Intelligent monitoring electrolyte storage and transportation device

By integrating an intelligent monitoring system into the electrolyte storage and transportation device, the problem of traditional devices being unable to monitor and locate in real time has been solved, enabling real-time monitoring and remote management of electrolyte parameters, thereby improving transportation safety and management efficiency.

CN224278422UActive Publication Date: 2026-05-26SHANGHAI BAOFENG MASCH MFG CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHANGHAI BAOFENG MASCH MFG CO LTD
Filing Date
2025-01-16
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

Traditional electrolyte storage and transportation devices cannot achieve real-time temperature monitoring, status monitoring, data communication, and location tracking, posing safety hazards and management inconveniences.

Method used

An intelligent monitoring system integrating a sensor module, a data processing module, a communication module, and a GPS positioning module was designed. This system is used to detect the electrolyte temperature, pressure, and level in real time, and interacts with an external user interface via wireless communication. It has early warning functions and RFID identification, and supports access from multiple platforms.

Benefits of technology

It enables real-time monitoring and remote control of electrolyte parameters, improves transportation safety and management efficiency, reduces labor costs, supports multi-platform access and customized services, and extends equipment lifespan.

✦ Generated by Eureka AI based on patent content.

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Abstract

An intelligent monitoring electrolyte storage and transportation device comprises a shell, an electrolyte heat preservation barrel and an intelligent monitoring system. The housing has a bottom foot, an upper support panel, and a top retention frame projecting upwardly around the upper support panel. The electrolyte heat preservation barrel is fixedly arranged in the shell, the top of the electrolyte heat preservation barrel is sealed through a sealing head, and the sealing head is exposed out of an operation opening formed in an upper supporting panel of the shell. The intelligent monitoring system is integrated on a sealing head of the electrolyte heat preservation barrel and is provided with a sensor module, a data processing module and a communication module. The intelligent monitoring electrolyte storage and transportation device is compact and firm in structure and convenient for efficient storage and transportation, meanwhile, parameters such as the temperature, the liquid level and the pressure of the electrolyte can be conveniently monitored in real time, and it is ensured that the electrolyte is always kept in a proper state in the storage and transportation process.
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Description

Technical Field

[0001] This utility model relates to an electrolyte storage and transportation device. Background Technology

[0002] The performance of the electrolyte often has a direct impact on the quality of the final product, and temperature is one of the key factors affecting electrolyte performance. Therefore, maintaining the electrolyte within a suitable temperature range is crucial.

[0003] Traditional methods of storing and transporting electrolytes using insulated containers typically have the following shortcomings: Inaccurate temperature control: Traditional insulated containers cannot provide real-time temperature monitoring, thus making it impossible to accurately control the electrolyte temperature. Difficulty in status monitoring: In addition to temperature, electrolyte level and pressure are also important parameters that need to be monitored; traditional insulated containers lack real-time monitoring methods for these parameters. Inconvenient communication and data recording: Traditional insulated containers lack integrated communication systems, making it impossible to transmit real-time status data to management personnel, resulting in inconvenience in data recording and monitoring. Safety hazards: During transportation, if the electrolyte temperature or pressure is abnormal, traditional insulated containers cannot issue alarms in time, potentially causing safety accidents. Lack of location tracking: During long-distance transportation, the location of the insulated containers cannot be tracked in real time; once lost or delayed, it is difficult to quickly locate and handle the situation. Utility Model Content

[0004] The purpose of this invention is to provide an electrolyte storage and transportation device that facilitates intelligent monitoring.

[0005] The intelligent monitoring electrolyte storage and transportation device provided by this utility model includes:

[0006] The housing has bottom feet, an upper support panel, and a top retaining frame that extends upward around the upper support panel;

[0007] An electrolyte insulation tank is fixedly installed inside a shell, with its top sealed by a head that protrudes from an operating opening formed on the upper support panel of the shell; and

[0008] The intelligent monitoring system is integrated into the end cap of the electrolyte insulation tank and has the following features:

[0009] The sensor module is used to detect the temperature, pressure and level of the electrolyte in the electrolyte insulation tank in real time and generate corresponding detection signals;

[0010] The data processing module is used to receive and process the corresponding detection signals from the sensor module to generate corresponding data information; and

[0011] The communication module is used to provide wireless interaction between the data processing module and the external user interface.

