High-performance titanium-based ir-ta oxide anode with nano-coating structure

By designing an equally spaced mechanism on the titanium-based Ir-Ta oxide anode rod, the problem of uneven anode rod spacing adjustment was solved, achieving uniform adjustment of the anode rod spacing and improving the stability and consistency of the performance.

CN224313683UActive Publication Date: 2026-06-02JIANGSU YIANTANG SPECIAL ELECTRODE NEW MATERIAL TECH CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
JIANGSU YIANTANG SPECIAL ELECTRODE NEW MATERIAL TECH CO LTD
Filing Date
2025-07-22
Publication Date
2026-06-02

AI Technical Summary

Technical Problem

When using existing titanium-based Ir-Ta oxide anode rods, the spacing needs to be adjusted one by one, and manual adjustment can easily lead to uneven spacing, affecting the performance.

Method used

A high-performance titanium-based Ir-Ta oxide anode with a nano-coating structure was designed. The anode rods are adjusted at equal intervals through an equal-spacing mechanism, which includes a combination of a first threaded rod, a threaded block, a moving block and a diamond-shaped telescopic frame to ensure the uniformity of the anode rod spacing.

Benefits of technology

It enables simple and accurate adjustment of the spacing between multiple titanium-based Ir-Ta oxide anode rods, avoiding the problem of excessively large or small spacing, and improving the stability and consistency of the performance.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224313683U_ABST
    Figure CN224313683U_ABST
Patent Text Reader

Abstract

The utility model relates to the field of titanium base Ir-Ta oxide anode, specifically speaking, a kind of high-performance titanium base Ir-Ta oxide anode with nano coating structure, including titanium base Ir-Ta oxide anode stick body, titanium base Ir-Ta oxide anode stick body is provided with multiple, the surface of multiple titanium base Ir-Ta oxide anode stick body is provided with nano coating;The utility model is moved through the thread block, pull diamond telescopic frame to retract, make diamond telescopic frame when retracting, can synchronously drive multiple moving blocks to move at equal intervals, to realize the equal interval adjustment of the interval between multiple titanium base Ir-Ta oxide anode stick body, to when the interval between multiple titanium base Ir-Ta oxide anode stick body needs to be adjusted, not only can more simply, conveniently equal interval adjustment is carried out to interval, and when adjusting, interval is not prone to the problem of too big or too small, improves the accuracy of multiple titanium base Ir-Ta oxide anode stick body when adjusting interval.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention relates to the field of titanium-based Ir-Ta oxide anodes, specifically a high-performance titanium-based Ir-Ta oxide anode with a nano-coating structure. Background Technology

[0002] High-performance titanium-based Ir-Ta oxide anodes are insoluble anodes coated with iridium and tantalum oxides on a titanium substrate. They belong to the category of size-stability anodes. Their core structure consists of an industrially pure titanium substrate and an Ir-Ta oxide active coating. They are prepared through processes such as thermal decomposition and sol-gel methods. Generally, a nano-coating is added to the surface of the titanium-based Ir-Ta oxide anode. The nano-coating significantly increases the number of active sites on the anode surface by forming nanoscale IrO2 crystal aggregates. These nanocrystals can contact the electrolyte more effectively, thereby reducing the overpotential of the oxygen evolution reaction and improving the electrocatalytic efficiency.

[0003] In existing technologies, some titanium-based Ir-Ta oxide anodes are manufactured in rod shape and placed in liquids during use. To enhance their performance, some titanium-based Ir-Ta oxide anodes are coated with a nano-coating to improve stability and corrosion resistance. Typically, multiple rod-shaped titanium-based Ir-Ta oxide anodes are placed in the liquid simultaneously to facilitate current conduction. These rods are usually used side-by-side. However, when adjusting the spacing between the rods to suit the environment, each rod must be adjusted individually. This manual adjustment can lead to excessive spacing discrepancies, affecting the overall performance of the anodes. Utility Model Content

[0004] To overcome the shortcomings of existing technologies, when operators need to adjust the spacing between multiple titanium-based Ir-Ta oxide anode rods according to the usage environment, it is necessary to adjust each titanium-based Ir-Ta oxide anode rod individually. Furthermore, during adjustment, the spacing between multiple titanium-based Ir-Ta oxide anode rods may become too different due to manual adjustment, thereby affecting the performance of multiple titanium-based Ir-Ta oxide anode rods in use. This utility model proposes a high-performance titanium-based Ir-Ta oxide anode with a nano-coating structure.

