Preparation and filtering device of hydrogen storage material composite carrier catalyst

By designing V-shaped filter components and filter element components, the problems of difficult filter element replacement and the inability to remove impurities in a timely manner are solved, achieving high-efficiency filtration and low-cost filter element maintenance, and improving the preparation efficiency and quality of hydrogen storage material composite carrier catalysts.

CN224141579UActive Publication Date: 2026-04-21YULIN UNIV
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
YULIN UNIV
Filing Date
2025-05-16
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Existing hydrogen storage material composite carrier catalyst preparation filtration devices suffer from problems such as difficulty in replacing filter elements, inability to remove impurities in a timely manner leading to low filtration efficiency and high maintenance costs.

Method used

The filter adopts a V-shaped filter assembly and filter element assembly design, including a V-shaped filter element frame, sealing cover and drain hole, to achieve stable installation and removal of the filter element, and to allow impurities to be self-drained by water flow impact, thereby improving filtration efficiency and extending filter element life.

Benefits of technology

It improves filtration efficiency, reduces the difficulty of disassembling and assembling filter elements and maintenance costs, extends the service life of filter elements, and enhances the preparation efficiency and quality of hydrogen storage material composite carrier catalysts.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of preparation and filtration of a hydrogen storage material composite carrier catalyst, in particular to a preparation and filtration device of a hydrogen storage material composite carrier catalyst, which comprises a V-shaped filtration component and a filter element component, filter element assemblies are arranged on the two sides of the inner wall of the V-shaped filter assembly; the V-shaped filter assembly comprises a V-shaped filter element frame, a mounting groove, a sealing cover, a material feeding opening, a reinforcing rib, a reinforcing bottom plate and a sewage draining hole; the filter element assembly comprises a filter plate and a filter element. Filtered impurities between the adjacent filter element assemblies are attached to the inner sides of the filter elements, due to the feeding mode that materials impact from top to bottom, the impurities attached to the inner sides of the filter elements are flushed down through the impact force of water flow of the materials and are discharged outwards through the pollution discharge holes, and therefore the service life of the filter elements is effectively prolonged, the replacement frequency of the filter elements is reduced, and the cost is reduced. Therefore, the purpose of reducing the maintenance cost of the filter element is achieved.
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Description

Technical Field

[0001] This utility model relates to the field of filtration technology for the preparation of hydrogen storage material composite carrier catalysts, and particularly to a filtration device for the preparation of hydrogen storage material composite carrier catalysts. Background Technology

[0002] In the field of hydrogen storage materials, composite supported catalysts are crucial for improving hydrogen storage performance. The filtration process in their preparation directly affects the quality and production efficiency of the catalyst. With the rapid development of the hydrogen energy industry, the demand for composite supported catalysts for hydrogen storage materials continues to grow, and efficient and stable preparation filtration devices have become the focus of industry attention.

[0003] Currently, existing filtration devices for preparing hydrogen storage material composite carrier catalysts suffer from numerous problems. Regarding filter element replacement, traditional devices typically have filters installed within complex structures, requiring the disassembly of numerous components, making the process cumbersome, time-consuming, and labor-intensive. Some devices have poorly designed connection methods between the filter element and the filtration system, necessitating specialized tools and technicians for disassembly and installation. This not only increases maintenance costs but may also damage the filtration device due to improper operation. Regarding impurity removal, most existing devices cannot immediately discharge impurities after interception. As the filtration process continues, impurities accumulate on and inside the filter element, gradually clogging its pores. This not only increases filtration resistance and reduces filtration efficiency but also significantly accelerates filter element wear. To maintain normal operation, frequent filter element replacements are necessary, greatly increasing maintenance costs. Over time, these problems severely restrict the preparation efficiency and quality of hydrogen storage material composite carrier catalysts, urgently requiring innovative filtration device designs to address these issues. Utility Model Content

[0004] In order to overcome the problems of existing hydrogen storage material composite carrier catalyst preparation and filtration devices, which are difficult to replace and cannot discharge the impurities intercepted by the filter element in time, resulting in excessively fast filter element wear and increased maintenance costs, this utility model provides a hydrogen storage material composite carrier catalyst preparation and filtration device.

[0005] The technical solution is as follows: A filtration device for preparing a hydrogen storage material composite carrier catalyst includes a V-shaped filter assembly and a filter element assembly; filter element assemblies are provided on both sides of the inner wall of the V-shaped filter assembly; the V-shaped filter assembly includes a V-shaped filter element frame, a mounting groove, a sealing cover, a material inlet, reinforcing ribs, a reinforced base plate, and a drain hole; the filter element assembly includes a filter plate and a filter element.

