Three-level charging and discharging control circuit

By designing a three-level charge-discharge control circuit, the state of the energy storage unit is dynamically adjusted, solving the problems of low energy utilization and poor safety in frequency conversion energy storage systems, and achieving more efficient energy management and safety protection.

CN121485074APending Publication Date: 2026-02-06HEFEI HUASI SYST CO LTD
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Patent Information

Application Number
CN202610027841.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-01-09
Publication Date
2026-02-06

AI Technical Summary

Technical Problem

Existing variable frequency energy storage systems have low energy utilization and poor operational safety, especially when operating with three-level frequency converters, making it difficult to achieve effective charging and discharging control.

Method used

A three-level charge-discharge control circuit is adopted, including a first energy storage unit, a second energy storage unit, a first switching circuit, a second switching circuit, a third switching circuit, and an energy control unit. The energy control unit detects the status of the energy storage unit and dynamically adjusts the operation of the switching circuit to realize the charging, discharging, overcharge protection, and over-discharge protection of the energy storage unit.

Benefits of technology

It improves energy utilization, reduces switching losses, optimizes harmonic performance, and avoids idle energy storage units through independent control, maximizing cycle efficiency and enhancing system safety and energy efficiency.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The invention discloses a three-level charging and discharging control circuit, and relates to the technical field of energy conservation. The three-level charging and discharging control circuit comprises a first energy storage unit, a second energy storage unit, a first switching circuit, a second switching circuit, a third switching circuit and an energy control unit. Wherein the energy control unit is used for detecting the operation states of the first energy storage unit and the second energy storage unit; and according to the operation states of the first energy storage unit and the second energy storage unit, the first switching circuit, the second switching circuit and the third switching circuit are controlled to work, so that charging, discharging, over-charging protection and over-discharging protection of the first energy storage unit and / or the second energy storage unit can be realized. The invention aims to solve the problems of low energy utilization rate and poor operation safety of the existing variable-frequency energy storage system.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of energy saving, and particularly to a three-level charge-discharge control circuit. BACKGROUND

[0002] Under the background of increasing demand for cost reduction and efficiency improvement in the fields of construction, industry and energy, devices with potential energy load characteristics such as elevators, hoisting machinery and oil pumping machines need to be energy-saving upgraded. Such devices usually rely on commercial power operation, not only with high energy consumption, but also unable to maintain key working conditions when the power grid is interrupted, affecting the continuity and safety of operation. More importantly, during braking or heavy downward process, the drive system will generate a large amount of regenerative energy, and the existing scheme generally dissipates it in the form of heat through a braking resistor, causing energy waste and failing to achieve effective recovery and reuse.

[0003] At present, some improved schemes try to introduce energy storage units for energy feedback, but are mostly based on traditional two-level frequency conversion architecture, only configure a single energy storage branch, and are difficult to achieve charge-discharge control under the operation of one or more three-level frequency converters, with low energy utilization rate. Therefore, it is urgent to propose a three-level topology structure and control strategy to improve system energy efficiency and operation safety.

[0004] The above content is only used to assist in understanding the technical solutions of the present application, and does not represent the acknowledgement of the above content as prior art. SUMMARY

[0005] The main purpose of the present application is to provide a three-level charge-discharge control circuit, which aims to solve the problems of low energy utilization rate and poor operation safety of the existing variable frequency energy storage system.

[0006] To achieve the above purpose, the present application provides a three-level charge-discharge control circuit applied to a variable frequency energy storage control system, the variable frequency energy storage control system comprising one or more three-level frequency converters, each of the frequency converters having three direct current bus nodes, the three-level charge-discharge control circuit comprising: a first energy storage unit; a second energy storage unit; a first switch circuit, a first end of the first switch circuit being connected with a first end of the first energy storage unit, one or more second ends of the first switch circuit being respectively connected with the first direct current bus nodes of the one or more three-level frequency converters in one-to-one correspondence; a second switch circuit, a first end of the second switch circuit being connected with a second end of the second energy storage unit, one or more second ends of the second switch circuit being respectively connected with the third direct current bus nodes of the one or more three-level frequency converters in one-to-one correspondence; a third switch circuit, a first end of the third switch circuit, a second end of the first energy storage unit and a first end of the second energy storage unit are connected, and a second end of the third switch circuit is commonly connected with a second DC bus node of one or more of the three-level frequency converters; an energy control unit, configured to: detect operating states of the first energy storage unit and the second energy storage unit; control operations of the first switch circuit, the second switch circuit and the third switch circuit according to the operating states of the first energy storage unit and the second energy storage unit, so as to realize charging, discharging, overcharging protection and overdischarging protection of the first energy storage unit and / or the second energy storage unit.

[0007] In an embodiment, the number of the frequency converters is n, the first switch circuit comprises a first diode, a first switch tube and n second switch tubes, the second switch circuit comprises a second diode, a third switch tube and n fourth switch tubes, the third switch circuit comprises a third diode and a fifth switch tube, and n is a positive integer greater than or equal to 1; a positive electrode of the first diode, a first end of the first switch tube and a first end of the first energy storage unit are connected, a second end of the first switch tube, a negative electrode of the first diode and first ends of n second switch tubes are commonly connected, second ends of the n second switch tubes are respectively and correspondingly connected with first DC bus nodes of the n frequency converters, and controlled ends of the first switch tube and the n second switch tubes are connected with the energy control unit; a positive electrode of the second diode, a first end of the third switch tube and a first end of the second energy storage unit are connected, a second end of the third switch tube, a negative electrode of the second diode and first ends of n fourth switch tubes are commonly connected, second ends of the n fourth switch tubes are respectively and correspondingly connected with third DC bus nodes of the n frequency converters, and controlled ends of the third switch tube and the n fourth switch tubes are connected with the energy control unit; a positive electrode of the third diode and a first end of the fifth switch tube are connected, a negative electrode of the third diode, a second end of the fifth switch tube and a second DC bus node of the n frequency converters are commonly connected, and a controlled end of the fifth switch tube is connected with the energy control unit.

[0008] In an embodiment, the first energy storage unit comprises a first power-type battery, and the second energy storage unit comprises a second power-type battery. The first end of the first power battery is the first end of the first energy storage unit, and the second end of the first power battery is the second end of the first energy storage unit; the second end of the second power battery is the first end of the second energy storage unit, and the first end of the second power battery is the second end of the second energy storage unit. Alternatively, the first energy storage unit comprises a first energy battery, and the second energy storage unit comprises a second energy battery. The first end of the first energy battery is the first end of the first energy storage unit, and the second end of the first energy battery is the second end of the first energy storage unit; the second end of the second energy battery is the first end of the second energy storage unit, and the first end of the second energy battery is the second end of the second energy storage unit.

[0009] In an embodiment, if it is detected that the state of charge of the first energy storage unit and the state of charge of the second energy storage unit are both less than a first preset charge threshold, or the voltage value of the first energy storage unit and the voltage value of the second energy storage unit are both less than a first preset voltage threshold, and the charging current value of the first end of the first energy storage unit and the charging current value of the second end of the second energy storage unit are both greater than a preset charging current value, the first switch tube, n second switch tubes, the third switch tube, n fourth switch tubes and the fifth switch tube are controlled to be closed to charge the first energy storage unit and the second energy storage unit. If it is detected that the state of charge of the first energy storage unit and the state of charge of the second energy storage unit are both greater than a second preset charge threshold, or the voltage value of the first energy storage unit and the voltage value of the second energy storage unit are both greater than a second preset voltage threshold, and the discharging current value of the first end of the first energy storage unit and the discharging current value of the second end of the second energy storage unit are both greater than a preset discharging current value, the first switch tube, n second switch tubes, the third switch tube, n fourth switch tubes and the fifth switch tube are controlled to be closed to discharge the first energy storage unit and the second energy storage unit. If it is detected that at least one of the state of charge of the first energy storage unit is less than a third preset charge threshold, the state of charge of the second energy storage unit is less than a third preset charge threshold, the voltage value of the first energy storage unit is less than a third preset voltage threshold, and the voltage value of the second energy storage unit is less than a third preset voltage threshold, the first switch tube and the third switch tube are controlled to be closed, the fifth switch tube is controlled to be open, and / or the second switch tube and the fourth switch tube connected to the frequency converter for use are controlled to be open to perform over-discharge protection on the corresponding energy storage unit. If at least one of the following conditions is detected: the state of charge of the first energy storage unit is greater than a fourth preset state of charge threshold, the state of charge of the second energy storage unit is greater than the fourth preset state of charge threshold, the voltage value of the first energy storage unit is greater than a fourth preset voltage threshold, and the voltage value of the second energy storage unit is greater than the fourth preset voltage threshold, the second switch tube and the fourth switch tube connected to the corresponding frequency converter are controlled to be turned off, and / or the first switch tube and the third switch tube are controlled to be turned off, and the fifth switch tube is controlled to be turned on, so as to perform overcharge protection on the corresponding energy storage unit. If the energy regeneration device corresponding to the frequency converter is in a maintenance state, the second switch tube and the fourth switch tube connected to the corresponding frequency converter are controlled to be turned off.

[0010] In an embodiment, the first energy storage unit includes a third power type battery, a sixth switch tube, a third energy type battery, and an eighth switch tube; and the second energy storage unit includes a fourth power type battery, a seventh switch tube, a fourth energy type battery, and a ninth switch tube. The first end of the first energy storage unit is connected to the first end of the sixth switch tube, the second end of the sixth switch tube, the first end of the first energy storage unit, and the first end of the third energy type battery are connected to the first end of the eighth switch tube, the second end of the eighth switch tube, the second end of the third power type battery, the second end of the second energy storage unit, and the first end of the ninth switch tube are connected to the second end of the first energy storage unit, the first end of the fourth power type battery is connected to the first end of the seventh switch tube, the second end of the seventh switch tube and the first end of the fourth energy type battery are connected to the second end of the second energy storage unit, the second end of the second energy storage unit is connected to the second end of the ninth switch tube, and the control ends of the sixth switch tube, the seventh switch tube, the eighth switch tube, and the ninth switch tube are connected to the energy control unit.

[0011] In an embodiment, if the state of charge of the third power type battery and the fourth power type battery is detected to be less than a first preset state of charge threshold, or the voltage value of the third power type battery and the fourth power type battery is detected to be less than a first preset voltage threshold, and the charging current value of the first end of the first energy storage unit and the charging current value of the second end of the second energy storage unit are greater than a preset charging current value, the first switch tube, n second switch tubes, the third switch tube, n fourth switch tubes, and the fifth switch tube are controlled to be turned on, and the sixth switch tube and the seventh switch tube are controlled to be turned on, so as to charge the third power type battery and the fourth power type battery. If it is detected that the state of charge of the third power battery is not less than the first preset charge threshold, the state of charge of the fourth power battery is not less than the first preset charge threshold, the voltage value of the third power battery is not less than the first preset voltage threshold, and the voltage value of the fourth power battery is not less than the first preset voltage threshold, and at the same time, the state of charge of both the third energy battery and the fourth energy battery is less than the first preset charge threshold, or the voltage values ​​of both the third energy battery and the fourth energy battery are less than the first preset voltage threshold, and the charging current value of the first terminal of the first energy storage unit and the charging current value of the second terminal of the second energy storage unit are both greater than the preset charging current value, then the first switch, n second switches, the third switch, n fourth switches and the fifth switch are controlled to close, and the eighth switch and the ninth switch are controlled to close, so as to charge the third energy battery and the fourth energy battery; If the state of charge of the third power battery and the fourth power battery is detected to be greater than the second preset charge threshold, or the voltage of the third power battery and the fourth power battery is greater than the second preset voltage threshold, and the discharge current of the first terminal of the first energy storage unit and the discharge current of the second terminal of the second energy storage unit are both greater than the preset discharge current value, then the first switch, n second switches, the third switch, n fourth switches and the fifth switch are controlled to close, and the sixth switch and the seventh switch are controlled to close, so as to discharge the third power battery and the fourth power battery; If it is detected that the state of charge of the third power battery is not greater than the second preset charge threshold, the state of charge of the fourth power battery is not greater than the second preset charge threshold, the voltage value of the third power battery is not greater than the first preset voltage threshold, and the voltage value of the fourth power battery is not greater than the first preset voltage threshold, and at the same time, the state of charge of both the third energy battery and the fourth energy battery is greater than the second preset charge threshold, or the voltage values ​​of both the third energy battery and the fourth energy battery are greater than the second preset voltage threshold, and the discharge current value of the first terminal of the first energy storage unit and the discharge current value of the second terminal of the second energy storage unit are both greater than the preset discharge current value, then the first switch, n second switches, the third switch, n fourth switches and the fifth switch are controlled to close, and the eighth switch and the ninth switch are controlled to close, so as to discharge the third energy battery and the fourth energy battery; If at least one of the following is detected: the state of charge of the third power battery is less than the third preset charge threshold, the state of charge of the fourth power battery is less than the third preset charge threshold, the voltage of the third power battery is less than the third preset voltage threshold, and the voltage of the fourth power battery is less than the third preset voltage threshold, then the first switch is controlled to close with the third switch, the fifth switch is controlled to open, and / or the second switch and the fourth switch connected to the inverter are controlled to open, and the sixth switch is controlled to close with the seventh switch, and the eighth switch is controlled to close with the ninth switch, so as to provide over-discharge protection for the third power battery and the fourth power battery; If at least one of the following is detected: the state of charge of the third energy type battery is less than a third preset charge threshold, the state of charge of the fourth energy type battery is less than the third preset charge threshold, the voltage value of the third energy type battery is less than a third preset voltage threshold, and the voltage value of the fourth energy type battery is less than the third preset voltage threshold, then the first switch and the third switch are controlled to close, the fifth switch is controlled to open, and / or the second switch and the fourth switch connected to the inverter are controlled to open; and the eighth switch and the ninth switch are controlled to close, and the sixth switch and the seventh switch are controlled to open, so as to provide over-discharge protection for the third energy type battery and the fourth energy type battery; If at least one of the following is detected: the state of charge (SOC) of the third power battery is greater than a fourth preset SOC threshold; the SOC of the fourth power battery is greater than a fourth preset SOC threshold; the voltage of the third power battery is greater than a fourth preset voltage threshold; the voltage of the fourth power battery is greater than a fourth preset voltage threshold; the SOC of the third energy battery is greater than a fourth preset SOC threshold; the SOC of the fourth energy battery is greater than a fourth preset SOC threshold; the voltage of the third energy battery is greater than a fourth preset voltage threshold; or the voltage of the fourth energy battery is greater than a fourth preset voltage threshold, then the second and fourth switches connected to the corresponding generator inverter are disconnected, and / or the first switch is disconnected from the third switch, and the fifth switch is closed; and the sixth and seventh switches are closed, and the eighth and ninth switches are closed, to provide overcharge protection for the corresponding battery. If the energy regeneration equipment corresponding to the frequency converter is under maintenance, the second and fourth switching transistors connected to the corresponding frequency converter will be disconnected.

