BOMS storage battery on-line monitoring device

Through the BOMS battery online monitoring device, the various states of the battery pack are monitored in real time, solving the problem of inefficiency of traditional monitoring methods, providing detailed operating curve charts and bar charts, achieving efficient and real-time battery status evaluation and fault warning, and extending the battery service life.

CN223217637UActive Publication Date: 2025-08-12SHAANXI ZHENGTONG ELECTRONICS TECH
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Patent Information

Application Number
CN202421817146.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-30
Publication Date
2025-08-12
Estimated Expiration
2034-07-30

AI Technical Summary

Technical Problem

Traditional battery monitoring methods are inefficient and cannot reflect the actual operating status of the battery pack in real time. They cannot have an in-depth understanding of the internal status of the battery, resulting in inaccurate evaluation of the battery performance and difficult to predict its remaining life and potential risks.

Method used

The BOMS battery online monitoring device is adopted, including a single monitor, a high-speed collector, an intelligent discharge screen cabinet, a monitoring platform and a DC power supply, real-time online monitoring of the charging and discharging status, total voltage, total current, ripple voltage, ambient temperature, voltage of each single battery, internal resistance, pole temperature, pole leakage, etc. The data is processed and sent to the intelligent management host through the high-speed collector, forming the operating curve and bar chart of the battery pack.

Benefits of technology

It realizes real-time online monitoring of various states of the battery pack, provides a 24-hour total voltage and current operation curve and real-time bar chart, supports a variety of communication protocols, and has online automatic balanced maintenance, leakage monitoring, fault warning and alarm functions, extends the battery life and ensures system stability.

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Abstract

The utility model discloses an online monitoring device for a BOMS storage battery. Comprising storage batteries, a high-speed collector, an intelligent discharge screen cabinet, a monitoring platform and a direct-current power supply, and each storage battery is provided with a single monitor; the input end of the high-speed collector is connected with the output end of the monomer monitor; the intelligent discharge screen cabinet comprises an intelligent management host and an intelligent discharge control box, the input end of the intelligent management host is connected with the output end of the high-speed collector, and the intelligent discharge control box is electrically connected with the storage battery; the monitoring platform is electrically connected with the intelligent management host; and the direct-current power supply is electrically connected with the monomer monitor, the high-speed collector and the intelligent discharge screen cabinet respectively. Through the real-time on-line monitoring of the single body monitor and the collection of the high-speed collector, the real-time on-line monitoring of the charge and discharge state, the total voltage, the total current, the ripple voltage, the environment temperature, the voltage of each single body battery, the internal resistance, the pole temperature, the pole liquid leakage, the residual capacity of the battery pack, the residual discharge time and the like of the storage battery pack can be realized.
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Description

Technical Field

[0001] The utility model belongs to the technical field of battery monitoring, and in particular relates to a BOMS battery online monitoring device. Background Art

[0002] With the rapid development of industries like power, communications, and data centers, batteries play a vital role as backup power sources in these fields. The status of battery packs directly impacts the reliability and stability of these critical systems. However, traditional battery monitoring methods have many limitations.

[0003] First, traditional battery monitoring technologies typically rely on manual inspections and offline testing, which is not only inefficient but also fails to reflect the actual operating status of the battery pack in real time. Battery performance can gradually degrade over time, and if not detected and addressed promptly, this can severely impact the normal operation of the system.

[0004] Secondly, traditional battery monitoring methods often only monitor basic battery parameters, such as voltage and current, but fail to provide a deep understanding of the battery's internal state. This leads to inaccurate battery performance assessments and difficulty in predicting remaining battery life and potential risks.

[0005] Finally, with technological advancements and industry development, the requirements for battery monitoring systems are becoming increasingly stringent. Modern battery monitoring systems must possess high precision, high efficiency, and strong real-time capabilities. They must also support multiple communication protocols and interfaces to facilitate connection and communication with host computers, remote monitoring centers, and other equipment. Summary of the Invention

[0006] Based on this, it is necessary to provide a BOMS battery online monitoring device to address the problems of low efficiency, incomplete feedback data, and difficulty in meeting accuracy standards.

