A catalyst mixing device

CN224749068UActive Publication Date: 2026-09-15FUSHUN MINING IND GROUP
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Patent Information

Application Number
CN202522704500.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-12-22
Publication Date
2026-09-15
Estimated Expiration
2035-12-22

AI Technical Summary

Technical Problem

[0004]为了解决上述技术问题,本实用新型提供一种催化剂混合装置,以解决现有的装置内部液体排出至外部储存桶时,容易溅射到地面上导致清理困难,不方便在装置底部加装溅射承接措施,来对溅射出的液体进行承接;装置内部液体排出口的离地高度固定,无法根据储存桶高度进行调节,不方便在装置上加装升降调节措施,来对液体排出口高度进行调节的问题

Benefits of technology

方便固定承载板通过螺栓固定在地面来对溅射承接盘进行承载,方便储存桶放置在溅射承接盘顶部内部来对溅射液体进行承接,解决了装置内部液体排出至外部储存桶时,容易溅射到地面上导致清理困难,不方便在装置底部加装溅射承接措施,来对溅射出的液体进行承接的问题。

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a kind of catalyst mixing device, it is related to mixing device technical field, including device ontology;The fixed bearing plate is provided at the bottom of device ontology, the insertion hole that is penetrated from top to bottom is set in the center of fixed bearing plate, three inside and outside direction strip plates are arranged in the outer circumferential ring of fixed bearing plate, the fixed hole that is penetrated from top to bottom is set in the outer end of strip plate of fixed bearing plate, the semicircular head plate with mounting hole is set in the outer end top of strip plate of fixed bearing plate, the sputtering receiving tray is inserted in the inside top of insertion hole of fixed bearing plate, it is convenient to load sputtering receiving tray by bolt fixed in ground to sputtering receiving tray, it is convenient to store barrel and place in the inside top of sputtering receiving tray to sputtering liquid is received, when device internal liquid is discharged to external storage barrel, it is easy to sputter to ground to cause cleaning difficulty, it is not convenient to install sputtering receiving measure in the bottom of device, to receive the problem of sputtering liquid.
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Description

Technical Field

[0001] This utility model belongs to the field of mixing device technology, and in particular relates to a catalyst mixing device. Background Technology

[0002] SBA-15 is a type of mesoporous molecular sieve, which has wide applications in catalysis, separation, biology and nanomaterials. However, SBA-15 has the disadvantage of low chemical reactivity. Therefore, it is necessary to modify SBA-15 with aluminum and then react the modified molecular sieve Al-SBA-15 with a composite ionic liquid to prepare an immobilized ionic liquid catalyst Al-SBA-15. The preparation process requires a mixing device.

[0003] Based on the above, the inventors have discovered the following shortcomings in existing catalyst mixing devices: 1. When the liquid inside the device is discharged into the external storage tank, it is easy to splash onto the ground, making it difficult to clean. It is inconvenient to install splash-catching measures at the bottom of the device to catch the splashed liquid. 2. The height of the liquid outlet from the ground inside the device is fixed and cannot be adjusted according to the height of the storage tank. It is inconvenient to install lifting and adjusting measures on the device to adjust the height of the liquid outlet. Utility Model Content

[0004] To address the aforementioned technical problems, this utility model provides a catalyst mixing device. This addresses the issues of existing devices where liquid discharged from the internal container to the external storage tank easily splashes onto the ground, making cleaning difficult and hindering the installation of splash-catching measures at the bottom of the device to collect the splashed liquid; and the fixed height of the internal liquid outlet from the ground, making it impossible to adjust according to the storage tank height and inconvenient to install lifting and adjusting measures on the device to adjust the liquid outlet height.

[0005] The purpose and effectiveness of this catalyst mixing device are achieved through the following specific technical means: A catalyst mixing device includes a device body; a fixed support plate is provided at the bottom of the device body, and an insertion hole is provided in the center of the fixed support plate. Three strip plates in the inner and outer directions are arranged in a circular array on the outer circumference of the fixed support plate. The outer ends of the strip plates of the fixed support plate are provided with fixing holes that penetrate vertically. A semi-circular head plate with mounting holes is provided at the top of the outer ends of the strip plates of the fixed support plate. A sputtering receiving plate is inserted into the top of the insertion hole of the fixed support plate. An insertion post is provided at the center of the bottom end face of the sputtering receiving plate. A circular groove is provided on the top end face of the sputtering receiving plate. A handle ring is provided on the outer circumference of the sputtering receiving plate.

