CN213846557U - Energy storage converter - Google Patents

Energy storage converter Download PDF

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CN213846557U
CN213846557U CN202022494595.4U CN202022494595U CN213846557U CN 213846557 U CN213846557 U CN 213846557U CN 202022494595 U CN202022494595 U CN 202022494595U CN 213846557 U CN213846557 U CN 213846557U
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capacitor
conversion module
converter
energy storage
battery module
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吴越
陈满
雷博
李勇琦
郑耀东
史尤杰
胡振恺
许树楷
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CSG Electric Power Research Institute
Research Institute of Southern Power Grid Co Ltd
Peak and Frequency Regulation Power Generation Co of China Southern Power Grid Co Ltd
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Research Institute of Southern Power Grid Co Ltd
Peak and Frequency Regulation Power Generation Co of China Southern Power Grid Co Ltd
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Abstract

The utility model discloses an energy storage converter, this energy storage converter include AC/DC conversion module and DC/DC conversion module, the interchange side of AC/DC conversion module passes through the wave filter and is connected with alternating current network, the direct current side of AC/DC conversion module with DC/DC conversion module connects, DC/DC conversion module includes the flyback converter of a plurality of series connection, every flyback converter's load department is connected with a battery module. The utility model discloses an adopt flyback converter as DC conversion module for energy storage converter high-pressure side is kept apart with the low pressure side, and operating personnel's personal safety when guaranteeing the battery and changing, in addition, through the switch operating condition of control flyback converter, avoid the overcharge and the overdischarge of battery module, effectively solve battery charge and discharge equilibrium problem.

Description

Energy storage converter
Technical Field
The utility model relates to an electronic circuit technical field especially relates to an energy storage converter.
Background
In recent years, with the continuous progress of battery manufacturing technology and power electronic technology, battery energy storage technology has been developed to some extent. Aiming at the problems that the voltage grades of the applied battery modules are not consistent, the grid-connected voltage is far higher than the voltage of a single battery module and the like, a two-stage topology (namely an AC/DC converter and a DC/DC converter) gradually becomes one of the mainstream solutions. In a two-stage topology, a DC/DC converter is responsible for boosting the battery module voltage, and an AC/DC converter is responsible for converting the high DC voltage to high AC voltage suitable for network access. When the battery connected with a certain group of DC/DC converters has a fault, the group of DC/DC converters only needs to be stopped, and the whole system does not need to be stopped. The two-tier topology has greater redundancy and flexibility than a single-tier topology.
However, in the conventional two-stage energy storage converter structure with the parallel connection at the DC, an equalization circuit needs to be added in the battery cluster, and the charging and discharging equalization control cannot be directly performed on all the battery modules. Although the energy storage converter structure that the switch group is connected in series on the DC side can solve the problem of charge-discharge balance of the battery module, there is no isolation structure on the low-voltage DC side, and certain danger is generated to an operator when the battery module is replaced.
SUMMERY OF THE UTILITY MODEL
The utility model aims at providing an energy storage converter through adopting flyback converter as DC conversion module for energy storage converter high-pressure side is kept apart with the low pressure side, and operating personnel's personal safety when guaranteeing that the battery is changed, in addition, through the switch operating condition of control flyback converter, avoids the crossing of battery module to fill and cross putting, effectively solves the balanced problem of battery charge-discharge.
In order to achieve the above object, an embodiment of the present invention provides an energy storage converter, including AC/DC conversion module and DC/DC conversion module, the AC side of AC/DC conversion module passes through the filter and is connected with the AC power grid, the DC side of AC/DC conversion module with DC/DC conversion module connects, DC/DC conversion module includes the flyback converter of a plurality of series connection, every flyback converter's load department is connected with a battery module.
Preferably, the flyback converter includes a first capacitor, a second capacitor, a first switch tube, a second switch tube and a transformer; the input side of the transformer is connected with the first capacitor in parallel, and the first switching tube is connected on the input side of the transformer in series; the output side of the transformer is connected with the second capacitor in parallel, and the second switching tube is connected on the output side of the transformer in series; the second capacitor is connected in parallel with the battery module.
Preferably, the first capacitors of the flyback converters are connected in series to form a first capacitor branch of the DC/DC conversion module, a second capacitor branch is disposed on the DC side of the AC/DC conversion module, and the first capacitor branch is connected in parallel with the second capacitor branch.