[0012] In one embodiment, the first energy storage unit includes a fifth power battery, a first DC / DC converter, a tenth switch, and a fifth energy battery; the second energy storage unit includes a sixth power battery, a second DC / DC converter, an eleventh switch, and a sixth energy battery. Wherein, the first terminal of the fifth power battery is connected to the first terminal of the first DC / DC converter, the second terminal of the fifth power battery is connected to the second terminal of the first DC / DC converter, the third terminal of the first DC / DC converter and the first terminal of the fifth energy battery are connected to the first terminal of the first energy storage unit, the second terminal of the fifth energy battery is connected to the first terminal of the tenth switch, the second terminal of the tenth switch, the fourth terminal of the first DC / DC converter, the fourth terminal of the second DC / DC converter, the first terminal of the eleventh switch are connected to the second terminal of the first energy storage unit, the third terminal of the second DC / DC converter and the first terminal of the sixth energy battery are connected to the second terminal of the second energy storage unit, the second terminal of the sixth energy battery is connected to the second terminal of the eleventh switch, the first terminal of the sixth power battery is connected to the first terminal of the second DC / DC converter, the second terminal of the sixth power battery is connected to the second terminal of the second DC / DC converter, and the controlled terminals of the tenth switch, the eleventh switch, the first DC / DC converter, and the second DC / DC converter are all connected to the energy control unit.

[0013] In one embodiment, if it is detected that the state of charge of both the fifth power battery and the sixth power battery is less than a first preset charge threshold, or the voltage values ​​of both the fifth power battery and the sixth power battery are less than a first preset voltage threshold, and the charging current value at the first terminal of the first energy storage unit and the charging current value at the second terminal of the second energy storage unit are both greater than a preset charging current value, then the first switch, n second switches, the third switch, n fourth switches and the fifth switch are controlled to close, and the first DC / DC converter and the second DC / DC converter are controlled to enter the charging state to charge the fifth power battery and the sixth power battery; If it is detected that the state of charge of the fifth power battery is not less than the first preset charge threshold, the state of charge of the sixth power battery is not less than the first preset charge threshold, the voltage value of the fifth power battery is not less than the first preset voltage threshold, and the voltage value of the sixth power battery is not less than the first preset voltage threshold, and at the same time, the state of charge of both the fifth energy battery and the sixth energy battery is less than the first preset charge threshold, or the voltage values ​​of both the fifth energy battery and the sixth energy battery are less than the first preset voltage threshold, and the charging current value of the first terminal of the first energy storage unit and the charging current value of the second terminal of the second energy storage unit are both greater than the preset charging current value, then the first switch, n second switches, the third switch, n fourth switches and the fifth switch are controlled to close, and the tenth switch and the eleventh switch are controlled to close, so as to charge the fifth energy battery and the sixth energy battery; If the state of charge of the fifth power battery and the sixth power battery is detected to be greater than the second preset charge threshold, or the voltage of the fifth power battery and the sixth power battery is greater than the second preset voltage threshold, and the discharge current of the first terminal of the first energy storage unit and the discharge current of the second terminal of the second energy storage unit are both greater than the preset discharge current value, then the first switch, n second switches, the third switch, n fourth switches and the fifth switch are controlled to close, and the first DC / DC converter and the second DC / DC converter are controlled to enter the discharge state to discharge the fifth power battery and the sixth power battery; If at least one of the following is detected: the state of charge of the fifth power battery is not greater than the second preset charge threshold, the state of charge of the sixth power battery is not greater than the second preset charge threshold, the voltage of the fifth power battery is not greater than the first preset voltage threshold, and the voltage of the sixth power battery is not greater than the first preset voltage threshold; simultaneously, the state of charge of both the fifth energy battery and the sixth energy battery is greater than the second preset charge threshold; or the voltage of both the fifth energy battery and the sixth energy battery is greater than the second preset voltage threshold, and the discharge current of the first terminal of the first energy storage unit and the discharge current of the second terminal of the second energy storage unit are both greater than a preset discharge current value, then the first switch, n second switches, the third switch, n fourth switches, and the fifth switch are controlled to close, and the tenth switch and the eleventh switch are controlled to close, so as to discharge the fifth energy battery and the sixth energy battery; If it is detected that the state of charge of the fifth power battery is less than the third preset charge threshold, the state of charge of the sixth power battery is less than the third preset charge threshold, the voltage of the fifth power battery is less than the third preset voltage threshold, and the voltage of the sixth power battery is less than the third preset voltage threshold, then the first DC / DC converter and the second DC / DC converter are controlled to enter the charging state, and the tenth switch and the eleventh switch are controlled to close, so as to provide over-discharge protection for the fifth power battery and the sixth power battery; If at least one of the following is detected: the state of charge of the fifth energy type battery is less than the third preset charge threshold, the state of charge of the sixth energy type battery is less than the third preset charge threshold, the voltage value of the fifth energy type battery is less than the third preset voltage threshold, and the voltage value of the sixth energy type battery is less than the third preset voltage threshold, then the first switch and the third switch are controlled to close, the fifth switch is controlled to open, and the tenth switch and the eleventh switch are controlled to close, so as to provide over-discharge protection for the fifth energy type battery and the sixth energy type battery; If it is detected that the state of charge (SOC) of the fifth power battery is less than the third preset SOC threshold, the SOC of the sixth power battery is less than the third preset SOC threshold, the voltage of the fifth power battery is less than the third preset voltage threshold, and the voltage of the sixth power battery is less than the third preset voltage threshold, and it is also detected that the SOC of the fifth energy battery is less than the third preset SOC threshold, the SOC of the sixth energy battery is less than the third preset SOC threshold, the voltage of the fifth energy battery is less than the third preset voltage threshold, and the voltage of the sixth energy battery is less than the third preset voltage threshold, then the first switch and the third switch are controlled to close, the fifth switch is controlled to open, and / or the second switch and the fourth switch connected to the inverter for power consumption are controlled to open; and the first DC / DC converter and the second DC / DC converter are controlled to enter the charging state, and the tenth switch and the eleventh switch are controlled to close, so as to provide over-discharge protection for the fifth power battery, the sixth power battery, the fifth energy battery, and the sixth energy battery; If at least one of the following is detected: the state of charge (SOC) of the fifth power battery is greater than the fourth preset SOC threshold; the SOC of the sixth power battery is greater than the fourth preset SOC threshold; the voltage of the fifth power battery is greater than the fourth preset voltage threshold; the voltage of the sixth power battery is greater than the fourth preset voltage threshold; the SOC of the fifth energy battery is greater than the fourth preset SOC threshold; the SOC of the sixth energy battery is greater than the fourth preset SOC threshold; the voltage of the fifth energy battery is greater than the fourth preset voltage threshold; or the voltage of the sixth energy battery is greater than the fourth preset voltage threshold, then the second and fourth switches connected to the corresponding generator inverter are disconnected, and / or the first and third switches are disconnected, and the fifth switch is closed; and the first and second DC / DC converters are controlled to enter a discharge state, and the tenth and eleventh switches are closed, to provide overcharge protection for the corresponding battery. If the energy regeneration equipment corresponding to the frequency converter is under maintenance, the second and fourth switching transistors connected to the corresponding frequency converter will be disconnected.

[0014] In one embodiment, the first energy storage unit includes a seventh power type battery, a third DC / DC converter, a seventh energy type battery, and a fifth DC / DC converter; the second energy storage unit includes an eighth power type battery, a fourth DC / DC converter, an eighth energy type battery, and a sixth DC / DC converter. In this configuration, the first terminal of the first energy storage unit is connected to the first terminal of the third DC / DC converter; the second terminal of the seventh power battery is connected to the second terminal of the third DC / DC converter; the first terminal of the eighth power battery is connected to the first terminal of the fourth DC / DC converter; the second terminal of the second energy storage unit is connected to the second terminal of the fourth DC / DC converter; the first terminal of the first energy storage unit is connected to the first terminal of the fifth DC / DC converter; the second terminal of the seventh energy battery is connected to the second terminal of the fifth DC / DC converter; the first terminal of the eighth energy battery is connected to the first terminal of the sixth DC / DC converter; and the second terminal of the second energy storage unit is connected to the second terminal of the sixth DC / DC converter. The third terminal of the third DC / DC converter and the third terminal of the fifth DC / DC converter are connected to the first terminal of the first energy storage unit. The third terminal of the fourth DC / DC converter and the third terminal of the sixth DC / DC converter are connected to the second terminal of the second energy storage unit. The fourth terminal of the third DC / DC converter, the fourth terminal of the fourth DC / DC converter, the fourth terminal of the fifth DC / DC converter, and the fourth terminal of the sixth DC / DC converter are connected to the second terminal of the first energy storage unit. The controlled terminals of the third DC / DC converter, the fourth DC / DC converter, the fifth DC / DC converter, and the sixth DC / DC converter are respectively connected to the energy control unit.

