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CN112816896A - Dual-power direct-current system battery pack remote nuclear capacity control system and control method - Google Patents

Dual-power direct-current system battery pack remote nuclear capacity control system and control method Download PDF

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Publication number
CN112816896A
CN112816896A CN202110121124.5A CN202110121124A CN112816896A CN 112816896 A CN112816896 A CN 112816896A CN 202110121124 A CN202110121124 A CN 202110121124A CN 112816896 A CN112816896 A CN 112816896A
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module
battery pack
acquisition module
dual
host
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刘振龙
苏振宽
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Shaanxi Jizhilong Electrical Equipment Co ltd
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Shaanxi Jizhilong Electrical Equipment Co ltd
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    • GPHYSICS
    • G01MEASURING; TESTING
    • G01RMEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
    • G01R31/00Arrangements for testing electric properties; Arrangements for locating electric faults; Arrangements for electrical testing characterised by what is being tested not provided for elsewhere
    • G01R31/36Arrangements for testing, measuring or monitoring the electrical condition of accumulators or electric batteries, e.g. capacity or state of charge [SoC]
    • G01R31/389Measuring internal impedance, internal conductance or related variables
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01KMEASURING TEMPERATURE; MEASURING QUANTITY OF HEAT; THERMALLY-SENSITIVE ELEMENTS NOT OTHERWISE PROVIDED FOR
    • G01K13/00Thermometers specially adapted for specific purposes
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01RMEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
    • G01R31/00Arrangements for testing electric properties; Arrangements for locating electric faults; Arrangements for electrical testing characterised by what is being tested not provided for elsewhere
    • G01R31/36Arrangements for testing, measuring or monitoring the electrical condition of accumulators or electric batteries, e.g. capacity or state of charge [SoC]
    • G01R31/382Arrangements for monitoring battery or accumulator variables, e.g. SoC
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01RMEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
    • G01R31/00Arrangements for testing electric properties; Arrangements for locating electric faults; Arrangements for electrical testing characterised by what is being tested not provided for elsewhere
    • G01R31/36Arrangements for testing, measuring or monitoring the electrical condition of accumulators or electric batteries, e.g. capacity or state of charge [SoC]
    • G01R31/396Acquisition or processing of data for testing or for monitoring individual cells or groups of cells within a battery
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J3/00Circuit arrangements for AC mains or AC distribution networks
    • H02J3/38Arrangements for parallely feeding a single network by two or more generators, converters or transformers
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J7/00Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries
    • H02J7/0068Battery or charger load switching, e.g. concurrent charging and load supply
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J9/00Circuit arrangements for emergency or stand-by power supply, e.g. for emergency lighting
    • H02J9/04Circuit arrangements for emergency or stand-by power supply, e.g. for emergency lighting in which the distribution system is disconnected from the normal source and connected to a standby source
    • H02J9/06Circuit arrangements for emergency or stand-by power supply, e.g. for emergency lighting in which the distribution system is disconnected from the normal source and connected to a standby source with automatic change-over, e.g. UPS systems

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  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Business, Economics & Management (AREA)
  • Emergency Management (AREA)
  • Charge And Discharge Circuits For Batteries Or The Like (AREA)

Abstract

The invention discloses a remote capacity checking system for a battery pack of a dual-power direct-current system, which comprises: the front-end acquisition module is used for monitoring and acquiring the information of the battery pack; the transmission module is used for receiving the battery pack information acquired by the front-end acquisition module and transmitting the battery pack information; the back-end operation platform receives the battery pack information transmitted by the transmission module and carries out remote debugging control; the front-end acquisition module comprises a host, a data convergence device, a single battery acquisition module and a video acquisition module; the transmission module comprises a protocol conversion module and a safety routing module, the host is connected with the protocol conversion module, and the protocol conversion module is connected with the safety routing module; the back-end operation module comprises a server and an operation platform, the operation platform is connected with the server, and the server is connected with the safe routing module. The invention further provides a remote capacity checking control method for the battery pack of the dual-power direct-current system. The invention feeds the battery pack power back to the power grid, realizes remote nuclear capacity discharge, and has simple operation and control and good reliability.

Description

Dual-power direct-current system battery pack remote nuclear capacity control system and control method
Technical Field
The invention relates to the technical field of storage battery nuclear capacity, in particular to a remote nuclear capacity control system and a remote nuclear capacity control method for a battery pack of a dual-power direct-current system.
