Electrolytic raw material co-grinding filter pressing device

By designing a co-grinding and filtration device for electrolytic raw materials, combining rotary grinding, induction storage, and filtration mechanisms, the problem of ineffective integration of equipment in electrolytic raw material processing was solved, achieving a highly efficient grinding and filtration process, and improving overall processing efficiency and automation control capabilities.

CN224197371UActive Publication Date: 2026-05-05GUANG XI XIA TIAN MENG KUANG YOU XIAN ZE REN GONG SI
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GUANG XI XIA TIAN MENG KUANG YOU XIAN ZE REN GONG SI
Filing Date
2025-04-28
Publication Date
2026-05-05

AI Technical Summary

Technical Problem

In existing technologies, the grinding and filtration equipment for electrolytic raw materials cannot be effectively combined, resulting in low processing efficiency.

Method used

An electrolytic raw material co-grinding and filtration device was designed, comprising a rotary grinding mechanism, an induction storage mechanism, and a filtration mechanism. The co-grinding and filtration are achieved through combination and connection. The induction storage mechanism is used to store and control the material conveying, the liquid level sensor is used for automatic control, and the filtration mechanism is used for filtration.

Benefits of technology

It achieves efficient grinding and pressure filtration of electrolytic raw materials, reduces material transfer time, improves overall processing efficiency, and avoids material overflow through automated control, ensuring the continuity and efficiency of processing.

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Abstract

The utility model discloses an electrolytic raw material co-grinding and filter-pressing device, which relates to the technical field of electrolytic raw material production and processing, and is technically characterized by comprising an electrolytic raw material co-grinding and filter-pressing tank body, the discharge valve is fixedly connected to the middle of the lower end of the electrolytic raw material co-grinding filter pressing tank body; the rotary grinding mechanism is mounted and connected to the inner side of the upper end of the electrolytic raw material co-grinding filter pressing tank body; the electrolytic raw material co-grinding and filter-pressing device comprises a rotary grinding mechanism, a filter-pressing mechanism, an induction material storage mechanism and a filter-pressing mechanism, the rotary grinding mechanism is installed at the lower end of the rotary grinding mechanism through screws, and the induction material storage mechanism is located in the middle of the interior of the electrolytic raw material co-grinding and filter-pressing tank body, so that co-grinding and filter-pressing can be effectively carried out through combined connection of the rotary grinding mechanism, the induction material storage mechanism and the filter-pressing mechanism; and through separation of the induction material storage mechanism, the rotary grinding mechanism and the filter pressing mechanism can work at the same time, the time needed for material transferring is shortened, and therefore the overall efficiency is effectively improved.
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Description

Technical Field

[0001] This utility model relates to the field of electrolytic raw material production and processing technology, specifically to an electrolytic raw material co-grinding and pressure filtration device. Background Technology

[0002] Electrolytic raw materials mainly include alumina, flux, and anode materials. Electrolytic processing involves connecting the workpiece to the positive terminal of a DC power supply and the tool to the negative terminal, maintaining a small gap between them. The electrolyte flows through the gap, forming a conductive path and generating current, thereby forming electrochemical anodic dissolution.

[0003] Electrolytic raw materials need to be ground and then filtered during production. This requires both grinding and filtration equipment. However, these two types of equipment cannot be effectively combined for processing, which leads to inefficiency in the processing of electrolytic raw materials.

[0004] Therefore, we propose a novel electrolytic raw material co-grinding and pressure filtration device to solve the above-mentioned technical problems. Utility Model Content

[0005] (a) Technical problems to be solved

[0006] To address the shortcomings of existing technologies, this utility model provides a co-grinding and pressure filtration device for electrolytic raw materials, which solves the problem that existing electrolytic raw material processing is not very efficient because the two types of equipment cannot be effectively combined for processing.

[0007] (II) Technical Solution

[0008] To achieve the above objectives, this utility model provides the following technical solution: an electrolytic raw material co-grinding and pressure filtration device, comprising:

[0009] Electrolytic raw material co-grinding and filter press tank;

[0010] A discharge valve is fixedly connected to the middle of the lower end of the electrolytic raw material co-grinding and filter press tank.