[0015] In one embodiment, if it is detected that the state of charge of the seventh power battery and the eighth power battery is less than a first preset charge threshold, or the voltage values ​​of the seventh power battery and the eighth power battery are both less than a first preset voltage threshold, and the charging current value of the first terminal of the first energy storage unit and the charging current value of the second terminal of the second energy storage unit are both greater than a preset charging current value, then the first switch, n second switches, the third switch, n fourth switches and the fifth switch are controlled to close, and the third DC / DC converter and the fourth DC / DC converter are controlled to enter the charging state to charge the seventh power battery and the eighth power battery; If the state of charge (SOC) of the seventh power battery is not less than the first preset SOC threshold, the SOC of the eighth power battery is not less than the first preset SOC threshold, the voltage of the seventh power battery is not less than the first preset voltage threshold, and the voltage of the eighth power battery is not less than the first preset voltage threshold, while the SOC of both the seventh energy battery and the eighth energy battery is less than the first preset SOC threshold, or the voltage of both the seventh energy battery and the eighth energy battery is less than the first preset voltage threshold, and the charging current of the first terminal of the first energy storage unit and the charging current of the second terminal of the second energy storage unit are both greater than the preset charging current value, then the first switch, n second switches, the third switch, n fourth switches, and the fifth switch are controlled to close, and the fifth DC / DC converter and the sixth DC / DC converter are controlled to enter the charging state to charge the seventh energy battery and the eighth energy battery; If the state of charge of the seventh power battery and the eighth power battery is detected to be greater than the second preset charge threshold, or the voltage of the seventh power battery and the eighth power battery is greater than the second preset voltage threshold, and the discharge current of the first terminal of the first energy storage unit and the discharge current of the second terminal of the second energy storage unit are both greater than the preset discharge current value, then the first switch, n second switches, the third switch, n fourth switches and the fifth switch are controlled to close, and the third DC / DC converter and the fourth DC / DC converter are controlled to enter the discharge state to discharge the seventh power battery and the eighth power battery; If the state of charge of the seventh power battery is not greater than the second preset charge threshold, the state of charge of the eighth power battery is not greater than the second preset charge threshold, the voltage of the seventh power battery is not greater than the first preset voltage threshold, and the voltage of the eighth power battery is not greater than the first preset voltage threshold, while the state of charge of both the seventh energy battery and the eighth energy battery is greater than the second preset charge threshold, or the voltage of both the seventh energy battery and the eighth energy battery is greater than the second preset voltage threshold, and the discharge current of the first terminal of the first energy storage unit and the discharge current of the second terminal of the second energy storage unit are both greater than the preset discharge current value, then the first switch, n second switches, the third switch, n fourth switches, and the fifth switch are controlled to close, and the fifth DC / DC converter and the sixth DC / DC converter are controlled to enter the discharge state to discharge the seventh energy battery and the eighth energy battery; If at least one of the following is detected: the state of charge of the seventh power battery is less than the third preset charge threshold; the state of charge of the eighth power battery is less than the third preset charge threshold; the voltage of the seventh power battery is less than the third preset voltage threshold; and the voltage of the eighth power battery is less than the third preset voltage threshold, then the third DC / DC converter and the fourth DC / DC converter are controlled to enter the charging state, and the fifth DC / DC converter and the sixth DC / DC converter are controlled to enter the discharging state, so as to provide over-discharge protection for the seventh power battery and the eighth power battery; If at least one of the following is detected: the state of charge of the seventh energy type battery is less than the third preset charge threshold; the state of charge of the eighth energy type battery is less than the third preset charge threshold; the voltage value of the seventh energy type battery is less than the third preset voltage threshold; and the voltage value of the eighth energy type battery is less than the third preset voltage threshold, then the first switch and the third switch are controlled to close, the fifth switch is controlled to open, and the fifth DC / DC converter and the sixth DC / DC converter are controlled to enter the charging state to provide over-discharge protection for the seventh energy type battery and the eighth energy type battery; If it is detected that the state of charge (SOC) of the seventh power battery is less than the third preset SOC threshold, the SOC of the eighth power battery is less than the third preset SOC threshold, the voltage of the seventh power battery is less than the third preset voltage threshold, and the voltage of the eighth power battery is less than the third preset voltage threshold, and it is also detected that the SOC of the seventh energy battery is less than the third preset SOC threshold, the SOC of the eighth energy battery is less than the third preset SOC threshold, the voltage of the seventh energy battery is less than the third preset voltage threshold, and the voltage of the eighth energy battery is less than the third preset voltage threshold, then the first switch and the third switch are controlled to close, and the fifth switch is controlled to open, or the second switch and the fourth switch connected to the inverter are controlled to open; and the third DC / DC converter and the fourth DC / DC converter are controlled to enter the charging state, and the fifth DC / DC converter and the sixth DC / DC converter are controlled to enter the charging state, so as to provide over-discharge protection for the seventh power battery, the eighth power battery, the seventh energy battery, and the eighth energy battery; If at least one of the following is detected: the state of charge (SOC) of the seventh power battery is greater than the fourth preset SOC threshold; the SOC of the eighth power battery is greater than the fourth preset SOC threshold; the voltage of the seventh power battery is greater than the fourth preset voltage threshold; the voltage of the eighth power battery is greater than the fourth preset voltage threshold; the SOC of the seventh energy battery is greater than the fourth preset SOC threshold; the SOC of the eighth energy battery is greater than the fourth preset SOC threshold; the voltage of the seventh energy battery is greater than the fourth preset voltage threshold; and the voltage of the eighth energy battery is greater than the fourth preset voltage threshold, then the second and fourth switches connected to the corresponding generator inverter are disconnected, and / or the first and third switches are disconnected, and the fifth switch is closed; and the third and fourth DC / DC converters and the fifth and sixth DC / DC converters are entered into a discharge state, so as to provide overcharge protection for the seventh power battery, the eighth power battery, the seventh energy battery, and the eighth energy battery. If the energy regeneration equipment corresponding to the frequency converter is under maintenance, the second and fourth switching transistors connected to the corresponding frequency converter will be disconnected.

[0016] This application employs a three-level charge-discharge control circuit, which includes a first energy storage unit, a second energy storage unit, a first switching circuit, a second switching circuit, a third switching circuit, and an energy control unit. The energy control unit can detect the state of charge, voltage, current, and other operating states of the first and second energy storage units. Based on the detected parameters and considering the power consumption, power supply, or maintenance conditions of one or more three-level frequency converters in the variable frequency energy storage control system, it dynamically adjusts the on / off states of the switching devices in the first, second, and third switching circuits to implement safe charge-discharge strategies such as charging, discharging, overcharge protection, and over-discharge protection for the first and / or second energy storage units. Thus, by using two energy storage units to store / release energy separately, energy saving is achieved in the three-level topology, resulting in lower switching losses and better harmonic performance. Furthermore, the independent control by the energy control unit prevents energy storage units from being idle, maximizing their cycle efficiency and improving energy utilization. Furthermore, when overcharging or over-discharging is detected in the first energy storage unit and / or the second energy storage unit, overcharging or over-discharging protection is implemented through the first, second, and third switching circuits, improving the safety of charging and discharging in the three-level topology. Thus, this application solves the problems of low energy utilization and poor operational safety in existing variable frequency energy storage systems. Attached Figure Description

[0017] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.

[0018] Figure 1 A schematic diagram of the structure of an embodiment of the three-level charge-discharge control circuit of this application; Figure 2 This is a schematic diagram of another embodiment of the three-level charge-discharge control circuit of this application; Figure 3 A first structural schematic diagram of the first and second energy storage units is provided for an embodiment of the three-level charge-discharge control circuit of this application; Figure 4 A second structural schematic diagram of the first and second energy storage units is provided for an embodiment of the three-level charge-discharge control circuit of this application; Figure 5 A third structural schematic diagram of the first and second energy storage units is provided for an embodiment of the three-level charge-discharge control circuit of this application; Figure 6 A fourth structural schematic diagram of the first and second energy storage units is provided for an embodiment of the three-level charge-discharge control circuit of this application; Figure 7 A fifth structural schematic diagram of the first and second energy storage units is provided for an embodiment of the three-level charge-discharge control circuit of this application.

[0019] Explanation of icon numbers:

[0020] The realization of the purpose, functional features and advantages of this application will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation

[0021] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of the embodiments. Based on the embodiments of this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this application.

[0022] It should be noted that all directional indicators (such as up, down, left, right, front, back, etc.) in the embodiments of this application are only used to explain the relative positional relationship and movement of each component in a certain specific posture (as shown in the figure). If the specific posture changes, the directional indicator will also change accordingly.

[0023] Furthermore, the use of terms such as "first" and "second" in this application is for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. Additionally, the technical solutions of the various embodiments can be combined with each other, but only on the basis of being achievable by those skilled in the art. When the combination of technical solutions is contradictory or impossible to implement, such a combination of technical solutions should be considered non-existent and not within the scope of protection claimed in this application.

[0024] Currently, some improvement solutions attempt to introduce energy storage units for energy feedback, but most are based on the traditional two-level inverter architecture, with only a single energy storage branch configured, making it difficult to achieve charging and discharging control under the operation of one or more three-level inverters, resulting in low energy utilization.

[0025] This application proposes a three-level charge-discharge control circuit.

[0026] Please see Figure 1 In one embodiment of this application, the three-level charge-discharge control circuit is applied to a variable frequency energy storage control system. The variable frequency energy storage control system includes one or more three-level frequency converters, each frequency converter having three DC bus nodes. The three-level charge-discharge control circuit includes: First energy storage unit; Second energy storage unit; The first switching circuit has its first terminal connected to the first terminal of the first energy storage unit, and one or more second terminals of the first switching circuit are respectively connected to the first DC bus nodes of one or more three-level frequency converters. The second switching circuit has its first terminal connected to the second terminal of the second energy storage unit, and one or more second terminals of the second switching circuit are respectively connected to the third DC bus nodes of one or more three-level frequency converters. The third switching circuit has its first terminal connected to the first terminal of the first energy storage unit and the first terminal of the second energy storage unit. The second terminal of the third switching circuit is also connected to the second DC bus node of one or more three-level frequency converters. Energy control unit, used for: Detect the operating status of the first energy storage unit and the second energy storage unit; Based on the operating status of the first energy storage unit and the second energy storage unit, the operation of the first switching circuit, the second switching circuit and the third switching circuit are controlled to realize the charging, discharging, overcharge protection and over-discharge protection of the first energy storage unit and / or the second energy storage unit.

[0027] It should be noted that when there is only one three-level frequency converter, the first terminal of the second energy storage unit, the second terminal of the first energy storage unit, and the second terminal of the third switching circuit are connected to the second DC bus node N of the frequency converter. The second terminal of the first switching circuit is connected to the first DC bus node P of the frequency converter, and the second terminal of the second switching circuit is connected to the third DC bus node Q of the frequency converter. When there are multiple three-level frequency converters, the first terminal of the second energy storage unit, the second terminal of the first energy storage unit, and the second terminal of the third switching circuit are all connected to the second DC bus nodes N of multiple frequency converters. The multiple second terminals of the first switching circuit are connected one-to-one to the first DC bus nodes P of the multiple frequency converters, and the multiple second terminals of the second switching circuit are connected one-to-one to the third DC bus nodes Q of the multiple frequency converters.

[0028] It should be noted that the first energy storage unit may include a power-type battery and / or an energy-type battery, and the second energy storage unit may also include a power-type battery and / or an energy-type battery. The power-type battery is a battery with a charge / discharge rate greater than a first preset rate, supporting rapid, short-term, high-rate charge / discharge functionality, and can be implemented using supercapacitors, high-rate power batteries, etc. The energy-type battery is a battery with a charge / discharge rate less than or equal to the first preset rate, supporting low-rate, long-term charge / discharge functionality, and can be implemented using lithium batteries, storage batteries, sodium batteries, etc. The first, second, and third switching circuits may include switching devices such as switching transistors and devices supporting unidirectional conduction such as diodes, enabling independent and controllable connections between one end of each energy storage unit and each frequency converter, supporting on-demand injection or recovery of energy from the frequency converter. The energy control unit may include microcontrollers, current sensors, and other control devices. It can detect the state of charge, voltage, current, and other operating states of the first and second energy storage units. Based on these detected parameters and considering the power consumption, power supply, or maintenance conditions of one or more three-level frequency converters, it dynamically controls the on / off states of the switching devices in the first and third switching circuits. This allows it to implement safe charging and discharging strategies for the first energy storage unit, including charging, discharging, overcharge protection, over-discharge protection, and maintenance protection. Simultaneously, it dynamically controls the on / off states of the switching devices in the second and third switching circuits to implement the same safe charging and discharging strategies for the second energy storage unit. This allows charging one energy storage unit while discharging another, preventing any single energy storage unit from being idle and maximizing its cycle efficiency.

[0029] Please see Figure 1One or more three-level frequency converters are connected to the first and second energy storage units via a DC bus. The DC bus is a three-wire system with P, N, and Q. The first and second energy storage units are configured with the same voltage level and capacity parameters. The first energy storage unit is charged and discharged through the PN DC circuit, and the second energy storage unit is charged and discharged through the NQ DC circuit, thereby realizing energy recovery and reuse. The energy control unit can detect the electrical energy (including voltage, current, and power) on the three-wire P, N, and Q terminals. It communicates with the energy storage unit via bus (including CAN, RS484, NET, daisy chain, etc.) to obtain the battery operation information inside the energy storage unit. It communicates with the switching transistors of the first, second, and third switching circuits through several contacts and directly controls the opening / closing of the switching transistors according to the control logic. In this way, the energy control unit can control the charging and discharging processes of the PN DC circuit and the NQ DC circuit through the first, second, and third switching circuits respectively, and realize that the charging and discharging of the PN DC circuit and the NQ DC circuit are independent and do not affect each other, thus realizing the energy recovery and reuse function of n three-level regenerative energy devices.

[0030] In this embodiment, due to the inherent lower switching losses and superior harmonic performance of the three-level topology, the dual energy storage units can respectively capture the regenerative energy of the negative half-cycle, reducing energy waste on the DC bus. Furthermore, the energy control unit controls the charging and discharging of both energy storage units based on their state, preventing idle units, maximizing their cycle efficiency, and improving energy utilization. Moreover, the three-level structure inherently possesses bus voltage clamping capability, reducing the risk of voltage spikes. In addition, when the energy control unit detects overcharging or over-discharging of the first and / or second energy storage units, it controls the corresponding PN DC circuit and / or NQ DC circuit to disconnect, improving charging and discharging safety. Thus, this embodiment solves the problems of low energy utilization and poor operational safety in existing variable frequency energy storage systems.

[0031] Please see Figure 2 In one embodiment of this application, the number of frequency converters is n. The first switching circuit includes a first diode D1, a first switching transistor S1 and n second switching transistors S2; the second switching circuit includes a second diode D2, a third switching transistor S3 and n fourth switching transistors S4; the third switching circuit includes a third diode D3 and a fifth switching transistor S5; n is a positive integer greater than or equal to 1. The positive terminal of the first diode D1 and the first terminal of the first switch S1 are connected to the first terminal of the first energy storage unit. The second terminal of the first switch S1 and the negative terminal of the first diode D1 are connected to the first terminals of n second switches S2. The second terminals of the n second switches S2 are respectively connected to the first DC bus nodes P of the n frequency converters. The controlled terminals of the first switch S1 and the n second switches S2 are all connected to the energy control unit. The positive terminal of the second diode D2 and the first terminal of the third switch S3 are connected to the first terminal of the second energy storage unit. The second terminal of the third switch S3 and the negative terminal of the second diode D2 are connected to the first terminals of n fourth switches S4. The second terminals of the n fourth switches S4 are respectively connected to the third DC bus nodes Q of the n frequency converters. The controlled terminals of the third switch S3 and the n fourth switches S4 are all connected to the energy control unit. The positive terminal of the third diode D3 is connected to the first terminal of the fifth switch S5. The negative terminal of the third diode D3 and the second terminal of the fifth switch S5 are connected together with the second DC bus node of n frequency converters. The controlled terminal of the fifth switch S5 is connected to the energy control unit.

