Bio-enzyme fracturing equipment

By designing the feeding and dispersing mechanism, the problem of excessively long fusion time caused by concentrated enzymatic hydrolysate was solved, enabling rapid mixing of enzymatic hydrolysate and raw materials and improving the fracturing speed of biological enzymes.

CN223837432UActive Publication Date: 2026-01-27JIANGXI KENUO BIOTECH
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Patent Information

Application Number
CN202520025034.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-06
Publication Date
2026-01-27
Estimated Expiration
2035-01-06

AI Technical Summary

Technical Problem

In existing technologies, the enzymatic hydrolysate is concentrated in one place during the bio-enzyme fracturing process, resulting in an excessively long fusion time with the raw materials and reducing the fracturing speed of the bio-enzyme.

Method used

The device employs a feeding mechanism and a dispersing mechanism. The feeding mechanism uses a bent pipe and a speed reducer to evenly feed the enzymatic hydrolysate into the bio-enzyme fracturing device, while the dispersing mechanism uses blades and fan blades to diffuse the enzymatic hydrolysate and improve the mixing speed.

Benefits of technology

This method achieves uniform addition and rapid diffusion of the enzymatic hydrolysate, increases the mixing area and speed between the hydrolysate and the raw materials, and thus accelerates the fracturing speed of the bio-enzyme.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of bio-enzyme fracturing equipment, and discloses bio-enzyme fracturing equipment which comprises a fracturing tank, a feeding mechanism and a bio-enzyme fracturing device, the feeding mechanism is assembled at the top of the fracturing tank, the bio-enzyme fracturing device is assembled at the bottom of the inner side of the fracturing tank, first conical teeth are assembled in the fracturing tank, and second conical teeth are assembled at the bottom of the inner side of the fracturing tank. The feeding mechanism comprises a bent pipe, a disc is assembled at the bottom of the bent pipe, a gear motor is assembled at the bottom of the disc, and a scattering mechanism is assembled in the bent pipe. According to the bio-enzyme fracturing equipment, the situation that enzymatic hydrolysate is concentrated at one position, too much time is needed for complete fusion of the enzymatic hydrolysate and raw materials, and then the fracturing speed of bio-enzyme is reduced is avoided, meanwhile, through the additionally-arranged scattering mechanism, when the enzymatic hydrolysate is fed, the enzymatic hydrolysate is automatically scattered and diffused, and the fracturing efficiency of the bio-enzyme is improved. Therefore, the mixing area and speed of the enzymatic hydrolysate and the raw materials are greatly improved, and the fracturing speed of the biological enzyme is increased.
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Description

Technical Field

[0001] This utility model relates to the technical field of bio-enzyme fracturing equipment, specifically a bio-enzyme fracturing device. Background Technology

[0002] Animal feed refers to the food provided by humans to animals to meet their needs for survival, growth, reproduction, and production. Animal feed includes live feed, animal meal, roughage, protein feed, and energy feed, etc.

[0003] When processing animal feed, the internal biological enzymes need to be cracked. During the cracking process, an appropriate enzymatic hydrolysate needs to be added to the enzymes. In the existing technology, the enzymatic hydrolysate is directly added into the device, which causes the hydrolysate to concentrate in one place. This requires too much time to fully integrate with the raw materials, thereby reducing the cracking speed of the biological enzymes. Utility Model Content

[0004] (a) Technical problems to be solved

[0005] To address the shortcomings of existing technologies, this invention provides a bio-enzyme fracturing device to solve the technical problem that the enzyme hydrolysate is concentrated in one place, requiring excessive time to fully integrate with the raw materials, thereby reducing the fracturing speed of the bio-enzyme.

[0006] (II) Technical Solution

[0007] To achieve the above objectives, this utility model provides the following technical solution: a bio-enzyme fracturing device, comprising: a fracturing tank, a feeding mechanism, and a bio-enzyme fracturing device, wherein the feeding mechanism is mounted on the top of the fracturing tank, the bio-enzyme fracturing device is mounted on the inner bottom of the fracturing tank, a first conical tooth is mounted inside the fracturing tank, the feeding mechanism includes a bent pipe, a disc is mounted at the bottom of the bent pipe, a reduction motor is mounted at the bottom of the disc, and a dispersing mechanism is mounted inside the bent pipe.

[0008] The dispersing mechanism includes a vertical shaft, with a blade connected to the top of the vertical shaft and a fan blade connected to the bottom of the vertical shaft. A second conical tooth is sleeved on the outside of the vertical shaft, and a third conical tooth is meshed with the outside of the second conical tooth. A horizontal shaft is connected to the left side of the third conical tooth, and a fourth conical tooth is connected to the outside of the horizontal shaft. The fourth conical tooth meshes with the first conical tooth.

[0009] Preferably, the bottom of the geared motor is equipped with a support base, which is connected to the bio-enzyme fracturing device. The support base can support and fix the geared motor.