[0007] In order to achieve the above purpose, the present invention adopts the following scheme:

[0008] A BOMS battery online monitoring device, comprising:

[0009] A battery, a high-speed collector, an intelligent discharge screen cabinet, a monitoring platform and a DC power supply. There are several batteries, and each battery is provided with a single cell monitor, and the input end of the single cell monitor is detachably connected to one end of the battery; the input end of the high-speed collector is connected to the output end of the single cell monitor; the intelligent discharge screen cabinet includes an intelligent management host and an intelligent discharge control box, the input end of the intelligent management host is connected to the output end of the high-speed collector, and the intelligent discharge control box is electrically connected to the battery; the monitoring platform is electrically connected to the intelligent management host; the DC power supply is electrically connected to the single cell monitor, high-speed collector and intelligent discharge screen cabinet respectively.

[0010] Preferably, the input end of the high-speed collector is connected to the output ends of no more than 60 of the individual monitors.

[0011] Preferably, two adjacent batteries are connected to each other via a connecting bar, and the connecting bar is connected to the batteries via bolts.

[0012] Preferably, the input end of the single monitor is provided with an insert, and the insert is detachably connected to the bolt.

[0013] Preferably, the output end of the single monitor is further provided with a retest component, and the retest component is hinged to one end of the insert.

[0014] Preferably, the retest assembly includes a rotating shaft and a contact plate, the rotating shaft is rotatably connected to the insert, and the contact plate is arranged on the rotating shaft and is cooperatively connected with the bolt.

[0015] Preferably, a control motor is provided at one end of the rotating shaft, and the control motor is electrically connected to the DC power supply and the intelligent management host respectively.

[0016] Preferably, an arc-shaped groove is provided on one side of the contact plate, and the inner wall of the groove is cooperatively connected with the bolt.

[0017] Preferably, the contact plate is an arc-shaped flexible plate, and a conductive wire connected to the plug is provided on one side of the arc-shaped flexible plate, and the side of the arc-shaped flexible plate provided with the conductive wire is cooperatively connected to the bolt.

[0018] The technical solution adopted in this application can achieve the following beneficial effects:

[0019] 1. Through real-time online monitoring of single cell monitors and data collection by high-speed collectors, real-time online monitoring of the battery pack's charge and discharge status (charging, discharging, floating charge), total voltage, total current, ripple voltage, ambient temperature, each single cell (voltage, internal resistance, terminal temperature, terminal leakage), battery pack remaining capacity, remaining discharge time, and battery pack consistency (range and dispersion of voltage, internal resistance, and temperature) can be achieved.

[0020] 2. The data is processed, analyzed, packaged and sent to the intelligent management host through a high-speed collector to display the battery pack's 24-hour total voltage and current operating curve chart on site; and real-time bar charts of battery voltage, internal resistance, and pole temperature.

[0021] 3. By electrically connecting each battery to a single-cell monitor, any battery in the battery pack can be selected to display the 24-hour operating curve of the battery's voltage, internal resistance, and terminal temperature. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] Figure 1 This is a schematic diagram of the BOMS battery online monitoring device disclosed in an embodiment of the present application.

[0023] Figure 2 This is an enlarged view of part A of the BOMS battery online monitoring device disclosed in an embodiment of the present application.

[0024] Figure 3 This is a schematic diagram of the retest component of the BOMS battery online monitoring device disclosed in an embodiment of the present application.

[0025] Among them: battery 100, single cell monitor 200, plug 210, rotating shaft 211, control motor 212, missing gear 2121, driven wheel 2122, contact plate 213, vertical part 2131, horizontal part 2132, return spring 2123, connecting bar 214, shell 215, high-speed collector 300, intelligent discharge screen cabinet 400, intelligent management host 410, intelligent discharge control box 420, monitoring platform 500, DC power supply 600. DETAILED DESCRIPTION

[0026] To facilitate understanding of the present application, a more comprehensive description of the present application will be provided below with reference to the accompanying drawings. The accompanying drawings illustrate preferred embodiments of the present application. However, the present application may be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to provide a more thorough and comprehensive understanding of the disclosure of the present application.

