Dynamic mixed enzymolysis material supply system
By designing a dynamic mixing enzymatic hydrolysis material supply system, and utilizing the combination of transmission gears and a torsion frame, the raw materials are separated and agitated multiple times within the mixing container, solving the problem of long mixing time in existing technologies and improving supply efficiency.
Patent Information
- Application Number
- CN202423311304.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-31
- Publication Date
- 2026-01-27
- Estimated Expiration
- 2034-12-31
AI Technical Summary
Existing dynamic mixing and supply devices require the raw materials to be transported into the container and thoroughly mixed once, which results in a long mixing time and is not conducive to continuous supply.
A dynamic mixing and enzymatic hydrolysis material supply system was designed, including components such as an outer solid cylinder, a torsion bottom groove, a torsion plug ring, and a transmission gear. Through the cooperation of the transmission gear and the torsion frame, the raw materials are separated and stirred multiple times in the mixing container, thereby achieving continuous mixing and supply of the raw materials.
It enables continuous mixing and supply of raw materials, shortens mixing time, and improves supply efficiency.
Smart Images

Figure CN223837429U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of material supply devices, and more specifically, it relates to a dynamic mixing enzymatic hydrolysis material supply system. Background Technology
[0002] Dynamic mixing is a process in which materials flow and disperse continuously or intermittently within a mixing container through mechanical motion. It is widely used in various industries such as chemical, pharmaceutical, food, and plastics. This mixing method can effectively improve the uniformity of materials, ensure stable product quality, and allow for flexible adjustment of mixing parameters to adapt to different process requirements. It utilizes moving parts such as stirrers and screws to promote the full contact, dispersion, and eventual homogeneity of materials of different components under certain conditions. When treating enzymes, dynamic mixing is required. To ensure the convenience of the dynamic mixing process, an auxiliary supply device is needed.
[0003] Based on existing technology, most existing dynamic mixing and supply devices transport raw materials into the container and then perform a thorough mixing process in one go. This requires the raw materials to remain inside the mixing container for mixing and then be discharged after mixing is completed. This results in a long mixing time, which is not conducive to continuous supply. Utility Model Content
[0004] To address the aforementioned technical problems, this disclosure relates to a dynamic mixing enzymatic hydrolysis material supply system. This system solves the problem that existing dynamic mixing supply devices typically deliver raw materials into a container and then perform a thorough mixing process in one go. This requires retaining the raw materials inside the mixing container for mixing and then discharging them after mixing, resulting in a long mixing time and hindering continuous supply.
[0005] The first aspect of this disclosure provides a dynamic mixing enzymatic hydrolysis material supply system, achieved through the following specific technical means:
[0006] A dynamic mixing enzymatic hydrolysis material supply system includes: an outer solid cylinder; a torsion groove at the bottom of the outer solid cylinder; a torsion plug ring rotatably connected inside the torsion groove; outer frames on the upper and lower sides of the outer solid cylinder; a transmission gear rotatably connected inside the outer solid cylinder; a bottom connecting ring fixed to the bottom of the outer solid cylinder; a separator cylinder rotatably connected inside the outer solid cylinder, and the separator cylinder is rotatably connected to the top of the bottom connecting ring, and the separator cylinder is connected to the transmission gear through a snap-fit connection; external leakage outlets are equidistantly opened on the outer wall of the separator cylinder; an inner mixing frame plate is equidistantly fixed inside the separator cylinder; and a torsion frame rotatably connected inside the outer solid cylinder, and the torsion frame is connected to the transmission gear. The gears are connected by a snap-fit mechanism; the bottom of the torsion frame is fixedly connected to the main mixing frame; the outer fixed cylinder is a cuboid structure with a cylindrical groove inside, the cylindrical groove of the outer fixed cylinder is connected to a shaft hole, the top of the outer fixed cylinder is equipped with a control motor, and the bottom of the outer fixed cylinder is equipped with a connection port; the torsion plug ring is a ring-shaped structure with ring-shaped protrusions on its inner and outer walls, and an arc-shaped through hole on its surface; the separator cylinder is a cylindrical structure with a ring-shaped groove at its bottom, snap-fit mechanisms on its inner wall, and a ring-shaped groove on its inner wall; the main mixing frame is a cylindrical rod structure with cylindrical protrusions on its surface.