[0010] Preferably, the front of the fracturing tank is equipped with a discharge pipe, and the outside of the discharge pipe is equipped with a valve. The discharge pipe is connected to the bio-enzyme fracturing device, and the discharge pipe facilitates the discharge of the bio-enzyme that has been fractured inside the bio-enzyme fracturing device.

[0011] Preferably, the fracturing tank is equipped with a guide tube, the inside of which is polished, and the guide tube can guide the material discharged from the bend into the interior of the bio-enzyme fracturing device.

[0012] Preferably, the outside of the bend is fitted with a bearing, which is connected to the fracturing tank and can support the bend to be driven to rotate.

[0013] Preferably, the top of the vertical shaft is connected to a limiting seat via a bearing with a seat, the limiting seat is connected to a bent pipe, and a bearing is sleeved on the outside of the horizontal shaft, the bearing is connected to the bent pipe. The limiting seat can support the vertical shaft, and the bearing can support the horizontal shaft.

[0014] (III) Beneficial Effects

[0015] Compared with the prior art, this utility model provides a bio-enzyme fracturing device, which has the following beneficial effects:

[0016] In this bio-enzyme fracturing equipment, the enzymatic hydrolysate is rapidly and evenly fed into the interior of the bio-enzyme fracturing device via an added feeding mechanism. This prevents the hydrolysate from concentrating in one place, requiring excessive time to fully integrate with the raw materials, thus reducing the fracturing speed of the bio-enzyme. Simultaneously, the added dispersing mechanism automatically disperses and diffuses the hydrolysate during feeding, significantly increasing the mixing area and speed between the hydrolysate and the raw materials, thereby increasing the fracturing speed of the bio-enzyme. Attached Figure Description

[0017] Figure 1 This is a front view of the present utility model;

[0018] Figure 2 This is a front sectional view of the present invention;

[0019] Figure 3 This is a front view of the feeding mechanism of this utility model;

[0020] Figure 4 This is an external schematic diagram of the dispersing mechanism of this utility model.

[0021] In the diagram: 1. Fracturing tank; 11. Discharge pipe; 12. Guide pipe; 2. Feeding mechanism; 21. Bend; 22. Disc; 23. Gear motor; 24. Support seat; 3. First conical tooth; 4. Bio-enzyme fracturing device; 5. Dispersing mechanism; 51. Vertical shaft; 52. Fan blade; 53. Blade; 54. Second conical tooth; 55. Third conical tooth; 56. Horizontal shaft; 57. Fourth conical tooth; 58. Limiting seat. Detailed Implementation

[0022] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0023] This utility model provides a technical solution, a bio-enzyme fracturing device. Please refer to [link / reference]. Figure 1 , Figure 2 , Figure 3 and Figure 4 The device includes: a fracturing tank 1, a feeding mechanism 2, and a bio-enzyme fracturing device 4. The feeding mechanism 2 is mounted on the top of the fracturing tank 1, and the bio-enzyme fracturing device 4 is mounted on the inner bottom of the fracturing tank 1. The fracturing tank 1 is equipped with a first conical tooth 3. The feeding mechanism 2 includes a bent pipe 21, a disc 22 is mounted on the bottom of the bent pipe 21, a geared motor 23 is mounted on the bottom of the disc 22, and a dispersing mechanism 5 is mounted inside the bent pipe 21.

[0024] The fracturing tank 1 is used to store bio-enzyme raw materials, the feeding mechanism 2 is used to feed the raw materials, the first conical tooth 3 is used to mesh with the dispersing mechanism 5, the bio-enzyme fracturing device 4 is a common bio-enzyme fracturing equipment in the prior art, and the bent pipe 21 can be driven to rotate by the geared motor 23 through the disc 22.

[0025] The dispersing mechanism 5 includes a vertical shaft 51, with a blade 53 connected to the top of the vertical shaft 51 and a fan blade 52 connected to the bottom of the vertical shaft 51. A second conical tooth 54 is sleeved on the outside of the vertical shaft 51, and a third conical tooth 55 is meshed with the outside of the second conical tooth 54. A horizontal shaft 56 is connected to the left side of the third conical tooth 55, and a fourth conical tooth 57 is connected to the outside of the horizontal shaft 56. The fourth conical tooth 57 meshes with the first conical tooth 3.

[0026] The vertical shaft 51 is used to drive the fan blades 52 and the blades 53. The fan blades 52 and the blades 53 are used to break up and diffuse the raw materials. The second conical tooth 54 and the third conical tooth 55 are driven by the horizontal shaft 56. The fourth conical tooth 57 meshes with the first conical tooth 3 for transmission.

[0027] The bottom of the geared motor 23 is equipped with a support base 24, which is connected to the bio-enzyme fracturing device 4. The support base 24 can support and fix the geared motor 23. The front of the fracturing tank 1 is equipped with a discharge pipe 11, and a valve is installed on the outside of the discharge pipe 11. The discharge pipe 11 is connected to the bio-enzyme fracturing device 4, and the discharge pipe 11 facilitates the discharge of the bio-enzyme that has been fractured inside the bio-enzyme fracturing device 4.