[0005] The technical solution adopted by this utility model to solve its technical problem is: a high-performance titanium-based Ir-Ta oxide anode with a nano-coating structure, including a titanium-based Ir-Ta oxide anode rod body, wherein multiple titanium-based Ir-Ta oxide anode rod bodies are provided, the surface of the multiple titanium-based Ir-Ta oxide anode rod bodies is provided with a nano-coating, one end of the multiple titanium-based Ir-Ta oxide anode rod bodies is fixedly connected to a mounting block, and one side of the mounting block is provided with an equally spaced mechanism;

[0006] The equidistant mechanism includes a first mounting plate, the bottom of which is positioned on top of a mounting block. A limit rod is fixedly connected to one side of the first mounting plate, and a second mounting plate is fixedly connected to one end of the limit rod. A first threaded rod is rotatably connected to one side of the second mounting plate, with one end of the first threaded rod penetrating the first mounting plate. A threaded block is threadedly connected to the surface of the first threaded rod, and the inner cavity of the threaded block is slidably connected to the surface of the limit rod. Multiple movable blocks are slidably connected to the surface of the limit rod, and each movable block is fitted onto the surface of the first threaded rod. A fixed block is fixedly connected to one side of the second mounting plate, and the fixed block is fitted onto the surfaces of the limit rod and the first threaded rod. A diamond-shaped telescopic frame is rotatably connected to the top of the threaded block, the fixed block, and the multiple movable blocks. Connecting components are provided at the bottom of the threaded block and the multiple movable blocks.

[0007] Preferably, the connecting assembly includes a first clamping ring block, the top of which is fixedly connected to the bottom of a threaded block, a second threaded rod rotatably connected to one side of the threaded block, a second clamping ring block being threadedly connected to the surface of the second threaded rod, and one side of the second clamping ring block being slidably connected to the bottom of the threaded block. The inner cavities of the first and second clamping ring blocks are disposed on the surface of the mounting block.

[0008] Preferably, a limiting rod is fixedly connected to one side of the first clamping ring block, and the surface of the limiting rod is slidably connected to the inner cavity of the second clamping ring block.

[0009] Preferably, a connecting plate is fixedly connected to one side of the second mounting plate and the first mounting plate, and the top of the connecting plate is provided with threaded holes, and multiple threaded holes are provided.

[0010] Preferably, a fixing rod is fixedly connected between one side of the first mounting plate and one side of the second mounting plate, and a sliding ring block is fixedly connected to the bottom of the threaded block and the plurality of movable blocks, and the inner cavity of the plurality of sliding ring blocks is slidably connected to the surface of the fixing rod.

[0011] Preferably, a limiting plate is fixedly connected to one side of the connecting plate, and sliders are slidably connected to the surfaces of the plurality of mounting blocks, with one side of the slider slidably connected to the surface of the limiting plate.

[0012] Preferably, a reinforcing plate is fixedly connected to the bottom of both the first mounting plate and the second mounting plate, and one side of each of the two reinforcing plates is fixedly connected to one side of the connecting plate.

[0013] The advantages of this utility model are:

[0014] This invention utilizes the rotation of the first threaded rod to allow the threaded block to move smoothly. This movement of the threaded block, in turn, pulls the rhomboid telescopic frame to extend and retract. During this extension and retraction, the rhomboid telescopic frame simultaneously drives multiple moving blocks to move at equal intervals, thereby achieving equal-interval adjustment of the spacing between multiple titanium-based Ir-Ta oxide anode rods. This makes adjusting the spacing between multiple titanium-based Ir-Ta oxide anode rods simpler and more convenient, and reduces the likelihood of excessively large or small spacings. It improves the accuracy of adjusting the spacing between multiple titanium-based Ir-Ta oxide anode rods and solves the problem that previously, when adjusting the spacing between multiple titanium-based Ir-Ta oxide anode rods according to the usage environment, it was necessary to adjust each rod individually. Furthermore, manual adjustment could result in excessively large spacing differences, affecting the performance of the multiple titanium-based Ir-Ta oxide anode rods in use. Attached Figure Description

[0015] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art 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.

