CN117134444B - System protection method and terminal based on energy storage converter parallel operation architecture - Google Patents

System protection method and terminal based on energy storage converter parallel operation architecture Download PDF

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CN117134444B
CN117134444B CN202310916804.5A CN202310916804A CN117134444B CN 117134444 B CN117134444 B CN 117134444B CN 202310916804 A CN202310916804 A CN 202310916804A CN 117134444 B CN117134444 B CN 117134444B
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current value
energy storage
storage converter
management system
parallel operation
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CN117134444A (en
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练净雯
张新池
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Fujian Times Nebula Technology Co Ltd
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Fujian Times Nebula Technology Co Ltd
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Abstract

The invention provides a system protection method and a terminal based on an energy storage converter parallel operation architecture, wherein when the energy storage converter parallel operation architecture is built, the output current value of the energy storage converters is regulated according to a preset current value, so that the problem of overcurrent output of an energy storage system caused by the fact that the output current value of the energy storage converters is larger than the preset current value is avoided, and one-time output protection is realized; when the parallel frame structure of the energy storage converters operates, the energy management system receives the output current value uploaded by the energy storage converters, judges whether the energy storage converters finish the adjustment of the output current value according to the current output current value, and if the adjustment is not finished, the energy management system adjusts the output current value of the energy storage converters again to realize secondary output protection. On the basis of not changing the original communication architecture, the multiple output protection of the system is realized in a system of a plurality of PCSs to a single BMS, and the effect of alternating-current side current capacity expansion is achieved.

Description

System protection method and terminal based on energy storage converter parallel operation architecture
Technical Field
The invention relates to the technical field of energy storage systems, in particular to a system protection method and a terminal based on an energy storage converter parallel operation architecture.
Background
The existing integrated energy storage cabinet consists of a battery unit, an energy storage converter (PCS), an EMS (ENERGY MANAGEMENT SYSTEM ) control unit, a power distribution unit, a fire protection unit, a photovoltaic controller and the like. For the type selection of PCS (Power Conversion System, energy storage converter), it is preferable to charge and discharge the electric cabinet according to the current multiplying power of 0.5C, so that the electric cabinet is in the optimal output efficiency. For example: the PCS is configured for 100kw/200 kwh. However, at present, one energy storage converter cannot meet the actual current demand of an energy storage cabinet.
Disclosure of Invention
The technical problems to be solved by the invention are as follows: the system protection method and the terminal based on the energy storage converter parallel operation architecture are provided, and on the basis of not changing the original communication architecture, the overcurrent protection of the system is realized in a system of a plurality of PCSs to a single BMS.
In order to solve the technical problems, the invention adopts the following technical scheme:
A system protection method based on an energy storage converter parallel operation architecture comprises the following steps:
the energy storage converter adjusts an output current value according to a preset current value;
The energy management system receives the output current value and the parallel operation number of the energy storage converter, judges whether the energy storage converter finishes the adjustment response according to the output current value, and adjusts the output current value again according to the parallel operation number if not.
In order to solve the technical problems, the invention adopts another technical scheme that:
A system protection terminal based on an energy storage converter parallel operation architecture comprises an energy storage converter, an energy management system and a battery management system; the energy storage converter comprises a first memory, a first processor and a first computer program stored on the first memory and running on the first processor; the energy management system includes a second memory, a second processor, and a second computer program stored on the second memory and running on the second processor; the battery management system includes a third memory, a third processor, and a third computer program stored on the third memory and running on the third processor; the first processor executes the first computer program to realize the step of realizing the energy storage converter in the system protection method based on the energy storage converter parallel operation architecture;
The second processor executes the second computer program to realize the step of realizing the energy management system in the system protection method based on the energy storage converter parallel operation architecture;
And when the third processor executes the third computer program, the step of realizing the battery management system in the system protection method based on the parallel operation architecture of the energy storage converter is realized.
The invention has the beneficial effects that: when a parallel operation architecture of a plurality of energy storage converters is built, the output current values of the energy storage converters are adjusted according to preset current values, so that the problem of overcurrent output of an energy storage system caused by the fact that the output current values of the plurality of energy storage converters are larger than the preset current values is avoided, and primary output protection is realized; when the parallel frame structure of the energy storage converters operates, the energy management system receives the output current value uploaded by the energy storage converters, judges whether the energy storage converters finish the adjustment of the output current value according to the current output current value, and if the adjustment is not finished, the energy management system adjusts the output current value of the energy storage converters again to realize secondary output protection. On the basis of not changing the original communication architecture, the multiple output protection of the system is realized in a system of a plurality of PCSs to a single BMS, and the effect of alternating-current side current capacity expansion is achieved.