[0027] It should be noted that when a device is considered to be "connected" to another device, it can be directly connected to the other device or there may be an intermediate device. The terms "interior," "top," "upper," "lower," "upper," "lower," and similar expressions used herein are for illustrative purposes only and do not represent the only implementation methods.

[0028] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the art to which this application pertains. The terms used herein in the specification of this application are for the purpose of describing specific embodiments only and are not intended to limit this application. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.

[0029] See also Figures 1 to 3 The present application provides a BOMS battery online monitoring device, comprising: a battery 100, a high-speed collector 300, an intelligent discharge screen cabinet 400, a monitoring platform 500 and a DC power supply 600. The batteries 100 are provided in plurality, and each of the batteries 100 is provided with a single cell monitor 200, and the input end of the single cell monitor 200 is detachably connected to one end of the battery 100; the input end of the high-speed collector 300 is connected to the output end of the single cell monitor 200; the intelligent discharge screen cabinet 400 comprises an intelligent management host 410 and an intelligent discharge control box 420, the input end of the intelligent management host 410 is connected to the output end of the high-speed collector 300, and the intelligent discharge control box 420 is electrically connected to the battery 100; the monitoring platform 500 is electrically connected to the intelligent management host 410; the DC power supply 600 is electrically connected to the single cell monitor 200, the high-speed collector 300 and the intelligent discharge screen cabinet 400 respectively.

[0030] Specifically, a number of batteries 100 are provided and electrically connected to form a battery pack, and a current transformer is connected in series at the positive pole of the battery pack to prevent damage to the instrument due to excessive current. The single cell monitor 200 is electrically connected to the battery 100. The single cell monitor 200 adopts but is not limited to single cell collection and maintenance modules such as models ZHT-MM0102 and ZHT-MM0112, and the single cell monitor 200 is provided with a data acquisition interface, an operation indicator light, an alarm indicator light, an IN interface (power supply and communication) and an OUT interface (power supply and communication). The operation indicator light flashes when the operation is normal, the operation indicator light is off when the single cell monitor 200 loses power, and the alarm indicator light is on when a fault occurs in the single cell monitor 200.

[0031] The high-speed collector 300 adopts but is not limited to a high-speed convergence module of model ZHT-GSQ64. The high-speed collector 300 is provided with a plurality of input terminals of the high-speed collector 300. Each input terminal of the high-speed collector 300 can be connected to the output terminal of a single cell monitor 200. The high-speed collector 300 reads the voltage, internal resistance, and temperature of the single cell monitor 200 one by one and collects the battery pack current, voltage, and ripple voltage for analysis and processing.

[0032] The intelligent discharge panel cabinet 400 is a rectangular cabinet, with an intelligent discharge control box 420 provided at the bottom of the cabinet and an intelligent management host 410 provided at the upper part of the cabinet. The intelligent discharge control box 420 adopts, but is not limited to, a discharge control box of models such as a DC48V intelligent discharge control box 420 and a DC220V intelligent discharge control box 420, and a load output terminal is provided on the intelligent discharge control box 420. The load output terminal is connected to a discharge load of models such as a DC48V intelligent discharge load and a DC220V intelligent discharge load, which can be replaced according to the specific needs of the site. The output of the intelligent discharge control box 420 The output end is connected to the positive and negative poles of the battery pack according to the positive and negative poles; the intelligent management host 410 adopts but is not limited to the management host of model ZHT-BOMS10, and the intelligent management host 410 is provided with a power interface, a communication port, a data import interface, etc. The power interface is connected to the DC power supply 600, the data import interface is connected to the output end of the high-speed collector 300, and the communication interface is sent to the monitoring platform 500 via a wireless network or signal; the monitoring platform 500 adopts but is not limited to desktop computers, mobile phone software and other internal device components that can receive communication signals; the DC power supply 600 adopts a common power supply such as an indoor power supply.