[0011] A rotary grinding mechanism is installed and connected to the inner side of the upper end of the electrolytic raw material co-grinding and filter press tank;

[0012] An induction storage mechanism is installed on the lower end of the rotating grinding mechanism by screws, and the induction storage mechanism is located in the middle of the interior of the electrolytic raw material co-grinding and filter press tank.

[0013] A filter press mechanism is mounted on the lower end of the induction storage mechanism by screws, and the filter press mechanism is located inside the electrolytic raw material co-grinding filter press tank.

[0014] Preferably, the electrolytic raw material co-grinding and filter press tank includes a tank shell, a support column fixed to the lower outer wall of the tank shell, a tank sealing cover fixed to the upper end of the tank shell, a feed addition pipe fixed to the inner side of the right end of the tank sealing cover, and a rotating grinding mechanism installed on the inner side of the tank sealing cover.

[0015] Preferably, the rotary grinding mechanism includes a grinding motor mounted on the sealing cover plate of the tank by screws. The lower end of the output shaft of the grinding motor is fixedly connected to a first coupling. The lower end of the first coupling is fixedly connected to a connecting shaft. The lower end of the connecting shaft is fixedly connected to a grinding roller. A grinding housing is installed around the first coupling and the grinding roller. A first discharge pipe is fixedly connected through the middle of the lower end of the grinding housing. An input inclined pipe is fixedly connected through the outer wall of the grinding housing. The outer end of the input inclined pipe is fixedly connected through the feed adding pipe. The lower end of the first discharge pipe is mounted on the induction storage mechanism by screws.

[0016] Preferably, the sensing storage mechanism includes a first feed connecting pipe mounted on a first discharge pipe by screws, an electrolytic raw material storage tank being fixedly connected to the lower end of the first feed connecting pipe, a first electromagnetic discharge valve being fixedly connected to the lower end of the electrolytic raw material storage tank, a liquid level sensor being installed on the inner side of the upper end of the electrolytic raw material storage tank, the liquid level sensor and the first electromagnetic discharge valve being electrically connected to an external controller via a connecting wire, and a filter press mechanism being installed at the lower end of the first electromagnetic discharge valve.

[0017] Preferably, the filter press mechanism includes a second feed connection pipe installed at the lower end of the first electromagnetic discharge valve by screws. An air inlet sealing cover is fixed to the periphery of the second feed connection pipe. A filter press discharge tank is installed at the periphery of the air inlet sealing cover by screws. A filter press perforated plate is fixed to the upper end of the filter press discharge tank. Filter paper is placed on top of the filter press perforated plate. The air inlet sealing cover is connected to the right-angle connection pipe by a flange. A pneumatic conveying vertical pipe is fixed to the outer end of the right-angle connection pipe. A one-way valve is installed at the upper end of the pneumatic conveying vertical pipe through the tank sealing cover.

[0018] Preferably, the air intake sealing cover is connected to the right-angle connecting pipe via the air intake pipe.

[0019] Preferably, the connecting shaft and the grinding roller are rotatably mounted inside the grinding housing.

[0020] Preferably, an electrolytic raw material grinding gap is formed between the grinding roller and the grinding shell.

[0021] (III) Beneficial Effects

[0022] Compared with the prior art, the present invention provides an electrolytic raw material co-grinding and pressure filtration device, which has the following beneficial effects:

[0023] 1. This utility model combines a rotary grinding mechanism, an induction storage mechanism, and a filter press mechanism to effectively perform co-grinding and filter press. Furthermore, the separation provided by the induction storage mechanism allows the rotary grinding mechanism and the filter press mechanism to work simultaneously, reducing the time required for material transfer and thus effectively improving overall efficiency.