Background
The daily work of the operation and maintenance management of the storage battery comprises the following contents: 1. measuring the float voltage of the battery: testing the float charge voltage of each battery by using a universal meter, wherein the voltage is controlled within the range of 2.24V +/-90 mV; 2. measuring the total voltage of the battery pack: testing the voltage of the storage battery pack by using a universal meter, wherein the actually measured total voltage of the storage battery pack is close to the set value (within +/-1%) of a manufacturer; 3. measuring the internal resistance of the battery: testing the internal resistance of each storage battery by using an internal resistance meter, wherein the internal resistance value is not greater than the reference value range provided by a storage battery manufacturer; 4. testing the capacity of the storage battery: and (3) carrying out capacity test on the battery pack by using a storage battery pack charge-discharge instrument, wherein the capacity of the battery pack still cannot reach 80% of the whole battery pack after three times of nuclear capacity test. When a storage battery pack is newly installed, a full-check discharge test should be performed. A check discharge test was performed every two years thereafter. The storage battery pack after four years is operated, and a check discharge test is performed every year.
The common solutions for the above work are: for the dummy load scheme, the traditional dummy load charging and discharging equipment is automatically connected into the battery pack through the switching device, so that the charging and discharging test is completed, and the heating and power consumption are high. The DC/DC boosting scheme of the battery pack is adopted, the DC/DC boosting is used for enabling an actual load to discharge the battery pack in a constant current mode, the nuclear capacity test is achieved, heat is not generated, the environment is protected, the battery pack is charged in a PWM current-limiting mode, and the constant current and the constant voltage in the charging process of the battery pack are guaranteed; the DC/AC conversion scheme of the battery pack utilizes a power supply technology to invert direct current of a battery into alternating current, and provides alternating current type load (commercial power load) consumption so as to achieve the purpose of charging and discharging.
The existing operation and maintenance management work has the following problems: the positive and negative electrodes of the battery pack are disassembled, so that short-circuit accidents can be caused due to improper operation; one group of spare batteries is omitted in the system, the quality of the other group of spare batteries is not clear, and the system paralysis risk is high; after discharging, the two groups of batteries have larger voltage difference, and huge sparks are generated when the batteries are recovered in parallel; the electric energy of the battery is completely dissipated and consumed through dummy load heat dissipation, and the existence of a heat source is an unsafe factor; the energy stored by a battery and the refrigeration electric energy of the air conditioner are wasted; destroying the operating environment of the battery and the equipment; the charging and discharging time is long, maintenance personnel are required to guard constantly, the strength is high, and the efficiency is low.
Disclosure of Invention
The invention aims to solve the technical problem of overcoming the defects in the prior art and discloses a remote core-capacitor control system and a remote core-capacitor control method for a battery pack of a dual-power direct-current system.
The technical scheme adopted by the invention is as follows:
long-range nuclear of dual supply direct current system battery group holds control system includes:
the front-end acquisition module is used for monitoring and acquiring the information of the battery pack;
the transmission module is used for receiving the battery pack information acquired by the front-end acquisition module and transmitting the battery pack information;
the back-end operation platform receives the battery pack information transmitted by the transmission module and carries out remote debugging control;
the front-end acquisition module comprises a host, a data convergence device, a single battery acquisition module and a video acquisition module, wherein the single battery acquisition module is arranged on the battery pack, the output ends of the single battery acquisition module and the video acquisition module are connected with the data convergence device, and the output end of the data convergence device is connected with the host;
the transmission module comprises a protocol conversion module and a safety routing module, the host is connected with the protocol conversion module, and the protocol conversion module is connected with the safety routing module;
the back-end operation module comprises a server and an operation platform, the operation platform is connected with the server, and the server is connected with the safe routing module.
The further technical scheme of the invention is as follows: the front-end acquisition module further comprises:
the intelligent bus connection module and the full online switching module; the output end of the host is connected with the all-on-line switching module, and the output end of the all-on-line switching module is connected with the intelligent bus coupler module.