Preferably, the filter is an LCL filter, the LCL filter includes three-phase filtering branches, one end of each three-phase filtering branch is correspondingly connected to three phases of the AC power grid, and the other end of each three-phase filtering branch is connected to an AC side of the AC/DC conversion module; each phase of filtering branch circuit comprises a first inductor, a second inductor, a third capacitor, a fourth capacitor and a resistor; the fourth capacitor and the resistor are connected in series to form a damping branch circuit, the damping branch circuit and the third capacitor are connected in parallel to form a parallel branch circuit, and the parallel branch circuit is connected between the first inductor and the second inductor.
Preferably, the resistance value of the resistor has a value range of
Figure BDA0002755653300000021
Wherein R isdaIs the resistance value of the resistor, omega is the resonance frequency of the LCL filter, CdaIs the capacitance value of the fourth capacitor, CfaIs the capacitance value of the third capacitor, LgaIs an inductance value of the first inductor, LcaIs the inductance value of the second inductor.
Preferably, the AC/DC conversion module is a two-level bridge converter, a T-type three-level converter or a diode-clamped type three-level converter.
Compared with the prior art, the embodiment of the utility model provides an energy storage converter, through adopting flyback converter as DC/DC conversion module, make energy storage converter high-pressure side and low pressure side keep apart, when guaranteeing the battery change operating personnel's personal safety, the interchange side of AC/DC converter installs the LCL wave filter additional, greatly increased the converter to the suppression effect of the high frequency harmonic of the electric current of netting; in addition, by controlling the switch working state of the flyback converter, the overcharge and the overdischarge of the battery module are avoided, and the problem of battery charge and discharge balance is effectively solved.
Drawings
Fig. 1 is a schematic structural diagram of a first embodiment of an energy storage converter according to the present invention;
fig. 2 is a schematic structural diagram of a second embodiment of an energy storage converter according to the present invention;
fig. 3 is a schematic structural diagram of a third embodiment of an energy storage converter according to the present invention;
fig. 4 is a schematic flow chart of a first embodiment of a charging and discharging control method of an energy storage converter according to the present invention;
fig. 5 is an equivalent schematic diagram of an embodiment of the battery module 1 of the energy storage converter cutting out a circuit at the end of charging/discharging;
fig. 6 is a schematic flow chart of a second embodiment of a charging and discharging control method for an energy storage converter according to the present invention.
Detailed Description
The technical solutions in the embodiments of the present invention will be described clearly and completely with reference to the accompanying drawings in the embodiments of the present invention, and it is obvious that the described embodiments are only some embodiments of the present invention, not all embodiments. Based on the embodiments in the present invention, all other embodiments obtained by a person skilled in the art without creative efforts belong to the protection scope of the present invention.
Referring to fig. 1, it is a schematic structural diagram of an energy storage converter provided in an embodiment of the present invention, the energy storage converter includes an AC/DC conversion module and a DC/DC conversion module, an AC side of the AC/DC conversion module is connected to an AC power grid through a filter, a DC side of the AC/DC conversion module is connected to the DC/DC conversion module, the DC/DC conversion module includes a plurality of flyback converters connected in series, and a load of each flyback converter is connected to a battery module.
Specifically, the energy storage converter comprises an AC/DC conversion module and a DC/DC conversion module, wherein the AC side of the AC/DC conversion module is connected with an AC power grid through a filter, and the DC side of the AC/DC conversion module is connected with the DC/DC conversion module. The filter functions to suppress high frequency harmonics of the network-in current. The DC/DC conversion module comprises a plurality of flyback converters which are connected in series, namely the input sides of the flyback converters are connected in series to form a branch circuit, and the branch circuit is connected with the direct current side of the AC/DC conversion module in parallel. And a battery module is connected to the load of each flyback converter. That is to say, the first flyback converter is connected with the first battery module, the second flyback converter is connected with the second battery module, … …, the nth flyback converter is connected with the nth battery module, and n is larger than or equal to 1. Preferably, the switching tube of the AC/DC conversion module is a Metal-Oxide-Semiconductor Field-Effect Transistor (MOSFET) or an Insulated Gate Bipolar Transistor (IGBT); and the switching tube in the DC/DC conversion module is a MOSFET.
