A portable electrode cleaning apparatus

By combining the modular design of the portable electrode cleaner with ultrasonic cleaning, water rinsing, and standard solution measurement, the problems of slow electrode cleaning speed and inconvenience of carrying are solved, achieving efficient cleaning and accurate measurement, and adapting to various environmental needs.

CN224309168UActive Publication Date: 2026-06-02CHENGDU METROLOGY TESTING INST

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
CHENGDU METROLOGY TESTING INST
Filing Date
2025-07-03
Publication Date
2026-06-02

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Abstract

The utility model relates to electrode cleaning technical field discloses a portable electrode cleaning appearance, including the shell, the inner wall left side of shell is provided with cleaning mechanism, the cleaning mechanism is used for cleaning, the right side front end of shell is provided with measuring mechanism, the measuring mechanism is used for detecting, the right side fixed connection of shell has screw rod, the right side of screw rod is provided with storage mechanism, the top of shell is provided with adjusting mechanism, the bottom of shell is provided with dismounting mechanism. In the utility model, first water flow will enter the inside of ultrasonic pool, at this moment, start ultrasonic wave, then the vibrator on the connecting cylinder will vibrate, at this moment, the electrode that needs cleaning is steadily placed in the ultrasonic pool, then the electrode is quickly put into the flushing pool, at this moment, the water flow will flush the electrode, realizes the effect that cleaning is more coherent and cleaning is more thorough.
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Description

Technical Field

[0001] This utility model relates to the field of electrode cleaning technology, and in particular to a portable electrode cleaner. Background Technology

[0002] Online water quality monitoring electrode is an electrochemical sensor used for online monitoring and analysis of various substances. Based on electrochemical principles, the electrode converts a chemical signal into an electrical signal through an electrochemical reaction with the analyte, thereby enabling qualitative or quantitative analysis. Common types include: pH electrodes, ion-selective electrodes, redox electrodes, conductivity electrodes, and dissolved oxygen electrodes. Main application areas:

[0003] Industrial production: In industries such as chemical, metallurgy, and power, it is used to monitor various parameters during the production process, such as the acidity and alkalinity of the solution, ion concentration, and redox potential, in order to ensure product quality and the safe operation of production equipment.

[0004] Environmental protection: Used to monitor the concentration of pollutants in water bodies, soil and other environments, such as heavy metal ions, pH, dissolved oxygen, etc., to provide data for environmental quality assessment and pollution control.

[0005] Biomedicine: In the biomedical field, it can be used to monitor various physiological parameters in organisms, such as blood pH, ion concentration, and glucose concentration, providing important information for disease diagnosis and treatment.

[0006] Food and Beverage: In the production process of food and beverages, online testing electrodes can be used to monitor indicators such as pH and ion concentration of raw materials and products to ensure product quality and safety.

[0007] Online water quality monitor electrodes are immersed in the aquatic environment for extended periods, making their surfaces prone to accumulating various types of dirt and impurities. Without regular cleaning and maintenance, this buildup can directly interfere with the electrode's sensing performance, leading to inaccurate measurement data. Furthermore, during calibration, if uncleaned electrodes are placed in standard solutions, they not only contaminate the solution and cause deviations from the actual values, but these calibration errors also severely impact the accuracy and reliability of subsequent measurement data.

[0008] Currently, the electrodes of various online water quality monitoring instruments are still mainly cleaned manually. Operators need to immerse the electrodes in clean water and remove the dirt adhering to the electrode surface through repeated stirring and wiping. However, due to the limitations of manual operation and the constraints of cleaning tools, this cleaning method is difficult to completely remove stubborn dirt from the electrode surface, resulting in incomplete cleaning.