[0006] Furthermore, the interior of the V-shaped filter element frame has a horizontally arranged V-shaped structure; both sides of the inner wall of the V-shaped filter element frame are provided with mounting grooves, and the mounting grooves are integrally formed with the V-shaped filter element frame; a reinforcing base plate is provided on the lower end face of the V-shaped filter element frame, and the reinforcing base plate is integrally formed with the V-shaped filter element frame.

[0007] Furthermore, a filter plate is provided inside the mounting groove, and the filter plate is connected to the mounting groove through a slot. The filter plate is installed by pressing the slot from the inside to the outside of the mounting groove.

[0008] Furthermore, the filter plate has a filter element inside, and the filter element is integrally formed with the filter plate.

[0009] Furthermore, a sealing cap is provided at the upper end of the V-shaped filter element frame, and the sealing cap is integrally formed with the V-shaped filter element frame; a material inlet is provided above the V-shaped groove of the V-shaped filter element frame, and the material inlet is integrally formed with the sealing cap.

[0010] Furthermore, reinforcing ribs are provided on both sides of the sealing cover, and the reinforcing ribs are integrally formed with the sealing cover.

[0011] Furthermore, a drain hole is provided on one side of the V-shaped filter element frame, and the drain hole passes through the V-shaped filter element frame and is located at one end of the V-shaped groove of the V-shaped filter element frame.

[0012] The beneficial effects are: This utility model uses a filter element assembly installed in the inner mounting groove of a V-shaped filter element frame to filter hydrogen storage composite catalyst materials. The filter elements at both ends below the material inlet increase the material filtration throughput per unit time, thereby effectively improving the filtration efficiency. At the same time, the installation and disassembly of the filter element assembly and the assembly method of the V-shaped filter element frame effectively reduce the difficulty of disassembling and assembling the filter plate. Since the material is filtered from top to bottom through the filter element, the V-shaped arrangement of the filter element assembly effectively prevents the problem of loosening under the impact of the material.

[0013] The sealing cap is designed to improve the connection stability and sealing between the V-shaped filter element frame and the feed port, preventing the leakage of unfiltered material.

[0014] By setting up the drain hole, impurities filtered between adjacent filter elements adhere to the inner side of the filter element. Due to the material being fed from top to bottom, the water flow impact force washes off the impurities adhering to the inner side of the filter element and discharges them to the outside through the drain hole, thereby effectively improving the service life of the filter element, reducing the frequency of filter element replacement, and ultimately achieving the goal of reducing filter element maintenance costs. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the overall three-dimensional structure of this utility model;

[0016] Figure 2 This is a side view of the overall three-dimensional structure of the present invention;

[0017] Figure 3 This is a three-dimensional cross-sectional view of the present invention.

[0018] Figure 4 This is a schematic diagram of the overall bottom-view three-dimensional structure of this utility model;

[0019] Figure 5 This is a top-view three-dimensional structural diagram of the present invention.

[0020] In the attached diagram, the following are the reference numerals: 1. V-shaped filter assembly; 2. Filter element assembly; 101. V-shaped filter element frame; 102. Mounting groove; 103. Sealing cover; 104. Material inlet; 105. Reinforcing rib; 106. Reinforced base plate; 107. Drain hole; 201. Filter plate; 202. Filter element. Detailed Implementation

[0021] The present invention will now be described in detail with reference to the accompanying drawings and specific embodiments.

[0022] Example 1

[0023] like Figures 1-5 As shown, the filtration device for preparing hydrogen storage material composite carrier catalyst includes a V-shaped filter assembly 1 and a filter element assembly 2; filter element assemblies 2 are provided on both sides of the inner wall of the V-shaped filter assembly 1; the V-shaped filter assembly 1 includes a V-shaped filter element frame 101, a mounting groove 102, a sealing cover 103, a material inlet 104, a reinforcing rib 105, a reinforcing base plate 106, and a drain hole 107; the filter element assembly 2 includes a filter plate 201 and a filter element 202.

[0024] The interior of the V-shaped filter frame 101 has a horizontally arranged V-shape structure; both sides of the inner wall of the V-shaped filter frame 101 are provided with mounting grooves 102, and the mounting grooves 102 are integrally formed with the V-shaped filter frame 101; a reinforcing base plate 106 is provided on the lower end face of the V-shaped filter frame 101, and the reinforcing base plate 106 is integrally formed with the V-shaped filter frame 101.

[0025] The mounting groove 102 is provided with a filter plate 201, and the filter plate 201 is connected to the mounting groove 102 by a slot. The filter plate 201 is installed by pressing the slot from the inside to the outside of the mounting groove 102.

[0026] The filter plate 201 has a filter element 202 inside, and the filter element 202 is integrally formed with the filter plate 201.