The utility model discloses an energy storage converter that this embodiment provided is through adopting flyback converter as DC conversion module for energy storage converter high-pressure side is kept apart with the low pressure side, operating personnel's personal safety when guaranteeing the battery and changing.
As an improvement of the above scheme, the flyback converter includes a first capacitor, a second capacitor, a first switch tube, a second switch tube and a transformer; the input side of the transformer is connected with the first capacitor in parallel, and the first switching tube is connected on the input side of the transformer in series; the output side of the transformer is connected with the second capacitor in parallel, and the second switching tube is connected on the output side of the transformer in series; the second capacitor is connected in parallel with the battery module.
Specifically, the flyback converter comprises a first capacitor, a second capacitor and a first switch tube Q1pA second switch tube Q1nAnd a transformer; wherein, the input side of the transformer is connected with a first capacitor in parallel, and a first switching tube Q1pConnected in series on the input side of the transformer, i.e. the input side of the transformer and the first switching tube Q1pAre connected in series to form a branch circuit, and the branch circuit is connected with the first capacitor in parallel. The output side of the transformer is connected with a second capacitor in parallel, and a second switching tube Q1nConnected in series on the output side of the transformer. Similarly, the output side of the transformer and the second switch tube Q1nAre connected in series to form a branch circuit, and the branch circuit is connected with the second capacitor in parallel. The second capacitor is connected in parallel with the battery module.
When the three-phase AC network charges the battery module through the energy storage converter, the primary side switching tube Q1pIs a main switch tube, i.e. by controlling a first switch tube Q1pThereby realizing the function of voltage chopping. Secondary side switch tube Q1nActing as synchronous rectifiers, i.e. as the first switching tube Q1pSecond switch tube Q when switching on1nTurning off; first switch tube Q1pSecond switch tube Q when turning off1nAnd (4) opening.
When the battery module discharges to the three-phase alternating current network through the energy storage converter, the secondary side switch tube Q1nIs a main switch tube, i.e. by controlling a second switch tube Q1nThereby implementing the function of voltage chopping. Primary side switch tube Q1pActing as a synchronous rectifier, i.e. as the second switching tube Q1nFirst switch tube Q when switching on1pTurning off; second switch tube Q1nFirst switch tube Q when turning off1pAnd (4) opening.
As an improvement of the above scheme, the first capacitors of the flyback converters are connected in series to form a first capacitor branch of the DC/DC conversion module, a second capacitor branch is disposed on the DC side of the AC/DC conversion module, and the first capacitor branch is connected in parallel with the second capacitor branch.
Specifically, the first capacitor of each flyback converter is connected in series to form a first capacitor branch of the DC/DC conversion module, that is, the first capacitor of the first flyback converter is connected to the first capacitor of the second flyback converter, the first capacitor of the second flyback converter is connected to the second capacitor of the third flyback converter, … …, and the first capacitor of the (n-1) th flyback converter is connected to the second capacitor of the nth flyback converter. And a second capacitor branch is arranged on the direct current side of the AC/DC conversion module, and the first capacitor branch is connected with the second capacitor branch in parallel.
As an improvement of the above scheme, the filter is an LCL filter, the LCL filter includes three-phase filtering branches, one end of each of the three-phase filtering branches is correspondingly connected to three phases of the AC power grid, and the other end of each of the three-phase filtering branches is connected to an AC side of the AC/DC conversion module; each phase of filtering branch circuit comprises a first inductor, a second inductor, a third capacitor, a fourth capacitor and a resistor; the fourth capacitor and the resistor are connected in series to form a damping branch circuit, the damping branch circuit and the third capacitor are connected in parallel to form a parallel branch circuit, and the parallel branch circuit is connected between the first inductor and the second inductor.
