High-temperature-resistant stainless steel electrode

By employing a multi-layered structural design with high-temperature resistant stainless steel electrodes, the problem of unstable electrode connections is solved, achieving stability and efficient current conduction in high-temperature environments and extending the service life of the electrodes.

CN224070980UActive Publication Date: 2026-04-03XINGTAI MINGKE MACHINERY PARTS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-17
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

The existing electrodes are not securely connected in veterinary laser massagers, resulting in uneven distribution of laser or current, reduced treatment efficiency, and potential energy loss, which prevents the device from performing at its full potential.

Method used

The electrode is made of high-temperature resistant stainless steel and features a multi-structure design that combines an electrode anode isolator, an electrode anode body, an electrode cathode body, and a stabilizing component to ensure the structural stability of the electrode in high-temperature environments. The mechanical support and connection stability are provided by the cooperation of the mounting bracket, clamping seat, first retaining ring, second retaining ring, and gasket.

Benefits of technology

It improves the stability and lifespan of electrodes in high-temperature environments, prevents short circuits and collisions, ensures efficient current conduction, enhances mechanical strength, avoids damage caused by thermal expansion or temperature fluctuations, and extends the service life.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a high-temperature-resistant stainless steel electrode, which relates to the technical field of electrodes and comprises an electrode anode isolator, an electrode anode body is arranged in the electrode anode isolator, an electrode anode matched with the electrode anode body is arranged at the bottom of the electrode anode body, and an electrode cathode body is arranged at the top of the electrode anode isolator. An electrode cathode is arranged at the top of the electrode cathode body, and a stabilizing assembly is arranged between the electrode anode isolator and the electrode cathode body. Short circuits and conflicts among all parts of the electrode are effectively prevented, the stability of the electrode in use is ensured, and the electrode is made of stainless steel materials and has excellent high-temperature resistance, so that the structural stability can be kept in a high-temperature environment, damage caused by thermal expansion or temperature fluctuation is avoided, and the service life of the electrode is prolonged. And the electrode can maintain a relatively long service cycle under a high-strength service condition.
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Description

Technical Field

[0001] This utility model relates to the field of electrode technology, and more specifically, to a high-temperature resistant stainless steel electrode. Background Technology

[0002] An electrode is a key device that conducts electricity and comes into contact with an electrolyte to achieve electrochemical reactions or electrical energy conversion. It is a core component of many electrochemical systems, such as batteries, electrolyzers, fuel cells, and electroplating equipment. In the veterinary field, medical laser massager electrodes are important components specifically used in animal treatment equipment. They combine laser technology with massage functions to promote local blood circulation, reduce pain and inflammation, and accelerate tissue repair in animals.

[0003] Medical laser massagers, in conjunction with laser heads or massager components, deliver laser energy or current to animal skin, ensuring that the therapeutic energy effectively targets the tissue. Close contact between the electrodes and the skin is crucial for uniform energy distribution and improved treatment efficacy. However, unstable electrode connections can lead to uneven laser or current distribution, reducing treatment efficiency and failing to achieve the desired therapeutic effect. Furthermore, unstable electrodes may cause partial energy loss, resulting in the device not performing at its full potential.

[0004] No effective solutions have yet been proposed to address the problems in the relevant technologies. Utility Model Content

[0005] In view of the problems in the related technologies, this utility model proposes a high-temperature resistant stainless steel electrode to overcome the above-mentioned technical problems existing in the existing related technologies.

[0006] Therefore, the specific technical solution adopted by this utility model is as follows:

[0007] A high-temperature resistant stainless steel electrode includes an electrode anode isolator, an electrode anode body is disposed inside the electrode anode is disposed at the bottom of the electrode anode body, an electrode anode body is disposed at the top of the electrode anode isolator, an electrode cathode is disposed at the top of the electrode cathode body, and a stabilizing component is disposed between the electrode anode isolator and the electrode cathode body.