[0009] Traditional manual cleaning techniques have significant drawbacks. They are time-consuming and labor-intensive, and the cleaning results are often unsatisfactory. Because they cannot completely remove electrode fouling, abnormal reactions between the standard solution and the electrode surface can easily occur during metrological calibration, leading to large measurement errors and severely affecting the reliability of calibration results. Furthermore, residual fouling continuously interferes with the electrode's sensing performance in actual monitoring, making it difficult for measurement data to accurately reflect water quality conditions and greatly reducing the accuracy and reliability of online water quality monitoring systems. Electrodes are components used to form electrical connections with conductive media, playing a crucial role in circuit and electrochemical devices. From a material perspective, they can be made of metals and graphite, materials with good conductivity. Their shapes vary depending on application requirements, such as rods and sheets. The function of an electrode is closely related to its role in a specific system. For example, in a battery, the positive and negative electrodes transfer charge through an electrochemical reaction, providing electrical energy to the external circuit. In an electrolytic cell, the electrodes guide current into the electrolyte solution, promoting the electrolytic reaction. Different types of electrodes exhibit different behaviors and mechanisms during operation, and their performance directly affects the efficiency and function of related devices.

[0010] Portable electrode cleaners, which have emerged in recent years, are convenient devices specifically designed for cleaning electrodes. They are mainly used in various instruments and devices that require electrodes to ensure electrode performance and accuracy. They are typically small, portable, and relatively simple to operate. Their working principle generally involves removing dirt, impurities, oxides, and other deposits from the electrode surface through specific cleaning methods. However, a poor cleaning structure can lead to ineffective cleaning and affect normal use. With technological advancements, the cleaning mechanism has become the core component for electrode cleaning. Its design must balance cleaning efficiency and electrode protection. Structurally, common cleaning mechanisms mainly consist of a cleaning container, a drive unit, and auxiliary components. The cleaning container is often made of chemically resistant materials to hold the cleaning solution and fix the electrode. The drive unit varies depending on the cleaning principle. For example, ultrasonic cleaning mechanisms use high-frequency vibration transducers to generate mechanical waves above 20kHz, creating a cavitation effect in the liquid and stripping contaminants from the electrode surface. However, this type of cleaning structure has a slower cleaning speed, resulting in larger measurement errors and affecting the reliability of calibration results. Utility Model Content

[0011] To overcome the above shortcomings, this utility model provides a portable electrode cleaner, aiming to improve the existing cleaning structures, which suffer from slow cleaning speed, low cleaning efficiency, poor cleaning effect, and consequently large electrode measurement errors, affecting the reliability of electrode calibration results. It also addresses the problems of existing electrode cleaning equipment being inconvenient to carry and mostly suitable only for laboratory work, unsuitable for outdoor or field operations.

[0012] To achieve the above objectives, the present invention adopts the following technical solution: a portable electrode cleaner, comprising a housing, a cleaning mechanism for cleaning electrodes is provided on the left side of the inner wall of the housing, a measuring mechanism for detecting electrodes is provided on the front right side of the housing, and a drainage mechanism is provided on the rear side of the housing.

[0013] The cleaning mechanism includes an ultrasonic tank. The outer wall of the ultrasonic tank is fixedly connected to the left side of the inner wall of the outer shell. Multiple connecting cylinders are fixedly connected to both the left and right sides of the inner wall of the ultrasonic tank. A retaining ring is threaded onto the outer wall of each connecting cylinder. A vibrator is fixedly connected to the other side of the retaining ring. A rinsing tank is fixedly connected to the rear right side of the ultrasonic tank.

[0014] As a further description of the above technical solution:

[0015] The measuring mechanism includes a measuring pool, the outer wall of which is fixedly connected to the front right side of the inner wall of the outer shell, a circular hole is provided on the rear side of the outer shell, and a slot assembly is provided on the top of the measuring pool.

[0016] As a further description of the above technical solution:

[0017] The slot assembly includes a connecting plate, the outer wall of which is fixedly connected to the inner wall of the measuring cell, and the top of the connecting plate is connected to multiple electrode slots.

[0018] As a further description of the above technical solution:

[0019] A threaded rod is connected to the right side of the outer shell, and a storage mechanism for storing reagents is provided on the right side of the threaded rod. The storage mechanism includes a storage box, the left side of which is slidably connected to the outer wall of the threaded rod, a push plate is slidably connected to the top of the inner wall of the storage box, and a nut is threadedly connected to the outer wall of the threaded rod.

