Sulfur autotrophic carrier raw material synthesis equipment

By designing a sulfur autotrophic carrier raw material synthesis equipment including mixing barrels, feed barrels, rotating motors and water transport pipes, the problem of the equipment requiring additional processes after humidification and mixing is solved, efficient humidification and mixing of raw materials is achieved, and the efficiency of the carrier synthesis is improved.

CN222956326UActive Publication Date: 2025-06-10新乡市利康生物科技有限公司
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Patent Information

Application Number
CN202422180610.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-05
Publication Date
2025-06-10
Estimated Expiration
2034-09-05

AI Technical Summary

Technical Problem

The sulfur autotrophic carrier raw material synthesis equipment requires additional processes after humidification and mixing, with a long process and low efficiency, and it is impossible to synthesize the raw materials into a carrier in a running manner.

Method used

A sulfur autotrophic carrier raw material synthesis equipment including a mixing cylinder, a feeding cylinder, a rotating motor and a water pipe is designed. The humidification and mixing of raw materials is achieved through the mixing cylinder and a water pipe, and stirring is driven by a rotating motor to achieve full mixing of raw materials.

Benefits of technology

The humidification and mixing process of raw materials is simplified, the work flow is reduced, the work efficiency is improved, and the flow-through synthesis of raw materials is realized, which improves the synthesis efficiency of the carrier.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses sulfur autotrophic carrier raw material synthesis equipment, and relates to the related technical field of sulfur autotrophic raw material production. The device comprises a blending barrel, a material conveying barrel, a rotating motor and water conveying pipes, the water conveying pipes are fixed to the position, close to one end, in the blending barrel in an annular array penetrating mode, the material conveying barrel is arranged above the position, close to one end, of the outer side of the blending barrel, and the rotating motor is fixed to the center of the top end of the material conveying barrel; and the top end of the conveying barrel on the outer side of the rotating motor fixedly communicates with conveying pipes in an annular array, the top end of each conveying pipe fixedly communicates with a conveying hopper, and the top end of each conveying hopper fixedly communicates with a soft sleeve. Through the arrangement of the blending cylinder, the conveying cylinder, the rotating motor and the water conveying pipe, the problems that raw materials after being humidified and mixed by sulfur autotrophic carrier raw material synthesis equipment need additional working procedures, the flow is relatively long, the efficiency is relatively low, and the raw materials cannot be synthesized into carriers in a streamline manner are solved.
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Description

Technical Field

[0001] The utility model belongs to the technical field related to the production of sulfur autotrophic raw materials, and particularly relates to a synthesis device for sulfur autotrophic carrier raw materials. Background Technique

[0002] The raw materials of sulfur autotrophic carriers mainly include sulfur, activated carbon, bentonite, etc. Sulfur is the core component of sulfur autotrophic filter media, providing the sulfur source required by microorganisms. Activated carbon and bentonite serve as carriers, providing a surface for microorganisms to attach and grow, and enhancing the adsorption performance of the filter media. In addition, the preparation of sulfur autotrophic carriers may also involve sludge carbonized materials, dewatered sludge, etc. These materials can provide a porous structure, which is beneficial for microorganisms to attach and may serve as a slow-release carbon source or provide necessary nutrients. In some technologies, the raw materials of sulfur autotrophic carriers may also include inorganic materials such as zeolite powder and calcium carbonate powder. These materials can be modified under high-temperature treatment to form carriers suitable for the growth of sulfur autotrophic bacteria. When these components are processed, the raw materials of the carrier need to be directly synthesized through a synthesis device, but there are still the following drawbacks in actual use:

[0003] 1. When the sulfur autotrophic carrier raw material synthesis device is working, the raw materials are directly mixed thoroughly by turning. However, the humidity of the raw materials is usually low. In subsequent granulation, it is necessary to re-humidify and then mix evenly. During the operation process, an additional working procedure is required, the working process is long, and the working efficiency is not high enough.