[0032] In this embodiment, the first switch S1 and the fifth switch S5 can control the on / off state of the PN DC circuit, and the third switch S3 and the fifth switch S5 can control the overall on / off state of the NQ DC circuit. The two can be independently controlled. The n second switches S2 and the n fourth switches S4 correspond to each frequency converter, which can realize independent and on-demand energy scheduling. The setting of the first diode D1, the second diode D2 and the third diode D3 can provide reverse protection and improve circuit safety.

[0033] It should be noted that, in the default state, the first switch S1, n second switches S2, the third switch S3, n fourth switches S4, and the fifth switch S5 are closed.

[0034] Please see Figure 3 and Figure 4 In one embodiment of this application, the first energy storage unit includes a first power battery C1, and the second energy storage unit includes a second power battery C2; The first terminal of the first power battery C1 is the first terminal of the first energy storage unit, and the second terminal of the first power battery C1 is the second terminal of the first energy storage unit; the second terminal of the second power battery C2 is the first terminal of the second energy storage unit, and the first terminal of the second power battery C2 is the second terminal of the second energy storage unit. Alternatively, the first energy storage unit includes a first energy type battery B1, and the second energy storage unit includes a second energy type battery B2; The first end of the first energy type battery B1 is the first end of the first energy storage unit, and the second end of the first energy type battery B1 is the second end of the first energy storage unit; the second end of the second energy type battery B2 is the first end of the second energy storage unit, and the first end of the second energy type battery B2 is the second end of the second energy storage unit.

[0035] It should be noted that power-type batteries are those with a charge / discharge rate greater than the preset charge / discharge rate, while energy-type batteries are those with a charge / discharge rate less than or equal to the preset charge / discharge rate. The preset charge / discharge rate can be set according to the specific charging and discharging requirements of the energy storage inverter system, and is not limited here.

[0036] Please see Figure 2 In one embodiment of this application, if the state of charge of the first energy storage unit and the state of charge of the second energy storage unit are both less than a first preset charge threshold, or the voltage values ​​of the first energy storage unit and the second energy storage unit are both less than a first preset voltage threshold, it indicates that the energy levels of the first and second energy storage units are low. Simultaneously, if the charging current value at the first terminal of the first energy storage unit and the charging current value at the second terminal of the second energy storage unit are both greater than a preset charging current value (e.g., greater than 0, which can be specifically set according to the detection accuracy), it indicates that one or more three-level frequency converters are in a power-feeding state. At this time, the first switch S1, n second switches S2, the third switch S3, n fourth switches S4, and the fifth switch S5 are kept closed to charge the first and second energy storage units.

[0037] If the state of charge (SOC) of both the first and second energy storage units is greater than a second preset SOC threshold, or if the voltage values ​​of both the first and second energy storage units are greater than a second preset voltage threshold, it indicates that the first and second energy storage units have sufficient charge. Simultaneously, if the discharge current at the first terminal of the first energy storage unit and the discharge current at the second terminal of the second energy storage unit are both greater than a preset discharge current value (e.g., greater than 0, which can be set according to the detection accuracy), it indicates that one or more three-level frequency converters are in a powered state. At this time, the first switch S1, n second switches S2, the third switch S3, n fourth switches S4, and the fifth switch S5 are kept closed to discharge the first and second energy storage units.

[0038] If at least one of the following is detected: the state of charge of the first energy storage unit is less than the third preset charge threshold; the state of charge of the second energy storage unit is less than the third preset charge threshold; the voltage value of the first energy storage unit is less than the third preset voltage threshold; or the voltage value of the second energy storage unit is less than the third preset voltage threshold, it indicates that the corresponding energy storage unit is in an over-discharge state. In this case, the first switch S1 and the third switch S3 are closed, and the fifth switch S5 is open. At this time, independent over-discharge protection for the PN DC circuit and the NQ DC circuit can be achieved without controlling the second switch S2 and the fourth switch S4. Alternatively, the second switch S2 and the fourth switch S4 connected to the power supply strain gauge are opened; or the first switch S1 and the third switch S3 are closed, the fifth switch S5 is opened, and the second switch S2 and the fourth switch S4 connected to the power supply strain gauge are opened to provide over-discharge protection for the corresponding energy storage unit. In this case, the third preset charge threshold is less than the first preset charge threshold, and the third preset voltage threshold is less than the first preset voltage threshold. At this time, only charging of the energy storage unit is possible, not discharging.

[0039] If at least one of the following is detected: the state of charge of the first energy storage unit is greater than the fourth preset charge threshold; the state of charge of the second energy storage unit is greater than the fourth preset charge threshold; the voltage value of the first energy storage unit is greater than the fourth preset voltage threshold; or the voltage value of the second energy storage unit is greater than the fourth preset voltage threshold, it indicates that the corresponding energy storage unit is in an overcharge state. In this case, the second switch S2 and the fourth switch S4 connected to the corresponding generator inverter are disconnected; or the first switch S1 and the third switch S3 are disconnected, and the fifth switch S5 is closed. In this case, independent overcharge protection for the PN DC circuit and the NQ DC circuit can be achieved without controlling the second switch S2 and the fourth switch S4; or the second switch S2 and the fourth switch S4 connected to the corresponding generator inverter are disconnected, and the first switch S1 and the third switch S3 are disconnected, and the fifth switch S5 is closed, to provide overcharge protection for the corresponding energy storage unit. Wherein, the fourth preset charge threshold is greater than the second preset charge threshold, and the fourth preset voltage threshold is greater than the second preset voltage threshold. In this case, only discharging of the energy storage unit is possible, not charging.

[0040] If the energy regeneration equipment corresponding to the frequency converter is under maintenance, the second switch S2 and the fourth switch S4 connected to the corresponding frequency converter will be disconnected.

[0041] Thus, this embodiment uses a power-type battery to support rapid, short-time, high-rate charge and discharge functions; or it uses an energy-type battery to support low-rate, long-time charge and discharge functions.

[0042] Please see Figure 5In one embodiment of this application, the first energy storage unit includes a third power type battery C3, a sixth switch S6, a third energy type battery B3, and an eighth switch S8; the second energy storage unit includes a fourth power type battery C4, a seventh switch S7, a fourth energy type battery B4, and a ninth switch S9. Specifically, the first end of the third power battery C3 is connected to the first end of the sixth switch S6; the second end of the sixth switch S6 and the first end of the third energy battery B3 are connected to the first end of the first energy storage unit; the second end of the third energy battery B3 is connected to the first end of the eighth switch S8; the second end of the eighth switch S8, the second end of the third power battery C3, the second end of the fourth power battery C4, and the first end of the ninth switch S9 are connected to the second end of the first energy storage unit; the first end of the fourth power battery C4 is connected to the first end of the seventh switch S7; the second end of the seventh switch S7 and the first end of the fourth energy battery B4 are connected to the second end of the second energy storage unit; the second end of the fourth energy battery B4 is connected to the second end of the ninth switch S9; and the controlled ends of the sixth switch S6, the seventh switch S7, the eighth switch S8, and the ninth switch S9 are all connected to the energy control unit.

[0043] In this embodiment, if the state of charge of both the third power battery C3 and the fourth power battery C4 is less than the first preset charge threshold, or the voltage values ​​of both the third power battery C3 and the fourth power battery C4 are less than the first preset voltage threshold, it indicates that the power of the third power battery C3 and the fourth power battery C4 is low. Simultaneously, if the charging current value at the first terminal of the first energy storage unit and the charging current value at the second terminal of the second energy storage unit are both greater than the preset charging current value, it indicates that one or more three-level frequency converters are in a power-feeding state. At this time, the first switch S1, n second switches S2, the third switch S3, n fourth switches S4, and the fifth switch S5 are kept closed, and the sixth switch S6 and the seventh switch S7 are closed to charge the third power battery C3 and the fourth power battery C4.

[0044] If at least one of the following is detected: the state of charge of the third power battery C3 is not less than the first preset charge threshold; the state of charge of the fourth power battery C4 is not less than the first preset charge threshold; the voltage of the third power battery C3 is not less than the first preset voltage threshold; and the voltage of the fourth power battery C4 is not less than the first preset voltage threshold, while the state of charge of the third energy battery B3 and the fourth energy battery B4 is both less than the first preset charge threshold, or the voltage of the third energy battery B3 and the fourth energy battery B4 is both less than the first preset voltage threshold, then it indicates that the third power battery C3 and / or the fourth power battery C4 have sufficient charge, and the first energy battery B1 and the second energy battery B2 have low charge. Simultaneously, if the charging current value at the first terminal of the first energy storage unit and the second terminal of the second energy storage unit are both greater than the preset charging current value, it indicates that one or more three-level frequency converters are in a power-feeding state. At this time, the first switch S1, n second switches S2, the third switch S3, n fourth switches S4, and the fifth switch S5 are kept closed, and the eighth switch S8 and the ninth switch S9 are closed to charge the third energy type battery B3 and the fourth energy type battery B4. In this way, priority is given to charging the power type batteries.

[0045] If the state of charge of both the third power battery C3 and the fourth power battery C4 is greater than the second preset charge threshold, or the voltage values ​​of both the third power battery C3 and the fourth power battery C4 are greater than the second preset voltage threshold, it indicates that the two power batteries have sufficient power. Simultaneously, if the discharge current value at the first terminal of the first energy storage unit and the discharge current value at the second terminal of the second energy storage unit are both greater than the preset discharge current value, it indicates that one or more three-level frequency converters are in a power-consuming state. At this time, the first switch S1, n second switches S2, the third switch S3, n fourth switches S4, and the fifth switch S5 are kept closed, and the sixth switch S6 and the seventh switch S7 are closed to discharge the third power battery C3 and the fourth power battery C4.

[0046] If at least one of the following is detected: the state of charge of the third power battery C3 is not greater than the second preset charge threshold; the state of charge of the fourth power battery C4 is not greater than the second preset charge threshold; the voltage of the third power battery C3 is not greater than the first preset voltage threshold; and the voltage of the fourth power battery C4 is not greater than the first preset voltage threshold, and at the same time the state of charge of the third energy battery B3 and the fourth energy battery B4 is greater than the second preset charge threshold, or the voltage of the third energy battery B3 and the fourth energy battery B4 is greater than the second preset voltage threshold, it indicates that the power of the third power battery C3 and / or the fourth power battery C4 is low, and the power of the third energy battery B3 and the fourth energy battery B4 is sufficient. Simultaneously, if the discharge current value at the first terminal of the first energy storage unit and the discharge current value at the second terminal of the second energy storage unit are both greater than the preset discharge current value, it indicates that one or more three-level frequency converters are in a power-consuming state. At this time, the first switch S1, n second switches S2, the third switch S3, n fourth switches S4, and the fifth switch S5 are kept closed, and the eighth switch S8 and the ninth switch S9 are closed to discharge the third energy type battery B3 and the fourth energy type battery B4. In this way, priority is given to discharging the power type battery.

[0047] If at least one of the following is detected: the state of charge (SOC) of the third power battery C3 is less than the third preset SOC threshold; the SOC of the fourth power battery C4 is less than the third preset SOC threshold; the voltage of the third power battery C3 is less than the third preset voltage threshold; and the voltage of the fourth power battery C4 is less than the third preset voltage threshold, it indicates that the corresponding power battery is in an over-discharge state. In this case, the first switch S1 and the third switch S3 are closed, the fifth switch S5 is opened, and / or the second switch S2 and the fourth switch S4 connected to the power supply switch are opened; and the sixth switch S6 and the seventh switch S7 are closed, and the eighth switch S8 and the ninth switch S9 are opened, to provide over-discharge protection for the third power battery C3 and the fourth power battery C4. Thus, if one or more three-level inverters are in a power-feeding state, the over-discharged third power battery C3 and the fourth power battery C4 will be charged preferentially.

[0048] If at least one of the following is detected: the state of charge (SOC) of the third energy type battery B3 is less than the third preset SOC threshold; the SOC of the fourth energy type battery B4 is less than the third preset SOC threshold; the voltage of the third energy type battery B3 is less than the third preset voltage threshold; and the voltage of the fourth energy type battery B4 is less than the third preset voltage threshold, it indicates that the corresponding energy type battery is in an over-discharge state. In this case, the first switch S1 and the third switch S3 are closed, the fifth switch S5 is opened, and / or the second switch S2 and the fourth switch S4 connected to the power supply switch are opened; and the eighth switch S8 and the ninth switch S9 are closed, and the sixth switch S6 and the seventh switch S7 are opened, to provide over-discharge protection for the third energy type battery B3 and the fourth energy type battery B4. Thus, if one or more three-level inverters are in a power-feeding state, the over-discharged third energy type battery B3 and the fourth energy type battery B4 will be charged preferentially.