[0016] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0017] Figure 2 This is a side view of the structure of this utility model;

[0018] Figure 3 This is a schematic diagram of the structure of the first mounting plate and slider of this utility model;

[0019] Figure 4 This is a schematic diagram of the structure of the second mounting plate and threaded block of this utility model;

[0020] Figure 5 This utility model Figure 3 A magnified structural diagram of point A in the middle.

[0021] In the figure: 1. Titanium-based Ir-Ta oxide anode rod body; 2. Nano-coating; 3. Equal spacing mechanism; 301. First mounting plate; 302. Second mounting plate; 303. Fixing block; 304. Threaded block; 305. First threaded rod; 306. Moving block; 307. Rhomboid telescopic frame; 308. Limiting rod; 309. Connecting assembly; 3091. First clamping ring block; 3092. Second threaded rod; 3093. Second clamping ring block; 4. Connecting plate; 5. Threaded hole; 6. Reinforcing plate; 7. Slider; 8. Limiting plate; 9. Limiting rod; 10. Fixing rod; 11. Sliding ring block; 12. Mounting block. Detailed Implementation

[0022] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present utility model.

[0023] The following is in conjunction with the appendix Figure 1-5 This application will be described in further detail.

[0024] This application discloses a high-performance titanium-based Ir-Ta oxide anode with a nano-coating structure. (Refer to...) Figure 1 and Figure 3 A high-performance titanium-based Ir-Ta oxide anode with a nano-coating structure includes a titanium-based Ir-Ta oxide anode rod body 1, multiple titanium-based Ir-Ta oxide anode rod bodies 1 are provided, a nano-coating 2 is provided on the surface of multiple titanium-based Ir-Ta oxide anode rod bodies 1, a mounting block 12 is fixedly connected to one end of multiple titanium-based Ir-Ta oxide anode rod bodies 1, and an equally spaced mechanism 3 is provided on one side of the mounting block 12.

[0025] The equidistant mechanism 3 includes a first mounting plate 301, the bottom of which is positioned on top of the mounting block 12. A limiting rod 308 is fixedly connected to one side of the first mounting plate 301, and a second mounting plate 302 is fixedly connected to one end of the limiting rod 308. A first threaded rod 305 is rotatably connected to one side of the second mounting plate 302, and one end of the first threaded rod 305 passes through the first mounting plate 301. A threaded block 304 is threadedly connected to the surface of the first threaded rod 305, and the inner cavity of the threaded block 304 slides against the surface of the limiting rod 308. Next, a movable block 306 is slidably connected to the surface of the limiting rod 308. Multiple movable blocks 306 are provided, and multiple movable blocks 306 are all sleeved on the surface of the first threaded rod 305. A fixing block 303 is fixedly connected to one side of the second mounting plate 302. The fixing block 303 is sleeved on the surface of the limiting rod 308 and the first threaded rod 305. A diamond-shaped telescopic frame 307 is rotatably connected to the top of the threaded block 304, the fixing block 303 and the multiple movable blocks 306. A connecting component 309 is provided at the bottom of the threaded block 304 and the multiple movable blocks 306.