Specifically, the filter is an LCL filter, the LCL filter includes three-phase filtering branches, one end of each of the three-phase filtering branches is correspondingly connected to three phases of an AC power grid, and the other end of each of the three-phase filtering branches is connected to an AC side of the AC/DC conversion module; each phase of filtering branch circuit comprises a first inductor, a second inductor, a third capacitor, a fourth capacitor and a resistor; the fourth capacitor and the resistor are connected in series to form a damping branch circuit, the damping branch circuit and the third capacitor are connected in parallel to form a parallel branch circuit, and the parallel branch circuit is connected between the first inductor and the second inductor. One end of the first inductor is connected with one end of the alternating current power grid, and the other end of the first inductor is connected with the parallel branch circuit. One end of the second inductor is connected with one alternating current side of the AC/DC conversion module, and the other end of the second inductor is connected with the parallel branch circuit. In fig. 1, the first inductance includes Lga、LgbAnd LgcThe second inductor comprises Lca、LcbAnd LccThe third capacitor comprises CfaThe fourth capacitor comprises CdaThe resistor includes Rda
As an improvement of the scheme, the value range of the resistance value of the resistor is
Figure BDA0002755653300000061
Wherein R isdaIs the resistance value of the resistor, omega is the resonance frequency of the LCL filter, CdaIs the capacitance value of the fourth capacitor, CfaIs the capacitance value of the third capacitor, LgaIs an inductance value of the first inductor, LcaIs the inductance value of the second inductor.
It should be noted that, at present, the parameter design method of the LCL filter is mature, but in Rd-CdIn the design of damping structure parameters, the value method of present damping resistance is comparatively complicated, the utility model provides a comparatively simple damping resistance RdThe method of (3).
Specifically, taking the damping resistor of phase a in fig. 1 as an example, the damping resistor resistance may be designed in an angle that the damping branch circuit effectively charges and discharges the resonant voltage component in the resonant capacitor. The LCL filter shown in FIG. 1 is analyzed in two parts, namely by Lga、Lca、CfaFormed filter part and Rda、CdaForming a charging and discharging branch. Rda-CdaThe branch may form a low pass filter to filter out spurious components. According to the above analysis, the time corresponding to the resonance frequency can be set to Rda-CdaThe time constant of the branch is three times to five times, the best filtering effect is achieved at the moment
Figure BDA0002755653300000062
The resistance value of the resistor is in the range of
Figure BDA0002755653300000063
Wherein R isdaIs the resistance value of the resistor, omega is the resonance frequency of the LCL filter, CdaIs the capacitance value of the fourth capacitor, CfaIs the capacitance value of the third capacitor, LgaIs the inductance value of the first inductor, LcaIs the inductance value of the second inductor.
As an improvement of the above scheme, the AC/DC conversion module is a two-level bridge converter, a T-type three-level converter, or a diode-clamped three-level converter.
Specifically, the AC/DC conversion module is a two-level bridge converter, a T-type three-level converter, or a diode-clamped three-level converter. When the AC/DC conversion module employs a two-level bridge converter, the energy storage converter is as shown in fig. 1, when the AC/DC conversion module employs a T-type three-level converter, the energy storage converter is as shown in fig. 2, and when the AC/DC conversion module employs a diode-clamped three-level converter, the energy storage converter is as shown in fig. 3.
Referring to fig. 4, it is a schematic flow chart of a charging and discharging control method for an energy storage converter according to an embodiment of the present invention, the method includes the following steps:
acquiring charge and discharge state information of a battery module at a load of the energy storage converter;
when the battery module is in a charging state, acquiring the charging voltage of the battery module;
if the charging voltage of the battery module exceeds a preset first voltage threshold, controlling the flyback converter to enter a preset switch working state so as to enable the battery module to enter a balance control state; or keeping the battery module in a charging state;
when the battery module is in a discharging state, acquiring the discharging voltage of the battery module;
if the discharge voltage of the battery module exceeds a preset second voltage threshold, controlling the flyback converter to enter the switch working state so as to enable the battery module to enter a balance control state; or to maintain the battery module in a discharged state.
It should be noted that the charging and discharging control method of each battery module is the same, and only one of the battery modules is taken as an example for description. As for the flyback converter, it is referred to a flyback converter to which the battery module as an example is correspondingly connected, and not a flyback converter to which other battery modules are correspondingly connected.