[0020] The designed storage mechanism facilitates the storage of reagents for this portable electrode cleaner.

[0021] As a further description of the above technical solution:

[0022] The storage box has a groove on the upper part of its inner wall. The inner wall of the groove is slidably connected to the outer wall of the push plate, and the groove provides a sliding track for the push plate.

[0023] As a further description of the above technical solution:

[0024] An adjustment mechanism is provided on the top of the housing, and the adjustment mechanism includes multiple adjustment knobs, all of which are installed on the front side of the top of the housing.

[0025] As a further description of the above technical solution:

[0026] The bottom of the outer casing is provided with a disassembly mechanism for disassembling and replacing the battery installed in the portable electrode cleaner. The disassembly mechanism includes a battery baffle, the outer wall of which is slidably connected to the bottom of the outer casing. A locking post is fixedly connected to the right side of the battery baffle, and the top of the locking post is slidably connected to the bottom of the outer casing.

[0027] The removable battery design allows for easy replacement of the lithium battery in the portable electrode cleaner, extending its outdoor usage time.

[0028] As a further description of the above technical solution:

[0029] The drainage mechanism includes a first drain pipe, the front side of which is fixedly connected to the rear side of the outer casing, and a second drain pipe is fixedly connected to the right rear end of the outer casing.

[0030] This utility model has the following beneficial effects:

[0031] 1. Before using this invention, fill both the ultrasonic tank and the rinsing tank with clean water, ensuring the liquid level is two-thirds of the tank's full volume. After removing the online water quality monitor electrode, place it stably into the ultrasonic tank and start the ultrasonic cleaning program. After running for 2 minutes, remove the electrode and quickly transfer it to the rinsing tank for further rinsing with clean water to remove residual impurities. After completing the second cleaning, place the electrode into the measuring tank pre-filled with standard solution and immediately start the measuring program. The entire process achieves seamless integration of cleaning, rinsing, and measurement.

[0032] 2. When using this invention, the electrode, after being rinsed twice, is inserted into the measuring cell through the circular hole and electrode slot. The electrode is then placed in the standard solution within the measuring cell for measurement. After the measurement is complete, the electrode is removed through the electrode slot, and the internal standard liquid is drained. This invention enables timely measurement after electrode cleaning, increasing detection accuracy and making detection more convenient.

[0033] 3. The instrument of this invention innovatively adopts a modular structural design, which can be divided into three parts: an ultrasonic tank, a rinsing tank, and a measuring tank (electrode slot). The core consists of three major functional units: the ultrasonic tank, the rinsing tank, and the measuring tank. The ultrasonic tank utilizes the cavitation effect of high-frequency ultrasound to efficiently remove impurities and dirt from the electrode surface, achieving deep cleaning. The rinsing tank follows the ultrasonic cleaning process, further removing residual impurities through rinsing with clean water to ensure electrode cleanliness. The measuring tank, after completing the cleaning process, immediately introduces a standard solution for precise electrode measurement, forming a closed-loop working system of "cleaning-rinsing-measurement," effectively improving electrode cleaning efficiency and measurement accuracy, and providing reliable data support for water quality monitoring.

[0034] 4. This invention overcomes the shortcomings of traditional manual cleaning methods, which are limited by operating techniques and tools, making it difficult to reach the complex structure of electrodes and resulting in widespread dirt residue. It also avoids the situation during the verification and calibration process where incompletely cleaned electrodes, when immersed in standard solutions, contaminate the standard solution, waste reagents, and cause interference from impurities, leading to distorted calibration data and deviations from the true values.

[0035] 5. This utility model integrates the electrode cleaning structure and the electrode detection structure, realizing the integration of electrode cleaning and detection. It reduces the turnaround time and space between electrode cleaning and electrode detection, which not only improves efficiency, but also reduces the risk of electrode re-contamination during the turnaround process after cleaning with separate electrode cleaning equipment, and increases the accuracy and reliability of electrode detection.