[0004] 2. During the operation of the sulfur autotrophic carrier raw material synthesis device, the carrier raw materials are directly mixed evenly by mixing the raw materials. When working, the raw materials directly enter the mixing device for mixing and synthesis. When working, it takes a long time to stir to mix evenly, and the raw materials cannot be synthesized into a carrier in a flowing water manner. Content of the Utility Model

[0005] The purpose of the utility model is to provide a synthesis device for sulfur autotrophic carrier raw materials. By setting a dispensing cylinder, a feeding cylinder, a rotating motor and a water supply pipe, the problems that the raw materials need additional processes after humidification and mixing, the process is long, the efficiency is low, and the raw materials cannot be synthesized into a carrier in a flowing water manner are solved.

[0006] To solve the above technical problems, the utility model is realized through the following technical solutions:

[0007] The utility model relates to a sulfur autotrophic carrier raw material synthesis device, which includes a blending cylinder, a feeding cylinder, a rotating motor and a water delivery pipe. At a position near one end in the blending cylinder, water delivery pipes are fixedly arranged in a circumferential array and penetrate through. Above one end of the outer side of the blending cylinder, a feeding cylinder is arranged. At the center of the top end of the feeding cylinder, a rotating motor is fixedly arranged. At the top end of the feeding cylinder outside the rotating motor, feeding pipes are fixedly communicated in a circumferential array. The top end of each feeding pipe is fixedly communicated with a feeding hopper. The top end of the feeding hopper is fixedly communicated with a soft sleeve. During operation, the sulfur autotrophic raw materials entering the blending cylinder are fully and evenly mixed through the blending cylinder. The raw materials are conveyed into the feeding hopper 204 through the soft sleeve, concentrated into the feeding pipe 203 through the feeding hopper 204, concentrated into the feeding cylinder 2 through the feeding pipe 203, and the raw materials in the stirring feeding cylinder are driven by the rotating motor.

[0008] Further, a driving motor is fixedly arranged at the lower part of one end face of the blending cylinder close to the feeding cylinder. The output end of the driving motor is fixedly provided with a stirring shaft. The stirring shaft penetrates and is inserted into the blending cylinder. The blending cylinder drives the stirring shaft to rotate through the driving motor. By the rotation of the stirring shaft, the stirring spiral blades are driven to rotate.

[0009] Further, stirring spiral blades are fixedly arranged on the circumferential side of the stirring shaft in the blending cylinder. A discharge port is opened at the lower part of one end of the blending cylinder far from the stirring spiral blades. Through the rotation of the stirring spiral blades in the blending cylinder, the raw materials therein are fully stirred and evenly mixed, and the raw materials are discharged through the discharge port.

[0010] Further, a concentrating hopper is fixedly arranged at the inner bottom of the feeding cylinder. The bottom end of the feeding cylinder is fixedly communicated with a concentrating pipe. The bottom end of the concentrating pipe is fixedly communicated with the upper part of the outer peripheral surface of the blending cylinder. The concentrating pipe is arranged between the water delivery pipe and the driving motor. After the raw materials are concentrated by the concentrating hopper in the feeding cylinder, they are conveyed into the blending cylinder through the concentrating pipe.

[0011] Further, the output end of the rotating motor is fixedly provided with a driving shaft. The driving shaft penetrates and is inserted into the top end of the feeding cylinder. Mixing spiral blades are fixedly arranged on the circumferential side of the driving shaft in the feeding cylinder. The rotating motor drives the driving shaft to rotate, and drives the mixing spiral blades to rotate.

[0012] Further, a nozzle is fixedly arranged at one end of each water delivery pipe close to the central axis in the blending cylinder. One end of the nozzle close to the central axis in the blending cylinder is spherical. The water delivery pipe sprays the water conveyed therein into the blending cylinder through the nozzle.