[0026] When in use, the titanium-based Ir-Ta oxide anode rod body 1 mainly conducts current through the titanium rod, and the surface-coated IrO2 catalyzes the decomposition of water molecules into oxygen. At the same time, Ta2O5 protects the titanium base from strong acid corrosion, achieving a highly efficient and long-life oxygen evolution reaction. It is used in industries such as electrolytic copper foil and wastewater treatment. The nano-coating 2 can significantly increase the catalytic active sites, while inhibiting crack propagation and acid penetration, giving the titanium-based Ir-Ta oxide anode rod body 1 a long service life. The nano-coating 2 can be a composite oxide of iridium dioxide and tantalum pentoxide, effectively coated on the surface of the titanium-based Ir-Ta oxide anode rod body 1. Both the titanium-based Ir-Ta oxide anode rod body 1 and the nano-coating 2 are existing technologies in this field, so they will not be described in detail here.

[0027] Furthermore, the first mounting plate 301 can cooperate with the second mounting plate 302 to connect the limiting rod 308 and the first threaded rod 305. The second mounting plate 302 can install and fix the fixing block 303, while the first threaded rod 305 can connect to the threaded block 304 and limit the threaded block 304 through the limiting rod 308. At the same time, the moving block 306 sliding on the surface of the limiting rod 308 can be connected to the fixing block 303 and the threaded block 304 through the diamond-shaped telescopic frame 307. The connecting component 309 can fix and use the titanium-based Ir-Ta oxide anode rod body 1 by clamping and installing the mounting block 12. At the same time, the number of titanium-based Ir-Ta oxide anode rod bodies 1 is the same as the sum of the number of threaded blocks 304 and multiple moving blocks 306, and the number of connecting components 309 is the same as the number of titanium-based Ir-Ta oxide anode rod bodies 1.

[0028] Furthermore, when the first threaded rod 305 rotates and drives the threaded block 304 to move, the extension and retraction of the diamond-shaped telescopic frame 307 and the fixed connection between the fixed block 303 and the second mounting plate 302 can drive the threaded block 304 and multiple moving blocks 306 to move at equal intervals. This enables the multiple connecting components 309 and the titanium-based Ir-Ta oxide anode rod body 1 to move at equal intervals. As a result, the titanium-based Ir-Ta oxide anode rod body 1 can move closer to each other at equal intervals or further away from each other at equal intervals as needed during use, so that the titanium-based Ir-Ta oxide anode rod body 1 can perform the required effect in different usage scenarios.

[0029] Reference Figure 3 and Figure 5 The connecting assembly 309 includes a first clamping ring block 3091, the top of which is fixedly connected to the bottom of a threaded block 304. A second threaded rod 3092 is rotatably connected to one side of the threaded block 304. A second clamping ring block 3093 is threadedly connected to the surface of the second threaded rod 3092. One side of the second clamping ring block 3093 is slidably connected to the bottom of the threaded block 304. The inner cavities of the first clamping ring block 3091 and the second clamping ring block 3093 are disposed on the surface of the mounting block 12. Since the multiple connecting assemblies 309 have the same structure, their principles are the same. Therefore, the multiple connecting assemblies 309 will not be discussed further here. The specific principle of 9 will not be elaborated in detail. The first clamping ring block 3091 can be connected to the second clamping ring block 3093 through the second threaded rod 3092, and the second clamping ring block 3093 is slidably connected to the threaded block 304. Therefore, when the second threaded rod 3092 rotates, it can smoothly drive the second clamping ring block 3093 to move. Through the cooperation between the first clamping ring block 3091 and the second clamping ring block 3093, the mounting block 12 can be effectively clamped, thereby realizing the installation of the titanium-based Ir-Ta oxide anode rod body 1 and its subsequent smooth use.

[0030] Reference Figure 5 A limiting rod 9 is fixedly connected to one side of the first clamping ring block 3091. The surface of the limiting rod 9 is slidably connected to the inner cavity of the second clamping ring block 3093. The first clamping ring block 3091 can connect to the limiting rod 9, and the limiting rod 9 can restrict the movement of the second clamping ring block 3093 through the sliding connection between itself and the second clamping ring block 3093, so that it has high stability and stability when moving and using.