[0008] Furthermore, to facilitate the installation, disassembly, and maintenance of the electrodes through the layered modular design of the upper and lower isolators, the electrode anode passes through the lower isolation cavity and is connected to the bottom of the electrode anode body, thereby achieving efficient current conduction and improving electrolysis efficiency. The electrode anode isolator includes an upper isolator connected to the bottom of the electrode cathode body, and a lower isolator is provided at the bottom of the upper isolator. The upper isolator has an upper isolation cavity that cooperates with the electrode anode body, and the lower isolator has a lower isolation cavity that cooperates with the electrode anode. The electrode anode passes through the lower isolation cavity and is connected to the bottom of the electrode anode body.

[0009] Furthermore, in order to provide mechanical support and connection stability for the electrode through the cooperation of the mounting bracket, clamping seats, first retaining ring, second retaining ring, and gasket, and to prevent the electrode from loosening under high-frequency impact, and because the first and second retaining rings are connected to the pin through perforations to form a stable protective structure, thereby enhancing the overall mechanical strength of the electrode, the stabilizing component includes a mounting bracket disposed between the electrode anode isolator and the electrode cathode body. The mounting bracket has two sets of clamping seats inside, and a first retaining ring is disposed between the two sets of clamping seats. The two sides of the first retaining ring are connected to the pin through perforations, and a gasket is disposed on one side of the first and second retaining rings.

[0010] The beneficial effects of this utility model are as follows:

[0011] 1. This utility model effectively prevents short circuits and conflicts between different parts of the electrode through multiple structural designs, including an electrode anode isolator, an electrode anode body, an electrode cathode body, and a stabilizing component. This ensures the stability of the electrode during use. Furthermore, the electrode is made of stainless steel, which has excellent high-temperature resistance, thus maintaining structural stability in high-temperature environments and avoiding damage caused by thermal expansion or temperature fluctuations. This allows the electrode to maintain a longer service life even under high-intensity use conditions, thereby improving the service life of the electrode.

[0012] 2. By setting up a stabilizing component, this utility model provides mechanical support and connection stability for the electrode through the cooperation of the mounting bracket, clamping seat, first retaining ring, second retaining ring and gasket, preventing the electrode from loosening under high-frequency impact. Furthermore, since the first retaining ring and the second retaining ring are connected to the pin through the perforation, a stable protective structure is formed, thereby enhancing the overall mechanical strength of the electrode. Attached Figure Description

[0013] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0014] Figure 1 This is a schematic diagram of the structure of a high-temperature resistant stainless steel electrode according to an embodiment of the present utility model;

[0015] Figure 2 This is a partial cross-sectional view of a high-temperature resistant stainless steel electrode according to an embodiment of the present utility model;

[0016] Figure 3 This is an assembly diagram of an electrode anode isolator, electrode cathode body and stabilizing components in a high-temperature resistant stainless steel electrode according to an embodiment of the present utility model.

[0017] Figure 4 This is a schematic diagram of the structure of a stabilizing component in a high-temperature resistant stainless steel electrode according to an embodiment of the present invention.

[0018] In the picture:

[0019] 1. Electrode anode isolator; 101. Upper isolator; 1011. Upper isolator cavity; 102. Lower isolator; 1021. Lower isolator cavity; 2. Electrode anode body; 3. Electrode anode; 4. Electrode cathode body; 5. Electrode cathode; 6. Stabilizing assembly; 601. Mounting bracket; 602. Clamping seat; 603. First retaining ring; 604. Through hole; 605. Pin; 606. Second retaining ring; 607. Gasket. Detailed Implementation

[0020] To further illustrate the various embodiments, the present invention provides accompanying drawings, which are part of the disclosure of the present invention. These drawings are mainly used to illustrate the embodiments and can be used in conjunction with the relevant descriptions in the specification to explain the operating principles of the embodiments. With reference to these contents, those skilled in the art should be able to understand other possible implementation methods and the advantages of the present invention. The components in the figures are not drawn to scale, and similar component symbols are usually used to represent similar components.

[0021] According to an embodiment of the present invention, a high-temperature resistant stainless steel electrode is provided.