[0013] The utility model has the following beneficial effects:

[0014] 1. The utility model solves the problems that after the sulfur autotrophic carrier raw material synthesis equipment humidifies and mixes the raw materials, the raw materials need additional processes, the process is long, and the efficiency is low by setting a dispensing cylinder and a water delivery pipe. After the water conveyed in the water delivery pipe enters the nozzle and is sprayed out by the nozzle, it humidifies the sulfur autotrophic raw materials passing through the dispensing cylinder. After adjusting the humidity of the sulfur autotrophic raw materials, the stirring spiral blades rotate to drive the humidified raw materials to be fully mixed evenly, and the sulfur autotrophic raw materials are adjusted to be fully mixed evenly, so that during the synthesis of the carrier, no additional humidification is required, and the work process is reduced.

[0015] 2. The utility model solves the problem that the sulfur autotrophic carrier raw material synthesis equipment cannot synthesize the raw materials into a carrier in a flowing water manner by setting a dispensing cylinder, a feeding cylinder and a rotating motor. First, start the rotating motor at the top of the feeding cylinder. Then, the materials are conveyed into the soft sleeve, and the materials are concentrated into the feeding hopper through the soft sleeve, concentrated into the feeding pipe through the feeding hopper, and concentrated into the feeding cylinder through the feeding pipe. Then, the rotating motor drives the driving shaft to rotate. Through the rotation of the driving shaft, the mixing spiral blades are driven to rotate, so that the materials entering the feeding cylinder are preliminarily stirred, and the raw materials are conveyed to the concentrating hopper, concentrated into the concentrating pipe through the concentrating hopper, and conveyed to the dispensing cylinder through the concentrating pipe for further mixing, so that the sulfur autotrophic carrier raw material synthesis equipment can synthesize the raw materials into a carrier in a flowing water manner, and the synthesis efficiency of the carrier is higher. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] In order to more clearly illustrate the technical solutions of the embodiments of the present utility model, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the following drawings are only some embodiments of the present utility model. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.

[0017] Figure 1 It is a three-dimensional assembly structure diagram of a sulfur autotrophic carrier raw material synthesis equipment;

[0018] Figure 2 It is a three-dimensional semi-sectional structure diagram of the dispensing cylinder;

[0019] Figure 3 It is a three-dimensional partially sectional structure diagram of the feeding cylinder;

[0020] Figure 4 It is a three-dimensional structure diagram of the rotating motor;

[0021] Figure 5 It is a three-dimensional structure diagram of the water delivery pipe.

[0022] Reference Signs:

[0023] 1. Blending cylinder; 101. Driving motor; 102. Stirring shaft; 103. Stirring spiral blade; 104. Discharge port; 2. Feeding cylinder; 201. Concentrating hopper; 202. Concentrating pipe; 203. Feeding pipe; 204. Feeding hopper; 205. Flexible sleeve; 3. Rotating motor; 301. Driving shaft; 302. Mixing spiral blade; 4. Water supply pipe; 401. Sprinkler head. Detailed implementation manners

[0024] 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 making creative efforts belong to the scope of protection of the present invention. Specific Embodiment 1

[0026] Please refer to Figures 1-4 , the present invention is a sulfur autotrophic carrier raw material synthesis device, including a blending cylinder 1, a feeding cylinder 2, a rotating motor 3 and a water supply pipe 4. At a position near one end in the blending cylinder 1, the water supply pipes 4 are fixedly connected through an annular array. The end of the water supply pipe 4 away from the blending cylinder 1 is communicated with the water supply pipeline to deliver water to the sprinkler head 401. The blending cylinder 1 contains raw materials therein. Through the water supply pipe 4, water is delivered to the sprinkler head 401 and sprayed into the blending cylinder 1 to adjust the humidity of the materials passing through in the blending cylinder 1. Above the outer side of the blending cylinder 1 near one end, there is a feeding cylinder 2. The blending cylinder 1 collects materials through the feeding cylinder 2. At the center of the top end of the feeding cylinder 2, a rotating motor 3 is fixedly installed. The driving shaft 301 is driven to rotate by the rotating motor 3. At the top end of the feeding cylinder 2 outside the rotating motor 3, the feeding pipes 203 are fixedly connected through an annular array. The top end of each feeding pipe 203 is fixedly connected with a feeding hopper 204. The top end of the feeding hopper 204 is fixedly connected with a flexible sleeve 205. During operation, the top end of the flexible sleeve 205 is communicated with the pipeline for delivering raw materials, so that the raw materials are delivered to the feeding hopper 204, concentrated into the feeding pipe 203 through the feeding hopper 204, and concentrated into the feeding cylinder 2 through the feeding pipe 203.