[0033] Furthermore, the DC power supply 600 supplies power to the single-cell monitor 200, the high-speed collector 300, the intelligent discharge control box 420 and the intelligent management host 410. The current is distributed to the battery pack by the intelligent discharge control box 420. At the same time, the single-cell monitor 200, the high-speed collector 300 and the intelligent management host 410 start working. The single-cell monitor 200 performs real-time online monitoring of each battery 100 in the battery pack. The high-speed collector 300 collects the monitoring data of each single-cell monitor 200 and summarizes and analyzes it. The collected data includes the charge and discharge status (charging, discharging, floating charge) of the battery 100 and the battery pack, The total voltage, total current, ripple voltage, ambient temperature, each battery 100 (voltage, internal resistance, pole temperature, pole leakage), remaining capacity% of the battery 100 group, remaining discharge time, consistency of the battery 100 (range and dispersion of voltage, internal resistance and temperature), etc., are packaged and sent to the intelligent management host 410. The intelligent management host 410 uses the received data to form a 24-hour total voltage and current operation curve of the battery group; a real-time bar chart of the battery 100 voltage, internal resistance, and pole temperature, etc., and sends it to the monitoring platform 500 through a communication connection for real-time viewing and monitoring through the monitoring platform 500.

[0034] The technical solution of the BOMS battery online monitoring device adopted in this application can achieve the following beneficial effects:

[0035] 1. Through real-time online monitoring by the single-cell monitor 200 and data collection by the high-speed data collector 300, real-time online monitoring of the battery pack's charge and discharge status (charge, discharge, float charge), total voltage, total current, ripple voltage, ambient temperature, individual cell voltage (voltage, internal resistance, terminal temperature, terminal leakage), battery pack remaining capacity, remaining discharge time, and battery pack consistency (range and dispersion of voltage, internal resistance, and temperature) is achieved.

[0036] 2. The high-speed data collector 300 processes, analyzes, packages, and sends the data to the intelligent management host 410, realizing on-site display of the battery pack's 24-hour total voltage and current operating curve graph; and the real-time bar graph of the battery 100's voltage, internal resistance, and pole temperature.

[0037] 3. By electrically connecting each battery 100 to a single cell monitor 200, a 24-hour operation curve of the voltage, internal resistance, and terminal temperature of any battery 100 in the battery pack can be displayed.

[0038] As can be seen from the above technical solutions, this application provides a BOMS battery online monitoring device, which has the following functions:

[0039] 1. Online monitoring function:

[0040] (1) Real-time online monitoring of the charge and discharge status (charging, discharging, floating charge) of 100 battery groups, total voltage, total current, ripple voltage, ambient temperature, each single cell (voltage, internal resistance, pole temperature, pole leakage), battery pack remaining capacity, remaining discharge time, and consistency of 100 battery groups (range and dispersion of voltage, internal resistance and temperature).

[0041] (2) The 24-hour total voltage and current operating curve of the battery pack can be displayed intuitively on site; the real-time bar graph of the single cell voltage, internal resistance, and pole temperature can be displayed.

[0042] (3) Select any battery in the battery pack to display the 24-hour operating curve of the battery's voltage, internal resistance, and terminal temperature.

[0043] 2. Online automatic balancing maintenance function:

[0044] In the floating charge state, the undercharged battery is automatically charged with a limited voltage and a small current to make up for it, so that each battery is always in the best active state, maintaining the voltage balance of each battery, preventing the battery from being sulfided due to long-term undercharge or water loss due to long-term overcharge, minimizing battery failure and extending battery service life.

[0045] 3. Liquid leakage monitoring function:

[0046] Special battery 100 pole leakage sensors are arranged around the positive and negative poles of the battery 100 to monitor the leakage of the battery 100 in real time, accurately locate the leaking battery, and prevent acid from corroding equipment and short circuit causing fire.

[0047] 4. Fault warning and alarm function:

[0048] Timely detect battery failures and issue alarms, and intelligent analysis provides early warnings.