[0022] The present invention will now be further described in conjunction with the accompanying drawings and specific embodiments, such as... Figures 1-4 As shown, the high-temperature resistant stainless steel electrode according to an embodiment of the present invention includes an electrode anode isolator 1, an electrode anode body 2 is disposed inside the electrode anode isolator 1, an electrode anode 3 that cooperates with the electrode anode body 2 is disposed at the bottom of the electrode anode body, an electrode cathode body 4 is disposed at the top of the electrode anode isolator 1, an electrode cathode 5 is disposed at the top of the electrode cathode body 4, and a stabilizing component 6 is disposed between the electrode anode isolator 1 and the electrode cathode body 4.

[0023] By employing the above-mentioned solution, this utility model effectively prevents short circuits and conflicts between different parts of the electrode through multiple structural designs, including the electrode anode isolator 1, electrode anode body 2, electrode cathode body 4, and stabilizing component 6, ensuring the stability of the electrode during use. Furthermore, the electrode is made of stainless steel, which has excellent high-temperature resistance, thus maintaining structural stability in high-temperature environments and avoiding damage caused by thermal expansion or temperature fluctuations. This allows the electrode to maintain a longer service life even under high-intensity use conditions, thereby improving the service life of the electrode.

[0024] Specifically, the high-temperature resistant electrode provided by this utility model is a veterinary laser massager electrode. It has a simple, practical, and reliable structure, effectively preventing the problem of increased electrode resistance due to heating during the emission of stainless steel electrodes. The electrode anode body 2 is made of brass alloy, while the electrode cathode body 4, electrode anode 3, and electrode cathode 5 are all made of high-temperature resistant 301S stainless steel. The electric shock emitted from the electrical box can reach 1.5 million to 2 million shocks per minute, and the service life can be increased by three times.

[0025] In one embodiment, the electrode anode isolator 1 includes an upper isolator 101 connected to the bottom of the electrode cathode 4, and a lower isolator 102 at the bottom of the upper isolator 101. The upper isolator 101 has an upper isolation cavity 1011 that cooperates with the electrode anode 2, and the lower isolator 102 has a lower isolation cavity 1021 that cooperates with the electrode anode 3. The electrode anode 3 passes through the lower isolation cavity 1021 and is connected to the bottom end of the electrode anode 2. The layered modular design of the upper isolator 101 and the lower isolator 102 makes the electrode easier and more flexible to install, disassemble and maintain. The electrode anode 3 passes through the lower isolation cavity 1021 and is connected to the bottom end of the electrode anode 2, thereby achieving efficient current conduction and improving electrolysis efficiency.

[0026] In one embodiment, the aforementioned stabilizing component 6 includes a mounting bracket 601 disposed between the electrode anode isolator 1 and the electrode cathode body 4. The mounting bracket 601 has two sets of clamping seats 602 inside, with a first retaining ring 603 between the two sets of clamping seats 602. The two sides of the first retaining ring 603 are connected to a second retaining ring 606 via through holes 604 and a pin 605. A gasket 607 is disposed on one side of the first retaining ring 603 and the second retaining ring 606. Thus, the mounting bracket 601, clamping seats 602, first retaining ring 603, second retaining ring 606, and gasket 607 work together to provide mechanical support and connection stability for the electrode, preventing it from loosening under high-frequency impact. Furthermore, since the first retaining ring 603 and the second retaining ring 606 are connected to the pin 605 via through holes 604, a stable protective structure is formed, thereby enhancing the overall mechanical strength of the electrode.

[0027] Specifically, the working principle of the stabilizing component 6 is as follows: When disassembling the electrode anode isolator 1 and the electrode cathode body 4, the pin 605 is first removed from the inside of the through hole 604. At this time, the first retaining ring 603 and the second retaining ring 606 are in a loose state, which facilitates the disassembly of the electrode anode isolator 1 and the electrode cathode body 4. At the same time, when the electrode anode isolator 1 or the electrode cathode body 4 is damaged, the damaged parts can also be replaced by the stabilizing component 6. Similarly, when installing the electrode anode isolator 1 and the electrode cathode body 4, the two sets of pins 605 are engaged with the two sets of through holes 604 to fix the first retaining ring 603 and the second retaining ring 606, which facilitates the stable installation of the electrode anode isolator 1 and the electrode cathode body 4.