[0049] If at least one of the following is detected: the state of charge (SOC) of the third power battery C3 is greater than the fourth preset SOC threshold; the SOC of the fourth power battery C4 is greater than the fourth preset SOC threshold; the voltage of the third power battery C3 is greater than the fourth preset voltage threshold; the voltage of the fourth power battery C4 is greater than the fourth preset voltage threshold; the SOC of the third energy battery B3 is greater than the fourth preset SOC threshold; the SOC of the fourth energy battery B4 is greater than the fourth preset SOC threshold; the voltage of the third energy battery B3 is greater than the fourth preset voltage threshold; or the voltage of the fourth energy battery B4 is greater than the fourth preset voltage threshold, it indicates that the corresponding power battery / energy battery is overcharged. In this case, the second switch S2 and the fourth switch S4 connected to the corresponding generator inverter are disconnected, and / or the first switch S1 is disconnected from the third switch S3, and the fifth switch S5 is closed; and the sixth switch S6 is closed from the seventh switch S7, and the eighth switch S8 is closed from the ninth switch S9, to provide overcharge protection for the corresponding battery. At this time, only discharging of the battery is possible, not charging.

[0050] If the energy regeneration equipment corresponding to the frequency converter is under maintenance, the second switch S2 and the fourth switch S4 connected to the corresponding frequency converter will be disconnected.

[0051] Thus, this embodiment uses a combination of power-type batteries and energy-type batteries. By controlling the charging and discharging of the power-type batteries or the energy-type batteries according to the strategy through the switching transistor, it achieves the complementarity of rapid high-rate and low-rate long-term energy charging and discharging, which makes up for the impact of the instantaneous high current and high power of the DC bus on energy recovery, and also realizes the continuous storage and reuse of regenerated energy.

[0052] Please see Figure 6In one embodiment of this application, the first energy storage unit includes a fifth power type battery C5, a first DC / DC converter DC / DC1, a tenth switch S10, and a fifth energy type battery B5; the second energy storage unit includes a sixth power type battery C6, a second DC / DC converter DC / DC2, an eleventh switch S11, and a sixth energy type battery B6. Specifically, the first terminal of the fifth power battery C5 is connected to the first terminal of the first DC / DC converter DC / DC1, the second terminal of the fifth power battery C5 is connected to the second terminal of the first DC / DC converter DC / DC1, the third terminal of the first DC / DC converter DC / DC1 and the first terminal of the fifth energy battery B5 are connected to the first terminal of the first energy storage unit, the second terminal of the fifth energy battery B5 is connected to the first terminal of the tenth switch S10, the second terminal of the tenth switch S10, the fourth terminal of the first DC / DC converter DC / DC1, the fourth terminal of the second DC / DC converter DC / DC2, and the first terminal of the eleventh switch S11 are connected to the second terminal of the first energy storage unit. The third terminal of the second DC / DC converter DC / DC2, the first terminal of the sixth energy type battery B6, and the second terminal of the second energy storage unit are connected. The second terminal of the sixth energy type battery B6 is connected to the second terminal of the eleventh switch S11. The first terminal of the sixth power type battery C6 is connected to the first terminal of the second DC / DC converter DC / DC2. The second terminal of the sixth power type battery C6 is connected to the second terminal of the second DC / DC converter DC / DC2. The controlled terminals of the tenth switch S10, the eleventh switch S11, the first DC / DC converter DC / DC1, and the second DC / DC converter DC / DC2 are all connected to the energy control unit.

[0053] In this embodiment, by controlling the switching frequencies of the first DC / DC1 converter and the second DC / DC2 converter, the voltage difference between the three lines of the DC bus can be kept consistent, that is, the voltage difference between P and N, ΔVPN = VP. The pressure difference between VN, Q, and N is ΔVQN = VQ VN difference | △VPN △VQN| is within the midpoint balance threshold; where VP, VQ, and VN are the voltages of the P-line, Q-line, and N-line of the DC bus closest to the battery side, respectively.

[0054] In this embodiment, if the state of charge of both the fifth power battery C5 and the sixth power battery C6 is less than the first preset charge threshold, or the voltage values ​​of both the fifth power battery C5 and the sixth power battery C6 are less than the first preset voltage threshold, it indicates that the power of the fifth power battery C5 and the sixth power battery C6 is low. Simultaneously, if the charging current value at the first terminal of the first energy storage unit and the charging current value at the second terminal of the second energy storage unit are both greater than the preset charging current value, it indicates that one or more three-level inverters are in a power-feeding state. At this time, the first switch S1, n second switches S2, the third switch S3, n fourth switches S4, and the fifth switch S5 are kept closed, and the first DC / DC converter DC / DC1 and the second DC / DC converter DC / DC2 are controlled to enter a charging state to charge the fifth power battery C5 and the sixth power battery C6. It should be noted that the DC / DC converter enters the charging state by controlling the battery-side voltage of the DC / DC converter to be lower than the DC bus-side voltage. At this time, the DC / DC converter can step down the DC bus-side voltage and output it to charge the power battery.

[0055] If at least one of the following is detected: the state of charge (SOC) of the fifth power battery C5 is not less than the first preset SOC threshold; the SOC of the sixth power battery C6 is not less than the first preset SOC threshold; the voltage of the fifth power battery C5 is not less than the first preset voltage threshold; and the voltage of the sixth power battery C6 is not less than the first preset voltage threshold, while the SOC of both the fifth energy battery B5 and the sixth energy battery B6 is less than the first preset SOC threshold, or the voltage of both the fifth energy battery B5 and the sixth energy battery B6 is less than the first preset voltage threshold, then it indicates that the fifth power battery C5 and / or the sixth power battery C6 have sufficient charge, and the fifth energy battery B5 and the sixth energy battery B6 have low charge. Simultaneously, if the charging current value at the first terminal of the first energy storage unit and the second terminal of the second energy storage unit are both greater than the preset charging current value, then the first switch S1, n second switches S2, the third switch S3, n fourth switches S4, and the fifth switch S5 are kept closed, and the tenth switch S10 and the eleventh switch S11 are closed to charge the fifth energy type battery B5 and the sixth energy type battery B6. This ensures that power type batteries are charged preferentially.

[0056] If the state of charge (SOC) of both the fifth power battery C5 and the sixth power battery C6 is greater than the second preset SOC threshold, or if the voltage values ​​of both batteries are greater than the second preset voltage threshold, it indicates that both batteries have sufficient charge. Simultaneously, if the discharge current at the first terminal of the first energy storage unit and the discharge current at the second terminal of the second energy storage unit are both greater than preset discharge current values, then the first switch S1, n second switches S2, the third switch S3, n fourth switches S4, and the fifth switch S5 are kept closed, and the first DC / DC converter DC / DC1 and the second DC / DC converter DC / DC2 are controlled to enter a discharge state to discharge the fifth power battery C5 and the sixth power battery C6. It should be noted that the DC / DC converter entering a discharge state specifically means controlling the battery-side voltage of the DC / DC converter to be greater than the DC bus voltage. At this time, the DC / DC converter can step down the battery-side voltage and output it to the DC bus.

[0057] If at least one of the following is detected: the state of charge of the fifth power battery C5 is not greater than the second preset charge threshold; the state of charge of the sixth power battery C6 is not greater than the second preset charge threshold; the voltage value of the fifth power battery C5 is not greater than the first preset voltage threshold; and the voltage value of the sixth power battery C6 is not greater than the first preset voltage threshold, and at the same time, the state of charge of both the fifth energy battery B5 and the sixth energy battery B6 is greater than the second preset charge threshold, or the voltage values ​​of both the fifth energy battery B5 and the sixth energy battery B6 are greater than the second preset voltage threshold, it indicates that the power of the fifth power battery C5 and / or the sixth power battery C6 is low, and the power of the fifth energy battery B5 and the sixth energy battery B6 is sufficient. Simultaneously, if the discharge current value at the first terminal of the first energy storage unit and the discharge current value at the second terminal of the second energy storage unit are both greater than the preset discharge current value, it indicates that one or more three-level frequency converters are in a power-consuming state. At this time, the first switch S1, n second switches S2, the third switch S3, n fourth switches S4, and the fifth switch S5 are kept closed, and the tenth switch S10 and the eleventh switch S11 are closed to discharge the fifth energy type battery B5 and the sixth energy type battery B6. In this way, priority is given to discharging the power type batteries.

[0058] If at least one of the following is detected: the state of charge (SOC) of the fifth power battery C5 is less than the third preset SOC threshold; the SOC of the sixth power battery C6 is less than the third preset SOC threshold; the voltage of the fifth power battery C5 is less than the third preset voltage threshold; and the voltage of the sixth power battery C6 is less than the third preset voltage threshold, it indicates that the corresponding power battery is in an over-discharge state. In this case, the first DC / DC converter (DC / DC1) and the second DC / DC converter (DC / DC2) are controlled to enter a charging state, and the tenth switch (S10) and the eleventh switch (S11) are controlled to close, thus providing over-discharge protection for the fifth power battery C5 and the sixth power battery C6. At this time, the energy battery can charge the power battery. It should be noted that if both the fifth energy battery B5 and / or the sixth energy battery B6 are simultaneously detected to be in an over-discharge state, a dual over-discharge control process is executed, and the energy battery does not charge the power battery in this case.

[0059] If at least one of the following is detected: the state of charge (SOC) of the fifth energy type battery B5 is less than the third preset SOC threshold; the SOC of the sixth energy type battery B6 is less than the third preset SOC threshold; the voltage of the fifth energy type battery B5 is less than the third preset voltage threshold; and the voltage of the sixth energy type battery B6 is less than the third preset voltage threshold, then the first switch S1 and the third switch S3 are closed, the fifth switch S5 is opened, and the tenth switch S10 and the eleventh switch S11 are closed to provide over-discharge protection for the fifth energy type battery B5 and the sixth energy type battery B6. At this time, if one or more three-level inverters are in a power-feeding state, the over-discharged energy type battery is charged first. It should be noted that if the fifth power type battery C5 and / or the sixth power type battery C6 are simultaneously detected to be in an over-discharge state, a dual over-discharge control process is executed.

[0060] If at least one of the following is detected: the state of charge of the fifth power battery C5 is less than the third preset charge threshold; the state of charge of the sixth power battery C6 is less than the third preset charge threshold; the voltage of the fifth power battery C5 is less than the third preset voltage threshold; and the voltage of the sixth power battery C6 is less than the third preset voltage threshold, and if at least one of the following is detected: the state of charge of the fifth energy battery B5 is less than the third preset charge threshold; the state of charge of the sixth energy battery B6 is less than the third preset charge threshold; the voltage of the fifth energy battery B5 is less than the third preset voltage threshold; and the voltage of the sixth energy battery B6 is less than the third preset voltage threshold, then the dual over-discharge control process is executed. In the dual over-discharge control process, the first switch S1 and the third switch S3 are closed, the fifth switch S5 is opened, and / or the second switch S2 and the fourth switch S4 connected to the power supply frequency converter are opened; and the first DC / DC converter DC / DC1 and the second DC / DC converter DC / DC2 are controlled to enter the charging state, and the tenth switch S10 and the eleventh switch S11 are controlled to close, so as to provide over-discharge protection for the fifth power battery C5, the sixth power battery C6, the fifth energy battery B5 and the sixth energy battery B6.

[0061] If the state of charge (SOC) of the fifth power battery C5 is greater than the fourth preset charge threshold, the SOC of the sixth power battery C6 is greater than the fourth preset charge threshold, the voltage of the fifth power battery C5 is greater than the fourth preset voltage threshold, the voltage of the sixth power battery C6 is greater than the fourth preset voltage threshold, the SOC of the fifth energy battery B5 is greater than the fourth preset charge threshold, the SOC of the sixth energy battery B6 is greater than the fourth preset charge threshold, the voltage of the fifth energy battery B5 is greater than the fourth preset voltage threshold, and ... sixth energy battery B6 is greater than the fourth preset voltage threshold, the state of charge of the fifth energy battery B5 is greater than the fourth preset charge threshold, the voltage of the sixth energy battery B6 is greater than the fourth preset voltage threshold, the state of charge of the sixth energy battery B6 is greater than the fourth preset charge threshold, the voltage of the fifth energy battery B5 is greater than the fourth preset voltage threshold, and the voltage of the sixth energy battery B6 is greater than the fourth preset voltage threshold, the state of charge of the sixth energy battery B6 is greater than the fourth preset charge threshold, the voltage of the sixth energy battery B6 is greater than the fourth preset voltage threshold, the state of charge of the fifth energy battery B5 is greater than the fourth preset charge threshold, the voltage of the sixth energy battery B6 is greater than the fourth preset voltage threshold, the voltage of the sixth energy battery B6 is greater than the fourth preset voltage threshold, the voltage of the sixth energy battery B6 is greater than the fourth preset charge threshold, the voltage of the fifth energy battery C5 is greater than the fourth preset voltage threshold, the voltage of the sixth energy battery B6 is greater than the fourth preset charge threshold, the voltage of the sixth energy battery B6 is greater than the fourth preset voltage threshold, the voltage of the sixth energy battery B5 is greater than the fourth preset charge threshold, the voltage of the sixth energy battery B6 is greater than the fourth preset voltage threshold, the voltage If the voltage value is greater than at least one of the fourth preset voltage thresholds, it indicates that the corresponding power type battery / energy type battery is in an overcharged state. In this case, the second switch S2 and the fourth switch S4 connected to the corresponding generator inverter are disconnected, and / or the first switch S1 and the third switch S3 are disconnected, and the fifth switch S5 is closed. The first DC / DC converter DC / DC1 and the second DC / DC converter DC / DC2 are controlled to enter the discharge state, and the tenth switch S10 and the eleventh switch S11 are closed to protect the corresponding battery from overcharge.

