Raw material grinding device for nanoscale sulfur autotrophic filter material production

By designing a raw material grinding device for the production of nano-grade sulfur autotrophic filter media, and using a separation mechanism to remove metal particles in advance to ensure the purity of the raw materials, efficient and stable production of nano-grade sulfur autotrophic filter media has been achieved. This solves the problem of impurity introduction in existing technologies and improves product purity and equipment lifespan.

CN223491044UActive Publication Date: 2025-10-31BEIJING HAIBOXIN ENVIRONMENTAL PROTECTION TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422841325.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-21
Publication Date
2025-10-31
Estimated Expiration
2034-11-21

AI Technical Summary

Technical Problem

Existing grinding equipment may introduce impurities, especially metal particles, during the grinding process, which can affect the chemical properties and application effects of sulfur-autotrophic filter media.

Method used

A raw material grinding device for the production of nanoscale sulfur self-trophic filter media was designed, comprising a support mechanism, a separation mechanism, and a grinding mechanism. The separation mechanism removes metal particles in advance through an adsorption component to ensure the purity of the raw material, and the grinding mechanism achieves nanoscale particle size through precise control.

Benefits of technology

It significantly improves the purity and grinding precision of nano-grade sulfur autotrophic filter media, extends equipment lifespan, reduces maintenance costs, and achieves efficient and stable production of nano-grade filter media.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a raw material grinding device for nanoscale sulfur autotrophic filter material production, which belongs to the technical field of raw material grinding and comprises a supporting mechanism, a screening channel fixedly mounted at the top of the supporting mechanism, a discharging channel fixedly mounted on the surface of the supporting mechanism and an observation window fixedly mounted at the top of the discharging channel. The discharging door is adaptively mounted on the surface of the discharging channel; and the separating mechanism is arranged at the top of the screening channel. Metal particles can be removed in advance through the adsorption assembly, the service life of the grinding mechanism can be prolonged, the equipment maintenance cost is reduced, it is guaranteed that the grinding mechanism can stably produce the nanoscale filter material meeting the requirement, the purity of the nanoscale sulfur autotrophic filter material can be remarkably improved, the particles can be prevented from entering the grinding mechanism, and the grinding efficiency is improved. Meanwhile, the components of the raw materials are purer, and efficient and stable production of the nanoscale sulfur autotrophic filter material is facilitated.
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Description

Technical Field

[0001] This utility model belongs to the field of raw material grinding technology, specifically relating to a raw material grinding device for the production of nano-grade sulfur self-nourishing filter material. Background Technology

[0002] In the production process of nano-grade sulfur autotrophic filter media, the raw material grinding device is of great significance. The performance of sulfur autotrophic filter media is closely related to the particle size of its raw materials. The requirement of nano-grade material sets an extremely high standard for the fineness of the raw materials. The raw material grinding device can accurately grind the sulfur autotrophic filter media raw materials to the nano-grade, thereby ensuring the performance of subsequent filter media products and meeting the increasingly high technical requirements of related industries.

[0003] In the current grinding process, the grinding media and chamber materials of the grinding device may introduce impurities into the raw materials. Metal grinding media may experience slight wear during the grinding process, and metal particles mixed into the sulfur self-nourishing filter material raw material will affect the chemical properties of the filter material and its effectiveness in practical applications. Utility Model Content

[0004] The purpose of this invention is to provide a raw material grinding device for the production of nano-grade sulfur autotrophic filter media, which aims to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, this utility model provides the following technical solution:

[0006] A raw material grinding device for the production of nano-scale sulfur self-trophic filter media, comprising,

[0007] The support mechanism includes a support frame, a screening channel fixedly installed on the upper end of the support frame, a discharge channel fixedly installed on the lower end of the support frame, an observation window fixedly installed on the top of the discharge channel, and a discharge door hinged to the inner surface of the discharge channel.

[0008] A separation mechanism is provided at the top of the screening channel, and a grinding mechanism is provided at the bottom of the screening channel;

[0009] The separation mechanism includes a box fixedly installed at the top of the screening channel, an adsorption assembly disposed on the back of the box, and a servo motor adapted to be installed on the outer surface of the box.