[0012] According to the intelligent monitoring electrolyte storage and transportation device of this utility model, the intelligent monitoring system may also have an early warning module, which receives corresponding data information from the data processing module and sends corresponding alarm information to the external user interface when the data exceeds the set range.

[0013] The intelligent monitoring electrolyte storage and transportation device according to this utility model may further include a GPS positioning module installed on the outer shell or electrolyte insulation tank, used to generate real-time location information and interact with an external user interface.

[0014] The intelligent monitoring electrolyte storage and transportation device according to this utility model may also include an RFID chip installed on the outer shell or the electrolyte insulation tank, for providing a radio frequency identification electronic tag for the intelligent monitoring electrolyte storage and transportation device.

[0015] The intelligent monitoring electrolyte storage and transportation device according to this utility model may also include a power management system installed on the outer shell or electrolyte insulation tank to provide a stable power supply for the sensor module, data processing module, communication module and GPS positioning module.

[0016] According to the intelligent monitoring electrolyte storage and transportation device of this utility model, the top of the electrolyte insulation tank can also be provided with multiple liquid inlet pipes, and the bottom is provided with a liquid outlet pipe.

[0017] This invention relates to an intelligent monitoring electrolyte storage and transportation device with a compact and robust structure, facilitating efficient storage and transportation. It also allows for real-time monitoring of electrolyte parameters such as temperature, level, and pressure, ensuring the electrolyte remains in a suitable condition throughout storage and transportation. Furthermore, this intelligent monitoring electrolyte storage and transportation device can be accurately located and quickly identified, thereby improving transportation safety and management efficiency. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the intelligent monitoring electrolyte storage and transportation device of this utility model.

[0019] Figure 2 The illustration shows the intelligent monitoring system of this utility model. Detailed Implementation

[0020] The present invention will be further described below with reference to the accompanying drawings.

[0021] Figure 1 This is a schematic diagram of the intelligent monitoring electrolyte storage and transportation device of this utility model. Figure 1 As shown, the intelligent monitoring electrolyte storage and transportation device of this utility model generally includes a shell 10, an electrolyte insulation tank 20, and an intelligent monitoring system 30.

[0022] The housing has a bottom support leg 11, a top retaining frame 12, and an upper support panel 13. The top retaining frame 12 extends upward around the upper support panel 13 to facilitate the stacking and transportation of multiple devices and to improve the stability of the devices.

[0023] The electrolyte insulation tank 20 is fixedly installed inside the outer casing 10, and its top is sealed by a cap. The cap protrudes from the circular operating opening formed on the upper support panel 13 of the outer casing 10.

[0024] The top of the electrolyte insulation tank 20 (the portion exposed on the upper support panel 13 of the outer casing 10 with a circular operating opening) is equipped with multiple inlet ports 21, a spray port 22, and a pressure relief valve 23. The lower part is equipped with an outlet port 24 and a drain port 25. The multiple inlet ports 21 allow for the rapid introduction of external electrolyte or the simultaneous introduction of various electrolyte components. The spray port 22 allows for spray cleaning of the inside of the electrolyte insulation tank, while the pressure relief valve 23 is used to safely control its internal pressure. A sliding door 13 is also provided on the outer casing 10 corresponding to the outlet port 24 and the drain port 25. Opening the door 13 allows for electrolyte transfer and draining operations; closing the door 13 provides greater safety protection for the outlet port 24 and the drain port 25, while also minimizing temperature fluctuations.

[0025] The intelligent monitoring system 30 is integrated into the end cap of the electrolyte insulation tank 20 for easy operation and interaction with an external user interface. The external user interface can be an intelligent management cloud platform that enables monitoring and management via terminal devices such as PCs, tablets, and mobile phones.