[0028] The fracturing tank 1 is equipped with a guide tube 12. The inside of the guide tube 12 is polished. The guide tube 12 can guide the material discharged from the bend tube 21 into the interior of the bio-enzyme fracturing device 4. The top feed port of the bio-enzyme fracturing device 4 is connected to the bottom of the guide tube 12. The outside of the bend tube 21 is equipped with a bearing, which is connected to the fracturing tank 1. The bearing can support the bend tube 21 to be driven to rotate.

[0029] The top of the vertical shaft 51 is connected to the limiting seat 58 via a bearing with a seat. The limiting seat 58 is connected to the bent tube 21. The outside of the horizontal shaft 56 is fitted with a bearing, which is connected to the bent tube 21. The limiting seat 58 can support the vertical shaft 51, and the bearing can support the horizontal shaft 56.

[0030] This scheme first involves feeding the raw materials into the bio-enzyme fracturing device 4, then feeding the enzymatic hydrolysate into the bent tube 21. The reduction motor 23 is started to drive the disc 22 to rotate, which in turn drives the bent tube 21 to rotate. The bent tube 21 evenly feeds the enzymatic hydrolysate into the bio-enzyme fracturing device 4. At the same time, as the bent tube 21 rotates, it drives the fourth conical tooth 57 to rotate, which then meshes with the first conical tooth 3. The rotating fourth conical tooth 57 drives the horizontal shaft 56 to rotate, and then drives the second conical tooth 54 to rotate through the third conical tooth 55. Finally, it drives the vertical shaft 51, the fan blade 52, and the blade 53 to rotate. The rotating blade 53 disperses the enzymatic hydrolysate fed out by the bent tube 21, and the fan blade 52 then diffuses the dispersed enzymatic hydrolysate into the top of the bio-enzyme fracturing device 4, thereby increasing the mixing speed of the enzymatic hydrolysate and the raw materials and increasing the fracturing speed of the bio-enzyme.

[0031] When the enzymatic hydrolysate is fed, the added feeding mechanism 2 quickly and evenly introduces the enzymatic hydrolysate into the interior of the bio-enzyme fracturing device 4, avoiding the hydrolysate from concentrating in one place and requiring too much time to fully integrate with the raw materials, thereby reducing the fracturing speed of the bio-enzyme. At the same time, the added dispersing mechanism 5 automatically disperses and diffuses the enzymatic hydrolysate during feeding, thereby significantly increasing the mixing area and speed of the enzymatic hydrolysate and the raw materials, and increasing the fracturing speed of the bio-enzyme.

[0032] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0033] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A bio-enzyme fracturing device, comprising: A fracturing tank (1), a feeding mechanism (2), and a bio-enzyme fracturing device (4) are characterized in that: the feeding mechanism (2) is mounted on the top of the fracturing tank (1), the bio-enzyme fracturing device (4) is mounted on the inner bottom of the fracturing tank (1), the interior of the fracturing tank (1) is equipped with a first conical tooth (3), the feeding mechanism (2) includes a bent pipe (21), the bottom of the bent pipe (21) is equipped with a disc (22), the bottom of the disc (22) is equipped with a reduction motor (23), and the interior of the bent pipe (21) is equipped with a dispersing mechanism (5); The dispersing mechanism (5) includes a vertical shaft (51), with a blade (53) connected to the top of the external part of the vertical shaft (51) and a fan blade (52) connected to the bottom of the external part of the vertical shaft (51). A second conical tooth (54) is sleeved on the external part of the vertical shaft (51), and a third conical tooth (55) is meshed with the external part of the second conical tooth (54). A horizontal shaft (56) is connected to the left side of the third conical tooth (55), and a fourth conical tooth (57) is connected to the external part of the horizontal shaft (56). The fourth conical tooth (57) meshes with the first conical tooth (3).

2. The bio-enzyme fracturing equipment according to claim 1, characterized in that: The bottom of the geared motor (23) is equipped with a support base (24), which is connected to the bio-enzyme fracturing device (4).

3. The bio-enzyme fracturing equipment according to claim 1, characterized in that: The front of the fracturing tank (1) is equipped with a discharge pipe (11), and a valve is installed on the outside of the discharge pipe (11). The discharge pipe (11) is connected to the bio-enzyme fracturing device (4).

4. The bio-enzyme fracturing equipment according to claim 1, characterized in that: The fracturing tank (1) is equipped with a guide tube (12), the inside of which is polished.

5. The bio-enzyme fracturing equipment according to claim 1, characterized in that: The outside of the bend (21) is fitted with a bearing, which is connected to the fracturing tank (1).

6. The bio-enzyme fracturing equipment according to claim 1, characterized in that: The top of the vertical shaft (51) is connected to a limiting seat (58) via a seated bearing. The limiting seat (58) is connected to the bent pipe (21). The outside of the horizontal shaft (56) is fitted with a bearing, which is connected to the bent pipe (21).