[0006] Furthermore, a vertically oriented mixing device is bolted to the top of the inner side of the bearing annular plate, and an annular plate with mounting holes is provided on the outer circumference of the upper part of the mixing device.

[0007] Furthermore, a bearing ring plate is installed at the top of the telescopic moving rods via a fixed shaft. The bottom end face of the bearing ring plate is provided with three semi-circular head plates with mounting holes in an annular array. The bearing ring plate is provided with eight threaded holes that pass through vertically in an annular array.

[0008] Furthermore, the telescopic adjusting cylinder has a telescopic moving rod installed inside by threads in the vertical direction. The lower outer circumference of the telescopic moving rod is threaded, and the outer side of the lower outer circumference of the telescopic moving rod is provided with a vertical groove. The upper end of the telescopic moving rod is provided with a semi-circular head with a mounting hole, and the top end face of the telescopic moving rod is provided with a limiting groove that runs through both the inside and outside.

[0009] Furthermore, a telescopic adjustment cylinder in the vertical direction is installed on the annular groove of the telescopic bearing cylinder via a bearing. The inner circumference of the telescopic adjustment cylinder is threaded, the inner circumference of the bottom of the telescopic adjustment cylinder is provided with an annular groove, and the upper outer circumference of the telescopic adjustment cylinder is provided with an anti-slip groove in an annular array.

[0010] Furthermore, the telescopic bearing cylinder has a telescopic locking button installed inside the threaded hole in the inward and outward directions. The inner end of the telescopic locking button is provided with a threaded post, and the outer end face of the threaded post of the telescopic locking button is provided with a rotating post with an anti-slip groove.

[0011] Furthermore, a telescopic bearing cylinder is mounted on the semi-circular head plate of the fixed bearing plate via a fixed shaft. The lower end of the telescopic bearing cylinder is provided with a semi-circular head with a mounting hole. A limiting groove with internal and external penetration is opened on the bottom end face of the telescopic bearing cylinder. An annular groove is opened on the outer circumference of the top of the telescopic bearing cylinder. A threaded hole is opened on the top of the outer wall of the telescopic bearing cylinder.

[0012] Compared with the prior art, the present invention has the following beneficial effects: The system allows for easy fixing of the support plate to the ground with bolts to support the sputtering receiving plate. It also allows for easy placement of the storage tank inside the top of the sputtering receiving plate to receive the sputtered liquid. This solves the problem that when liquid is discharged from inside the device to the external storage tank, it easily splashes onto the ground, making cleaning difficult and making it inconvenient to install sputtering receiving measures at the bottom of the device to receive the splashed liquid.

[0013] The telescopic support cylinder is mounted on a fixed support plate via a fixed shaft to support the lifting components. This allows for easy adjustment of the liquid outlet height via the lifting components on the telescopic support cylinder. This solves the problem that the liquid outlet height inside the device is fixed and cannot be adjusted according to the storage tank height, making it inconvenient to add lifting and adjustment measures to the device to adjust the liquid outlet height. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the main structure of this utility model.

[0015] Figure 2 This is a disassembled structural diagram of the present invention.

[0016] Figure 3 This is a schematic diagram of the disassembly of the mixer used in this invention.

[0017] Figure 4 This is a cross-sectional schematic diagram of the telescopic bearing cylinder of this utility model.

[0018] Figure 5 This is a bottom view of the sputtering receiving plate of this utility model.

[0019] Figure 6 This is a bottom view of the supporting annular plate of this utility model.

[0020] In the figure: 1. Device body; 2. Fixed support plate; 3. Sputtering receiving plate; 4. Telescopic support cylinder; 5. Telescopic locking button; 6. Telescopic adjusting cylinder; 7. Telescopic moving rod; 8. Support ring plate; 9. Preparation mixer. Detailed Implementation

[0021] The embodiments of the present invention will be described in further detail below with reference to the accompanying drawings and examples.