[0049] (1) Alarm management: alarm classification statistics, current alarm confirmation, and historical alarm query;

[0050] (2) Alarm threshold setting: The alarm threshold can be set according to the battery pack operating status classification, including:

[0051] General alarms: ambient temperature alarm, battery and ambient temperature difference alarm, cell temperature extreme difference alarm, internal resistance alarm;

[0052] Switch alarm: battery leakage, communication failure, equipment failure;

[0053] Float charge alarm: total voltage upper and lower thresholds, cell voltage upper and lower thresholds, cell temperature upper and lower thresholds;

[0054] Discharge alarm category: total voltage lower threshold, cell voltage upper and lower thresholds, cell temperature upper threshold;

[0055] Charging alarm category: total voltage upper threshold, single cell voltage upper and lower thresholds, single cell temperature upper threshold;

[0056] Automatic alarm upgrade: Automatically upgrade the alarm according to the degree of exceeding the alarm threshold;

[0057] Alarm method: on-site sound and light alarm, background sound and light alarm plus push notification (APP, email, SMS, WeChat, DingTalk, etc.);

[0058] (5) Authority management: Authorization is required to set alarm thresholds, confirm current alarms, delete alarms, and other operations.

[0059] (6) Alarm level classification: According to the importance of the alarm, it is divided into general alarm, ordinary alarm, important alarm and emergency alarm;

[0060] 5. Data analysis function:

[0061] (1) Charge and discharge data analysis: It can intelligently analyze the charge and discharge data, automatically complete the charge and discharge data retrieval according to the selected time period, and generate charge and discharge records. Selecting any charge and discharge record can automatically generate a charge and discharge curve, automatically calculate and display the total voltage and the unit time voltage drop of each single cell voltage, charge and discharge time, charge and discharge capacity, voltage at the end of discharge, internal resistance, and temperature, display the single cell with the maximum and minimum voltage in the battery pack, provide analysis conclusions and maintenance suggestions, and automatically generate a charge and discharge report (Excel).

[0062] (2) Historical data analysis: The historical monitoring data can be queried and analyzed according to the selected time period, and trend graphs of total voltage, current and each monomer (voltage, internal resistance and temperature) can be automatically generated, as well as bar graphs and data lists of voltage, internal resistance and temperature at any time, and historical reports (Excel) can be automatically generated.

[0063] 6. Fault diagnosis function:

[0064] The system can analyze and diagnose fault alarms, providing conclusions and specific maintenance recommendations. Each alarm should visually display the alarm name, trigger value, alarm level, start time, total voltage, current, ambient temperature, and monitoring curves of each battery cell (voltage, internal resistance, and temperature) 30 minutes before and after the alarm, as well as the current total voltage, current, ambient temperature, and individual battery cell (voltage, internal resistance, and temperature) values. The system also provides a comprehensive analysis of the alarm and specific maintenance recommendations.

[0065] 7. Remote / local discharge function:

[0066] The intelligent discharge control cabinet for 100 battery groups is specially designed for automatic / remote capacity testing of 100 battery groups and integrates the following unit modules:

[0067] On-site intelligent management host 410: on-site display, alarm, analysis, diagnosis, setting, and control.

[0068] The discharge function is operated in the intelligent discharge control box 420, which has the function of performing a constant current check discharge test on the battery pack according to various discharge rates to accurately know the actual capacity of the battery.

[0069] When doing a check discharge test, five discharge termination conditions can be set at the same time:

[0070] (1) End condition for the entire group voltage; (2) End condition for the cell voltage; (3) End condition for the discharge time; (4) End condition for the discharge capacity; (5) End condition for the upper limit of the cell temperature. The ongoing test process can also be manually terminated as needed.

[0071] Before the core capacity test, the discharge equipment undergoes a self-check. If any abnormality is detected, the core capacity test cannot be performed. The equipment automatically stops discharging if the discharge module temperature is too high, the battery terminal temperature is too high, the site AC power outage occurs, or there is a network communication failure.

[0072] The system can monitor the entire discharge process and display the changes in discharge current, battery voltage, each cell voltage, and battery capacity during the discharge process in various forms such as curves and charts on the main station.

[0073] Automatic reservations can be made for remote capacity verification. At the same time, the system should be able to automatically prompt and stop conflicting reservations or reservations that do not meet conditions such as power charging and discharging.

[0074] When the remote core capacity system of the battery 100 fails or loses power, it does not affect the power supply of the DC power supply 600 to the equipment, and does not affect the normal operation of the DC load.