[0027] Specifically, a driving motor 101 is fixedly installed at the lower part of one end face of the blending cylinder 1 close to the feeding cylinder 2. The output end of the driving motor 101 is fixedly connected with a stirring shaft 102. The stirring shaft 102 is inserted through the blending cylinder 1. The blending cylinder 1 drives the stirring shaft 102 to rotate through the driving motor 101. Through the rotation of the stirring shaft 102, the stirring spiral blade 103 is driven to rotate.

[0028] Further, stirring spiral blades 103 are fixed on the circumferential side of the stirring shaft 102 in the dispensing cylinder 1. A discharge port 104 is provided at the lower part of one end of the dispensing cylinder 1 away from the stirring spiral blades 103. Through the rotation of the stirring spiral blades 103, the sulfur autotrophic raw material components entering the dispensing cylinder 1 are transported while rotating, so that the raw materials are evenly stirred and discharged through the discharge port 104 of the dispensing cylinder 1.

[0029] Further, a centralized hopper 201 is fixed at the inner bottom of the material conveying cylinder 2. The bottom end of the material conveying cylinder 2 is fixedly communicated with a centralized pipe 202. The bottom end of the centralized pipe 202 is fixedly communicated with the upper part of the outer circumference of the dispensing cylinder 1. The centralized pipe 202 is arranged between the water delivery pipe 4 and the driving motor 101. The material conveying cylinder 2 concentrates the sulfur autotrophic raw materials conveyed in the material conveying pipe 203 into it through the centralized hopper 201, and then transports them into the dispensing cylinder 1 through the centralized pipe 202.

[0030] Further, a driving shaft 301 is fixed at the output end of the rotating motor 3. The driving shaft 301 is inserted through and connected to the top end of the material conveying cylinder 2. Mixing spiral blades 302 are fixed on the circumferential side of the driving shaft 301 in the material conveying cylinder 2. The rotating motor 3 drives the mixing spiral blades 302 to rotate through the driving shaft 301, so that the raw materials entering the material conveying cylinder 2 are preliminarily mixed and concentrated into the centralized hopper 201.

[0031] The operation process of this embodiment is as follows: During work, first start the rotating motor 3 at the top end of the material conveying cylinder 2. Immediately, the material is conveyed into the soft sleeve 205, and the material is concentrated into the material conveying hopper 204 through the soft sleeve 205, concentrated into the material conveying pipe 203 through the material conveying hopper 204, and concentrated into the material conveying cylinder 2 through the material conveying pipe 203. Immediately, the rotating motor 3 drives the driving shaft 301 to rotate. Through the rotation of the driving shaft 301, the mixing spiral blades 302 are driven to rotate, so that the materials entering the material conveying cylinder 2 are preliminarily stirred, and the raw materials are transported to the centralized hopper 201, concentrated into the centralized pipe 202 through the centralized hopper 201, and transported into the dispensing cylinder 1 through the centralized pipe 202. The dispensing cylinder 1 drives the stirring shaft 102 to rotate through the driving motor 101. Through the rotation of the stirring shaft 102, the stirring spiral blades 103 are driven to rotate. Through the rotation of the stirring spiral blades 103, the sulfur autotrophic raw material components entering the dispensing cylinder 1 are transported while rotating, so that the raw materials are evenly stirred, the carrier components are synthesized, and discharged through the discharge port 104 of the dispensing cylinder 1. Specific Embodiment Two

[0033] Please refer to Figure 1 、 2, 3. On the basis of the first specific embodiment, a spray head 401 is fixed to one end of each water delivery pipe 4 close to the central axis in the dispensing cylinder 1. One end of the spray head 401 close to the central axis in the dispensing cylinder 1 is spherical. After the water conveyed in the water delivery pipe 4 enters the spray head 401 and is sprayed out through the spray head 401, the sulfur autotrophic raw materials passing through in the dispensing cylinder 1 are humidified. After adjusting the humidity of the sulfur autotrophic raw materials, by rotating the stirring spiral blade 103, the humidified raw materials are driven to be fully mixed and uniform, and the sulfur autotrophic raw materials are adjusted to be fully mixed and uniform.