[0024] 2. This utility model facilitates material storage by setting up an induction storage mechanism. The first feed connection pipe of the induction storage mechanism can transport the ground electrolytic material to the electrolytic raw material storage tank for storage. The lower end of the electrolytic raw material storage tank is fixedly connected to a first electromagnetic discharge valve. The material stored inside the electrolytic raw material storage tank can be discharged through the first electromagnetic discharge valve. The first electromagnetic discharge valve is electrically controlled, enabling automated operation. A liquid level sensor is installed on the inner side of the upper end of the electrolytic raw material storage tank. The liquid level sensor can sense the material stored inside the electrolytic raw material storage tank to prevent material overflow caused by excessive liquid storage. The liquid level sensor and the first electromagnetic discharge valve are electrically connected to an external controller through a connecting line, and can be controlled accordingly by the external controller. A filter press mechanism is installed at the lower end of the first electromagnetic discharge valve. The first electromagnetic discharge valve can discharge the material into the filter press mechanism for filter pressing. Attached Figure Description

[0025] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0026] Figure 2 This is a schematic diagram of the internal structure of the present invention;

[0027] Figure 3 This is a schematic cross-sectional view of the rotary grinding mechanism of this utility model;

[0028] Figure 4 This is a schematic diagram of the induction storage mechanism of this utility model;

[0029] Figure 5 This is a cross-sectional structural diagram of the filter press mechanism of this utility model.

[0030] In the picture:

[0031] 1. Discharge valve; 2. Tank shell; 3. Support column feet; 4. Tank sealing cover; 41. Feeding pipe; 42. Input inclined pipe; 43. Grinding shell; 44. First discharge pipe; 5. One-way valve; 51. Pneumatic conveying vertical pipe; 52. Right-angle connecting pipe; 6. Grinding motor; 61. First coupling; 62. Connecting shaft; 63. Grinding roller; 7. Electrolytic raw material storage tank; 71. Liquid level sensor; 72. First feed connecting pipe; 73. First electromagnetic discharge valve; 8. Filter press discharge tank; 81. Filter press perforated plate; 82. Air inlet sealing cover; 83. Second feed connecting pipe; 84. Filter press filter paper. Detailed Implementation

[0032] In this utility model, unless otherwise stated, the orientations used, such as "up" and "down", usually refer to the direction shown in the accompanying drawings, or to the vertical, perpendicular, or gravitational direction; similarly, for ease of understanding and description, "left" and "right" usually refer to the left and right shown in the accompanying drawings; "inner" and "outer" refer to the inner and outer contours of each component itself, but the above directional terms are not used to limit this utility model.

[0033] Example 1

[0034] This embodiment provides a technical solution: an electrolytic raw material co-grinding and pressure filtration device, such as... Figures 1-5 As shown, it includes an electrolytic raw material co-grinding and filter press tank, a discharge valve 1, a rotary grinding mechanism, an induction storage mechanism, and a filter press mechanism.

[0035] The discharge valve 1 is fixedly connected to the lower middle of the co-grinding and filter press tank of the electrolytic raw materials. The electrolytic raw material liquid produced by the co-grinding and filter press tank can be effectively discharged through the discharge valve 1. The rotary grinding mechanism is installed and connected to the upper inner side of the co-grinding and filter press tank of the electrolytic raw materials. The rotary grinding mechanism can perform grinding on the upper inner side of the co-grinding and filter press tank of the electrolytic raw materials. The inductive storage mechanism is installed on the lower end of the rotary grinding mechanism by screws. The inductive storage mechanism can store the material ground by the rotary grinding mechanism. The inductive storage mechanism is located in the middle of the interior of the co-grinding and filter press tank of the electrolytic raw materials. The inductive storage mechanism can be effectively wrapped and protected by the co-grinding and filter press tank of the electrolytic raw materials. The filter press mechanism is installed on the lower end of the inductive storage mechanism by screws. The filter press mechanism can receive the ground electrolytic raw material material discharged by the inductive storage mechanism for filter press. The filter press mechanism is located inside the co-grinding and filter press tank of the electrolytic raw materials. The filter press mechanism can be effectively wrapped and protected by the co-grinding and filter press tank of the electrolytic raw materials.