Specifically, charge and discharge state information of a battery module at the load of the energy storage converter is obtained;
when the battery module is in a charging state, acquiring the charging voltage of the battery module;
if the charging voltage of the battery module exceeds a preset first voltage threshold, the charging voltage of the battery module approaches the set upper limit value of the charging voltage, and at the moment, the flyback converter needs to be controlled to enter a preset switch working state, so that the battery module enters a balance control state; or continue to maintain the battery module in a charged state. When the battery module enters the equalization control state, namely the battery module is not charged and is not discharged outwards, the battery module can be switched out of the charging circuit at the moment, and the battery module to be charged is replaced. When the battery module is kept in a charging state, because the battery module is close to the end of charging, the flyback converter needs to be controlled to be in a constant voltage output state, so that the battery module is not powered down.
When the battery module is in a discharging state, acquiring the discharging voltage of the battery module;
if the discharge voltage of the battery module exceeds a preset second voltage threshold, the discharge voltage of the battery module approaches a lower limit value of the discharge voltage, and at the moment, the flyback converter needs to be controlled to enter a preset switch working state, so that the battery module enters a balance control state; or to continue to maintain the battery module in a discharged state. When the battery module enters the balance control state, the battery module can be switched out of a charging circuit to replace the battery module to be discharged. When the battery module is in a discharge state, the flyback converter needs to be controlled to be in a constant voltage output state because the battery module is close to the end of discharge, so that the direct current side of the flyback converter maintains a stable output voltage. As an improvement of the above scheme, the controlling the flyback converter to enter a preset switch operating state so as to enable the battery module to enter a balanced control state specifically includes:
and controlling a primary side switch tube of the flyback converter to be in a normally open state, and controlling a secondary side switch tube of the flyback converter to be in a normally closed state, so that the battery module enters a balanced control state.
Specifically, a primary side switch tube of the flyback converter is controlled to be in a normally open state, and a secondary side switch tube of the flyback converter is controlled to be in a normally closed state, so that the battery module enters a balanced control state.
It is worth reminding that, keeping the battery module in the charging state, the primary side switch of the flyback converter needs to be continuously controlled to be turned on or off, and the secondary side switch tube of the flyback converter is synchronously controlled to be correspondingly turned off or on, so that the battery module is kept in the charging state. That is, the primary side switching tube Q of the flyback converter is controlled1pIs a main switch tube and is controlled by a control Q1pThe high frequency of the tube turns on/off to thereby achieve the function of voltage chopping. Secondary side switch tube Q1nActing as a synchronous rectifier, i.e. when Q is1pQ when the tube is opened1nThe tube is shut off; q1pQ at tube turn-off1nThe tube is opened.
And keeping the battery module in a discharging state, continuously controlling the secondary side switch of the flyback converter to be switched on or switched off, and synchronously controlling the primary side switch tube of the flyback converter to be correspondingly switched off or switched on so as to keep the battery module in the discharging state. That is, the secondary side switching tube Q of the flyback converter is controlled1nIs a main switch tube and is controlled by a control Q1nThe on/off time of the tube thus achieves the function of voltage chopping. Primary side switch tube Q1pActing as a synchronous rectifier, i.e. when Q is1nQ when the tube is opened1pThe tube is shut off; q1nQ at tube turn-off1pThe tube is opened.
As an improvement of the above scheme, after the battery module enters the equalization control state, the method further includes: and when detecting that the number of the battery modules in the energy storage converter is greater than a preset number threshold value, taking out the battery modules and replacing the battery modules with new battery modules.
Specifically, after the battery module enters the equalization control state, the battery module can be switched out of the energy storage converter, but before the battery module is switched out, the number of the battery modules in the energy storage converter needs to be detected, and since a certain number of batteries are always required on the direct current side of the circuit to support the direct current voltage, a number threshold value can be preset.
When the number of the battery modules in the energy storage converter is detected to be larger than a preset number threshold, if the battery modules need to be replaced, the battery modules can be taken out, and new battery modules can be replaced. Referring to fig. 5, the embodiment of the invention provides an equivalent schematic diagram of a circuit cut out from the battery module 1 of the energy storage converter at the end of charging/discharging. And when the taken out battery module is fully charged, the battery module to be charged is replaced, and after the battery module is replaced, the switching working state of the flyback converter is changed, so that the flyback converter enters the charging state again. And when the taken out battery module is discharged, replacing the battery module to be discharged, and changing the switch working state of the flyback converter after replacing the battery module so as to enable the flyback converter to enter the discharging state again.