[0034] The operation process of this embodiment is as follows: After the water conveyed in the water delivery pipe 4 enters the spray head 401 and is sprayed out through the spray head 401, the sulfur autotrophic raw materials passing through in the dispensing cylinder 1 are humidified. After adjusting the humidity of the sulfur autotrophic raw materials, by rotating the stirring spiral blade 103, the humidified raw materials are driven to be fully mixed and uniform, and the sulfur autotrophic raw materials are adjusted to be fully mixed and uniform.

[0035] In the description of this specification, the description with reference to terms such as "one embodiment", "example", "specific example", etc. means that the specific features, structures, materials or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present invention. In this specification, the schematic representations of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in a suitable manner in any one or more embodiments or examples.

[0036] 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 present invention to the specific embodiments described. Obviously, according to the content of this specification, many modifications and changes can be made. This specification selects and specifically describes these embodiments in order to better explain the principle and practical application of the present invention, so that those skilled in the relevant 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 sulfur autotrophic carrier raw material synthesis device, comprising a mixing cylinder (1), a material delivery cylinder (2), a rotating motor (3) and a water delivery pipe (4), characterized in that: A water delivery pipe (4) is fixedly connected in a circular array in a position near one end of the mixing cylinder (1), a material delivery cylinder (2) is arranged above the outside of the mixing cylinder (1) near one end, a rotating motor (3) is fixed at the center of the top of the material delivery cylinder (2), and a material delivery pipe (203) is fixedly connected to the top of the material delivery cylinder (2) outside the rotating motor (3) in a circular array, and the top of each material delivery pipe (203) is fixedly connected to a material delivery hopper (204), and the top of the material delivery hopper (204) is fixedly connected to a soft sleeve (205).

2. The sulfur autotrophic carrier raw material synthesis equipment according to claim 1, characterized in that: A driving motor (101) is fixed to the lower part of one end surface of the mixing cylinder (1) close to the feeding cylinder (2), and a stirring shaft (102) is fixed to the output end of the driving motor (101), and the stirring shaft (102) is inserted through the mixing cylinder (1).

3. A sulfur autotrophic carrier raw material synthesis equipment according to claim 2, characterized in that: A stirring spiral blade (103) is fixed on the circumference of the stirring shaft (102) in the mixing tube (1), and a discharge port (104) is provided at the lower part of one end of the mixing tube (1) away from the stirring spiral blade (103).

4. The sulfur autotrophic carrier raw material synthesis equipment according to claim 1, characterized in that: A concentrating bucket (201) is fixedly provided at the inner bottom of the feeding cylinder (2), a concentrating pipe (202) is fixedly provided at the bottom end of the feeding cylinder (2), the bottom end of the concentrating pipe (202) is fixedly provided at the top of the outer peripheral surface of the mixing cylinder (1), and the concentrating pipe (202) is arranged between the water delivery pipe (4) and the driving motor (101).

5. The sulfur autotrophic carrier raw material synthesis equipment according to claim 1, characterized in that: A driving shaft (301) is fixed to the output end of the rotating motor (3), and the driving shaft (301) is inserted through the top end of the feeding cylinder (2). A mixing spiral blade (302) is fixed to the circumference of the driving shaft (301) in the feeding cylinder (2).

6. The sulfur autotrophic carrier raw material synthesis equipment according to claim 1, characterized in that: A nozzle (401) is fixed to one end of each water delivery pipe (4) close to the central axis of the mixing tube (1); the nozzle (401) is spherically arranged at one end close to the central axis of the mixing tube (1).