[0036] 6. This utility model can clean the electrodes of online water quality monitors in a short time, with excellent cleaning effect and no secondary pollution to the standard solution, thus improving measurement accuracy. It is multifunctional, integrating ultrasonic cleaning, water rinsing, and measurement functions, and can perform cleaning, wiping, and measurement functions. The equipment has a wide range of applications. It can clean multiple electrodes at the same time, saving cleaning time and improving work efficiency. It can be carried to the measurement site, adapting to various measurement environments and meeting different cleaning needs. It is rechargeable, has a long battery life, and is convenient to carry and use.

[0037] 7. This utility model boasts strong portability and environmental adaptability. The equipment adopts a lightweight design, supporting portability to various measurement sites. It can operate stably in complex field environments or urban pipeline monitoring points. It has outstanding batch processing capabilities, supporting simultaneous cleaning of multiple electrodes, significantly shortening the cleaning cycle and improving work efficiency. It also features excellent battery life, with a built-in high-capacity rechargeable battery providing long battery life on a single charge. Furthermore, it has a removable battery structure for easy battery replacement, meeting the needs of long-term continuous operation and providing a solid guarantee for on-site water quality monitoring. Attached Figure Description

[0038] Figure 1 This is a first perspective view of a portable electrode cleaner proposed in this utility model;

[0039] Figure 2 This is a second perspective view of a portable electrode cleaner proposed in this utility model;

[0040] Figure 3 This is a partial structural breakdown diagram of the ultrasonic tank of a portable electrode cleaner proposed in this utility model;

[0041] Figure 4 This is a partial structural disassembly diagram of the storage box of a portable electrode cleaner proposed in this utility model;

[0042] Figure 5 This is a partial structural breakdown diagram of the oscillator of a portable electrode cleaner proposed in this utility model.

[0043] Legend:

[0044] 1. Outer shell; 2. Cleaning mechanism; 201. Ultrasonic tank; 202. Connecting cylinder; 203. Retaining ring; 204. Vibrator; 205. Rinsing tank; 3. Measuring mechanism; 301. Measuring tank; 302. Circular hole one; 303. Slot assembly; 3031. Connecting plate; 3032. Electrode slot; 4. Storage mechanism; 401. Storage box; 402. Push plate; 403. Nut; 5. Adjustment mechanism; 501. Circular hole two; 502. Adjustment knob; 6. Disassembly mechanism; 601. Battery baffle; 602. Locking post; 7. Drainage mechanism; 701. Drain pipe one; 702. Drain pipe two; 8. Threaded rod; 9. Slide groove. Detailed Implementation

[0045] 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 protection scope of the present utility model.

[0046] Please see the appendix Figure 1 Appendix Figure 3 and attached Figure 5 An embodiment of this utility model provides a portable electrode cleaner, including a housing 1. A cleaning mechanism 2 is provided on the left side of the inner wall of the housing 1. The cleaning mechanism 2 is used to clean the electrodes. A measuring mechanism 3 is provided on the front right side of the housing 1. The measuring mechanism 3 is used to detect the electrodes. A threaded rod 8 is fixedly connected to the right side of the housing 1. A storage mechanism 4 is provided on the right side of the threaded rod 8. An adjustment mechanism 5 is provided on the top of the housing 1. A disassembly mechanism 6 is provided on the bottom of the housing 1. The disassembly mechanism 6 is used to disassemble and replace the battery. A drainage mechanism 7 is provided on the rear side of the housing 1.

[0047] The cleaning mechanism 2 includes an ultrasonic pool 201. The ultrasonic pool 201 relies on the cavitation effect of high-frequency ultrasound to efficiently remove impurities and dirt from the electrode surface, achieving deep cleaning. The outer wall of the ultrasonic pool 201 is fixedly connected to the left side of the inner wall of the outer shell 1. Multiple connecting cylinders 202 are fixedly connected to both sides of the inner wall of the ultrasonic pool 201. A retaining ring 203 is threadedly connected to the outer wall of the connecting cylinder 202. A vibrator 204 is fixedly connected to the other side of the retaining ring 203. A rinsing pool 205 is fixedly connected to the rear right side of the ultrasonic pool 201. The rinsing pool 205 further removes residual impurities by rinsing with clean water, ensuring the cleanliness of the electrode.