[0062] If the energy regeneration equipment corresponding to the frequency converter is under maintenance, the second switch S2 and the fourth switch S4 connected to the corresponding frequency converter will be disconnected.

[0063] Thus, in this embodiment, the switching transistor on the power battery is replaced with a DC / DC converter. The boost / buck conversion of the DC / DC converter is used to balance the voltage on the power battery side and the DC bus voltage, thereby achieving the midpoint balance of the three-wire system simultaneously.

[0064] Please see Figure 7 In one embodiment of this application, the first energy storage unit includes a seventh power type battery C7, a third DC / DC converter DC / DC3, a seventh energy type battery B7, and a fifth DC / DC converter DC / DC5; the second energy storage unit includes an eighth power type battery C8, a fourth DC / DC converter DC / DC4, an eighth energy type battery B8, and a sixth DC / DC converter DC / DC6. Among them, the first terminal of the seventh power battery C7 is connected to the first terminal of the third DC / DC converter DC / DC3, and the second terminal of the seventh power battery C7 is connected to the second terminal of the third DC / DC converter DC / DC3. The first terminal of the eighth power battery C8 is connected to the first terminal of the fourth DC / DC converter DC / DC4, and the second terminal of the eighth power battery C8 is connected to the second terminal of the fourth DC / DC converter DC / DC4. The first terminal of the seventh energy battery B7 is connected to the first terminal of the fifth DC / DC converter DC / DC5, and the second terminal of the seventh energy battery B7 is connected to the second terminal of the fifth DC / DC converter DC / DC5. The first terminal of the eighth energy battery B8 is connected to the first terminal of the sixth DC / DC converter DC / DC6, and the second terminal of the eighth energy battery B8 is connected to the second terminal of the sixth DC / DC converter DC / DC6. The third terminal of the third DC / DC converter DC / DC3 and the third terminal of the fifth DC / DC converter DC / DC5 are connected to the first terminal of the first energy storage unit. The third terminal of the fourth DC / DC converter DC / DC4 and the third terminal of the sixth DC / DC converter DC / DC6 are connected to the second terminal of the second energy storage unit. The fourth terminal of the third DC / DC converter DC / DC3, the fourth DC / DC converter DC / DC4, the fifth DC / DC converter DC / DC5, and the sixth DC / DC converter DC / DC6 are connected to the second terminal of the first energy storage unit. The controlled terminals of the third DC / DC converter DC / DC3, the fourth DC / DC converter DC / DC4, the fifth DC / DC converter DC / DC5, and the sixth DC / DC converter DC / DC6 are respectively connected to the energy control unit.

[0065] In this embodiment, by controlling the switching frequencies of the third DC / DC1 converter, the fourth DC / DC4 converter, the fifth DC / DC5 converter, and the sixth DC / DC6 converter, the voltage difference between the three DC bus lines can be kept consistent, i.e., the voltage difference between P and N, ΔVPN = VP. The pressure difference between VN and S and N is ΔVQN = VQ VN difference | △VPN △VQN| is within the midpoint equilibrium threshold.

[0066] In this embodiment, if the state of charge of both the seventh power battery C7 and the eighth power battery C8 is less than the first preset charge threshold, or the voltage values ​​of both the seventh power battery C7 and the eighth power battery C8 are less than the first preset voltage threshold, it indicates that the power of the seventh power battery C7 and the eighth power battery C8 is low. Simultaneously, if the charging current value at the first terminal of the first energy storage unit and the charging current value at the second terminal of the second energy storage unit are both greater than the preset charging current value, then the first switch S1, n second switches S2, the third switch S3, n fourth switches S4, and the fifth switch S5 are kept closed, and the third DC / DC converter DC / DC3 and the fourth DC / DC converter DC / DC4 are controlled to enter the charging state to charge the seventh power battery C7 and the eighth power battery C8.

[0067] If the state of charge (SOC) of the seventh power battery C7 is not less than the first preset charge threshold, the SOC of the eighth power battery C8 is not less than the first preset charge threshold, the voltage of the seventh power battery C7 is not less than the first preset voltage threshold, and the voltage of the eighth power battery C8 is not less than the first preset voltage threshold, while the SOC of the seventh energy battery B7 and the eighth energy battery B8 are both less than the first preset charge threshold, or the voltage of the seventh energy battery B7 and the eighth energy battery B8 are both less than the first preset voltage threshold, then it indicates that the seventh power battery C7 and / or the eighth power battery C8 have sufficient charge, and the seventh energy battery B7 and the eighth energy battery B8 have low charge. Simultaneously, if the charging current value at the first terminal of the first energy storage unit and the charging current value at the second terminal of the second energy storage unit are both greater than the preset charging current value, then the first switch S1, n second switches S2, the third switch S3, n fourth switches S4, and the fifth switch S5 are kept closed, and the fifth DC / DC converter DC / DC5 and the sixth DC / DC converter DC / DC6 are controlled to enter the charging state to charge the seventh energy type battery B7 and the eighth energy type battery B8. In this way, priority is given to charging the power type batteries.

[0068] If the state of charge of both the seventh power battery C7 and the eighth power battery C8 is greater than the second preset charge threshold, or the voltage values ​​of both the seventh power battery C7 and the eighth power battery C8 are greater than the second preset voltage threshold, it indicates that the two power batteries have sufficient power. Simultaneously, if the discharge current value at the first terminal of the first energy storage unit and the discharge current value at the second terminal of the second energy storage unit are both greater than the preset discharge current value, then the first switch S1, n second switches S2, the third switch S3, n fourth switches S4, and the fifth switch S5 are kept closed, and the third DC / DC converter DC / DC3 and the fourth DC / DC converter DC / DC4 are controlled to enter the discharge state to discharge the seventh power battery C7 and the eighth power battery C8.

[0069] If at least one of the following is detected: the state of charge of the seventh power battery C7 is not greater than the second preset charge threshold; the state of charge of the eighth power battery C8 is not greater than the second preset charge threshold; the voltage value of the seventh power battery C7 is not greater than the first preset voltage threshold; and the voltage value of the eighth power battery C8 is not greater than the first preset voltage threshold, and at the same time the state of charge of the seventh energy battery B7 and the eighth energy battery B8 is greater than the second preset charge threshold, or the voltage values ​​of the seventh energy battery B7 and the eighth energy battery B8 are both greater than the second preset voltage threshold, it indicates that the charge of the seventh power battery C7 and / or the eighth power battery C8 is low, and the charge of the seventh energy battery B7 and the eighth energy battery B8 is sufficient. Simultaneously, if the discharge current value at the first terminal of the first energy storage unit and the discharge current value at the second terminal of the second energy storage unit are both greater than the preset discharge current value, then the first switch S1, n second switches S2, the third switch S3, n fourth switches S4, and the fifth switch S5 are kept closed, and the fifth DC / DC converter DC / DC5 and the sixth DC / DC converter DC / DC6 are controlled to enter the discharge state to discharge the seventh energy type battery B7 and the eighth energy type battery B8. In this way, priority is given to discharging the power type batteries.

[0070] If at least one of the following is detected: the state of charge (SOC) of the seventh power battery C7 is less than the third preset charge threshold; the SOC of the eighth power battery C8 is less than the third preset charge threshold; the voltage of the seventh power battery C7 is less than the third preset voltage threshold; and the voltage of the eighth power battery C8 is less than the third preset voltage threshold, and the SOC of both the seventh energy battery B7 and the eighth energy battery B8 is not less than the third preset charge threshold, or the voltage of both the seventh energy battery B7 and the eighth energy battery B8 is not less than the third preset voltage threshold, it indicates that only the corresponding power battery is in an over-discharge state. In this case, the third DC / DC converter (DC / DC3) and the fourth DC / DC converter (DC / DC4) are controlled to enter a charging state, and the fifth DC / DC converter (DC / DC5) and the sixth DC / DC converter (DC / DC6) are controlled to enter a discharging state to provide over-discharge protection for the seventh power battery C7 and the eighth power battery C8. At this time, the energy battery can charge the power battery.

[0071] If at least one of the following is detected: the state of charge (SOC) of the seventh energy type battery B7 is less than the third preset SOC threshold; the SOC of the eighth energy type battery B8 is less than the third preset SOC threshold; the voltage of the seventh energy type battery B7 is less than the third preset voltage threshold; and the voltage of the eighth energy type battery B8 is less than the third preset voltage threshold, and the SOC of both the seventh power type battery C7 and the eighth power type battery C8 is not less than the third preset SOC threshold, or the voltage of both the seventh power type battery C7 and the eighth power type battery C8 is not less than the third preset voltage threshold, it indicates that only the corresponding energy type battery is in an over-discharge state. In this case, the first switch S1 and the third switch S3 are closed, and the fifth switch S5 is opened. The fifth DC / DC converter DC / DC5 and the sixth DC / DC converter DC / DC6 are also controlled to enter a charging state to provide over-discharge protection for the seventh energy type battery B7 and the eighth energy type battery B8. At this time, the power type battery can charge the energy type battery. If one or more three-level inverters are in a power-feeding state, the over-discharged energy type battery will be charged preferentially.

[0072] If at least one of the following is detected: the state of charge (SOC) of the seventh power battery C7 is less than the third preset charge threshold; the SOC of the eighth power battery C8 is less than the third preset charge threshold; the voltage of the seventh power battery C7 is less than the third preset voltage threshold; and the voltage of the eighth power battery C8 is less than the third preset voltage threshold, and if the SOC of the seventh energy battery B7 is less than the third preset charge threshold; the SOC of the eighth energy battery B8 is less than the third preset charge threshold; the voltage of the seventh energy battery B7 is less than the third preset voltage threshold; and the voltage of the eighth energy battery B8 is less than the third preset voltage threshold, then... If at least one of the thresholds is selected, the first switch S1 and the third switch S3 are closed, the fifth switch S5 is opened, and / or the second switch S2 and the fourth switch S4 connected to the power supply strain gauge are opened; and the third DC / DC converter DC / DC3 and the fourth DC / DC converter DC / DC4 are controlled to enter the charging state, and the fifth DC / DC converter DC / DC5 and the sixth DC / DC converter DC / DC6 are controlled to enter the charging state, so as to provide over-discharge protection for the seventh power battery C7, the eighth power battery C8, the seventh energy battery B7 and the eighth energy battery B8.

[0073] If at least one of the following is detected: the state of charge (SOC) of the seventh power battery C7 is greater than the fourth preset charge threshold; the SOC of the eighth power battery C8 is greater than the fourth preset charge threshold; the voltage of the seventh power battery C7 is greater than the fourth preset voltage threshold; the voltage of the eighth power battery C8 is greater than the fourth preset voltage threshold; the SOC of the seventh energy battery B7 is greater than the fourth preset charge threshold; the SOC of the eighth energy battery B8 is greater than the fourth preset charge threshold; the voltage of the seventh energy battery B7 is greater than the fourth preset voltage threshold; and the voltage of the eighth energy battery B8 is greater than the fourth preset voltage threshold, it indicates that the corresponding power... If the power type battery / energy type battery is in an overcharged state, the second switch S2 and the fourth switch S4 connected to the corresponding power generation inverter will be disconnected; and / or the first switch S1 and the third switch S3 will be disconnected, and the fifth switch S5 will be closed; and the third DC / DC converter DC / DC3 and the fourth DC / DC converter DC / DC4 will be controlled to enter the discharge state, and the fifth DC / DC converter DC / DC5 and the sixth DC / DC converter DC / DC6 will enter the discharge state, so as to provide overcharge protection for the seventh power type battery C7, the eighth power type battery C8, the seventh energy type battery B7 and the eighth energy type battery B8; If the energy regeneration equipment corresponding to the frequency converter is under maintenance, the second switch S2 and the fourth switch S4 connected to the corresponding frequency converter will be disconnected.

[0074] Thus, in this embodiment, the switching transistors on the energy-type battery are replaced with DC / DC converters. The boost / buck conversion of the DC / DC converter is used to balance the voltage on the energy-type battery side and the DC bus voltage. This allows for dynamic adjustment of the charging and discharging rhythms of power-type and energy-type energy storage, and achieves midpoint balance in a three-wire system.

[0075] The above description is merely an exemplary embodiment of this application and does not limit the patent scope of this application. Any equivalent structural transformations made based on the technical concept of this application and the contents of the specification and drawings of this application, or direct / indirect applications in other related technical fields, are included within the patent protection scope of this application.

Claims

1. A three-level charge-discharge control circuit, applied to a variable frequency energy storage control system, characterized in that, The variable frequency energy storage control system includes one or more three-level frequency converters, each frequency converter having three DC bus nodes, and the three-level charge / discharge control circuit includes: First energy storage unit; Second energy storage unit; A first switching circuit, wherein a first terminal of the first switching circuit is connected to a first terminal of the first energy storage unit, and one or more second terminals of the first switching circuit are respectively connected to one or more first DC bus nodes of the three-level frequency converter. The second switching circuit has a first terminal connected to the second terminal of the second energy storage unit, and one or more second terminals of the second switching circuit are respectively connected to the third DC bus nodes of one or more of the three-level frequency converters. The third switching circuit has its first terminal, the second terminal of the first energy storage unit, and the first terminal of the second energy storage unit connected together. The second terminal of the third switching circuit is also connected to the second DC bus node of one or more of the three-level frequency converters. Energy control unit, used for: Detect the operating status of the first energy storage unit and the second energy storage unit; Based on the operating status of the first energy storage unit and the second energy storage unit, the operation of the first switching circuit, the second switching circuit and the third switching circuit are controlled to realize charging, discharging, overcharge protection and over-discharge protection for the first energy storage unit and / or the second energy storage unit.