[0031] Reference Figure 2 and Figure 3A connecting plate 4 is fixedly connected to one side of the second mounting plate 302 and the first mounting plate 301. The top of the connecting plate 4 is provided with threaded holes 5. Multiple threaded holes 5 are provided. The connecting plate 4 can effectively connect the first mounting plate 301 and the second mounting plate 302 and play a role in subsequent installation. At the same time, the operator can use bolts or other threaded tools to connect the connecting plate 4 to the side of other equipment through the threaded holes 5, thereby realizing the smooth use of the titanium-based Ir-Ta oxide anode rod body 1 and the equidistant mechanism 3.

[0032] Reference Figure 2 and Figure 5 A fixing rod 10 is fixedly connected between one side of the first mounting plate 301 and one side of the second mounting plate 302. Sliding ring blocks 11 are fixedly connected to the bottom of the threaded block 304 and the multiple moving blocks 306. The inner cavities of the multiple sliding ring blocks 11 are slidably connected to the surface of the fixing rod 10. The first mounting plate 301 and the second mounting plate 302 can further cooperate with each other to install and fix the fixing rod 10. The sliding ring blocks 11 installed at the bottom of the threaded block 304 and the multiple moving blocks 306 can slide smoothly on the surface of the fixing rod 10, thereby further improving the stability and smoothness of the threaded block 304 and the multiple moving blocks 306 during movement.

[0033] Reference Figure 4 and Figure 5 A limiting plate 8 is fixedly connected to one side of the connecting plate 4. A slider 7 is slidably connected to the surface of multiple mounting blocks 12. One side of the slider 7 is slidably connected to the surface of the limiting plate 8. The slider 7 and the limiting plate 8 can limit the movement of the mounting block 12 while increasing the stability of the mounting block 12 during use, so that it is not easy to shake or tilt when used synchronously with the titanium-based Ir-Ta oxide anode rod body 1.

[0034] Reference Figure 1 and Figure 3 The bottom of the first mounting plate 301 and the second mounting plate 302 are both fixedly connected to the reinforcing plate 6. One side of each of the two reinforcing plates 6 is fixedly connected to one side of the connecting plate 4. The connection between the two reinforcing plates 6 and the connecting plate 4 can provide reinforcement for the use of the first mounting plate 301 and the second mounting plate 302, so that the first mounting plate 301 and the second mounting plate 302 are equally stable and firm during use, and are not prone to shaking or tilting during use.

[0035] Working principle: When using this device, the operator can clamp multiple titanium-based Ir-Ta oxide anode rods 1 onto the bottom of the threaded block 304 and multiple moving blocks 306 respectively through the connecting assembly 309. During installation, the surface of the mounting block 12 can be fitted with the inner cavity of the first clamping ring block 3091. After fitting, the second threaded rod 3092 is rotated. When the second threaded rod 3092 rotates, it can smoothly drive the second clamping ring block 3093 to move. After the second clamping ring block 3093 moves to a certain distance, it can smoothly cooperate with the first clamping ring block 3091 to achieve clamping and installation of the mounting block 12. Afterwards, the operator can connect the connecting plate 4 to one side of the external equipment through the threaded hole 5 and threaded tools such as bolts, so that the titanium-based Ir-Ta oxide anode rods 1 can be used smoothly.

[0036] When it is necessary to adjust the spacing between multiple titanium-based Ir-Ta oxide anode rods 1, the operator can rotate the first threaded rod 305. When the first threaded rod 305 rotates, it can smoothly drive the threaded block 304 to move. At this time, the movement of the rhomboid telescopic frame 307 can pull multiple moving blocks 306 to move through the extension and retraction of the rhomboid telescopic frame 307. At the same time, since the fixed block 303 is fixedly connected to the second mounting plate 302, the extension and retraction of the rhomboid telescopic frame 307 can smoothly drive multiple moving blocks 306 to move at equal intervals, thereby realizing the equal spacing adjustment between multiple titanium-based Ir-Ta oxide anode rods 1. This makes it more convenient and more accurate to adjust the spacing of multiple titanium-based Ir-Ta oxide anode rods 1 when needed.

[0037] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model.