The further technical scheme of the invention is as follows: the front-end acquisition module is provided with a positive busbar, a negative busbar and a 220V system switching power supply; the main machine is connected with the positive busbar and the negative busbar, the output end of the positive busbar is connected with an electric load and a 220V system switching power supply, the negative busbar is connected with the electric load and the negative end of the 220V system switching power supply, the positive electrode of the battery pack module is connected with the positive output end of the main machine, the battery pack module is connected with the single battery monitoring module, the output end of the single battery monitoring module is connected with the data convergence device, the output end of the data convergence device is connected with the input end of the main machine, and the main machine is provided with a communication interface; the main machine is connected with a power grid through a three-phase four-wire system wiring.
Further, the host adopts a controller of ZJTX-30050 model.
The further technical scheme of the invention is as follows: the intelligence bus-tie module includes:
the battery pack comprises a battery pack module 401, a DC/AC inversion discharging module and a nuclear capacity load module; the output end of the positive electrode of the battery pack module is connected with a DC/AC inversion discharging module, and the output end of the DC/AC inversion discharging module is connected with a power grid;
the positive end of the battery pack module is connected with the positive input end of the DC/AC inversion discharging module, and the negative end of the battery pack is connected with the negative input end of the DC/AC inversion discharging module through a second normally open contactor;
the nuclear capacity load module comprises a rectifier and an electric load, the negative end of the rectifier is connected with the negative end of the battery pack, the positive end of the rectifier is connected with the negative end of the all-on-line switching module, and the electric load is arranged at two ends of the rectifier in parallel.
The further technical scheme of the invention is as follows: the intelligent bus tie module further comprises: the input end of the charging module is connected with the first normally open contactor, and the output end of the charging module is connected with the positive end of the rectifier.
The further technical scheme of the invention is as follows: the all-online switching module comprises a first switch and a freewheeling diode; the first switch is connected with the freewheeling diode in parallel, the negative pole end of the freewheeling diode is connected with the input end of the charging module, and the positive pole end of the freewheeling diode is connected with the output end of the charging module through the first normally-open contactor.
Further, the communication interface comprises a wired communication interface and a wireless communication interface, the wired communication interface is an RS232/RS485/IP communication interface, and the wireless communication interface is a 4G/5G/Bluetooth/wifi communication interface.
The invention also provides a remote capacity checking control method for the battery pack of the dual-power direct-current system, which comprises the following steps:
the method comprises the steps that a front-end acquisition module is controlled to monitor and acquire information of a battery pack, wherein a single battery acquisition module acquires the information of the battery pack and transmits the information to a data convergence device, a video acquisition module acquires images of the battery pack and transmits the images to the data convergence device, and the data convergence device transmits the received information of the battery pack and image information to a host;
the transmission module transmits the received battery pack information and the received picture information acquired by the front-end acquisition module after the battery pack information and the picture information are processed by the protocol conversion module and the safety routing module;
and the rear-end operation platform receives the battery pack information and the picture information transmitted by the transmission module, analyzes the battery pack information and the picture information and generates an execution instruction.
The invention has the beneficial effects that:
in the embodiment of the invention, the electric quantity of the battery pack is fed back to a power grid through an inversion grid-connected technology to ensure that the battery pack discharges at an external constant current, the voltage, the current, the capacity, the voltage, the current, the ambient temperature, the voltage, the internal resistance and the temperature of a cathode pole of the battery pack are monitored through the single battery monitoring module, the detected data are collected through the data convergence device and then transmitted to the host through the data convergence device to be displayed and controlled, and the host receives the monitored data of the data convergence device to control the full-on-line switching module to discharge and charge the intelligent bus-connected module.
Drawings
Fig. 1 is a structural diagram of a remote nuclear capacity control system of a battery pack of a dual-power direct-current system according to the present invention;
fig. 2 is a structural diagram of the front-end acquisition module according to the present invention;
fig. 3 is a structural diagram of a control circuit of the front-end acquisition module according to the present invention.
Fig. 4 is a circuit structure diagram of the intelligent bus tie module according to the present invention;
fig. 5 is a flowchart of a remote control method for checking the capacity of a battery pack of a dual-power-supply dc system according to the present invention.
Detailed Description
In order to make the objects, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the drawings in the embodiments of the present invention, and it is obvious that the described embodiments are some, but not all, embodiments of the present invention. The components of embodiments of the present invention generally described and illustrated in the figures herein may be arranged and designed in a wide variety of different configurations. It should be noted that: like reference numbers and letters refer to like items in the following figures, and thus, once an item is defined in one figure, it need not be further defined and explained in subsequent figures.