[0010] As a preferred embodiment of this utility model, the separation mechanism further includes a shaft adapted to be installed at the output end of the servo motor, a plurality of swing rods sleeved on the outer surface of the shaft, a groove formed on the surface of the swing rods, an adsorption block snapped into the inner cavity of the groove, a feed inlet formed on the top of the box, a switch valve plate hinged to the bottom of the box, a feed pipe fixedly installed on the top of the box, and a cover plate hinged to the top of the feed pipe.

[0011] As a preferred embodiment of the present invention, the adsorption assembly further includes an electric guide rail fixedly installed on the outer surface of the box, a drive block snapped into the inner cavity of the electric guide rail, a shaft seat fixedly installed at the bottom of the drive block, a rotating shaft hinged to the inner cavity of the shaft seat, a connecting rod fixedly connected to the outer surface of the rotating shaft, an adsorption plate fixedly installed at the end of the connecting rod, and a plurality of collection grooves formed on the top of the adsorption plate.

[0012] As a preferred embodiment of the present invention, the support mechanism further includes a vibrating feeder fixedly installed on the outer surface of the screening channel, and a feeding pipe fixedly installed on the outer surface of the vibrating feeder.

[0013] The end of the feeding pipe extends into the inner cavity of the grinding mechanism.

[0014] As a preferred embodiment of this utility model, the grinding mechanism includes a housing fixedly installed on the outer surface of the support frame, a drive rail fixedly installed on the inner surface of the housing, and an electric cross plate fixedly installed at the output end of the drive rail.

[0015] As a preferred embodiment of this utility model, the grinding mechanism further includes a drive motor fixedly installed on the top of the electric horizontal plate, an upper grinding disc fixedly installed on the output end of the drive motor, and a lower grinding disc fixedly installed in the inner cavity of the housing and used in conjunction with the upper grinding disc.

[0016] As a preferred embodiment of this utility model, a particle filter screen is adapted to be installed in the inner cavity of the screening channel, and a main controller is provided on the outer surface of the shell.

[0017] Compared with the prior art, the beneficial effects of this utility model are: the adsorption component can remove metal particles in advance, which helps to extend the service life of the grinding mechanism, reduce equipment maintenance costs, ensure that the grinding mechanism can stably produce nanoscale filter material that meets the requirements, significantly improve the purity of nanoscale sulfur autotrophic filter material, prevent these particles from entering the grinding mechanism, improve grinding precision, and at the same time, the raw material composition is purer, which is conducive to achieving efficient and stable production of nanoscale sulfur autotrophic filter material. Attached Figure Description

[0018] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort. Among them:

[0019] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0020] Figure 2 This is a rear view of the overall structure of this utility model;

[0021] Figure 3 This is a partial cross-sectional view of the separation mechanism structure of this utility model;

[0022] Figure 4 This is a partial rear cross-sectional view of the adsorption component structure of this utility model;

[0023] Figure 5 This is a cross-sectional view of the grinding mechanism of this utility model.

[0024] In the diagram: 100, Support mechanism; 101, Bearing frame; 102, Screening channel; 103, Discharge channel; 104, Observation window; 105, Discharge gate; 106, Feeding pipe; 107, Vibrating feeder; 200, Separation mechanism; 201, Box body; 202, Adsorption assembly; 202a, Electric guide rail; 202b, Drive block; 202c, Shaft seat; 202d, Rotating shaft; 202e, Connecting rod; 202f 202g, Adsorption plate; 203g, Collection tank; 204, Servo motor; 205, Shaft; 206, Swing rod; 207, Groove; 208, Adsorption block; 209, Feed inlet; 210, Switch valve plate; 211, Feed pipe; 212, Cover plate; 300, Grinding mechanism; 301, Housing; 302, Drive rail; 303, Electric cross plate; 304, Drive motor; 305, Upper grinding disc; 306, Lower grinding disc. Detailed Implementation

[0025] To make the above-mentioned objectives, features and advantages of this utility model more apparent and understandable, the specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings.

[0026] Many specific details are set forth in the following description in order to provide a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Those skilled in the art can make similar extensions without departing from the spirit of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed below.