Claims

1. A high-performance titanium-based Ir-Ta oxide anode with a nano-coating structure, comprising a titanium-based Ir-Ta oxide anode rod body (1), characterized in that: The titanium-based Ir-Ta oxide anode rod body (1) is provided in multiple ways. The surface of the multiple titanium-based Ir-Ta oxide anode rod bodies (1) is provided with a nano-coating (2). One end of the multiple titanium-based Ir-Ta oxide anode rod bodies (1) is fixedly connected to a mounting block (12). An equally spaced mechanism (3) is provided on one side of the mounting block (12). The equal-spacing mechanism (3) includes a first mounting plate (301), the bottom of which is disposed on the top of the mounting block (12). A limiting rod (308) is fixedly connected to one side of the first mounting plate (301), and a second mounting plate (302) is fixedly connected to one end of the limiting rod (308). A first threaded rod (305) is rotatably connected to one side of the second mounting plate (302). One end of the first threaded rod (305) passes through the first mounting plate (301), and a threaded block (304) is threadedly connected to the surface of the first threaded rod (305). The inner cavity of the threaded block (304) is slidably connected to the surface of the limiting rod (308). Next, a movable block (306) is slidably connected to the surface of the limiting rod (308). Multiple movable blocks (306) are provided, and multiple movable blocks (306) are all sleeved on the surface of the first threaded rod (305). A fixing block (303) is fixedly connected to one side of the second mounting plate (302). The fixing block (303) is sleeved on the surface of the limiting rod (308) and the first threaded rod (305). A diamond-shaped telescopic frame (307) is rotatably connected to the top of the threaded block (304), the fixing block (303) and the multiple movable blocks (306). A connecting component (309) is provided at the bottom of the threaded block (304) and the multiple movable blocks (306).

2. The high-performance titanium-based Ir-Ta oxide anode with a nano-coating structure according to claim 1, characterized in that: The connecting assembly (309) includes a first clamping ring block (3091), the top of the first clamping ring block (3091) is fixedly connected to the bottom of the threaded block (304), a second threaded rod (3092) is rotatably connected to one side of the threaded block (304), a second clamping ring block (3093) is threadedly connected to the surface of the second threaded rod (3092), one side of the second clamping ring block (3093) is slidably connected to the bottom of the threaded block (304), and the inner cavities of the first clamping ring block (3091) and the second clamping ring block (3093) are disposed on the surface of the mounting block (12).

3. The high-performance titanium-based Ir-Ta oxide anode with a nano-coating structure according to claim 2, characterized in that: A limiting rod (9) is fixedly connected to one side of the first clamping ring block (3091), and the surface of the limiting rod (9) is slidably connected to the inner cavity of the second clamping ring block (3093).

4. The high-performance titanium-based Ir-Ta oxide anode with a nano-coating structure according to claim 3, characterized in that: A connecting plate (4) is fixedly connected to one side of the second mounting plate (302) and the first mounting plate (301). The top of the connecting plate (4) is provided with a threaded hole (5), and there are multiple threaded holes (5).

5. The high-performance titanium-based Ir-Ta oxide anode with a nano-coating structure according to claim 4, characterized in that: A fixing rod (10) is fixedly connected between one side of the first mounting plate (301) and one side of the second mounting plate (302). The bottom of the threaded block (304) and the plurality of moving blocks (306) are all fixedly connected with sliding ring blocks (11). The inner cavities of the plurality of sliding ring blocks (11) are all slidably connected to the surface of the fixing rod (10).

6. The high-performance titanium-based Ir-Ta oxide anode with a nano-coating structure according to claim 4, characterized in that: A limiting plate (8) is fixedly connected to one side of the connecting plate (4), and sliders (7) are slidably connected to the surfaces of the plurality of mounting blocks (12), with one side of the sliders (7) slidably connected to the surface of the limiting plate (8).

7. The high-performance titanium-based Ir-Ta oxide anode with a nano-coating structure according to claim 4, characterized in that: The bottom of the first mounting plate (301) and the second mounting plate (302) are both fixedly connected to a reinforcing plate (6), and one side of each of the two reinforcing plates (6) is fixedly connected to one side of the connecting plate (4).