[0028] To facilitate understanding of the above-mentioned technical solutions of this utility model, the working principle or operation method of this utility model in actual process will be described in detail below.

[0029] In practical applications, the anode and cathode parts are first physically isolated by the electrode anode isolator 1. The anode part consists of the electrode anode body 2 and the electrode anode 3. The upper isolator 101 and the lower isolator 102 are precisely matched to form a stable conductive path. The cathode part completes the reduction reaction through the electrode cathode body 4 and the electrode cathode 5. At the same time, the stabilizing component 6 ensures the mechanical strength and stability of the electrode under high-frequency current and mechanical impact, thereby achieving efficient current conduction, good heat insulation and electrical insulation performance, and is suitable for high-temperature and high-frequency electrolysis environments.

[0030] In summary, by utilizing the above-mentioned technical solutions of this utility model, the present utility model effectively prevents short circuits and conflicts between different parts of the electrode through multiple structural designs, including the electrode anode isolator 1, electrode anode body 2, electrode cathode body 4, and stabilizing component 6, ensuring the stability of the electrode during use. Furthermore, the electrode uses stainless steel, which has excellent high-temperature resistance, thus maintaining structural stability in high-temperature environments and avoiding damage caused by thermal expansion or temperature fluctuations. This allows the electrode to maintain a longer service life even under high-intensity use conditions, thereby improving its lifespan. The present utility model, by setting up the stabilizing component 6, provides mechanical support and connection stability for the electrode through the cooperation of the mounting bracket 601, clamping seat 602, first retaining ring 603, second retaining ring 606, and gasket 607, preventing the electrode from loosening under high-frequency impacts. Moreover, since the first retaining ring 603 and the second retaining ring 606 are connected to the pin 605 through the through hole 604, a stable protective structure is formed, thereby enhancing the overall mechanical strength of the electrode.

[0031] In this utility model, unless otherwise explicitly specified and limited, the terms "installation", "setting", "connection", "fixing", "screw connection", etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal connection of two components or the interaction between two components. Unless otherwise explicitly limited, those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.

[0032] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A high temperature resistant stainless steel electrode, characterized by, The application relates to an electrode anode separator (1), which is internally provided with an electrode anode body (2), the bottom of the electrode anode body is provided with an electrode anode (3) matched with the electrode anode body (2), the top of the electrode anode separator (1) is provided with an electrode cathode body (4), the top of the electrode cathode body (4) is provided with an electrode cathode (5), and a stable assembly (6) is arranged between the electrode anode separator (1) and the electrode cathode body (4).

2. A high temperature resistant stainless steel electrode as claimed in claim 1, wherein, The electrode anode separator (1) comprises an upper isolation body (101) connected with the bottom of the electrode cathode body (4), and the bottom of the upper isolation body (101) is provided with a lower isolation body (102).

3. A high temperature resistant stainless steel electrode according to claim 2, characterized in that, An upper isolation cavity (1011) matched with the electrode anode body (2) is formed in the inside of the upper isolation body (101), and a lower isolation cavity (1021) matched with the electrode anode (3) is formed in the inside of the lower isolation body (102).

4. A high temperature resistant stainless steel electrode according to claim 3, wherein The electrode anode (3) penetrates through the lower isolation cavity (1021) and is connected with the bottom end of the electrode anode body (2).

5. A high temperature resistant stainless steel electrode according to claim 4, wherein The stable assembly (6) comprises a mounting frame (601) arranged between the electrode anode separator (1) and the electrode cathode body (4), the inside of the mounting frame (601) is provided with two groups of clamping seats (602), a first stop ring (603) is arranged between the two groups of clamping seats (602), and the two sides of the first stop ring (603) are connected with a second stop ring (606) through a perforation (604) and a pin shaft (605).

6. A high temperature resistant stainless steel electrode according to claim 5, wherein The first stop ring (603) and one side of the second stop ring (606) are provided with a gasket (607).