Vegetable protein raw and auxiliary material mixing conditioner
By employing an interlaced spiral blade and rotating plate structure in the plant protein raw material mixing and conditioning device, combined with a steam generator, the problem of powdered plant protein raw materials agglomerating during the conditioning process was solved, achieving higher conditioning uniformity.
Patent Information
- Application Number
- CN202520220736.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-12
- Publication Date
- 2025-12-19
- Estimated Expiration
- 2035-02-12
AI Technical Summary
Existing spiral conditioning machines are difficult to effectively break up powdered plant protein raw materials, resulting in a high probability of raw materials and excipients sticking together and low conditioning uniformity.
A plant protein raw material mixing and conditioning device was designed, which adopts an alternating spiral blade and rotating plate structure. Through the rotation of the spiral blades and the beating and stirring of the rotating plate, combined with the use of a steam generator, the raw materials are uniformly mixed and dispersed.
It improves the uniformity of the conditioning process, reduces the probability of raw materials and auxiliary materials sticking together, and ensures the uniformity of the conditioning effect.
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Figure CN223683432U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the field of feed conditioning, especially to a plant protein raw material and auxiliary material mixing conditioner. BACKGROUND
[0002] Conditioning is a process needed in the production of some high-grade feed, which mainly mixes raw materials with other auxiliary materials and makes them soft through steam and stirring, which is beneficial to granule forming, and the performance of the raw materials after conditioning is more excellent.
[0003] The existing conditioning device is generally a spiral conditioning machine, which mixes and matures raw materials and auxiliary materials through rotating spiral blades and a steam generator, but it is inconvenient to scatter the raw materials and auxiliary materials during conditioning. Since the plant protein raw materials are mostly powdery, they have a high probability of sticking together after encountering steam, which results in low conditioning uniformity. UTILITY MODEL CONTENTS
[0004] In order to overcome the shortcomings of the existing device that is inconvenient to scatter the raw materials and auxiliary materials during conditioning, the raw materials and auxiliary materials have a high probability of sticking together, and the conditioning uniformity is low, the utility model provides a plant protein raw material and auxiliary material mixing conditioner which can conveniently scatter the raw materials and auxiliary materials during conditioning, reduce the probability of the raw materials and auxiliary materials sticking together, and improve the conditioning uniformity.
[0005] The technical implementation scheme of the utility model is: a plant protein raw material and auxiliary material mixing conditioner, which comprises a chassis, two support frames are fixedly connected to the chassis, the two support frames are symmetrically arranged, a cylinder one is fixedly connected to the support frame, the cylinder one is hollow, a cylinder two is fixedly connected between the two cylinder ones, the cylinder two is hollow, the two cylinder ones are in communication with the cylinder two, a top cover is fixedly connected to the top of the cylinder two, a feeding hopper is fixedly connected to the upper part of one of the cylinder ones, a discharging hopper is fixedly connected to the lower part of the other cylinder one, a conditioning mechanism is arranged on the cylinder one, a scattering mechanism is arranged on the top cover, the conditioning mechanism is used for mixing and conditioning the raw materials and auxiliary materials, the scattering mechanism is used for scattering the raw materials and auxiliary materials during conditioning, reducing the probability of the raw materials and auxiliary materials sticking together, and improving the conditioning uniformity.
[0006] Optionally, the conditioning mechanism comprises a motor one, the motor one is fixedly connected to one of the cylinder ones, a rotating shaft one is rotatably connected between the inner walls of the two cylinder ones, one end of the rotating shaft one is fixedly connected to the output shaft of the motor one, two groups of spiral blades are fixedly connected to the rotating shaft one, the two groups of spiral blades are symmetrically arranged, the spiral blades are located in the cylinder one, two steam generators are fixedly connected to the cylinder one, the nozzles of the steam generators are in communication with the cylinder one.
[0007] Optionally, two of the helical blades of the same group are arranged in a staggered manner.
[0008] Optionally, the dispersing mechanism comprises a second motor, the top of the top cover is fixedly connected with the second motor, the top cover is rotatably connected with a second rotating shaft, the top of the second rotating shaft is fixedly connected with an output shaft of the second motor, the lower end of the second rotating shaft is fixedly connected with a first gear, and the first gear is located in the second cylinder.
[0009] Optionally, the rotating assembly comprises a third rotating shaft, the inner wall of the second cylinder is rotatably connected with a plurality of third rotating shafts, the third rotating shafts are evenly spaced, the third rotating shafts are rotatably connected with the bottom of the top cover, the upper end of the third rotating shaft is fixedly connected with a second gear, the second gear is engaged with the first gear, and the lower end of the third rotating shaft is fixedly connected with a plurality of rotating plates.
[0010] The utility model has the advantages of the following: 1, through the staff starts motor one and steam generator, the output shaft of motor one rotates and drives rotating shaft one to rotate, rotating shaft one rotates and drives helical blade to rotate, two helical blades arranged in a staggered manner rotate and drive raw materials and auxiliary materials to rotate and mix, and move towards the direction of approaching the second cylinder, the steam generator sprays steam into the first cylinder through the nozzle, so that the raw materials and auxiliary materials are mixed and softened with the steam.