[0007] In at least some embodiments, the torsion groove is configured as an annular groove, and an arc-shaped through hole is connected to the torsion groove.
[0008] In at least some embodiments, the outer frame is configured as a cylindrical structure, and the outer frame is provided with a threaded rod-like structure.
[0009] In at least some embodiments, the transmission gear is configured as a cylindrical gear structure, with a cylindrical rod on the bottom surface of the transmission gear; the bottom connecting ring is configured as a circular ring structure, with circular grooves respectively formed on the inner and outer walls of the bottom connecting ring.
[0010] In at least some embodiments, the external outlet is configured as an arc-shaped through hole.
[0011] In at least some embodiments, the inner frame plate is configured as a rectangular frame structure.
[0012] In at least some embodiments, the torsion frame is configured as a columnar gear structure, and the top of the torsion frame has a cylindrical structure.
[0013] The dynamic mixed enzymatic hydrolysis material supply system proposed in this invention has the following beneficial effects:
[0014] 1. An outer solid cylinder and a partition cylinder are set up. The bottom connecting ring is fixed inside the outer solid cylinder, which is convenient to rotate and connect with the partition cylinder. The cylindrical structure inside the outer solid cylinder divides its interior into three parts to facilitate the addition of raw materials while stirring and mixing. As the raw materials accumulate inside the outer solid cylinder, they are stirred and conveyed, which facilitates the feeding process during the mixing process.
[0015] 2. An inner mixing frame and a main mixing frame are installed. By fixing the main mixing frame to the bottom of the torsion frame, the raw material enzymes inside the cylindrical structure of the outer fixed cylinder can be stirred and mixed under the drive of the control motor. This facilitates the primary mixing of the raw material enzymes. As the raw material is added, it flows into the separator cylinder. The separator cylinder, driven by the transmission gear, drives the inner mixing frame to rotate, thus performing a secondary mixing of the raw material enzymes. This ensures that the raw material enzymes are fully mixed during the feeding process between the inner mixing frame and the main mixing frame. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the three-dimensional assembly structure of this utility model.
[0017] Figure 2 This is a schematic diagram of the three-dimensional assembly structure of this utility model from a bottom view.
[0018] Figure 3 This is an exploded structural diagram of the present invention.
[0019] Figure 4 This is an exploded bottom view structural diagram of this utility model.
[0020] Figure 5 This is a partial cross-sectional structural diagram of the present invention.
[0021] Figure 6 This utility model is composed of Figure 5 A schematic diagram of the enlarged structure of part A.
[0022] Figure 7 This is a schematic diagram of the raw material enzyme mixing process of this utility model.
[0023] In the diagram, the correspondence between component names and drawing numbers is as follows:
[0024] 1. Outer fixing cylinder; 2. Torsion bottom groove; 3. Torsion plug ring; 4. Outer fixing frame; 5. Transmission gear; 6. Bottom connecting ring; 7. Dividing cylinder; 8. Outer outlet; 9. Inner mixing frame plate; 10. Torsion frame; 11. Main mixing frame. Detailed Implementation
[0025] The embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples.