In the description of the present invention, it should be noted that the terms "upper", "lower", "inner", "outer", "first", "second", etc. indicate orientations or positional relationships based on the orientations or positional relationships shown in the drawings or orientations or positional relationships that are conventionally placed when the products of the present invention are used, and are only used for convenience in describing the present invention and simplifying the description, but do not indicate or imply that the devices or elements referred to must have a specific orientation, be constructed in a specific orientation, and be operated, and thus, should not be construed as limiting the present invention.
Referring to fig. 1, the dual power supply dc system battery pack remote nuclear capacity control system includes:
the front-end acquisition module 10 is used for monitoring and acquiring information of the battery pack;
the transmission module 20 receives and transmits the battery pack information acquired by the front-end acquisition module;
the back-end operating platform 30 is used for receiving the battery pack information transmitted by the transmission module and carrying out remote debugging control;
the front-end acquisition module 10 comprises a host 101, a data convergence device 102, a single battery acquisition module 103 and a video acquisition module 104, wherein the single battery acquisition module 103 is arranged on the battery pack, the output ends of the single battery acquisition module 103 and the video acquisition module 104 are connected with the data convergence device 102, and the output end of the data convergence device 102 is connected with the host 101;
the transmission module 20 comprises a protocol conversion module 201 and a secure routing module 202, the host 101 is connected with the protocol conversion module 201, and the protocol conversion module 201 is connected with the secure routing module 202;
the back-end operation module 30 includes a server 301 and an operation platform 302, the operation platform 302 is connected to the server 301, and the server 301 is connected to the secure routing module 202.
In the invention, the host computer is remotely started or stopped to carry out charging and discharging, and the monomer carries out internal resistance and other tests through a private network. And uploading the monitoring data in real time by the host, and uploading the operation and maintenance data after the test is finished. The single battery monitoring module is attached to the surface of a battery, the internal resistance, the pole temperature and the voltage of a single battery are monitored in real time, monitoring and testing data of single battery blocks are collected, the internal resistance test of the single battery blocks is started, the data are uploaded to a host, a test command of the host is received, the internal resistance of the battery is tested in a specified period, and 1 battery is configured for each battery.
When the battery needs to be discharged and the capacity is checked, the main control sends an instruction, the switching module executes the instruction, the bus of the battery pack needing to be discharged is cut off, the follow current diode is used for ensuring that the battery pack is on line, the switch and the follow current diode are subjected to self-checking before starting, and the operation can be carried out after the self-checking is normal. And after the nuclear capacity test is finished or the bus is in voltage loss, resetting the switching device.
In the embodiment of the invention, the electric quantity of the battery pack is fed back to a power grid through an inversion grid-connected technology to ensure that the battery pack discharges at an external constant current, the voltage, the current, the capacity, the voltage, the current, the ambient temperature, the voltage, the internal resistance and the temperature of a cathode pole of the battery pack are monitored through the single battery monitoring module, the detected data are collected through the data convergence device and then transmitted to the host through the data convergence device to be displayed and controlled, and the host receives the monitored data of the data convergence device to control the full-on-line switching module to discharge and charge the intelligent bus-connected module.
Referring to fig. 2, the front-end acquisition module 10 further includes:
an intelligent bus-tie module 105 and a full online switching module 106;
the output end of the host 101 is connected with an all-on-line switching module 106, and the output end of the all-on-line switching module 106 is connected with an intelligent bus coupler module 105.
Two sets of direct current power supply systems of the electric power substation work independently, each backup storage battery pack is provided, and 2 sets of power supplies can not interfere with each other when the electric power substation works normally. When one set of power supply fails or needs to be overhauled, the bus tie switch needs to be manually switched, and the other set of power supply system is guaranteed to normally supply power to the load of the fault current system. Due to unpredictability of faults and popularization of remote unmanned intelligent operation and maintenance, automatic intelligent standby between backup battery packs of two sets of power supplies is particularly important.