[0048] Specifically, the device includes a housing 1. A dedicated cleaning mechanism 2 is located on the left side of the inner wall of housing 1. The main function of this cleaning mechanism 2 is to thoroughly clean the electrodes to ensure their proper functioning and extend their lifespan. A measuring mechanism 3 for electrode detection is located on the front right side of housing 1. This measuring mechanism 3 is used to accurately detect and analyze electrode-related parameters to ensure data accuracy and reliability. A threaded rod 8 is fixedly connected to the right side of housing 1, and a convenient storage mechanism 4 is located to the right of the threaded rod 8 for storing and organizing various small accessories and tools. An adjustment mechanism 5 (including a power switch, pause switch, ultrasonic level adjustment switch, and temperature adjustment switch) is located on the top of housing 1. This adjustment mechanism allows users to flexibly adjust and set the device according to their needs. A dedicated disassembly mechanism 6 is located at the bottom of housing 1. The main function of this disassembly mechanism 6 is to quickly and safely remove and replace the device's battery for maintenance and upkeep. Furthermore… The rear side of the outer casing 1 is also equipped with a high-efficiency drainage mechanism 7 to ensure that the equipment can work normally in a humid environment and prevent moisture accumulation. The specific structure of the cleaning mechanism 2 includes an ultrasonic pool 201. The outer wall of the ultrasonic pool 201 is tightly connected to the left side of the inner wall of the outer casing 1 by a fixed connection to ensure its stability and durability. Multiple connecting cylinders 202 are fixedly connected to both sides of the inner wall of the ultrasonic pool 201. The outer walls of these connecting cylinders 202 are fitted with retaining rings 203 by threaded connection. A high-efficiency transducer 204 is fixedly connected to the other side of the retaining ring 203. The transducer 204 generates ultrasonic waves through high-frequency vibration to achieve the cleaning effect. A rinsing pool 205 is also fixedly connected to the rear right side of the ultrasonic pool 201 for further rinsing and cleaning of the cleaned parts to ensure the thoroughness and effectiveness of the cleaning effect.

[0049] Please see the appendix Figure 1 Appendix Figure 2 and attached Figure 3The measuring mechanism 3 includes a measuring pool 301. After the cleaning process is completed, a standard solution is immediately introduced into the measuring pool 301 to accurately measure the electrodes. The outer wall of the measuring pool 301 is fixedly connected to the front right side of the inner wall of the outer shell 1. A circular hole 302 is opened on the rear side of the outer shell 1. A slot assembly 303 is provided on the top of the measuring pool 301. The slot assembly 303 includes a connecting plate 3031. The outer wall of the connecting plate 3031 is fixedly connected to the inner wall of the measuring pool 301. Multiple electrode slots 3032 are connected to the top of the connecting plate 3031.

[0050] Specifically, the measuring mechanism 3 includes a key measuring pool 301. The outer wall of the measuring pool 301 is firmly connected to the front right side of the inner wall of the outer casing 1, ensuring the stability and precise positioning of the measuring pool 301 inside the outer casing 1. In addition, a circular hole 302 is specially opened on the rear side of the outer casing 1 to facilitate subsequent operation and maintenance. At the top of the measuring pool 301, a slot assembly 303 is provided. The slot assembly 303 is an important component of the measuring mechanism 3. The slot assembly 303 is mainly composed of a connecting plate 3031. The outer wall of the connecting plate 3031 is firmly connected to the inner wall of the measuring pool 301, ensuring the stability and reliability of the connecting plate 3031 inside the measuring pool 301. Multiple electrode slots 3032 are evenly distributed and connected on the top of the connecting plate 3031, facilitating the insertion and fixation of electrodes, thereby ensuring the accuracy and efficiency of the measurement process and forming a closed-loop working system of cleaning-rinsing-measurement.