[0011] 2, the output shaft of the second motor rotates and drives the second rotating shaft to rotate, the second rotating shaft rotates and drives the first gear to rotate, the first gear rotates and drives a plurality of second gears to rotate, the second gear rotates and drives the third rotating shaft to rotate, the third rotating shaft rotates and drives a plurality of rotating plates to rotate, and the plurality of rotating plates rotate to beat and stir the raw materials and auxiliary materials, so that the raw materials and auxiliary materials can be dispersed conveniently during the conditioning process, the probability of the raw materials and auxiliary materials being bonded into a group is reduced, and the uniformity of the conditioning is improved. BRIEF DESCRIPTION OF DRAWINGS
[0012] Fig. 1 It is a three-dimensional structure schematic view of the utility model.
[0013] Fig. 2 It is a sectional three-dimensional structure schematic view of the conditioning mechanism and the dispersing mechanism of the utility model.
[0014] Fig. 3 It is a sectional three-dimensional structure schematic view of the dispersing mechanism of the utility model.
[0015] In the above drawings: 1: base frame, 2: support frame, 3: first cylinder, 4: second cylinder, 5: top cover, 6: feed hopper, 7: discharge hopper, 8: motor one, 9: rotating shaft one, 10: helical blade, 11: steam generator, 12: motor two, 13: rotating shaft two, 14: first gear, 15: rotating shaft three, 16: second gear, 17: rotating plate. Detailed Implementation
[0016] References to embodiments herein mean that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of the present invention. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.
[0017] Example 1: A plant protein raw material mixing and conditioning device, such as Figs. 1-3 As shown, the system includes a base frame 1, on which two support frames 2 are bolted together. The two support frames 2 are symmetrically arranged, and a first cylinder 3 is fixedly connected to each support frame 2 to support the first cylinder 3. The first cylinder 3 is hollow. A second cylinder 4 is fixedly connected between the two first cylinders 3. The second cylinder 4 is also hollow. Both first cylinders 3 communicate with the second cylinder 4. A top cover 5 is fixedly connected to the top of the second cylinder 4. One of the first cylinders 3 has a top cover 5. A feed hopper 6 is fixedly connected to the first part of the cylinder 3, which is used to add raw and auxiliary materials into the cylinder 3. A discharge hopper 7 is fixedly connected to the lower part of the other cylinder 3, which is used to discharge the raw and auxiliary materials after conditioning. A conditioning mechanism is provided on the cylinder 3, and a dispersing mechanism is provided on the top cover 5. The conditioning mechanism is used to mix and condition the raw materials and auxiliary materials, and the dispersing mechanism is used to disperse the raw materials and auxiliary materials during the conditioning process, thereby reducing the probability of the raw materials and auxiliary materials agglomerating and improving the uniformity of conditioning.
[0018] The conditioning mechanism includes a motor 8, one of which is fixedly connected to a cylinder 3. A rotating shaft 9 is rotatably connected between the inner walls of the two cylinders 3. One end of the rotating shaft 9 is fixedly connected to the output shaft of the motor 8. The motor 8 drives the rotating shaft 9 to rotate. Two sets of spiral blades 10 are fixedly connected to the rotating shaft 9. The rotating shaft 9 drives the spiral blades 10 to rotate. The two sets of spiral blades 10 are symmetrically arranged. The spiral blades 10 are located inside the cylinder 3. Two steam generators 11 are fixedly connected to the cylinder 3. The nozzles of the steam generators 11 are connected to the cylinder 3. The steam generators 11 are used to inject steam into the cylinder 3.
[0019] The two spiral blades 10 in the same group are arranged in an alternating manner.
[0020] The scattering mechanism comprises a motor 12, the top of the top cover 5 is fixedly connected with the motor 12, the top cover 5 is rotatably connected with a rotating shaft 13, the top of the rotating shaft 13 is fixedly connected with the output shaft of the motor 12, the motor 12 is used for driving the rotating shaft 13 to rotate, the lower end of the rotating shaft 13 is fixedly connected with a gear 14, the rotating shaft 13 is used for driving the gear 14 to rotate, the gear 14 is located in the cylinder 4, and the cylinder 4 is provided with a rotating assembly.
[0021] The rotating assembly comprises rotating shafts 15, the inner wall bottom of the cylinder 4 is rotatably connected with a plurality of rotating shafts 15, the plurality of rotating shafts 15 are evenly spaced, the rotating shafts 15 are rotatably connected with the bottom of the top cover 5, the upper end of the rotating shaft 15 is fixedly connected with a gear 16, the gear 16 is used for driving the rotating shaft 15 to rotate, the gear 16 is engaged with the gear 14, the gear 14 is used for driving the gear 16 to rotate, and the lower end of the rotating shaft 15 is fixedly connected with a plurality of rotating plates 17.