2. The three-level charge-discharge control circuit as described in claim 1, characterized in that, The number of frequency converters is n. The first switching circuit includes a first diode, a first switching transistor, and n second switching transistors; the second switching circuit includes a second diode, a third switching transistor, and n fourth switching transistors; the third switching circuit includes a third diode and a fifth switching transistor; n is a positive integer greater than or equal to 1. The positive terminal of the first diode and the first terminal of the first switching transistor are connected to the first terminal of the first energy storage unit. The second terminal of the first switching transistor and the negative terminal of the first diode are connected to the first terminals of n second switching transistors. The second terminals of the n second switching transistors are respectively connected to the first DC bus nodes of the n frequency converters. The controlled terminals of the first switching transistor and the n second switching transistors are all connected to the energy control unit. The positive terminal of the second diode and the first terminal of the third switch are connected to the first terminal of the second energy storage unit. The second terminal of the third switch and the negative terminal of the second diode are connected to the first terminals of n fourth switches. The second terminals of the n fourth switches are respectively connected to the third DC bus nodes of the n frequency converters. The controlled terminals of the third switch and the n fourth switches are all connected to the energy control unit. The positive terminal of the third diode is connected to the first terminal of the fifth switching transistor, the negative terminal of the third diode and the second terminal of the fifth switching transistor are connected together with the second DC bus node of n frequency converters, and the controlled terminal of the fifth switching transistor is connected to the energy control unit.

3. The three-level charge-discharge control circuit as described in claim 1, characterized in that, The first energy storage unit includes a first power battery, and the second energy storage unit includes a second power battery; The first end of the first power battery is the first end of the first energy storage unit, and the second end of the first power battery is the second end of the first energy storage unit; the second end of the second power battery is the first end of the second energy storage unit, and the first end of the second power battery is the second end of the second energy storage unit. Alternatively, the first energy storage unit may include a first energy type battery, and the second energy storage unit may include a second energy type battery; The first end of the first energy type battery is the first end of the first energy storage unit, and the second end of the first energy type battery is the second end of the first energy storage unit; the second end of the second energy type battery is the first end of the second energy storage unit, and the first end of the second energy type battery is the second end of the second energy storage unit.

4. The three-level charge-discharge control circuit as described in claim 2, characterized in that, If the state of charge of the first energy storage unit and the state of charge of the second energy storage unit are both less than a first preset charge threshold, or the voltage value of the first energy storage unit and the voltage value of the second energy storage unit are both less than a first preset voltage threshold, and the charging current value of the first terminal of the first energy storage unit and the charging current value of the second terminal of the second energy storage unit are both greater than a preset charging current value, then the first switch, n second switches, the third switch, n fourth switches and the fifth switch are controlled to close to charge the first energy storage unit and the second energy storage unit; If the state of charge of the first energy storage unit and the state of charge of the second energy storage unit are both greater than the second preset charge threshold, or the voltage value of the first energy storage unit and the voltage value of the second energy storage unit are both greater than the second preset voltage threshold, and the discharge current value of the first terminal of the first energy storage unit and the discharge current value of the second terminal of the second energy storage unit are both greater than the preset discharge current value, then the first switch, n second switches, the third switch, n fourth switches and the fifth switch are controlled to close to discharge the first energy storage unit and the second energy storage unit; If at least one of the following is detected: the state of charge of the first energy storage unit is less than the third preset charge threshold, the state of charge of the second energy storage unit is less than the third preset charge threshold, the voltage value of the first energy storage unit is less than the third preset voltage threshold, and the voltage value of the second energy storage unit is less than the third preset voltage threshold, then the first switch and the third switch are controlled to close, the fifth switch is controlled to open, and / or the second switch and the fourth switch connected to the inverter that are connected to the power supply are controlled to open, so as to provide over-discharge protection for the corresponding energy storage unit; If at least one of the following is detected: the state of charge of the first energy storage unit is greater than the fourth preset charge threshold; the state of charge of the second energy storage unit is greater than the fourth preset charge threshold; the voltage value of the first energy storage unit is greater than the fourth preset voltage threshold; and the voltage value of the second energy storage unit is greater than the fourth preset voltage threshold, then the second and fourth switching transistors connected to the corresponding generator inverter are disconnected, and / or the first switching transistor is disconnected from the third switching transistor, and the fifth switching transistor is closed, so as to provide overcharge protection for the corresponding energy storage unit; If the energy regeneration equipment corresponding to the frequency converter is under maintenance, the second and fourth switching transistors connected to the corresponding frequency converter will be disconnected.

5. The three-level charge-discharge control circuit as described in claim 2, characterized in that, The first energy storage unit includes a third power type battery, a sixth switch, a third energy type battery, and an eighth switch; the second energy storage unit includes a fourth power type battery, a seventh switch, a fourth energy type battery, and a ninth switch. In this configuration, the first terminal of the third power battery is connected to the first terminal of the sixth switch transistor; the second terminal of the sixth switch transistor and the first terminal of the third energy battery are connected to the first terminal of the first energy storage unit; the second terminal of the third energy battery is connected to the first terminal of the eighth switch transistor; the second terminal of the eighth switch transistor, the second terminal of the third power battery, the second terminal of the fourth power battery, and the first terminal of the ninth switch transistor are connected to the second terminal of the first energy storage unit; the first terminal of the fourth power battery is connected to the first terminal of the seventh switch transistor; the second terminal of the seventh switch transistor and the first terminal of the fourth energy battery are connected to the second terminal of the second energy storage unit; the second terminal of the fourth energy battery is connected to the second terminal of the ninth switch transistor; and the controlled terminals of the sixth, seventh, eighth, and ninth switch transistors are all connected to the energy control unit.

6. The three-level charge-discharge control circuit as described in claim 5, characterized in that, If the state of charge of the third power battery and the fourth power battery is detected to be less than the first preset charge threshold, or the voltage of the third power battery and the fourth power battery is less than the first preset voltage threshold, and the charging current value of the first terminal of the first energy storage unit and the charging current value of the second terminal of the second energy storage unit are both greater than the preset charging current value, then the first switch, n second switches, the third switch, n fourth switches and the fifth switch are controlled to close, and the sixth switch and the seventh switch are controlled to close, so as to charge the third power battery and the fourth power battery; If it is detected that the state of charge of the third power battery is not less than the first preset charge threshold, the state of charge of the fourth power battery is not less than the first preset charge threshold, the voltage value of the third power battery is not less than the first preset voltage threshold, and the voltage value of the fourth power battery is not less than the first preset voltage threshold, and at the same time, the state of charge of both the third energy battery and the fourth energy battery is less than the first preset charge threshold, or the voltage values ​​of both the third energy battery and the fourth energy battery are less than the first preset voltage threshold, and the charging current value of the first terminal of the first energy storage unit and the charging current value of the second terminal of the second energy storage unit are both greater than the preset charging current value, then the first switch, n second switches, the third switch, n fourth switches and the fifth switch are controlled to close, and the eighth switch and the ninth switch are controlled to close, so as to charge the third energy battery and the fourth energy battery; If the state of charge of the third power battery and the fourth power battery is detected to be greater than the second preset charge threshold, or the voltage of the third power battery and the fourth power battery is greater than the second preset voltage threshold, and the discharge current of the first terminal of the first energy storage unit and the discharge current of the second terminal of the second energy storage unit are both greater than the preset discharge current value, then the first switch, n second switches, the third switch, n fourth switches and the fifth switch are controlled to close, and the sixth switch and the seventh switch are controlled to close, so as to discharge the third power battery and the fourth power battery; If it is detected that the state of charge of the third power battery is not greater than the second preset charge threshold, the state of charge of the fourth power battery is not greater than the second preset charge threshold, the voltage value of the third power battery is not greater than the first preset voltage threshold, and the voltage value of the fourth power battery is not greater than the first preset voltage threshold, and at the same time, the state of charge of both the third energy battery and the fourth energy battery is greater than the second preset charge threshold, or the voltage values ​​of both the third energy battery and the fourth energy battery are greater than the second preset voltage threshold, and the discharge current value of the first terminal of the first energy storage unit and the discharge current value of the second terminal of the second energy storage unit are both greater than the preset discharge current value, then the first switch, n second switches, the third switch, n fourth switches and the fifth switch are controlled to close, and the eighth switch and the ninth switch are controlled to close, so as to discharge the third energy battery and the fourth energy battery; If at least one of the following is detected: the state of charge of the third power battery is less than a third preset charge threshold, the state of charge of the fourth power battery is less than the third preset charge threshold, the voltage of the third power battery is less than a third preset voltage threshold, and the voltage of the fourth power battery is less than the third preset voltage threshold, then the first switch is controlled to close with the third switch, the fifth switch is controlled to open, and / or the second switch and the fourth switch connected to the inverter are controlled to open; and the sixth switch is controlled to close with the seventh switch, and the eighth switch is controlled to open with the ninth switch, so as to provide over-discharge protection for the third power battery and the fourth power battery; If at least one of the following is detected: the state of charge of the third energy type battery is less than a third preset charge threshold, the state of charge of the fourth energy type battery is less than the third preset charge threshold, the voltage value of the third energy type battery is less than a third preset voltage threshold, and the voltage value of the fourth energy type battery is less than the third preset voltage threshold, then the first switch and the third switch are controlled to close, the fifth switch is controlled to open, and / or the second switch and the fourth switch connected to the inverter are controlled to open; and the eighth switch and the ninth switch are controlled to close, and the sixth switch and the seventh switch are controlled to open, so as to provide over-discharge protection for the third energy type battery and the fourth energy type battery; If at least one of the following is detected: the state of charge (SOC) of the third power battery is greater than a fourth preset SOC threshold; the SOC of the fourth power battery is greater than a fourth preset SOC threshold; the voltage of the third power battery is greater than a fourth preset voltage threshold; the voltage of the fourth power battery is greater than a fourth preset voltage threshold; the SOC of the third energy battery is greater than a fourth preset SOC threshold; the SOC of the fourth energy battery is greater than a fourth preset SOC threshold; the voltage of the third energy battery is greater than a fourth preset voltage threshold; or the voltage of the fourth energy battery is greater than a fourth preset voltage threshold, then the second and fourth switches connected to the corresponding generator inverter are disconnected, and / or the first switch is disconnected from the third switch, and the fifth switch is closed; and the sixth and seventh switches are closed, and the eighth and ninth switches are closed, to provide overcharge protection for the corresponding battery. If the energy regeneration equipment corresponding to the frequency converter is under maintenance, the second and fourth switching transistors connected to the corresponding frequency converter will be disconnected.

7. The three-level charge-discharge control circuit as described in claim 2, characterized in that, The first energy storage unit includes a fifth power type battery, a first DC / DC converter, a tenth switching transistor, and a fifth energy type battery; the second energy storage unit includes a sixth power type battery, a second DC / DC converter, an eleventh switching transistor, and a sixth energy type battery. Wherein, the first terminal of the fifth power battery is connected to the first terminal of the first DC / DC converter, the second terminal of the fifth power battery is connected to the second terminal of the first DC / DC converter, the third terminal of the first DC / DC converter and the first terminal of the fifth energy battery are connected to the first terminal of the first energy storage unit, the second terminal of the fifth energy battery is connected to the first terminal of the tenth switch, the second terminal of the tenth switch, the fourth terminal of the first DC / DC converter, the fourth terminal of the second DC / DC converter, the first terminal of the eleventh switch are connected to the second terminal of the first energy storage unit, the third terminal of the second DC / DC converter and the first terminal of the sixth energy battery are connected to the second terminal of the second energy storage unit, the second terminal of the sixth energy battery is connected to the second terminal of the eleventh switch, the first terminal of the sixth power battery is connected to the first terminal of the second DC / DC converter, the second terminal of the sixth power battery is connected to the second terminal of the second DC / DC converter, and the controlled terminals of the tenth switch, the eleventh switch, the first DC / DC converter, and the second DC / DC converter are all connected to the energy control unit.