[0075] Based on the above solution, the input end of the high-speed collector 300 is connected to the output ends of no more than 60 of the individual monitors 200 . For example, the high-speed data collector 300 is provided with four input terminals of the high-speed data collector 300, namely COM1 (COM1-1 is connected to the negative pole, COM1-2 is connected to the positive pole), COM2 (COM2-1 is connected to the negative pole, COM2-2 is connected to the positive pole), COM3 (COM3-1 is connected to the negative pole, COM3-2 is connected to the positive pole), and COM4 (COM4-1 is connected to the negative pole, COM4-2 is connected to the positive pole). COM1-1 of COM1 is connected to the negative pole of battery 100 No. 1, COM1-2 is connected to the positive pole of battery 100 No. 60, COM2-1 of COM2 is connected to the negative pole of battery 100 No. 61, COM2-2 is connected to the positive pole of battery 100 No. 120, and so on. The battery 100 numbers must correspond and remain unchanged to avoid deviations in the displayed data. By grouping, each group of 60 is convenient for collection, processing, analysis, and summary by the high-speed data collector 300.

[0076] In a preferred embodiment, in order to achieve a monitoring effect, two adjacent batteries 100 are connected to each other via a connecting bar 214 , and the connecting bar 214 is connected to the battery 100 via bolts.

[0077] Specifically, the battery 100 is connected through the connecting bar 214 to form a battery pack. The bolt passes through the connecting bar 214 and is detachably connected to the battery 100. A gasket and a spring are provided above the connecting bar 214, and both the gasket and the spring are penetrated by the bolt. The input end of the single-cell monitor 200 is electrically connected to the battery 100 in a detachable manner using, but not limited to, a bare end wire wrapped around a bolt, an end plug 210 connected to the bolt, etc. By rotating the bolt, the gasket squeezes the wire at the input end of the single-cell monitor 200 downward so that it contacts the battery 100, thereby realizing the monitoring of the battery 100 by the single-cell monitor 200.

[0078] Based on the above solution, in order to improve convenience and safety, the input end of the single monitor 200 is provided with an insert 210, and the insert 210 is detachably connected to the bolt.

[0079] Preferably, the input end of the single monitor 200 is connected by a wire and a plug 210. A C-shaped plug 210 is provided at the end of the wire away from the single monitor 200. The plug 210 is made of a material with good conductivity, and the opening of the plug 210 is not less than the bolt diameter and not more than 1.2 times the bolt diameter. The plug 210 is inserted into the bolt and located between the connecting strip 214 and the gasket. By turning the bolt downward, one end of the bolt is rotated downward to drive the spring plate and the gasket to be squeezed downward, so that the plug 210 is fixed between the connecting plate and the gasket, thereby forming a passage. Conversely, the plug 210 can be removed by turning the bolt in the opposite direction. The operation is simple and avoids the safety hazards caused by wire leakage.

[0080] In the above solution, in order to detect a fault in the battery 100 or an abnormality in the connection, a retest component is further provided at the output end of the cell monitor 200 , and the retest component is hinged to one end of the insert 210 .

[0081] Specifically, the retest component is arranged on the plug 210, and the retest component can transmit current from the wire at the input end of the cell monitor 200 to the cell monitor 200. The retest component adopts but is not limited to a lever, a magnetic valve and other devices. For example, the retest component adopts a lever type, one end of the lever is hinged to the plug 210, and the other end of the lever is connected with a bolt. When there is a problem at the connection between the cell monitor 200 and the battery 100 or the battery 100 is damaged, the lever rotates so that one end of the lever touches the bolt, thereby forming a new path. If monitoring data appears on the cell monitor 200 at this time, it means that the battery 100 is normal, and there is a problem at the connection, which needs to be reconnected; if the new path cell monitor 200 still has no monitoring data, it means that the battery 100 has a fault and needs to be replaced or repaired; the operation is simpler and more convenient, and the purpose of monitoring battery 100 faults or abnormalities at the connection is achieved.

[0082] Based on the above solution, preferably, the retest assembly includes a rotating shaft 211 and a contact plate 213, the rotating shaft 211 is rotatably connected to the insert 210, and the contact plate 213 is provided on the rotating shaft 211 and is cooperatively connected with the bolt.