[0022] Initially, the staff simultaneously puts the raw materials and auxiliary materials into the feeding hopper 6, the raw materials and auxiliary materials fall into one of the cylinders 3 below, and then the staff starts the motor 8 and the steam generator 11, the output shaft of the motor 8 rotates to drive the rotating shaft 9 to rotate, the rotating shaft 9 rotates to drive the spiral blades 10 to rotate, the two staggered spiral blades 10 rotate to drive the raw materials and auxiliary materials to rotate and mix, and move towards the cylinder 4, the steam generator 11 sprays steam into the cylinder 3 through a nozzle, so that the raw materials and auxiliary materials are mixed and softened with the steam, after the raw materials and auxiliary materials enter the cylinder 4, the staff starts the motor 12, the output shaft of the motor 12 rotates to drive the rotating shaft 13 to rotate, the rotating shaft 13 rotates to drive the gear 14 to rotate, the gear 14 rotates to drive a plurality of gears 16 to rotate, the gears 16 rotate to drive the rotating shaft 15 to rotate, the rotating shaft 15 rotates to drive a plurality of rotating plates 17 to rotate, and the plurality of rotating plates 17 rotate to beat and stir the raw materials and auxiliary materials, through the above operation, the raw materials and auxiliary materials can be conveniently scattered during the conditioning process, the probability of the raw materials and auxiliary materials being bonded into a group is reduced, the uniformity of the conditioning is improved, and the scattered raw materials and auxiliary materials continue to move into another cylinder 3, under the action of the steam generator 11 and another set of spiral blades 10 on the other cylinder 3, the scattered raw materials and auxiliary materials continue to be conditioned, finally, the conditioned raw materials and auxiliary materials are discharged through the discharge hopper 7, after the conditioning is completed, the staff closes the motor 8, the motor 12 and the steam generator 11, and cleans the cylinder 3 and the cylinder 4, so as to facilitate the next work.
[0023] Although the utility model is described in detail with reference to the above examples, it is obvious to those skilled in the art through the disclosure that various changes or modifications can be made to the utility model without departing from the principles and spirit of the utility model defined in the claims. Therefore, the detailed description of the embodiments of the disclosure is only used for explanation, not for limiting the utility model, and the protection range is defined by the content of the claims.
Claims
1. A plant protein primary ingredient mixing and conditioning device, characterized in that: The utility model provides a kind of mixing and conditioning mechanism, including chassis (1), two support frames (2) are fixed on the chassis (1), two support frames (2) are symmetrically arranged, cylinder one (3) is fixed on the support frame (2), cylinder one (3) is hollow, cylinder two (4) is fixed between two cylinder one (3), cylinder two (4) is hollow, two cylinder one (3) are communicated with cylinder two (4), the top of cylinder two (4) is fixed with top cover (5), the upper portion of one cylinder one (3) is fixed with feeding hopper (6), the lower portion of another cylinder one (3) is fixed with discharge hopper (7), and the top cover (5) is equipped with scattering mechanism, the mixing and conditioning mechanism is used to mix and condition raw materials, and the scattering mechanism is used to scatter raw materials during conditioning, reduce the probability that raw materials are bonded into a group, and improve the uniformity of conditioning.
2. A plant protein primary ingredient mixing conditioner as claimed in claim 1, characterized in that: The mixing and conditioning mechanism includes motor one (8), one cylinder one (3) is fixed with the motor one (8), the inner wall between two cylinder one (3) is rotatably connected with shaft one (9), one end of shaft one (9) is fixed with the output shaft of motor one (8), two groups of helical blades (10) are fixed on shaft one (9), two groups of helical blades (10) are symmetrically arranged, and the helical blade (10) is located in cylinder one (3), two steam generators (11) are fixed on cylinder one (3), and the nozzle of steam generator (11) is communicated with cylinder one (3).
3. A plant protein primary ingredient mixing conditioner as claimed in claim 2, characterized in that: Two helical blades (10) in the same group are staggered.
4. A plant protein primary ingredient mixing conditioner according to claim 3, characterized in that: The scattering mechanism includes motor two (12), the top of top cover (5) is fixed with motor two (12), top cover (5) is rotatably connected with shaft two (13), the top of shaft two (13) is fixed with the output shaft of motor two (12), gear one (14) is fixed on the lower end of shaft two (13), gear one (14) is located in cylinder two (4), and the rotating assembly is provided on cylinder two (4).
5. A plant protein primary ingredient mixing conditioner as claimed in claim 4, characterized in that: The rotating assembly includes shaft three (15), the inner wall bottom of cylinder two (4) is rotatably connected with a plurality of shaft three (15), a plurality of shaft three (15) are evenly spaced, the bottom of shaft three (15) is rotatably connected with top cover (5), gear two (16) is fixed on the upper end of shaft three (15), gear two (16) is engaged with gear one (14), a plurality of rotating plates (17) are fixed on the lower end of shaft three (15), a plurality of rotating plates (17) on the same shaft three (15) are evenly spaced.