[0051] Please see the appendix Figure 1 Appendix Figure 2 and attached Figure 4 The storage mechanism 4 includes a storage box 401, which can store the standard measuring cup used in the measurement process. The left side of the storage box 401 is slidably connected to the outer wall of the threaded rod 8. A push plate 402 is slidably connected to the top of the inner wall of the storage box 401. A nut 403 is threadedly connected to the outer wall of the threaded rod 8. A groove 9 is provided at the upper end of the inner wall of the storage box 401. The inner wall of the groove 9 is slidably connected to the outer wall of the push plate 402. The groove 9 provides a sliding track for the push plate 402.

[0052] Specifically, the storage mechanism 4 includes a storage box 401. The left side of the storage box 401 is slidably connected to the outer wall of the threaded rod 8 to ensure smooth horizontal movement. A push plate 402 is provided at the top of the inner wall of the storage box 401, which is also slidably connected to the top of the inner wall of the storage box 401 for flexible vertical sliding. Furthermore, the outer wall of the threaded rod 8 is connected to a nut 403 via a threaded connection. The rotation of the nut 403... The extension and retraction of the threaded rod 8 can be driven to achieve precise adjustment of the position of the storage box 401. A slide groove 9 is provided on the upper part of the inner wall of the storage box 401. The inner wall of the slide groove 9 is connected to the outer wall of the push plate 402 by a sliding connection, ensuring that the push plate 402 can slide smoothly in the slide groove 9. The main function of the slide groove 9 is to provide a stable sliding track for the push plate 402, so that its movement inside the storage box 401 is more stable and precise, thereby effectively improving the ease of operation and efficiency of the entire storage mechanism 4.

[0053] Please see the appendix Figure 1 Appendix Figure 2 and attached Figure 3 The adjustment mechanism 5 includes multiple adjustment knobs 502 (mainly including a power switch, a pause switch, an ultrasonic level adjustment switch, and a temperature adjustment switch). All adjustment knobs 502 are installed on the front side of the top of the outer casing 1. The disassembly mechanism 6 includes a battery baffle 601. The outer wall of the battery baffle 601 is slidably connected to the bottom of the outer casing 1. A locking post 602 is fixedly connected to the right side of the battery baffle 601. The top of the locking post 602 is slidably connected to the bottom of the outer casing 1. The battery can be disassembled and replaced through the cooperation of the locking post 602 and the battery baffle 601, making it easy to carry.

[0054] Specifically, the adjustment mechanism 5 includes multiple adjustment knobs 502, all of which are mounted on the front top of the outer casing 1. These knobs 502 fit tightly against the outer casing 1 to ensure stability and ease of operation. The disassembly mechanism 6 mainly consists of a battery baffle 601. The outer wall of the battery baffle 601 is slidably connected to the bottom of the outer casing 1, allowing it to move flexibly within a certain range. A locking post 602 is fixedly connected to the right side of the battery baffle 601, and the top of the locking post 602 is also slidably connected to the bottom of the outer casing 1 to ensure the stability of the battery baffle 601 and ease of disassembly. The drainage mechanism 7 includes a first drain pipe 701, which can discharge the used solution. The front side of the first drain pipe 701 is tightly connected to the rear side of the outer casing 1 to ensure the reliability of the drainage function. In addition, another second drain pipe 702 is fixedly connected to the right rear side of the outer casing 1 to further enhance the drainage effect, ensuring that water does not accumulate inside the equipment, thereby ensuring the normal operation and service life of the equipment. Of course, both drain pipe 1 (701) and drain pipe 2 (702) are equipped with valves that can open or close their respective corresponding pipes.

[0055] Working principle: First, water flows into the ultrasonic tank 201. At this time, the ultrasonic waves are activated, and the vibrator 204 on the connecting cylinder 202 will vibrate. The electrode to be cleaned is then placed steadily in the ultrasonic tank 201. The cleaning solution inside the ultrasonic tank 201 should not exceed two-thirds full. After running for two minutes, the electrode is removed and then quickly placed into the rinsing tank 205. At this time, the water flow will rinse the electrode, achieving a more continuous and thorough cleaning.