[0083] Specifically, the plug 210 is rotatably connected to the rotating shaft 211 through a bearing or a card, and the plug 210 and the rotating shaft 211 are matched and connected through a conductor, and the end of the conductor away from the plug 210 is fixedly connected to the contact plate 213. The contact plate 213 is provided with but not limited to a solenoid valve, a motor push rod, and other devices that can make the contact plate 213 rotate and contact the bolt. Taking the solenoid valve as an example, the solenoid valve is electrically connected to the intelligent management host 410 and the DC power supply 600 respectively. The DC power supply 600 is controlled by the intelligent management host 410 to make current flow through the solenoid valve, so that the contact plate 213 approaches and fits tightly to the bolt to form a new path, thereby realizing the purpose of monitoring the battery 100 for faults or abnormalities in the connection, and performing targeted repairs for different fault problems, reducing labor intensity, and making the operation simpler and more convenient.

[0084] Preferably, a control motor 212 is provided at one end of the rotating shaft 211 , and the control motor 212 is electrically connected to the DC power supply 600 and the intelligent management host 410 , respectively.

[0085] Specifically, the fixed end of the control motor 212 is set on the upper end surface of the plug 210 away from the connecting piece, and the rotating shaft 211 end of the control motor 212 is connected to the rotating shaft 211 without a gear 2121. When installed, the lower part of the fixed end of the control motor 212 is detachably connected to the upper end surface of the plug 210 (connected by screws and plastic expansion joints), and the connection is insulated. The top cover of the fixed end of the control motor 212 is covered with a shell 215, and the rotating shaft 211 end of the control motor 212 is provided with a missing gear 2121. A driven wheel 2122 (the driven wheel 2122 is a gear) is provided at one end of the rotating shaft 211 close to the control motor 212. The rotating shaft 211 passes through the shell 2 15 and is connected to the control motor 212 through a gear transmission, and a return spring 2123 is provided on the rotating shaft 211. One end of the return spring 2123 is fixedly connected to the top 215 of the housing, and the other end is fixedly connected to the top of the driven wheel 2122. The control motor 212 is electrically connected to the intelligent management host 410 and the DC power supply 600 respectively. When the control motor 212 is turned on, the gear 2121 rotates, driving the driven wheel 2122 to rotate, causing the rotating shaft 211 and the contact plate 213 fixedly connected to the rotating shaft 211 to rotate, so that the contact plate 213 contacts the bolt to form a path, thereby achieving the purpose of monitoring the battery 100 for faults or abnormalities in the connection. (Appendix Figure 3The missing gear 2121 and the driven wheel 2122 are meshed with the last tooth on the side of the missing gear 2121 and the driven wheel 2122. The control motor 212 continues to rotate, and the missing gear 2121 and the driven wheel 2122 are no longer meshed. At the same time, the rotating shaft 211 rotates and squeezes the return spring 2123. When the missing gear 2121 rotates and no longer meshes with the driven wheel 2122, the return spring 2123 drives the rotating shaft 211 to rotate in the opposite direction, thereby causing the contact plate 213 to rotate in the opposite direction and leave the bolt. Through short and multiple touches and repeated detection, the accuracy of the detection is determined, and by adjusting the diameter reduction or rotation speed of the missing gear 2121 and the driven wheel 2122, the intelligent management host 410 is given reaction time.

[0086] Based on the above solution, an arc-shaped groove is provided on one side of the contact plate 213 , and the inner wall of the groove is engaged with the bolt.

[0087] Specifically, the contact plate 213 includes a vertical portion 2131 and a horizontal portion 2132. The vertical portion 2131 is fixedly connected to the rotating shaft 211 in a vertical Z shape along one side of the rotating shaft 211 and the control motor 212. The horizontal portion 2132 extends perpendicular to the vertical portion 2131 to the end away from the plug 210, and a semicircular groove with the same diameter as the bolt is provided on the side close to the bolt. When the rotating shaft 211 drives the contact plate 213 to rotate and touches the bolt, the groove is stuck in the side wall of the bolt and fits tightly with it, thereby increasing the contact area and solving the problem of detection errors caused by point contact.