[0026] Figure 2 The diagram illustrates an intelligent monitoring system 30. (For example...) Figure 2 As shown, the intelligent monitoring system 30 includes a sensor module, a data processing module, and a communication module. The sensor module is used to detect the temperature, pressure, and level of the electrolyte in the electrolyte insulation tank in real time and generate corresponding detection signals; the data processing module is used to receive and process the corresponding detection signals from the sensor module to generate corresponding data information; and the communication module is used to provide wireless interaction between the data processing module and the external user interface. Wireless interaction can use suitable methods such as Wi-Fi, Bluetooth, or NB-IoT.

[0027] In addition, although not specifically shown, the intelligent monitoring system 30 may also include an early warning module for receiving relevant data information from the data processing module and sending corresponding alarm information to the external user interface when the data exceeds a set range.

[0028] Furthermore, although not specifically shown, the intelligent monitoring electrolyte storage and transportation device of this invention may also include a GPS positioning module and an RFID chip, a power management system, etc., installed on the outer shell or electrolyte insulation tank. The GPS positioning module is used to generate real-time location information and interact with an external user interface. The RFID chip is used to provide a radio frequency identification electronic tag for the intelligent monitoring electrolyte storage and transportation device. The power management system provides a stable power supply for the sensor module, data processing module, communication module, and GPS positioning module, etc.

[0029] In summary, this utility model has at least the following advantages: It enables real-time monitoring and remote control of the device, improving monitoring efficiency and reducing labor costs. It allows for precise data acquisition and processing, improving the reliability of data such as temperature, pressure, and liquid level in the electrolyte insulation tank. When monitored parameters exceed preset thresholds, the system can automatically alarm and notify management personnel through various means (such as SMS, email, and application push), shortening response time and reducing safety risks. It can store a large amount of historical data, facilitating trend analysis and fault prediction, helping users better understand equipment operating conditions and optimize maintenance plans. It can promptly detect and address potential problems, preventing excessive equipment wear and extending equipment lifespan. Compared to traditional monitoring systems, it supports multi-platform access and has a more intuitive and user-friendly interface, thus improving user experience. New monitoring devices and functional modules can be added according to user needs, while also supporting customized services to meet the needs of specific industries or users.

Claims

1. An intelligent monitoring device for electrolyte storage and transportation, characterized in that, include: The housing has bottom feet, an upper support panel, and a top retaining frame that extends upward around the upper support panel; The electrolyte insulation tank is fixedly installed inside the outer shell, and the top is sealed by a cap, which protrudes from the operating opening formed on the upper support panel of the outer shell. as well as The intelligent monitoring system is integrated into the end cap of the electrolyte insulation tank and has the following features: The sensor module is used to detect the temperature, pressure and level of the electrolyte in the electrolyte insulation tank in real time and generate corresponding detection signals; The data processing module is used to receive and process the corresponding detection signals from the sensor module to generate corresponding data information; as well as The communication module provides wireless interaction between the data processing module and the external user interface. The electrolyte insulation tank is equipped with multiple inlet pipes at the top and an outlet pipe at the bottom. The intelligent monitoring electrolyte storage and transportation device is stackable thanks to its top-mounted frame.

2. The intelligent monitoring electrolyte storage and transportation device according to claim 1, characterized in that, The intelligent monitoring system also has an early warning module, which receives relevant data information from the data processing module and sends corresponding alarm information to the external user interface when the data exceeds the set threshold.

3. The intelligent monitoring electrolyte storage and transportation device according to claim 1, characterized in that, It also includes a GPS positioning module installed on the outer shell or electrolyte insulation tank, used to generate real-time location information and interact with the external user interface.

4. The intelligent monitoring electrolyte storage and transportation device according to claim 1, characterized in that, It also includes RFID chips installed on the outer casing or electrolyte insulation tank, which are used to provide radio frequency identification electronic tags for intelligent monitoring of electrolyte storage and transportation devices.