Drawings
Fig. 1 is a flow chart of steps of a system protection method based on an energy storage converter parallel operation architecture disclosed by the invention;
Fig. 2 is a flowchart of a method for protecting a system based on an energy storage converter parallel operation architecture according to an embodiment of the present invention;
fig. 3 is a schematic diagram of a system structure based on an energy storage converter parallel operation architecture according to an embodiment of the present invention;
fig. 4 is a schematic diagram of a system communication architecture based on an energy storage converter parallel operation architecture according to an embodiment of the present invention;
fig. 5 is a flowchart of another system protection method based on an energy storage converter parallel operation architecture according to an embodiment of the present invention;
fig. 6 is a schematic structural diagram of a system protection terminal based on an energy storage converter parallel operation architecture disclosed by the invention;
Description of the reference numerals:
1. An energy storage converter; 2. a battery management system; 3. an energy management system; 101. a first memory; 102. a first processor; 201. a second memory; 202. a second processor; 301. a third memory; 302. a third processor; 40. a power grid; 41. a first transformer; 42. an integrated energy storage cabinet; 43. an outdoor DC cabinet; 44. a photovoltaic module; 45. charging piles; 421. a second transformer; 422. a first energy storage converter; 423. a second energy storage converter; 424. an in-cabinet DC component; 425. an electric cabinet.
Detailed Description
In order to describe the technical contents, the achieved objects and effects of the present invention in detail, the following description will be made with reference to the embodiments in conjunction with the accompanying drawings.
Referring to fig. 1, an embodiment of the present invention provides a system protection method based on an energy storage converter parallel operation architecture, including:
the energy storage converter adjusts an output current value according to a preset current value;
The energy management system receives the output current value and the parallel operation number of the energy storage converter, judges whether the energy storage converter finishes the adjustment response according to the output current value, and adjusts the output current value again according to the parallel operation number if not.
From the above description, the beneficial effects of the invention are as follows: when a parallel operation architecture of a plurality of energy storage converters is built, the output current values of the energy storage converters are adjusted according to preset current values, so that the problem of overcurrent output of an energy storage system caused by the fact that the output current values of the plurality of energy storage converters are larger than the preset current values is avoided, and primary output protection is realized; when the parallel frame structure of the energy storage converters operates, the energy management system receives the output current value uploaded by the energy storage converters, judges whether the energy storage converters finish the adjustment of the output current value according to the current output current value, and if the adjustment is not finished, the energy management system adjusts the output current value of the energy storage converters again to realize secondary output protection. On the basis of not changing the original communication architecture, the multiple output protection of the system is realized in a system of a plurality of PCSs to a single BMS, and the effect of alternating-current side current capacity expansion is achieved.
Further, before the energy storage converter adjusts the output current value according to the preset current value, the energy storage converter includes:
The energy storage converter obtains the maximum current value of the battery management system and the parallel operation number, and calculates the total value of the output current according to the parallel operation number and the output current value;
and the energy storage converter judges whether the total value of the output current is larger than the maximum current value, and if so, the energy storage converter adjusts the output current value according to the preset current value.
As can be seen from the above description, when the energy storage converters determine the total output current value according to the parallel operation number and the output current value, the total output current value is compared with the maximum current value of the battery management system, and if the total output current value is greater than the maximum current value, the risk of overcurrent output of the energy storage system is indicated, so that the total output current value of the energy storage converters needs to be adjusted to be smaller than or equal to the maximum current value, so as to realize a heavy overcurrent protection.
Further, the energy storage converter adjusts the output current value according to a preset current value, including:
the energy storage converter calculates an average current value according to the maximum current value and the parallel operation number;
and the energy storage converter regulates the output current value to the average current value.
As can be seen from the above description, since the maximum current values of the battery management system received by the plurality of energy storage converters are the same during the operation, when the output current values of the energy storage converters are adjusted, the maximum current values are evenly distributed to each energy storage converter for output, so that the output current values of each energy storage converter are unified, errors caused by current differences during the adjustment are avoided, the adjustment flow of the energy storage converters is simplified, and the response efficiency is improved.
Further, before the energy storage converter adjusts the output current value according to the preset current value, the energy storage converter includes:
the battery management system obtains a maximum current value and the parallel operation number, and calculates an average current value according to the maximum current value and the parallel operation number;
and the battery management system marks the average current value as a preset current value and sends the preset current value to the energy storage converter.