Referring to fig. 4, in the embodiment of the present invention, the front end acquisition module is provided with a positive busbar 107, a negative busbar 108, and a 220V system switching power supply 109; the main machine 101 is connected with an anode busbar 107 and a cathode busbar 108, the output end of the anode busbar 107 is connected with an electric load and a 220V system switching power supply 109, the cathode busbar 108 is connected with the electric load and the cathode end of the 220V system switching power supply 109, the anode of a battery pack module is connected with the anode output end of the main machine, the battery pack module is connected with a single battery monitoring module, the output end of the single battery monitoring module is connected with a data convergence device, the output end of the data convergence device is connected with the input end of the main machine, and the main machine is provided with a communication interface 110; the main machine 101 is connected to the grid through a three-phase four-wire system connection.
In the embodiment of the invention, the host 101 adopts a model ZJTX-30050. The communication interface 110 comprises a wired communication interface and a wireless communication interface, wherein the wired communication interface is an RS232/RS485/IP communication interface, the wireless communication interface is a 4G/5G/Bluetooth/wifi communication interface, and the type data of the specifically set communication interface is subject to actual design.
Referring to fig. 4, in the embodiment of the present invention, the intelligent bus tie module includes:
the system comprises a battery pack module, a DC/AC inversion discharging module and a nuclear capacity load module; the output end of the positive electrode of the battery pack module is connected with a DC/AC inversion discharging module, and the output end of the DC/AC inversion discharging module is connected with a power grid;
the positive end of the battery pack module is connected with the positive input end of the DC/AC inversion discharging module, and the negative end of the battery pack is connected with the negative input end of the DC/AC inversion discharging module through a second normally open contactor;
the nuclear capacity load module comprises a rectifier and an electric load, the negative end of the rectifier is connected with the negative end of the battery pack, the positive end of the rectifier is connected with the negative end of the all-on-line switching module, and the electric load is arranged at two ends of the rectifier in parallel.
After the battery pack discharges, the voltage of the battery pack is far lower than that of the bus, and the discharged battery pack is directly connected to the bus to generate large current impact and even spark. In order to avoid the phenomenon, a charging module is connected between the battery pack and the bus, so that the charging current is controllable. The input end of the charging module is connected with the first normally open contactor, and the output end of the charging module is connected with the positive end of the rectifier.
The all-online switching module comprises a first switch and a freewheeling diode; the first switch is connected with the freewheeling diode in parallel, the negative pole end of the freewheeling diode is connected with the input end of the charging module, and the positive pole end of the freewheeling diode is connected with the output end of the charging module through the first normally-open contactor.
During discharging, the normally closed contactor KO is disconnected, the normally open contactors Km and Kn are closed, and the system enables the storage battery to be merged into a power grid through the DC/AC inversion module, so that the storage battery is discharged to the power grid; when the discharge stopping condition is up, the system automatically changes to a pre-charging state, a steady-flow charging circuit module in the system starts to work, the charging is finished when the charging current is smaller than the floating charging current, the storage battery is directly restored to be on-line, and the rectifier directly charges the storage battery in a floating manner. The system power is taken from the storage battery pack, so that the system work is not influenced by the mains supply, and the uninterrupted power supply of the user load can be ensured after the mains supply is cut off.
The remote nuclear capacity control method for the battery pack of the dual-power direct-current system comprises the following steps of:
step 401, controlling a front-end acquisition module to monitor and acquire information of a battery pack, wherein a single battery acquisition module acquires the information of the battery pack and transmits the information to a data convergence device, a video acquisition module acquires an image of the battery pack and transmits the image to the data convergence device, and the data convergence device transmits the received battery pack information and picture information to a host;
step 402, the transmission module transmits the received battery pack information and picture information acquired by the front-end acquisition module after being processed by the protocol conversion module and the safety routing module;
and 403, the back-end operating platform receives the battery pack information and the picture information transmitted by the transmission module, analyzes the battery pack information and the picture information, and generates an execution instruction.
In the embodiment of the present invention, various changes and specific examples of the dual-power-supply dc-system battery pack remote nuclear capacity control system are also applicable to the dual-power-supply dc-system battery pack remote nuclear capacity control method of the present embodiment, and through the foregoing detailed description of the dual-power-supply dc-system battery pack remote nuclear capacity control system, a person skilled in the art can clearly know the dual-power-supply dc-system battery pack remote nuclear capacity control method of the present embodiment, so for the brevity of the description, detailed description is not given here.
The foregoing shows and describes the general principles and features of the present invention, together with the advantages thereof. It will be understood by those skilled in the art that the present invention is not limited to the embodiments described above, and that various changes and modifications may be made without departing from the spirit and scope of the invention as defined in the appended claims. The scope of the invention is defined by the appended claims and equivalents thereof.