[0036] The electrolytic raw material co-grinding and filter press tank includes a tank shell 2. A support column 3 is fixed to the lower outer wall of the tank shell 2. The tank shell 2 can be supported and placed by the support column 3 fixed to the lower outer wall. A tank sealing cover 4 is fixed to the upper end of the tank shell 2. The upper opening of the tank shell 2 can be effectively closed by the tank sealing cover 4. A feed inlet pipe 41 is fixed through the inner side of the right end of the tank sealing cover 4. The tank sealing cover 4 can receive electrolytic raw materials through the feed inlet pipe 41. A rotary grinding mechanism is installed on the inner side of the tank sealing cover 4. The rotary grinding mechanism can perform rotary grinding on the tank sealing cover 4.

[0037] like Figures 1-3 As shown, the rotating grinding mechanism includes a grinding motor 6 mounted on the tank sealing cover 4 by screws. The grinding motor 6 can be stably placed on the tank sealing cover 4 for use. The lower end of the output shaft of the grinding motor 6 is fixedly connected to a first coupling 61. When the output shaft of the grinding motor 6 rotates, it can drive the first coupling 61 to rotate. The lower end of the first coupling 61 is fixedly connected to a connecting shaft 62. The first coupling 61 can drive the connecting shaft 62 to rotate. The lower end of the connecting shaft 62 is fixedly connected to a grinding roller 63. The connecting shaft 62 can drive the grinding roller 63 to rotate, and the grinding roller 63 can rotate for grinding. A grinding housing 43 is installed around the first coupling 61 and the grinding roller 63. 3. The grinding material can be rotated and ground in the grinding housing 43. A first discharge pipe 44 is fixedly connected to the middle of the lower end of the grinding housing 43. The electrolytic raw material ground inside the grinding housing 43 can be discharged through the first discharge pipe 44. An input inclined pipe 42 is fixedly connected to the outer wall of the grinding housing 43. The grinding housing 43 can receive the electrolytic raw material to be ground through the input inclined pipe 42. The outer end of the input inclined pipe 42 is fixedly connected to the feed addition pipe 41. The input inclined pipe 42 can receive the electrolytic raw material conveyed by the feed addition pipe 41, and the feed addition pipe 41 can drive the input inclined pipe 42 to be fixedly suspended. The lower end of the first discharge pipe 44 is installed on the induction storage mechanism by screws. The first discharge pipe 44 can convey the ground electrolytic raw material to the induction storage mechanism for storage.

[0038] The connecting shaft 62 and the grinding roller 63 are rotatably installed inside the grinding housing 43, so that they can be positioned and rotated to grind the electrolytic raw materials;

[0039] An electrolytic raw material grinding gap is provided between the grinding roller 63 and the grinding housing 43, which facilitates the passing of the electrolytic raw material for grinding.

[0040] In use, the rotary grinding mechanism can receive the electrolytic raw materials to be ground through the feed pipe 41. The rotary grinding mechanism can grind the electrolytic raw materials on the inner side of the upper end of the co-grinding and filter press tank. The electrolytic raw materials ground by the rotary grinding mechanism can be discharged into the induction storage mechanism through the first discharge pipe 44 for storage. When the first electromagnetic discharge valve 73 of the induction storage mechanism is open, the ground electrolytic raw materials can be discharged into the filter press mechanism. When the filter press mechanism is pressing, the first electromagnetic discharge valve 73 is closed, so that the filter press mechanism can effectively filter through the filter paper 84 of the filter press discharge tank 8. The electrolytic raw material liquid medium after pressing can be discharged through the filter press discharge tank 8. The discharge valve 1 is fixed to the middle of the lower end of the co-grinding and filter press tank. The electrolytic raw material liquid produced by the co-grinding and filter press tank can be effectively discharged through the discharge valve 1.