As can be seen from the above description, in an alternative manner, a heavy over-current protection may be achieved by adjusting the preset current value uploaded to the energy storage converter by the battery management system. Therefore, the selectivity of the parallel operation scheme of the energy storage converter is expanded, and the flexibility of the overcurrent protection scheme is improved.
Further, the energy management system receives the output current value and the parallel operation number of the energy storage converter, and judges whether the energy storage converter finishes the adjustment response according to the output current value includes:
the energy management system receives the output current value and the parallel operation number of the energy storage converter, simultaneously receives the maximum current value uploaded by the battery management system, and calculates an average current value according to the maximum current value and the parallel operation number;
The energy management system judges whether the output current value is smaller than or equal to an average current value, if yes, the energy storage converter is determined to finish adjusting response; otherwise, determining that the energy storage converter does not complete the adjustment response.
As can be seen from the above description, the energy management system can directly control and manage the output current value of the energy storage converter, so that the output current value of the energy storage converter is detected in real time by the energy management system, and when the output current value of the energy storage converter does not meet the average current value, it indicates that the energy storage converter does not respond normally during primary overcurrent protection, i.e. the output current value is not successfully regulated, so that the secondary output protection flow is started, thereby improving the protection effect.
Further, the energy management system readjusting the output current value according to the number of parallel operations includes:
The energy management system receives the maximum current value uploaded by the battery management system, and calculates an average current value according to the maximum current value and the parallel operation number;
the energy management system adjusts the output current value to the average current value.
As can be seen from the above description, when the energy storage converter fails to respond normally during the primary overcurrent protection, the energy management system directly controls the output current value of the energy storage converter to enable the output current value to meet the maximum output range of the energy storage system, so as to realize the secondary output protection of the energy storage system by the energy management system.
Further, the energy management system readjusting the output current value according to the number of parallel operations includes:
The energy management system acquires state information of the energy storage converter, updates the parallel operation number of the energy storage converter according to the state information, and transmits the updated parallel operation number to the energy storage converter;
And the energy storage converter calculates an output current total value according to the parallel operation number and the output current value, and executes the step of judging whether the output current total value is larger than the maximum current value.
As can be seen from the above description, in an alternative manner, the energy storage converter may be controlled by the energy management system to adjust again according to the updated parallel operation number, so as to implement secondary output protection.
Further, the energy management system obtains state information of the energy storage converter, and updates the parallel operation number of the energy storage converter according to the state information specifically as follows:
And the energy management system reads the state information of the energy storage converter, counts the number of non-stop states in the energy storage converter according to the state information, and obtains the updated parallel operation number.
As can be seen from the above description, when the output current value of the energy storage converter is too large to cause the energy storage system to output in an overcurrent state, the energy storage converter may take a shutdown operation to reduce the output current; under the condition, the energy management system can acquire the number of the energy storage converters in the non-stop state, so that the output current value of the energy storage converters is redistributed, and the output value of the energy storage converters is improved to the greatest extent under the condition that the overcurrent output of the energy storage system is avoided.
Further, the maximum current value is a maximum allowable charge/discharge current of the battery management system.
From the above description, it is known that the maximum current value is the maximum allowable charge/discharge current to ensure the energy storage system can safely operate and realize the maximum output of the energy storage converter.
Referring to fig. 6, another embodiment of the present invention provides a system protection terminal based on an energy storage converter parallel operation architecture, including an energy storage converter, an energy management system and a battery management system; the energy storage converter comprises a first memory, a first processor and a first computer program stored on the first memory and running on the first processor; the energy management system includes a second memory, a second processor, and a second computer program stored on the second memory and running on the second processor; the battery management system includes a third memory, a third processor, and a third computer program stored on the third memory and running on the third processor; the first processor executes the first computer program to realize the step of realizing the energy storage converter in the system protection method based on the energy storage converter parallel operation architecture;
The second processor executes the second computer program to realize the step of realizing the energy management system in the system protection method based on the energy storage converter parallel operation architecture;
And when the third processor executes the third computer program, the step of realizing the battery management system in the system protection method based on the parallel operation architecture of the energy storage converter is realized.