Claims (9)

1.双电源直流系统电池组远程核容控制系统,其特征在于,包括:1. The dual-power DC system battery pack remote nuclear capacity control system is characterized in that, comprising: 前端采集模块,用于对电池组的信息进行监测和采集;The front-end acquisition module is used to monitor and collect the information of the battery pack; 传输模块,接收前端采集模块采集的电池组信息并传输出去;The transmission module receives the battery pack information collected by the front-end acquisition module and transmits it; 后端操作平台,接收传输模块传输的电池组信息并进行远程调试控制;The back-end operation platform receives the battery pack information transmitted by the transmission module and performs remote debugging and control; 所述前端采集模块包括主机、数据收敛器、单体电池采集模块和视频采集模块,所述单体电池采集模块设置在电池组上,所述单体电池采集模块和视频采集模块的输出端连接数据收敛器,所述数据收敛器的输出端连接主机;The front-end acquisition module includes a host, a data converger, a single battery acquisition module and a video acquisition module, the single battery acquisition module is arranged on the battery pack, and the single battery acquisition module is connected to the output end of the video acquisition module a data converging device, the output end of the data converging device is connected to the host; 所述传输模块包括协议转换模块和安全路由模块,所述主机与协议转换模块连接,所述协议转换模块与安全路由模块连接;The transmission module includes a protocol conversion module and a security routing module, the host is connected with the protocol conversion module, and the protocol conversion module is connected with the security routing module; 所述后端操作模块包括服务器和操作平台,所述操作平台与服务器连接,所述服务器与安全路由模块连接。The back-end operation module includes a server and an operation platform, the operation platform is connected with the server, and the server is connected with the security routing module. 2.根据权利要求1所述的双电源直流系统电池组远程核容控制系统,其特征在于,所述前端采集模块还包括:2. The dual-power DC system battery pack remote core capacity control system according to claim 1, wherein the front-end acquisition module further comprises: 智能母联模块和全在线切换模块;所述主机的输出端连接全在线切换模块,所述全在线切换模块的输出端连接智能母联模块。An intelligent bus tie module and an all-on-line switching module; the output end of the host is connected to the all-on-line switching module, and the output end of the all-on-line switching module is connected to the intelligent bus tie module. 3.根据权利要求2所述的双电源直流系统电池组远程核容控制系统,其特征在于,所述前端采集模块设置正极母排、负极母排、220V系统开关电源;主机与正极母排和负极母排连接,正极母排的输出端连接用电负载和220V系统开关电源,负极母排与用电负载和220V系统开关电源的负极端,电池组模块的正极与主机的正极输出端连接,电池组模块连接单体电池监测模块,单体监测模块的输出端连接数据收敛器,数据收敛器的输出端连接主机的输入端,所述主机设置通信接口;主机通过三相四线制接线与电网连接。3. The dual-power DC system battery pack remote core capacity control system according to claim 2, wherein the front-end acquisition module is provided with a positive busbar, a negative busbar, and a 220V system switching power supply; the host, the positive busbar and the The negative busbar is connected, the output terminal of the positive busbar is connected to the electrical load and the 220V system switching power supply, the negative busbar is connected to the electrical load and the negative terminal of the 220V system switching power supply, the positive terminal of the battery pack module is connected to the positive output terminal of the host, The battery pack module is connected to the single battery monitoring module, the output end of the single monitoring module is connected to the data concentrator, the output end of the data concentrator is connected to the input end of the host computer, and the host computer is provided with a communication interface; the host computer is connected with the three-phase four-wire wiring system. grid connection. 4.根据权利要求1所述的双电源直流系统电池组远程核容控制系统,其特征在于,所述主机采用ZJTX-30050型号的控制器。4 . The dual-power DC system battery pack remote core capacity control system according to claim 1 , wherein the host adopts a ZJTX-30050 controller. 5 . 5.