); a second connecting rod (26) is rotatably arranged on the first connecting rod (24); a pair of second support columns (13) are arranged in the discharge chamber (11); a screen (10) is movably arranged on the second support columns (13); and the second connecting rod (26) is arranged on the screen (10).
6. A stirring device for producing starch dextrin according to claim 5, characterized in that: A pair of inclined guide plates (21) are arranged on the discharge chamber (11) and above the screen (10), and a pair of second support columns (13) are respectively provided with springs (22), one end of the spring (22) is arranged on the inner wall of the discharge chamber (11), and the other end of the spring (22) is arranged on the screen (10).
Citation Information
Patent Citations
A material stock agitating unit for producing starch or dextrin
CN205731027U