[0041] Example 2

[0042] This embodiment is a further optimization based on Embodiment 1. The parts that are the same as those described above will not be repeated here. Figure 1 , Figure 2 and Figure 4 As shown, to further better realize this utility model, the following arrangement is specifically adopted: The induction storage mechanism includes a first feed connecting pipe 72 installed on the first discharge pipe 44 by screws. The first feed connecting pipe 72 can receive the ground electrolytic material conveyed by the first discharge pipe 44. The lower end of the first feed connecting pipe 72 is connected to an electrolytic raw material storage tank 7. The first feed connecting pipe 72 can convey the ground electrolytic material into the electrolytic raw material storage tank 7 for storage. The lower end of the electrolytic raw material storage tank 7 is fixedly connected to a first electromagnetic discharge valve 73. The material stored inside the electrolytic raw material storage tank 7 passes through... The first electromagnetic discharge valve 73 can discharge materials. The first electromagnetic discharge valve 73 is electrically controlled, enabling automated operation. A liquid level sensor 71 is installed on the inner side of the upper end of the electrolytic raw material storage tank 7. The liquid level sensor 71 can sense the material stored inside the electrolytic raw material storage tank 7 to prevent material overflow caused by excessive liquid storage. The liquid level sensor 71 and the first electromagnetic discharge valve 73 are electrically connected to an external controller via a connecting wire, and can be controlled accordingly by the external controller. A filter press mechanism is installed at the lower end of the first electromagnetic discharge valve 73. The first electromagnetic discharge valve 73 can discharge materials into the filter press mechanism for filter pressing.

[0043] Example 3

[0044] This embodiment is a further optimization based on Embodiment 1. The parts that are the same as those described above will not be repeated here. Figure 1 , Figure 2 and Figure 5As shown, to further better realize this utility model, the following arrangement is specifically adopted: The filter press mechanism includes a second feed connecting pipe 83 installed at the lower end of the first electromagnetic discharge valve 73 by screws. The second feed connecting pipe 83 can receive the electrolytic raw material conveyed by the first electromagnetic discharge valve 73. An air inlet sealing cover plate 82 is fixedly connected to the periphery of the second feed connecting pipe 83. The second feed connecting pipe 83 can be correspondingly installed through the air inlet sealing cover plate 82. A filter press discharge tank 8 is installed on the periphery of the air inlet sealing cover plate 82 by screws. The air inlet sealing cover plate 82 can be correspondingly installed on the filter press discharge tank 8, so that the second feed connecting pipe 83 can convey and add material to the filter press discharge tank 8. The upper end of the inside of the filter press discharge tank 8 is fixedly connected to... The filter press has a perforated plate 81, and a filter paper 84 is placed on top of the filter press 81. The filter press discharge tank 8 can effectively filter through the filter paper 84 on the filter press perforated plate 81. The air inlet sealing cover 82 is connected to the right angle connecting pipe 52 through a flange. The air inlet sealing cover 82 can receive the gas from the right angle connecting pipe 52, thereby transporting the gas to the upper part of the filter press discharge tank 8 for filter pressing. The outer end of the right angle connecting pipe 52 is connected to a pneumatic conveying vertical pipe 51. The right angle connecting pipe 52 can receive the gas transported by the pneumatic conveying vertical pipe 51. The upper end of the pneumatic conveying vertical pipe 51 passes through the tank sealing cover 4 and is equipped with a one-way valve 5. The pneumatic conveying vertical pipe 51 is transported in one direction through the one-way valve 5, thus avoiding the backflow of gas.

[0045] The air intake sealing cover 82 is connected to the right-angle connecting pipe 52 through the air intake pipe, so that they can be installed and connected accordingly.

[0046] The above are merely specific embodiments of this utility model, but the technical features of this utility model are not limited thereto. Any simple changes, equivalent substitutions, or modifications made based on this utility model to solve essentially the same technical problems and achieve essentially the same technical effects are all covered within the protection scope of this utility model.