In order to deepen the utility model provides a pair of energy storage converter's charge-discharge control method's understanding, the utility model discloses this embodiment still provides an energy storage converter's charge-discharge control method's simple flow schematic diagram, refers to fig. 6.
To sum up, the embodiment of the utility model provides an energy storage converter installs the LCL wave filter additional in the interchange side of AC/DC converter, and greatly increased converter is to the high frequency harmonic suppression effect of network access electric current. The LCL filter is used, the size of the filter is reduced, and meanwhile, the practicability of the LCL filter is improved by the provided simple calculation method of the damping resistance. In addition, the DC/DC converter adopts the bidirectional flyback converter with isolation and a plurality of modules with primary sides connected in series, so that the low-voltage side is isolated from the high-voltage side, and the system safety is improved; the turn ratio of the transformer of the flyback converter can be adjusted according to different rated voltages of the connected module batteries, so that the application range of the energy storage converter to various module batteries is enlarged; the high-voltage side and the low-voltage side of the energy storage converter are isolated, so that the transmission path of electromagnetic noise in a circuit can be cut off, and the current-voltage waveform quality is improved. The utility model provides a charge-discharge control method of an energy storage converter, which avoids the overcharge and overdischarge of a module battery to a certain extent and prolongs the service life of a battery module; meanwhile, the DC/DC converter has an isolation function, so that the battery module can be replaced more safely when the converter is switched out of the battery, and certain flexibility is realized.
The foregoing is a preferred embodiment of the present invention, and it should be noted that, for those skilled in the art, a plurality of improvements and decorations can be made without departing from the principle of the present invention, and these improvements and decorations are also considered as the protection scope of the present invention.

Claims (6)

1. The energy storage converter is characterized by comprising an AC/DC conversion module and a DC/DC conversion module, wherein the AC side of the AC/DC conversion module is connected with an AC power grid through a filter, the DC side of the AC/DC conversion module is connected with the DC/DC conversion module, the DC/DC conversion module comprises a plurality of flyback converters which are connected in series, and a battery module is connected to the load of each flyback converter.
2. The energy storage converter according to claim 1, wherein the flyback converter comprises a first capacitor, a second capacitor, a first switch tube, a second switch tube and a transformer; the input side of the transformer is connected with the first capacitor in parallel, and the first switching tube is connected on the input side of the transformer in series; the output side of the transformer is connected with the second capacitor in parallel, and the second switching tube is connected on the output side of the transformer in series; the second capacitor is connected in parallel with the battery module.
3. The energy storage converter as claimed in claim 2, wherein said first capacitor of each said flyback converter is connected in series to constitute a first capacitor branch of said DC/DC conversion module, and a second capacitor branch is provided on a DC side of said AC/DC conversion module, and said first capacitor branch is connected in parallel with said second capacitor branch.
4. The energy storage converter according to claim 1, wherein the filter is an LCL filter, the LCL filter includes three-phase filter branches, one end of each of the three-phase filter branches is correspondingly connected to three phases of the AC power grid, and the other end of each of the three-phase filter branches is connected to an AC side of the AC/DC conversion module; each phase of filtering branch circuit comprises a first inductor, a second inductor, a third capacitor, a fourth capacitor and a resistor; the fourth capacitor and the resistor are connected in series to form a damping branch circuit, the damping branch circuit and the third capacitor are connected in parallel to form a parallel branch circuit, and the parallel branch circuit is connected between the first inductor and the second inductor.
5. As claimed in claim 4The energy storage converter is characterized in that the value range of the resistance value of the resistor is
Figure FDA0002755653290000021
Wherein R isdaIs the resistance value of the resistor, omega is the resonance frequency of the LCL filter, CdaIs the capacitance value of the fourth capacitor, CfaIs the capacitance value of the third capacitor, LgaIs an inductance value of the first inductor, LcaIs the inductance value of the second inductor.
6. An energy storing converter as claimed in any one of claims 1 to 5, wherein said AC/DC conversion module is a two-level bridge converter, a T-type three-level converter or a diode-clamped three-level converter.
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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN114497766A (en) * 2021-12-31 2022-05-13 南方电网调峰调频发电有限公司 Chain type energy storage system

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN114497766A (en) * 2021-12-31 2022-05-13 南方电网调峰调频发电有限公司 Chain type energy storage system

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