[0026] Example 1: As shown in the attached document Figure 1 To be continued Figure 7 As shown: This utility model provides a dynamic mixing enzymatic hydrolysis material supply system, including: an outer solid cylinder 1; a torsion groove 2 is provided at the bottom of the outer solid cylinder 1; a torsion plug ring 3 is rotatably connected inside the torsion groove 2; outer frames 4 are provided on the upper and lower sides of the outer solid cylinder 1 respectively; a transmission gear 5 is rotatably connected inside the outer solid cylinder 1; a bottom connecting ring 6 is fixedly connected to the bottom of the outer solid cylinder 1; a separator cylinder 7 is rotatably connected inside the outer solid cylinder 1, and the separator cylinder 7 is rotatably connected to the top of the bottom connecting ring 6, and the separator cylinder 7 and the transmission gear 5 are connected by a locking tooth; external leakage outlets 8 are provided at equal intervals on the outer wall of the separator cylinder 7; an inner mixing frame plate 9 is fixedly fixed at equal intervals inside the separator cylinder 7; a torsion frame 10 is rotatably connected inside the outer solid cylinder 1, and the torsion frame 10 and the transmission gear 5 are connected by a locking tooth; a main mixing frame 11 is fixedly connected to the bottom of the torsion frame 10; the outer solid cylinder 1 is configured as a cuboid structure, and a cylindrical groove is provided inside the outer solid cylinder 1, the cylindrical groove of the outer solid cylinder 1 is connected to a shaft hole, and a control is provided at the top of the outer solid cylinder 1. The motor and the bottom of the outer fixed cylinder 1 are provided with a connection port; the outer fixed cylinder 1 is used to assist in the installation and fixation of other structures of the device, so as to facilitate the mixing of raw materials while maintaining stability; the torsion plug ring 3 is set as a ring-shaped structure, and the inner and outer walls of the torsion plug ring 3 are respectively provided with ring-shaped protrusions, and the torsion plug ring 3 is provided with an arc-shaped through hole; the torsion plug ring 3 is used to block the torsion bottom groove 2, so as to discharge the internal direct current raw materials when the device is idle; the separator cylinder 7 is set as a cylindrical structure, the bottom of the separator cylinder 7 is provided with a ring-shaped groove, the inner wall of the separator cylinder 7 is provided with a locking tooth, and the inner wall of the separator cylinder 7 is provided with a ring-shaped groove; the separator cylinder 7 is used to cooperate with the cylindrical structure inside the outer fixed cylinder 1 to divide its internal space, so as to facilitate the conveying of raw materials; the main mixing frame 11 is set as a cylindrical rod structure, and the main mixing frame 11 is provided with a cylindrical protrusion; the main mixing frame 11 is used to perform preliminary mixing of raw material enzymes under the drive of the torsion frame 10, so as to facilitate its processing.
[0027] Example 2: Based on Example 1, as shown in the appendix Figure 1 To be continued Figure 7As shown, the torsion groove 2 is a circular groove with an arc-shaped through hole connected to it; the torsion groove 2 is used to assist in the installation of the torsion plug ring 3, so as to facilitate the external discharge of raw material enzymes while maintaining stability; the outer frame 4 is a cylindrical structure with a threaded rod structure; the outer frame 4 is used for docking with the external environment to maintain the overall stability of the device and facilitate its use; the transmission gear 5 is a columnar gear structure with a cylindrical rod on its bottom surface; the transmission gear 5 is used to cooperate with the separator cylinder 7 to rotate synchronously with the torsion frame 10, so as to facilitate the mixing of raw material enzymes; the bottom connecting ring 6 is a circular structure with sections on its inner and outer walls. The outer casing has a circular groove; the bottom ring 6 is used to constrain the separator cylinder 7 to ensure its stability during rotation; the outer outlet 8 is an arc-shaped through hole; the height of the outer outlet 8 is lower than the cylindrical structure inside the outer casing 1, and it is used to transport the raw material enzyme after secondary mixing; the inner mixing frame plate 9 is a rectangular frame structure; the inner mixing frame plate 9 is used to rotate under the drive of the separator cylinder 7 to facilitate secondary mixing of the raw material enzyme; the torsion frame 10 is a columnar gear structure, and the top of the torsion frame 10 has a cylindrical structure; the torsion frame 10 is used to rotate under the drive of the control motor to cooperate with the transmission gear 5 to control the rotation adjustment of the main mixing frame 11 and the separator cylinder 7.
[0028] The specific usage and function of this embodiment are as follows:
[0029] In this invention, during use, the outer fixed cylinder 1 is connected to a designated position via the outer fixed frame 4, and its bottom inlet and outlet are connected to external pipes respectively. Then, the raw material enzyme is transported into the cylindrical structure inside the outer fixed cylinder 1 through the inlet. The control motor is then started, causing the torsion frame 10 to drive the main mixing frame 11 to rotate, so as to facilitate the initial mixing of the raw material enzyme inside the cylindrical structure. As the amount of raw material enzyme increases, it is transported across the cylindrical structure to the space between the cylindrical structure and the separator 7. During the rotation of the torsion frame 10, the separator 7 is controlled to rotate and adjust through the transmission gear 5, so that the separator 7 drives the inner mixing frame plate 9 during the separation process, so as to facilitate the secondary mixing of the raw material enzyme. As the amount of raw material between the cylindrical structure and the separator 7 increases, the raw material enzyme that has undergone secondary mixing is transported into the gap between the outer fixed cylinder 1 and the separator 7 through the external outlet 8, and the mixed raw material is discharged through the outlet.