[0022] Example 1: As shown in the attached document Figure 1 To be continued Figure 6As shown: This utility model provides a catalyst mixing device, including a device body 1; a fixed support plate 2 is provided at the bottom of the device body 1 to facilitate the support of various components; the fixed support plate 2 has a through-hole at its center to facilitate the insertion and installation of a sputtering receiving plate 3; three strip plates in the inner and outer directions (diameter direction) are arranged in a circular array on the outer circumference of the fixed support plate 2 to facilitate the support of a telescopic carrying cylinder 4; the outer ends of the strip plates of the fixed support plate 2 have through-holes for fixing to the ground with bolts; the top of the outer end of the strip plates of the fixed support plate 2 has a semi-circular head plate with mounting holes to facilitate the installation of the telescopic carrying cylinder 4 through a fixed shaft; a sputtering receiving plate 3 is inserted into the top of the insertion hole of the fixed support plate 2 to facilitate the support of the storage tank and the receipt of sputtered liquid. The bottom end face of the sputtering receiving plate 3 has an insertion post at its center for easy insertion into the fixed bearing plate 2 for positioning. The top end face of the sputtering receiving plate 3 has a circular groove for easy reception of sputtered liquid. The outer circumference of the sputtering receiving plate 3 has a handle ring for easy gripping and placement. The semi-circular head plate of the fixed bearing plate 2 is equipped with a telescopic bearing cylinder 4 in the vertical direction via a fixed shaft for easy support of the lifting components. The lower end of the telescopic bearing cylinder 4 has a semi-circular head with a mounting hole for easy installation via the fixed shaft. The bottom end face of the telescopic bearing cylinder 4 has an internal and external through-hole limiting groove for easy insertion of the semi-circular head plate for positioning. The outer circumference of the top of the telescopic bearing cylinder 4 has an annular groove for easy installation of the telescopic adjustment cylinder 6 via a bearing. The top of the outer wall of the telescopic bearing cylinder 4 has a threaded hole for easy installation of the telescopic locking button 5 via a thread.

[0023] The telescopic bearing cylinder 4 has a telescopic locking button 5 installed inside its threaded hole, which can be used to lock the telescopic moving rod 7. The inner end of the telescopic locking button 5 has a threaded post for easy threaded installation. The outer end face of the threaded post of the telescopic locking button 5 has a rotating post with anti-slip grooves for easy rotation and anti-slip. A telescopic adjusting cylinder 6 is mounted on the annular groove of the telescopic bearing cylinder 4 via a bearing, facilitating rotation of the telescopic adjusting cylinder 6. The inner circumference of the telescopic adjusting cylinder 6 has threads for easy threaded installation of the telescopic moving rod 7. The bottom inner circumference of the telescopic adjusting cylinder 6 has an annular groove for easy bearing installation. The upper outer circumference of the telescopic adjusting cylinder 6 has an anti-slip groove array for easy rotation and anti-slip. The telescopic adjusting cylinder 6 has a telescopic moving rod 7 mounted inside its interior via threads, facilitating lifting and lowering of the telescopic moving rod 7 via threaded engagement. The lower outer circumference of the telescopic moving rod 7 has threads for easy threaded installation and telescopic movement. The lower outer circumference of rod 7 has a vertically oriented groove to facilitate the insertion of the telescopic locking button 5 to prevent the telescopic moving rod 7 from detaching. The upper end of the telescopic moving rod 7 has a semi-circular head with a mounting hole for easy installation via a fixed shaft. The top end face of the telescopic moving rod 7 has an internally and externally penetrating limiting groove to facilitate the insertion and limiting of the semi-circular head plate. A bearing annular plate 8 is installed between the tops of the telescopic moving rods 7 via a fixed shaft to facilitate the support of the preparation mixer 9. The bottom end face of the bearing annular plate 8 has three semi-circular head plates with mounting holes in an annular array to facilitate the installation of the telescopic moving rod 7 via a fixed shaft. The bearing annular plate 8 has eight vertically penetrating threaded holes in an annular array to facilitate the installation of the preparation mixer 9 via bolts. The top of the inner part of the bearing annular plate 8 is bolted to install the vertically oriented preparation mixer 9 to facilitate the mixing and preparation of the catalyst. The upper outer circumference of the preparation mixer 9 has an annular plate with mounting holes for easy installation on the bearing annular plate 8 via bolts.

[0024] The specific usage and function of this embodiment are as follows: In this utility model, when... Figure 1When the catalyst liquid inside the prepared mixer 9 is fully mixed and discharged, place the storage tank on top of the sputtering receiving plate 3, aligning the opening of the storage tank with the valve at the bottom of the prepared mixer 9. Then open the valve to allow the catalyst liquid inside the prepared mixer 9 to drain into the storage tank. The sputtering liquid generated during this process will fall into the sputtering receiving plate 3, facilitating cleaning. When adjusting the height of the liquid outlet at the bottom of the prepared mixer 9, rotate the telescopic locking knob 5 to engage with the telescopic bearing cylinder 4. This allows the telescopic locking knob 5 to move outward through the threaded engagement, releasing the lock on the telescopic moving rod 7. Then rotate... The telescopic adjustment cylinder 6 engages with the telescopic moving rod 7 via a thread and rotates with the telescopic bearing cylinder 4, causing the telescopic moving rod 7 to rise through the thread engagement. The telescopic moving rod 7 drives the bearing ring plate 8 to rise synchronously, which in turn drives the mixing device 9 to rise synchronously. This achieves the adjustment of the height of the liquid outlet at the bottom of the mixing device 9 from the ground. After adjustment, the telescopic locking button 5 engages with the telescopic bearing cylinder 4 via the thread engagement, causing the telescopic locking button 5 to move inward through the thread engagement and lock the telescopic moving rod 7. The adjustment of the height of the liquid outlet at the bottom of the mixing device 9 from the ground is carried out in the same way.