[0027] Secondly, the term "an embodiment" or "embodiment" as used herein refers to a specific feature, structure, or characteristic that may be included in at least one implementation of the present invention. The phrase "in one embodiment" appearing in different places in this specification does not necessarily refer to the same embodiment, nor is it a single or selective embodiment that excludes other embodiments.

[0028] Example 1

[0029] Reference Figure 1-5 This is the first embodiment of the present invention, which provides a raw material grinding device for the production of nano-scale sulfur self-trophic filter media, comprising:

[0030] The support mechanism 100 includes a support frame 101, a screening channel 102 fixedly installed on the upper end of the support frame 101, a discharge channel 103 fixedly installed on the lower end of the support frame 101, an observation window 104 fixedly installed on the top of the discharge channel 103, and a discharge door 105 hinged to the inner surface of the discharge channel 103.

[0031] A separation mechanism 200 is provided at the top of the screening channel 102, and a grinding mechanism 300 is provided at the bottom of the screening channel 102;

[0032] The separation mechanism 200 includes a box 201 fixedly installed on the top of the screening channel 102, an adsorption assembly 202 disposed on the back of the box 201, and a servo motor 203 adapted to be installed on the outer surface of the box 201.

[0033] The adsorption component 202 pre-removes metal particles, which helps extend the service life of the grinding mechanism 300, reduce equipment maintenance costs, and ensure that the grinding mechanism 300 can stably produce nano-grade filter media that meets the requirements. It can significantly improve the purity of nano-grade sulfur autotrophic filter media, prevent these particles from entering the grinding mechanism 300, improve grinding precision, and make the raw material composition purer, which is conducive to achieving efficient and stable production of nano-grade sulfur autotrophic filter media.

[0034] Specifically, the separation mechanism 200 also includes a shaft 204 adapted to be installed at the output end of the servo motor 203, several swing rods 205 sleeved on the outer surface of the shaft 204, a groove 206 opened on the surface of the swing rod 205, an adsorption block 207 snapped into the inner cavity of the groove 206, a feed port 208 opened on the top of the box 201, a switch valve plate 209 hinged to the bottom of the box 201, a feed pipe 210 fixedly installed on the top of the box 201, and a cover plate 211 hinged to the top of the feed pipe 210.

[0035] The separation mechanism 200 drives the shaft 204 to rotate via the servo motor 203, which in turn drives the swing arm 205 to stir, so that the raw material and the adsorption block 207 can fully contact each other. The adsorption block 207 can effectively adsorb metal particles in the raw material. At the same time, the switch valve plate 209 controls the flow of the raw material to ensure that the metal particles are fully adsorbed before entering the next process, thereby significantly improving the purity of the raw material and reducing the interference of impurities in the subsequent processing.

[0036] Furthermore, the adsorption assembly 202 also includes an electric guide rail 202a fixedly installed on the outer surface of the housing 201, a drive block 202b snapped into the inner cavity of the electric guide rail 202a, a bearing seat 202c fixedly installed at the bottom of the drive block 202b, a rotating shaft 202d hinged to the inner cavity of the bearing seat 202c, a connecting rod 202e fixedly connected to the outer surface of the rotating shaft 202d, an adsorption plate 202f fixedly installed at the end of the connecting rod 202e, and a plurality of collection grooves 202g formed on the top of the adsorption plate 202f.

[0037] Among them, the adsorption plate 202f can be flexibly adjusted in position. The adsorption plate 202f is specifically designed for adsorption of metal particles. The collection groove 202g opened on its top helps to better capture and contain metal particles, and can change its position over a large range to achieve dynamic positioning. It can cover a large space within the box 201 to ensure effective adsorption of any metal particles that may be present. Compared with adsorption devices with fixed positions, dynamic positioning can capture metal particles more comprehensively. Regardless of the distribution of metal particles in the raw material, there is a greater chance of adsorption, which improves the efficiency of removing metal particles and thus improves the purity of the nano-grade sulfur self-nourishing filter material.

[0038] In use, the electric guide rail 202a causes the drive block 202b to move the bearing seat 202c. The rotating shaft 202d drives the connecting rod 202e to rotate when it rotates. The adsorption plate 202f can be flexibly adjusted to increase the contact range of the raw materials in the box 201. The adsorption plate 202f is specifically designed for adsorption of metal particles. The collection groove 202g on its top helps to better capture and contain metal particles.