根据权利要求2所述的双电源直流系统电池组远程核容控制系统,其特征在于,所述智能母联模块包括:5. The dual-power DC system battery pack remote core capacity control system according to claim 2, wherein the intelligent bus tie module comprises: 电池组模块、DC/AC逆变放电模块和核容负载模块;所述电池组模块的正极输出端连接DC/AC逆变放电模块,所述DC/AC逆变放电模块的输出端连接电网;a battery pack module, a DC/AC inverter discharge module, and a core-capacity load module; the positive output end of the battery pack module is connected to the DC/AC inverter discharge module, and the output end of the DC/AC inverter discharge module is connected to the power grid; 电池组模块的正极端与DC/AC逆变放电模块的正极输入端连接,所述电池组的负极端通过第二常开接触器与DC/AC逆变放电模块的负极输入端连接;The positive terminal of the battery pack module is connected to the positive input terminal of the DC/AC inverter discharge module, and the negative terminal of the battery pack is connected to the negative input terminal of the DC/AC inverter discharge module through the second normally open contactor; 核容负载模块包括整流器和用电负载,整流器的负极端与电池组的负极端连接,整流器的正极端与全在线切换模块的负极端连接,用电负载并联设置在整流器的两端。The core-capacity load module includes a rectifier and an electrical load. The negative terminal of the rectifier is connected to the negative terminal of the battery pack. The positive terminal of the rectifier is connected to the negative terminal of the full-line switching module. The electrical load is arranged in parallel at both ends of the rectifier. 6.根据权利要求5所述的双电源直流系统电池组远程核容控制系统,其特征在于,所述智能母联模块还包括:充电模块,所述充电模块的输入端连接第一常开接触器,所述充电模块的输出端连接整流器的正极端。6 . The dual power supply DC system battery pack remote core capacity control system according to claim 5 , wherein the intelligent bus tie module further comprises: a charging module, the input end of the charging module is connected to the first normally open contact. 7 . The output terminal of the charging module is connected to the positive terminal of the rectifier. 7.根据权利要求2所述的双电源直流系统电池组远程核容控制系统,其特征在于,全在线切换模块包括第一开关和续流二极管;所述第一开关和续流二极管并联,所述续流二极管的负极端与充电模块的输入端连接,所述续流二极管的正极端通过第一常开接触器与充电模块的输出端连接。7 . The dual-power DC system battery pack remote core capacity control system according to claim 2 , wherein the full online switching module comprises a first switch and a freewheeling diode; the first switch and the freewheeling diode are connected in parallel, so the The negative terminal of the freewheeling diode is connected to the input terminal of the charging module, and the positive terminal of the freewheeling diode is connected to the output terminal of the charging module through the first normally open contactor. 8.根据权利要求3所述的双电源直流系统电池组远程核容控制系统,其特征在于,所述通信接口包括有线通信接口和无线通信接口,所述有线通信接口为RS232/RS485/IP通讯接口,所述无线通信接口为4G/5G/蓝牙/wifi通讯接口。8. The dual power DC system battery pack remote core capacity control system according to claim 3, wherein the communication interface comprises a wired communication interface and a wireless communication interface, and the wired communication interface is RS232/RS485/IP communication Interface, the wireless communication interface is 4G/5G/Bluetooth/wifi communication interface. 9.根据权利要求1-8中任一所述的双电源直流系统电池组远程核容控制系统提出双电源直流系统电池组远程核容控制方法,其特征在于,包括以下步骤:9. According to the dual power supply DC system battery pack remote nuclear capacity control system according to any one of claims 1-8, a dual power supply DC system battery pack remote nuclear capacity control method is proposed, characterized in that, comprising the following steps: 控制前端采集模块对电池组的信息进行监测和采集,其中单体电池采集模块对电池组的信息进行采集,并传输给数据收敛器中,视频采集模块对电池组进行图像采集并传输给数据收敛器中,数据收敛器将接收的电池组信息和图片信息传送给主机;Control the front-end acquisition module to monitor and collect the information of the battery pack. The single battery acquisition module collects the information of the battery pack and transmits it to the data convergence device. The video acquisition module collects the image of the battery pack and transmits it to the data convergence device. In the controller, the data concentrator transmits the received battery pack information and picture information to the host; 传输模块将接收的前端采集模块采集的电池组信息和图片信息经过协议转换模块和安全路由模块处理后传输出去;The transmission module transmits the received battery pack information and picture information collected by the front-end acquisition module after being processed by the protocol conversion module and the security routing module; 后端操作平台接收传输模块传输的电池组信息和图片信息进行分析产生执行指令。The back-end operating platform receives the battery pack information and picture information transmitted by the transmission module and analyzes it to generate execution instructions.
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