[0030] The following points should be noted in this article:
[0031] 1. The accompanying drawings of the embodiments disclosed herein only relate to the structures involved in the embodiments disclosed herein; other structures can be referred to in general design.
[0032] 2. Where there is no conflict, the embodiments of this disclosure and the features in the embodiments can be combined with each other to obtain new embodiments.
[0033] The above are merely specific embodiments of this disclosure, but the scope of protection of this disclosure is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this disclosure should be included within the scope of protection of this disclosure. Therefore, the scope of protection of this disclosure should be determined by the scope of the claims.
Claims
1. A dynamic mixing enzymatic hydrolysis material supply system, comprising: An outer fixed cylinder (1); characterized in that: a torsion bottom groove (2) is provided at the bottom of the outer fixed cylinder (1); a torsion plug ring (3) is rotatably connected inside the torsion bottom groove (2); an outer fixed frame (4) is provided on the upper and lower sides of the outer fixed cylinder (1); a transmission gear (5) is rotatably connected inside the outer fixed cylinder (1); a bottom connecting ring (6) is fixedly connected to the bottom of the outer fixed cylinder (1); a partition cylinder (7) is rotatably connected inside the outer fixed cylinder (1), and the partition cylinder (7) is rotatably connected to the top of the bottom connecting ring (6), and the partition cylinder (7) and the transmission gear (5) are connected by a snap-fit; an external leakage port (8) is provided at equal intervals on the outer wall of the partition cylinder (7); an inner mixing frame plate (9) is fixedly connected at equal intervals inside the partition cylinder (7); a torsion frame (10) is rotatably connected inside the outer fixed cylinder (1), and the torsion frame (10) and the transmission gear (5) are connected... The main mixing frame (11) is fixedly connected to the bottom of the torsion frame (10) via a toothed connection; the outer fixed cylinder (1) is configured as a cuboid structure, with a cylindrical groove inside the outer fixed cylinder (1), a shaft hole connected to the cylindrical groove inside the outer fixed cylinder (1), a cylindrical structure inside the outer fixed cylinder (1), a control motor at the top of the outer fixed cylinder (1), and a connection port at the bottom of the outer fixed cylinder (1); the torsion plug ring (3) is configured as a ring structure, with ring protrusions on the inner and outer walls of the torsion plug ring (3), and an arc-shaped through hole on the torsion plug ring (3); the separator cylinder (7) is configured as a cylindrical structure, with a ring groove at the bottom of the separator cylinder (7), a toothed connection on the inner wall of the separator cylinder (7), and a ring groove on the inner wall of the separator cylinder (7); the main mixing frame (11) is configured as a cylindrical rod structure, with a cylindrical protrusion on the main mixing frame (11).
2. The dynamic mixing enzymatic hydrolysis material supply system according to claim 1, characterized in that: The torsion groove (2) is configured as an annular groove, and an arc-shaped through hole is connected to the torsion groove (2).
3. The dynamic mixing enzymatic hydrolysis material supply system according to claim 1, characterized in that: The outer frame (4) is configured as a cylindrical structure, and the outer frame (4) is provided with a threaded rod structure.
4. The dynamic mixing enzymatic hydrolysis material supply system according to claim 1, characterized in that: The transmission gear (5) is configured as a cylindrical gear structure, and a cylindrical rod is provided on the bottom surface of the transmission gear (5); the bottom connecting ring (6) is configured as a circular ring structure, and circular grooves are respectively provided on the inner and outer walls of the bottom connecting ring (6).
5. The dynamic mixing enzymatic hydrolysis material supply system according to claim 1, characterized in that: The external outlet (8) is configured as an arc-shaped through hole.
6. The dynamic mixing enzymatic hydrolysis material supply system according to claim 1, characterized in that: The inner frame plate (9) is configured as a rectangular frame structure.
7. The dynamic mixing enzymatic hydrolysis material supply system according to claim 1, characterized in that: The torsion frame (10) is configured as a columnar gear structure, and the top of the torsion frame (10) is provided with a cylindrical structure.