[0027] The filter element assembly 2 installed in the mounting groove 102 inside the V-shaped filter element frame 101 filters the hydrogen storage composite catalyst material. The filter elements 202 at both ends below the material inlet 104 increase the material filtration throughput per unit time, thereby effectively improving the filtration efficiency. At the same time, the installation and disassembly of the filter element assembly 2 and the assembly method of the V-shaped filter element frame 101 effectively reduce the difficulty of disassembling and assembling the filter plate 201. Since the material is filtered from top to bottom through the filter element 202, the V-shaped arrangement of the filter element assembly 2 effectively prevents the problem of loosening under the impact of the material.

[0028] By setting the sealing cover 103, the sealing cover 103 is used to improve the connection stability and sealing between the V-shaped filter element frame 101 and the feed port, and to prevent the problem of material leakage due to unfiltered material.

[0029] Example 2

[0030] Based on Example 1, such as Figures 1-5 As shown, a sealing cap 103 is provided at the upper end of the V-shaped filter element frame 101, and the sealing cap 103 is integrally formed with the V-shaped filter element frame 101; a material inlet 104 is provided above the V-shaped groove of the V-shaped filter element frame 101, and the material inlet 104 is integrally formed with the sealing cap 103.

[0031] The sealing cover 103 has reinforcing ribs 105 on both sides of its interior, and the reinforcing ribs 105 are integrally formed with the sealing cover 103.

[0032] A drain hole 107 is provided on one side of the V-shaped filter element frame 101, and the drain hole 107 passes through the V-shaped filter element frame 101 and is located at one end of the V-shaped groove of the V-shaped filter element frame 101.

[0033] Impurities filtered between adjacent filter element assemblies 2 adhere to the inner side of filter element 202. Due to the material being fed from top to bottom, the water flow impact force washes away the impurities adhering to the inner side of filter element 202 and discharges them to the outside through drain hole 107, thereby effectively improving the service life of filter element 202, reducing the frequency of filter element 202 replacement, and thus achieving the goal of reducing the maintenance cost of filter element 202.

Claims

1. A filtration device for preparing a hydrogen storage material composite support catalyst, comprising a V-shaped filter assembly (1), characterized in that: It also includes a filter element assembly (2); the inner walls of the V-shaped filter assembly (1) are provided with filter element assemblies (2) on both sides; the V-shaped filter assembly (1) includes a V-shaped filter element frame (101), a mounting groove (102), a sealing cover (103), a material inlet (104), a reinforcing rib (105), a reinforcing base plate (106), and a drain hole (107); the filter element assembly (2) includes a filter plate (201) and a filter element (202).

2. The filter device for the preparation of hydrogen storage material composite support catalyst according to claim 1, characterized in that: The interior of the V-shaped filter element frame (101) has a horizontally arranged V-shaped structure; both sides of the inner wall of the V-shaped filter element frame (101) are provided with mounting grooves (102), and the mounting grooves (102) and the V-shaped filter element frame (101) are integrally formed; a reinforcing base plate (106) is provided on the lower end face of the V-shaped filter element frame (101), and the reinforcing base plate (106) and the V-shaped filter element frame (101) are integrally formed.

3. The filter device for the preparation of hydrogen storage material composite support catalyst according to claim 2, characterized in that: The mounting groove (102) is provided with a filter plate (201), and the filter plate (201) is connected to the mounting groove (102) by a slot. The filter plate (201) is installed by pressing the slot from the inside to the outside of the mounting groove (102).

4. The filter device for the preparation of hydrogen storage material composite support catalyst according to claim 3, characterized in that: The filter plate (201) is provided with a filter element (202) inside, and the filter element (202) is integrally formed with the filter plate (201).

5. The filter device for the preparation of hydrogen storage material composite support catalyst according to claim 1, characterized in that: The upper end of the V-shaped filter element frame (101) is provided with a sealing cap (103), and the sealing cap (103) and the V-shaped filter element frame (101) are integrally formed; a material inlet (104) is provided above the V-shaped groove of the V-shaped filter element frame (101), and the material inlet (104) and the sealing cap (103) are integrally formed.

6. The filter device for the preparation of a hydrogen storage material composite support catalyst according to claim 5, characterized in that: The sealing cap (103) has reinforcing ribs (105) on both sides inside, and the reinforcing ribs (105) are integrally formed with the sealing cap (103).

7. The filter device for the preparation of hydrogen storage material composite support catalyst according to claim 1, characterized in that: A drain hole (107) is provided on one side of the V-shaped filter element frame (101), and the drain hole (107) is provided through the V-shaped filter element frame (101), and the drain hole (107) is located at one end of the V-shaped groove of the V-shaped filter element frame (101).