8. The three-level charge-discharge control circuit as described in claim 7, characterized in that, If the state of charge of the fifth power battery and the sixth power battery is detected to be less than the first preset charge threshold, or the voltage of the fifth power battery and the sixth power battery is less than the first preset voltage threshold, and the charging current of the first terminal of the first energy storage unit and the charging current of the second terminal of the second energy storage unit are both greater than the preset charging current, then the first switch, n second switches, the third switch, n fourth switches and the fifth switch are controlled to close, and the first DC / DC converter and the second DC / DC converter are controlled to enter the charging state to charge the fifth power battery and the sixth power battery; If it is detected that the state of charge of the fifth power battery is not less than the first preset charge threshold, the state of charge of the sixth power battery is not less than the first preset charge threshold, the voltage value of the fifth power battery is not less than the first preset voltage threshold, and the voltage value of the sixth power battery is not less than the first preset voltage threshold, and at the same time, the state of charge of both the fifth energy battery and the sixth energy battery is less than the first preset charge threshold, or the voltage values ​​of both the fifth energy battery and the sixth energy battery are less than the first preset voltage threshold, and the charging current value of the first terminal of the first energy storage unit and the charging current value of the second terminal of the second energy storage unit are both greater than the preset charging current value, then the first switch, n second switches, the third switch, n fourth switches and the fifth switch are controlled to close, and the tenth switch and the eleventh switch are controlled to close, so as to charge the fifth energy battery and the sixth energy battery; If the state of charge of the fifth power battery and the sixth power battery is detected to be greater than the second preset charge threshold, or the voltage of the fifth power battery and the sixth power battery is greater than the second preset voltage threshold, and the discharge current of the first terminal of the first energy storage unit and the discharge current of the second terminal of the second energy storage unit are both greater than the preset discharge current value, then the first switch, n second switches, the third switch, n fourth switches and the fifth switch are controlled to close, and the first DC / DC converter and the second DC / DC converter are controlled to enter the discharge state to discharge the fifth power battery and the sixth power battery; If at least one of the following is detected: the state of charge of the fifth power battery is not greater than the second preset charge threshold, the state of charge of the sixth power battery is not greater than the second preset charge threshold, the voltage of the fifth power battery is not greater than the first preset voltage threshold, and the voltage of the sixth power battery is not greater than the first preset voltage threshold; simultaneously, the state of charge of both the fifth energy battery and the sixth energy battery is greater than the second preset charge threshold; or the voltage of both the fifth energy battery and the sixth energy battery is greater than the second preset voltage threshold, and the discharge current of the first terminal of the first energy storage unit and the discharge current of the second terminal of the second energy storage unit are both greater than a preset discharge current value, then the first switch, n second switches, the third switch, n fourth switches, and the fifth switch are controlled to close, and the tenth switch and the eleventh switch are controlled to close, so as to discharge the fifth energy battery and the sixth energy battery; If it is detected that the state of charge of the fifth power battery is less than the third preset charge threshold, the state of charge of the sixth power battery is less than the third preset charge threshold, the voltage of the fifth power battery is less than the third preset voltage threshold, and the voltage of the sixth power battery is less than the third preset voltage threshold, then the first DC / DC converter and the second DC / DC converter are controlled to enter the charging state, and the tenth switch and the eleventh switch are controlled to close, so as to provide over-discharge protection for the fifth power battery and the sixth power battery; If at least one of the following is detected: the state of charge of the fifth energy type battery is less than the third preset charge threshold, the state of charge of the sixth energy type battery is less than the third preset charge threshold, the voltage value of the fifth energy type battery is less than the third preset voltage threshold, and the voltage value of the sixth energy type battery is less than the third preset voltage threshold, then the first switch and the third switch are controlled to close, the fifth switch is controlled to open, and the tenth switch and the eleventh switch are controlled to close, so as to provide over-discharge protection for the fifth energy type battery and the sixth energy type battery; If it is detected that the state of charge (SOC) of the fifth power battery is less than the third preset SOC threshold, the SOC of the sixth power battery is less than the third preset SOC threshold, the voltage of the fifth power battery is less than the third preset voltage threshold, and the voltage of the sixth power battery is less than the third preset voltage threshold, and it is also detected that the SOC of the fifth energy battery is less than the third preset SOC threshold, the SOC of the sixth energy battery is less than the third preset SOC threshold, the voltage of the fifth energy battery is less than the third preset voltage threshold, and the voltage of the sixth energy battery is less than the third preset voltage threshold, then the first switch and the third switch are controlled to close, the fifth switch is controlled to open, and / or the second switch and the fourth switch connected to the inverter for power consumption are controlled to open; and the first DC / DC converter and the second DC / DC converter are controlled to enter the charging state, and the tenth switch and the eleventh switch are controlled to close, so as to provide over-discharge protection for the fifth power battery, the sixth power battery, the fifth energy battery, and the sixth energy battery; If at least one of the following is detected: the state of charge (SOC) of the fifth power battery is greater than the fourth preset SOC threshold; the SOC of the sixth power battery is greater than the fourth preset SOC threshold; the voltage of the fifth power battery is greater than the fourth preset voltage threshold; the voltage of the sixth power battery is greater than the fourth preset voltage threshold; the SOC of the fifth energy battery is greater than the fourth preset SOC threshold; the SOC of the sixth energy battery is greater than the fourth preset SOC threshold; the voltage of the fifth energy battery is greater than the fourth preset voltage threshold; or the voltage of the sixth energy battery is greater than the fourth preset voltage threshold, then the second and fourth switches connected to the corresponding generator inverter are disconnected, and / or the first and third switches are disconnected, and the fifth switch is closed; and the first and second DC / DC converters are controlled to enter a discharge state, and the tenth and eleventh switches are closed, to provide overcharge protection for the corresponding battery; If the energy regeneration equipment corresponding to the frequency converter is under maintenance, the second and fourth switching transistors connected to the corresponding frequency converter will be disconnected.

9. The three-level charge-discharge control circuit as described in claim 2, characterized in that, The first energy storage unit includes a seventh power type battery, a third DC / DC converter, a seventh energy type battery, and a fifth DC / DC converter; the second energy storage unit includes an eighth power type battery, a fourth DC / DC converter, an eighth energy type battery, and a sixth DC / DC converter. In this configuration, the first terminal of the first energy storage unit is connected to the first terminal of the third DC / DC converter; the second terminal of the seventh power battery is connected to the second terminal of the third DC / DC converter; the first terminal of the eighth power battery is connected to the first terminal of the fourth DC / DC converter; the second terminal of the second energy storage unit is connected to the second terminal of the fourth DC / DC converter; the first terminal of the first energy storage unit is connected to the first terminal of the fifth DC / DC converter; the second terminal of the seventh energy battery is connected to the second terminal of the fifth DC / DC converter; the first terminal of the eighth energy battery is connected to the first terminal of the sixth DC / DC converter; and the second terminal of the second energy storage unit is connected to the second terminal of the sixth DC / DC converter. The third terminal of the third DC / DC converter and the third terminal of the fifth DC / DC converter are connected to the first terminal of the first energy storage unit. The third terminal of the fourth DC / DC converter and the third terminal of the sixth DC / DC converter are connected to the second terminal of the second energy storage unit. The fourth terminal of the third DC / DC converter, the fourth terminal of the fourth DC / DC converter, the fourth terminal of the fifth DC / DC converter, and the fourth terminal of the sixth DC / DC converter are connected to the second terminal of the first energy storage unit. The controlled terminals of the third DC / DC converter, the fourth DC / DC converter, the fifth DC / DC converter, and the sixth DC / DC converter are respectively connected to the energy control unit.

10. The three-level charge-discharge control circuit as described in claim 9, characterized in that, If the state of charge of the seventh power battery and the eighth power battery is detected to be less than the first preset charge threshold, or the voltage of the seventh power battery and the eighth power battery is less than the first preset voltage threshold, and the charging current value of the first terminal of the first energy storage unit and the charging current value of the second terminal of the second energy storage unit are both greater than the preset charging current value, then the first switch, n second switches, the third switch, n fourth switches and the fifth switch are controlled to close, and the third DC / DC converter and the fourth DC / DC converter are controlled to enter the charging state to charge the seventh power battery and the eighth power battery; If the state of charge (SOC) of the seventh power battery is not less than the first preset SOC threshold, the SOC of the eighth power battery is not less than the first preset SOC threshold, the voltage of the seventh power battery is not less than the first preset voltage threshold, and the voltage of the eighth power battery is not less than the first preset voltage threshold, while the SOC of both the seventh energy battery and the eighth energy battery is less than the first preset SOC threshold, or the voltage of both the seventh energy battery and the eighth energy battery is less than the first preset voltage threshold, and the charging current of the first terminal of the first energy storage unit and the charging current of the second terminal of the second energy storage unit are both greater than the preset charging current value, then the first switch, n second switches, the third switch, n fourth switches, and the fifth switch are controlled to close, and the fifth DC / DC converter and the sixth DC / DC converter are controlled to enter the charging state to charge the seventh energy battery and the eighth energy battery; If the state of charge of the seventh power battery and the eighth power battery is detected to be greater than the second preset charge threshold, or the voltage of the seventh power battery and the eighth power battery is greater than the second preset voltage threshold, and the discharge current of the first terminal of the first energy storage unit and the discharge current of the second terminal of the second energy storage unit are both greater than the preset discharge current value, then the first switch, n second switches, the third switch, n fourth switches and the fifth switch are controlled to close, and the third DC / DC converter and the fourth DC / DC converter are controlled to enter the discharge state to discharge the seventh power battery and the eighth power battery; If the state of charge of the seventh power battery is not greater than the second preset charge threshold, the state of charge of the eighth power battery is not greater than the second preset charge threshold, the voltage of the seventh power battery is not greater than the first preset voltage threshold, and the voltage of the eighth power battery is not greater than the first preset voltage threshold, while the state of charge of both the seventh energy battery and the eighth energy battery is greater than the second preset charge threshold, or the voltage of both the seventh energy battery and the eighth energy battery is greater than the second preset voltage threshold, and the discharge current of the first terminal of the first energy storage unit and the discharge current of the second terminal of the second energy storage unit are both greater than the preset discharge current value, then the first switch, n second switches, the third switch, n fourth switches, and the fifth switch are controlled to close, and the fifth DC / DC converter and the sixth DC / DC converter are controlled to enter the discharge state to discharge the seventh energy battery and the eighth energy battery; If at least one of the following is detected: the state of charge of the seventh power battery is less than the third preset charge threshold; the state of charge of the eighth power battery is less than the third preset charge threshold; the voltage of the seventh power battery is less than the third preset voltage threshold; and the voltage of the eighth power battery is less than the third preset voltage threshold, and the state of charge of both the seventh energy battery and the eighth energy battery is not less than the third preset charge threshold, or the voltage of both the seventh energy battery and the eighth energy battery is not less than the third preset voltage threshold, then the third DC / DC converter and the fourth DC / DC converter are controlled to enter the charging state, and the fifth DC / DC converter and the sixth DC / DC converter are controlled to enter the discharging state, so as to provide over-discharge protection for the seventh power battery and the eighth power battery; If at least one of the following is detected: the state of charge of the seventh energy type battery is less than the third preset charge threshold; the state of charge of the eighth energy type battery is less than the third preset charge threshold; the voltage of the seventh energy type battery is less than the third preset voltage threshold; and the voltage of the eighth energy type battery is less than the third preset voltage threshold, and the state of charge of both the seventh power type battery and the eighth power type battery is not less than the third preset charge threshold, or the voltage of both the seventh power type battery and the eighth power type battery is not less than the third preset voltage threshold, then the first switch and the third switch are controlled to close, the fifth switch is controlled to open, and the fifth DC / DC converter and the sixth DC / DC converter are controlled to enter the charging state to provide over-discharge protection for the seventh energy type battery and the eighth energy type battery; If it is detected that the state of charge (SOC) of the seventh power battery is less than the third preset SOC threshold, the SOC of the eighth power battery is less than the third preset SOC threshold, the voltage of the seventh power battery is less than the third preset voltage threshold, and the voltage of the eighth power battery is less than the third preset voltage threshold, and it is also detected that the SOC of the seventh energy battery is less than the third preset SOC threshold, the SOC of the eighth energy battery is less than the third preset SOC threshold, the voltage of the seventh energy battery is less than the third preset voltage threshold, and the voltage of the eighth energy battery is less than the third preset voltage threshold, then the first switch and the third switch are controlled to close, the fifth switch is controlled to open, and / or the second switch and the fourth switch connected to the inverter are controlled to open; and the third DC / DC converter and the fourth DC / DC converter are controlled to enter the charging state, and the fifth DC / DC converter and the sixth DC / DC converter are controlled to enter the charging state, so as to provide over-discharge protection for the seventh power battery, the eighth power battery, the seventh energy battery, and the eighth energy battery; If at least one of the following is detected: the state of charge (SOC) of the seventh power battery is greater than the fourth preset SOC threshold; the SOC of the eighth power battery is greater than the fourth preset SOC threshold; the voltage of the seventh power battery is greater than the fourth preset voltage threshold; the voltage of the eighth power battery is greater than the fourth preset voltage threshold; the SOC of the seventh energy battery is greater than the fourth preset SOC threshold; the SOC of the eighth energy battery is greater than the fourth preset SOC threshold; the voltage of the seventh energy battery is greater than the fourth preset voltage threshold; and the voltage of the eighth energy battery is greater than the fourth preset voltage threshold, then the second and fourth switches connected to the corresponding generator inverter are disconnected, and / or the first and third switches are disconnected, and the fifth switch is closed; and the third and fourth DC / DC converters and the fifth and sixth DC / DC converters are entered into a discharge state, so as to provide overcharge protection for the seventh power battery, the eighth power battery, the seventh energy battery, and the eighth energy battery. If the energy regeneration equipment corresponding to the frequency converter is under maintenance, the second and fourth switching transistors connected to the corresponding frequency converter will be disconnected.

Citation Information

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