[0088] Preferably, the contact plate 213 is an arc-shaped flexible plate, and a conductive wire connected to the plug 210 is provided on one side of the arc-shaped flexible plate, and the side of the arc-shaped flexible plate provided with the conductive wire is cooperatively connected to the bolt.

[0089] Specifically, the vertical portion 2131 of the contact plate 213 is detachably connected to the rotating shaft 211 by means of bolts, buckles, etc., and the horizontal portion 2132 adopts an arc-shaped flexible plate. A row of thin copper wires is set on the side of the flexible plate close to the bolt, and the thin copper wires are fixedly connected to the plug 210 along the vertical portion 2131. The thin copper wires are longer, and part of the thin copper wires remain in the vertical portion 2131. When the rotating shaft 211 rotates, it drives the horizontal portion 2132 to rotate, so that the horizontal portion 2132 contacts the side wall of the bolt. Driven by the missing gear 2121, the rotating shaft 211 Continue to rotate so that the part of the horizontal portion 2132 that is not in contact with the side wall of the bolt rotates and wraps it, increasing the contact area and solving the problem of damage to the single monitor 200 due to the long contact period and high frequency. On the contrary, when the missing gear 2121 is no longer engaged with the driven wheel 2122 at one end of the rotating shaft 211, the return spring 2123 drives the rotating shaft 211 and the contact plate 213 fixed on the rotating shaft 211 to rotate in the opposite direction, thereby separating the contact plate 213 from the bolt, and repeating the above steps to complete multiple repeated detections, making the operation simpler and more convenient.

[0090] The above-described embodiments only express the way in which the equipment of the present application is arranged. The description thereof is relatively specific and detailed, but it cannot be understood as limiting the scope of the patent application. It should be pointed out that a person skilled in the art can make a number of adjustments and improvements without departing from the concept of the present application, and these all fall within the scope of protection of the present application. Therefore, the scope of protection of the patent of the present application shall be based on the attached claims.

Claims

1. A BOMS battery online monitoring device, characterized in that: include: A plurality of batteries are provided, each of which is provided with a single-cell monitor, and an input end of the single-cell monitor is detachably connected to one end of the battery; A high-speed collector, wherein the input end of the high-speed collector is connected to the output end of the single monitor; An intelligent discharge screen cabinet, comprising an intelligent management host and an intelligent discharge control box, wherein the input end of the intelligent management host is connected to the output end of the high-speed collector, and the intelligent discharge control box is electrically connected to the battery; a monitoring platform electrically connected to the intelligent management host; and A DC power supply is electrically connected to the single monitor, the high-speed collector, and the intelligent discharge screen cabinet respectively.

2. The BOMS battery online monitoring device according to claim 1, characterized in that: The input end of the high-speed collector is connected to the output ends of no more than 60 of the individual monitors.

3. The BOMS battery online monitoring device according to claim 1, characterized in that: Two adjacent batteries are connected to each other via a connecting bar, and the connecting bar is connected to the batteries via bolts.

4. The BOMS battery online monitoring device according to claim 3, characterized in that: The input end of the single monitor is provided with an inserting piece, and the inserting piece is detachably connected to the bolt.

5. The BOMS battery online monitoring device according to claim 4, characterized in that: The output end of the single monitor is further provided with a retest component, and the retest component is hinged to one end of the insert.

6. The BOMS battery online monitoring device according to claim 5, characterized in that: The retest assembly includes a rotating shaft and a contact plate. The rotating shaft is rotatably connected to the inserting piece, and the contact plate is arranged on the rotating shaft and is cooperatively connected with the bolt.

7. The BOMS battery online monitoring device according to claim 6, characterized in that: A control motor is provided at one end of the rotating shaft, and the control motor is electrically connected to the DC power supply and the intelligent management host respectively.

8. The BOMS battery online monitoring device according to claim 7, characterized in that: An arc-shaped groove is provided on one side of the contact plate, and the inner wall of the groove is cooperatively connected with the bolt.

9. The BOMS battery online monitoring device according to claim 7, characterized in that: The contact plate is an arc-shaped flexible plate, and a conductive wire connected to the plug is provided on one side of the arc-shaped flexible plate, and the side of the arc-shaped flexible plate provided with the conductive wire is cooperatively connected with the bolt.