[0056] Each electrode slot 3032 has a circular hole 501. After secondary rinsing, the electrode is inserted into the measuring cell 301 through the circular hole 501 of the electrode slot 3032. At this time, the electrode will be placed in the standard solution in the measuring cell 301 for measurement. After the measurement is completed, the electrode is removed through the electrode slot 3032 and the standard liquid inside is drained. This enables measurement after rinsing, which increases the accuracy of detection and makes detection more convenient.

[0057] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. 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 portable electrode cleaner, comprising a housing (1), characterized in that: The inner wall of the outer shell (1) is provided with a cleaning mechanism (2) for cleaning electrodes on the left side, a measuring mechanism (3) for detecting electrodes is provided on the front right side of the outer shell (1), and a drainage mechanism (7) is provided on the rear side of the outer shell (1). The cleaning mechanism (2) includes an ultrasonic tank (201). The outer wall of the ultrasonic tank (201) is fixedly connected to the left side of the inner wall of the outer shell (1). Multiple connecting cylinders (202) are fixedly connected to the left and right sides of the inner wall of the ultrasonic tank (201). A retaining ring (203) is threadedly connected to the outer wall of the connecting cylinder (202). A vibrator (204) is fixedly connected to the other side of the retaining ring (203). A rinsing tank (205) is fixedly connected to the rear right side of the ultrasonic tank (201).

2. The portable electrode cleaner according to claim 1, characterized in that: The measuring mechanism (3) includes a measuring pool (301), the outer wall of the measuring pool (301) is fixedly connected to the front right side of the inner wall of the outer shell (1), a circular hole (302) is provided on the rear side of the outer shell (1), and a slot assembly (303) is provided on the top of the measuring pool (301).

3. A portable electrode cleaner according to claim 2, characterized in that: The slot assembly (303) includes a connecting plate (3031), the outer wall of which is fixedly connected to the inner wall of the measuring cell (301), and the top of the connecting plate (3031) is connected to a plurality of electrode slots (3032).

4. A portable electrode cleaner according to claim 1, characterized in that: A threaded rod (8) is connected and installed on the right side of the outer shell (1). A storage mechanism (4) is provided on the right side of the threaded rod (8). The storage mechanism (4) includes a storage box (401). The left side of the storage box (401) is slidably connected to the outer wall of the threaded rod (8). A push plate (402) is slidably connected to the top of the inner wall of the storage box (401). A nut (403) is threadedly connected to the outer wall of the threaded rod (8).

5. A portable electrode cleaner according to claim 4, characterized in that: The storage box (401) has a groove (9) on the upper end of its inner wall. The inner wall of the groove (9) is slidably connected to the outer wall of the push plate (402). The groove (9) provides a sliding track for the push plate (402).

6. A portable electrode cleaner according to claim 1, characterized in that: An adjustment mechanism (5) is provided on the top of the outer casing (1). The adjustment mechanism (5) includes multiple adjustment knobs (502), all of which are installed on the front side of the top of the outer casing (1).

7. A portable electrode cleaner according to claim 1, characterized in that: The bottom of the outer casing (1) is provided with a disassembly mechanism (6) for disassembling and replacing the battery installed at the bottom of the portable electrode cleaner. The disassembly mechanism (6) includes a battery baffle (601). The outer wall of the battery baffle (601) is slidably connected to the bottom of the outer casing (1). A locking post (602) is fixedly connected to the right side of the battery baffle (601). The top of the locking post (602) is slidably connected to the bottom of the outer casing (1).

8. A portable electrode cleaner according to claim 1, characterized in that: The drainage mechanism (7) includes a first drain pipe (701), the front side of which is fixedly connected to the rear side of the outer casing (1), and a second drain pipe (702) is fixedly connected to the right rear side of the outer casing (1).