[0039] In summary, the adsorption component 202 can ensure that the adsorption plate 202f has sufficient adsorption force on metal particles through precise adsorption distance control. By precisely controlling the distance, it can effectively adsorb metal particles while reducing the impact on the normal raw material processing flow.

[0040] Example 2

[0041] Reference Figure 1 , Figure 2 and Figure 5 This is the second embodiment of the present invention. Unlike the previous embodiment, this embodiment provides grinding of the raw materials.

[0042] Specifically, the support mechanism 100 also includes a vibrating feeder 107 fixedly installed on the outer surface of the screening channel 102, and a feeding pipe 106 fixedly installed on the outer surface of the vibrating feeder 107; the end of the feeding pipe 106 extends into the inner cavity of the grinding mechanism 300. The grinding mechanism 300 includes a housing 301 fixedly installed on the outer surface of the support frame 101, a drive guide rail 302 fixedly installed on the inner surface of the housing 301, and an electric horizontal plate 303 fixedly installed at the output end of the drive guide rail 302. The grinding mechanism 300 also includes a drive motor 304 fixedly installed on the top of the electric horizontal plate 303, an upper grinding disc 305 fixedly installed at the output end of the drive motor 304, and a lower grinding disc 306 fixedly installed in the inner cavity of the housing 301 to cooperate with the upper grinding disc 305. A particle filter screen is adapted to be installed in the inner cavity of the screening channel 102, and a main controller is provided on the outer surface of the housing 301.

[0043] Among them, the electric horizontal plate 303 can move along the drive guide rail 302. The position of the electric horizontal plate 303 can be precisely controlled by the main controller, thereby adjusting the distance between the upper grinding plate 305 and the lower grinding plate 306. According to different production needs, the raw materials can be ground to the nano-level precise particle size to meet the production requirements of nano-level sulfur self-nourishing filter material and improve the quality stability of the product.

[0044] In use, the raw material enters the screening channel 102, where it is first stirred by the separation mechanism 200. Simultaneously, it works in conjunction with the adsorption component 202 to adsorb metal particles. The screened raw material is then conveyed to the grinding mechanism 300 by the vibrating feeder 107 through the feeding pipe 106. The electric horizontal plate 303 moves on the drive guide rail 302 to adjust its position. The drive motor 304 drives the upper grinding disc 305 at the output end to rotate. The upper grinding disc 305 and the lower grinding disc 306 work together to grind the raw material. The entire process is controlled by a central controller located on the outer surface of the grinding mechanism 300.

[0045] In summary, the grinding mechanism 300 can adapt to different amounts of raw materials. When the amount of raw materials is large, the distance between the upper grinding disc 305 and the lower grinding disc 306 can be appropriately increased to avoid uneven grinding or equipment overload due to excessive raw materials. When the amount of raw materials is small, the distance can be reduced to ensure sufficient grinding, improve grinding efficiency, and reduce energy consumption.

[0046] It is important to note that the constructions and arrangements of this application shown in several different exemplary embodiments are merely illustrative. Although only a few embodiments are described in detail in this disclosure, those who consult this disclosure will readily understand that many modifications are possible (e.g., changes in the size, dimensions, structure, shape and proportion of various elements, as well as parameter values ​​(e.g., temperature, pressure, etc.), mounting arrangements, use of materials, color, orientation, etc.) without substantially departing from the novel teachings and advantages of the subject matter described in this application). For example, an element shown as integrally formed may be composed of multiple parts or elements, the position of elements may be inverted or otherwise altered, and the nature or number or position of discrete elements may be changed or altered. Therefore, all such modifications are intended to be included within the scope of this utility model. The order or sequence of any process or method steps may be changed or rearranged according to alternative embodiments. In the claims, any "device plus function" clause is intended to cover the structure described herein that performs the function, and not only structural equivalents but also equivalent structures. Without departing from the scope of this invention, other substitutions, modifications, alterations, and omissions may be made in the design, operation, and arrangement of the exemplary embodiments. Therefore, this invention is not limited to the specific embodiments, but extends to various modifications that still fall within the scope of the appended claims.

[0047] Furthermore, in order to provide a concise description of exemplary embodiments, not all features of actual embodiments (i.e., those features that are not relevant to the best mode of carrying out the present invention as currently considered, or those features that are not relevant to implementing the present invention) may be omitted.