[0025] Example 2: Unlike Example 1, the top end face of the fixed bearing plate 2 can also be set as a frosted surface, thereby increasing the friction between the top end face of the fixed bearing plate 2 and the sputtering receiving plate 3 and reducing the probability of the sputtering receiving plate 3 rotating.

[0026] Example 3: The difference from Example 1 is that the lower end of the insertion post of the sputtering receiving plate 3 can also be set as an inverted frustum structure, which facilitates the quick insertion of the insertion post of the sputtering receiving plate 3 into the insertion hole of the fixed bearing plate 2 and prevents the phenomenon that the insertion post of the sputtering receiving plate 3 is difficult to insert into the insertion hole of the fixed bearing plate 2.

Claims

1. A catalyst mixing device, characterized in that: The device includes a main body (1); a fixed support plate (2) is provided at the bottom of the main body (1), and an insertion hole that runs vertically through the center of the fixed support plate (2). Three strip plates in the inner and outer directions are arranged in a circular array on the outer circumference of the fixed support plate (2). A fixed hole that runs vertically through the outer end of the strip plate of the fixed support plate (2) is provided. A semi-circular head plate with a mounting hole is provided at the top of the outer end of the strip plate of the fixed support plate (2). A sputtering receiving plate (3) is inserted into the top of the insertion hole of the fixed support plate (2). An insertion post is provided at the center of the bottom end face of the sputtering receiving plate (3). A circular groove is provided on the top end face of the sputtering receiving plate (3). A handle ring is provided on the outer circumference of the sputtering receiving plate (3).

2. The catalyst mixing device as described in claim 1, characterized in that: The telescopic bearing cylinder (4) is installed on the semi-circular head plate of the fixed bearing plate (2) through a fixed shaft. The lower end of the telescopic bearing cylinder (4) is provided with a semi-circular head with an installation hole. The bottom end face of the telescopic bearing cylinder (4) is provided with a limiting groove that runs through the inside and outside. The outer circumference of the top of the telescopic bearing cylinder (4) is provided with an annular groove. The top of the outer wall of the telescopic bearing cylinder (4) is provided with a threaded hole.

3. The catalyst mixing device as described in claim 2, characterized in that: The telescopic bearing cylinder (4) has a telescopic locking button (5) installed inside the threaded hole. The inner end of the telescopic locking button (5) is provided with a threaded post, and the outer end face of the threaded post of the telescopic locking button (5) is provided with a rotating post with anti-slip groove.

4. The catalyst mixing device as described in claim 3, characterized in that: The telescopic bearing cylinder (4) has a telescopic adjusting cylinder (6) installed on its annular groove via a bearing. The telescopic adjusting cylinder (6) has a threaded inner circumference, an annular groove on the inner circumference of its bottom, and anti-slip grooves arranged in an annular array on the outer circumference of its upper part.

5. The catalyst mixing device as described in claim 4, characterized in that: The telescopic adjusting cylinder (6) is threadedly installed inside. The lower outer circumference of the telescopic moving rod (7) is threaded, and the outer side of the lower outer circumference of the telescopic moving rod (7) is provided with a vertical groove. The upper end of the telescopic moving rod (7) is provided with a semi-circular head with a mounting hole, and the top end face of the telescopic moving rod (7) is provided with a through-groove.

6. The catalyst mixing device as described in claim 5, characterized in that: The top of the telescopic moving rod (7) is equipped with a bearing ring plate (8) through a fixed shaft. The bottom end face of the bearing ring plate (8) is provided with three semi-circular head plates with mounting holes in an annular array. The bearing ring plate (8) is provided with eight threaded holes that pass through vertically in an annular array.

7. The catalyst mixing device as described in claim 6, characterized in that: The preparation mixer (9) is bolted to the top of the inner part of the bearing ring plate (8), and the upper outer circumference of the preparation mixer (9) is provided with a ring plate with mounting holes.