Claims

1. A co-grinding and pressure filtration device for electrolytic raw materials, characterized in that, include: Electrolytic raw material co-grinding and filter press tank; Discharge valve (1), the discharge valve (1) is fixedly connected to the middle of the lower end of the electrolytic raw material co-grinding filter tank; A rotary grinding mechanism is installed and connected to the inner side of the upper end of the electrolytic raw material co-grinding and filter press tank; An induction storage mechanism is installed on the lower end of the rotating grinding mechanism by screws, and the induction storage mechanism is located in the middle of the interior of the electrolytic raw material co-grinding and filter press tank. A filter press mechanism is mounted on the lower end of the induction storage mechanism by screws, and the filter press mechanism is located inside the electrolytic raw material co-grinding filter press tank.

2. The electrolytic raw material co-grinding and pressure filtration device according to claim 1, characterized in that: The electrolytic raw material co-grinding and filter press tank includes a tank shell (2), a support column (3) is fixedly connected to the lower outer wall of the tank shell (2), a tank sealing cover (4) is fixedly connected to the upper end of the tank shell (2), a feed addition pipe (41) is fixedly connected to the inner side of the right end of the tank sealing cover (4), and a rotating grinding mechanism is installed on the inner side of the tank sealing cover (4).

3. The electrolytic raw material co-grinding and pressure filtration device according to claim 2, characterized in that: The rotary grinding mechanism includes a grinding motor (6) mounted on the sealing cover plate (4) of the tank body by screws. The lower end of the output shaft of the grinding motor (6) is fixedly connected to a first coupling (61). The lower end of the first coupling (61) is fixedly connected to a connecting shaft (62). The lower end of the connecting shaft (62) is fixedly connected to a grinding roller (63). A grinding housing (43) is installed around the first coupling (61) and the grinding roller (63). A first discharge pipe (44) is fixedly connected through the middle of the lower end of the grinding housing (43). An input inclined pipe (42) is fixedly connected through the outer wall of the grinding housing (43). The outer end of the input inclined pipe (42) is fixedly connected through the feed adding pipe (41). The lower end of the first discharge pipe (44) is mounted on the induction storage mechanism by screws.

4. The electrolytic raw material co-grinding and pressure filtration device according to claim 3, characterized in that: The sensing storage mechanism includes a first feed connection pipe (72) mounted on a first discharge pipe (44) by screws. The lower end of the first feed connection pipe (72) is connected to an electrolytic raw material storage tank (7). The lower end of the electrolytic raw material storage tank (7) is connected to a first electromagnetic discharge valve (73). A liquid level sensor (71) is installed on the inner side of the upper end of the electrolytic raw material storage tank (7). The liquid level sensor (71) and the first electromagnetic discharge valve (73) are electrically connected to an external controller via a connecting line. A filter press mechanism is installed at the lower end of the first electromagnetic discharge valve (73).

5. The electrolytic raw material co-grinding and pressure filtration device according to claim 4, characterized in that: The filter press mechanism includes a second feed connection pipe (83) installed at the lower end of the first electromagnetic discharge valve (73) by screws. An air inlet sealing cover plate (82) is fixed to the periphery of the second feed connection pipe (83). A filter press discharge tank (8) is installed on the periphery of the air inlet sealing cover plate (82) by screws. A filter press perforated plate (81) is fixed to the upper end of the inside of the filter press discharge tank (8). Filter press filter paper (84) is placed on the upper part of the filter press perforated plate (81). The air inlet sealing cover plate (82) is connected to the right angle connection pipe (52) by a flange. A pneumatic conveying vertical pipe (51) is fixed to the outer end of the right angle connection pipe (52). A one-way valve (5) is installed at the upper end of the pneumatic conveying vertical pipe (51) through the tank body sealing cover plate (4).

6. The electrolytic raw material co-grinding and pressure filtration device according to claim 5, characterized in that: The air intake sealing cover (82) is connected to the right-angle connecting pipe (52) through the air intake pipe.

7. The electrolytic raw material co-grinding and pressure filtration device according to claim 3, characterized in that: The connecting shaft (62) and the grinding roller (63) are rotatably mounted inside the grinding housing (43).

8. The electrolytic raw material co-grinding and pressure filtration device according to claim 3, characterized in that: An electrolytic raw material grinding gap is provided between the grinding roller (63) and the grinding shell (43).