[0048] It should be understood that numerous specific implementation decisions can be made during the development of any practical implementation, such as in any engineering or design project. Such development efforts may be complex and time-consuming, but for those skilled in the art who benefit from this disclosure, the development effort will be a routine work of design, manufacturing, and production without requiring much experimentation.

[0049] It should be noted that the above embodiments are only used to illustrate the technical solution of this utility model and are not intended to limit it. Although this utility model has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solution of this utility model without departing from the spirit and scope of the technical solution of this utility model, and all such modifications or substitutions should be covered within the scope of the claims of this utility model.

Claims

1. A raw material grinding device for the production of nano-scale sulfur self-trophic filter media, characterized in that: include, The support mechanism (100) includes a support frame (101), a screening channel (102) fixedly installed on the upper end of the support frame (101), a discharge channel (103) fixedly installed on the lower end of the support frame (101), an observation window (104) fixedly installed on the top of the discharge channel (103), and a discharge door (105) hinged to the inner surface of the discharge channel (103). A separation mechanism (200) is provided at the top of the screening channel (102), and a grinding mechanism (300) is provided at the bottom of the screening channel (102); The separation mechanism (200) includes a box (201) fixedly installed on the top of the screening channel (102), an adsorption assembly (202) disposed on the back of the box (201), and a servo motor (203) adapted to be installed on the outer surface of the box (201).

2. The raw material grinding device for producing nano-scale sulfur self-trophic filter media according to claim 1, characterized in that: The separation mechanism (200) further includes a shaft (204) adapted to be installed at the output end of the servo motor (203), a plurality of swing rods (205) sleeved on the outer surface of the shaft (204), a groove (206) opened on the surface of the swing rod (205), an adsorption block (207) snapped into the inner cavity of the groove (206), a feed port (208) opened on the top of the box (201), a switch valve plate (209) hinged to the bottom of the box (201), a feed pipe (210) fixedly installed on the top of the box (201), and a cover plate (211) hinged to the top of the feed pipe (210).

3. The raw material grinding device for producing nano-scale sulfur self-trophic filter media according to claim 2, characterized in that: The adsorption assembly (202) further includes an electric guide rail (202a) fixedly installed on the outer surface of the housing (201), a drive block (202b) snapped into the inner cavity of the electric guide rail (202a), a bearing seat (202c) fixedly installed at the bottom of the drive block (202b), a rotating shaft (202d) hinged to the inner cavity of the bearing seat (202c), a connecting rod (202e) fixedly connected to the outer surface of the rotating shaft (202d), an adsorption plate (202f) fixedly installed at the end of the connecting rod (202e), and a plurality of collection grooves (202g) formed on the top of the adsorption plate (202f).

4. The raw material grinding device for producing nano-scale sulfur self-trophic filter media according to claim 3, characterized in that: The support mechanism (100) further includes a vibrating feeder (107) fixedly installed on the outer surface of the screening channel (102), and a feeding pipe (106) fixedly installed on the outer surface of the vibrating feeder (107), the end of the feeding pipe (106) extending into the inner cavity of the grinding mechanism (300).

5. The raw material grinding device for producing nano-grade sulfur self-trophic filter media according to claim 4, characterized in that: The grinding mechanism (300) includes a housing (301) fixedly installed on the outer surface of the support frame (101), a drive rail (302) fixedly installed on the inner surface of the housing (301), and an electric cross plate (303) fixedly installed at the output end of the drive rail (302).

6. The raw material grinding device for producing nano-scale sulfur self-trophic filter media according to claim 5, characterized in that: The grinding mechanism (300) further includes a drive motor (304) fixedly installed on the top of the electric horizontal plate (303), an upper grinding disc (305) fixedly installed on the output end of the drive motor (304), and a lower grinding disc (306) fixedly installed in the inner cavity of the housing (301) and used in conjunction with the upper grinding disc (305).

7. The raw material grinding device for producing nano-scale sulfur self-trophic filter media according to claim 6, characterized in that: The inner cavity of the screening channel (102) is fitted with a particle filter screen, and the outer surface of the housing (301) is provided with a main controller.