From the above description, the beneficial effects of the invention are as follows: when a parallel operation architecture of a plurality of energy storage converters is built, the output current values of the energy storage converters are adjusted according to preset current values, so that the problem of overcurrent output of an energy storage system caused by the fact that the output current values of the plurality of energy storage converters are larger than the preset current values is avoided, and primary output protection is realized; when the parallel frame structure of the energy storage converters operates, the energy management system receives the output current value uploaded by the energy storage converters, judges whether the energy storage converters finish the adjustment of the output current value according to the current output current value, and if the adjustment is not finished, the energy management system adjusts the output current value of the energy storage converters again to realize secondary output protection. On the basis of not changing the original communication architecture, the multiple output protection of the system is realized in a system of a plurality of PCSs to a single BMS, and the effect of alternating-current side current capacity expansion is achieved.
The embodiment of the invention provides a system protection method and a terminal based on an energy storage converter parallel architecture, which can be used in an energy storage system with a plurality of PCS parallel architectures, and realize the overcurrent protection of the energy storage system on the basis of not changing the original communication architecture, and the following description is given by a specific embodiment:
Referring to fig. 1 to 4, a first embodiment of the present invention is as follows:
A system protection method based on an energy storage converter parallel operation architecture comprises the following steps:
S1, the energy storage converter acquires the maximum current value of the battery management system and the parallel operation number, and calculates the total value of the output current according to the parallel operation number and the output current value.
Specifically, the maximum current value is a maximum allowable charge/discharge current of the battery management system.
In some embodiments, the maximum current value is a maximum current value, that is, the maximum current value of the battery management system is a maximum allowable charge/discharge current value I Allow for of the battery management system, the output current value is an output current value, the total output current value is an output current total value, and the number of parallel machines is n, which indicates that n energy storage converters (PCS 1, PCS2 … …, PCSn) are arranged in the current communication architecture. The initial output current value of the PCS1 is I pcs1, the initial output current value of the PCS2 is I pcs2, and so on. At this time, the total current value I Total (S) =Ipcs1+Ipcs2+……+Ipcsn is output.
S2, judging whether the total value of the output current is larger than the maximum current value or not by the energy storage converter, and if yes, executing S3; otherwise, the energy storage converter does not need to adjust the output current value.
In some embodiments, each energy storage converter determines whether the total output current value is greater than the maximum current value. I.e., PCS1-PCSn, determine whether the total output current I Total (S) is greater than the maximum current I Allow for .
S3, the energy storage converter adjusts an output current value according to a preset current value.
Specifically, the step S3 includes:
s31, calculating an average current value by the energy storage converter according to the maximum current value and the parallel operation number;
S32, the energy storage converter adjusts the output current value to the average current value.
In some embodiments, the average current value I Average of = maximum current value I Allow for /parallel machine number n = 1/n I Allow for . At this time, the output current values of the energy storage converters PCS1-PCSn are I Allow for of 1/n, so that a heavy overcurrent protection is realized, and the risk of overcurrent output of the energy storage system is avoided in this way, so that I pcs1+Ipcs2+……+Ipcsn is always smaller than or equal to I Allow for in the whole charging and discharging process.
It should be noted that, the steps S1-S3 are executed when a plurality of PCS parallel architectures are built, and PCS software is correspondingly updated after the steps S1-S3 are executed; the step S4 is performed when the plurality of PCS parallel architectures are running.
In this embodiment, the preset current value obtained by the energy storage converter in step S3 is the maximum current value of the Battery Management System (BMS), the maximum current value of the Battery Management System (BMS) is taken as the preset current value, and the average current value is calculated by the energy storage converter (PCS), and then the output current value is adjusted to the average current value.
In this embodiment, an energy storage converter (PCS) is added to the existing integrated energy storage cabinet structure to be connected in parallel with the original energy storage converter (PCS), so that the input/output current of the integrated energy storage cabinet can be doubled. A schematic diagram of a system structure based on an energy storage converter parallel operation architecture is shown in FIG. 3.
That is, the system comprises a first transformer 41, an integrated energy storage cabinet 42 and an outdoor DC cabinet 43, wherein the integrated energy storage cabinet 42 comprises a second transformer 421, a first energy storage converter 422, a second energy storage converter 423, an in-cabinet DC component 424 and an electric cabinet 425; one end of the first transformer 41 is used for connecting the power grid 40, the other end of the first transformer 41 is connected with one end of the second transformer 421, the other end of the second transformer 421 is respectively connected with one end of the first energy storage converter 422 and one end of the second energy storage converter 423, the other end of the first energy storage converter 421 and the other end of the second energy storage converter 423 are respectively connected with one end of the in-cabinet DC component 424, one end of the electric cabinet 425 and one end of the outdoor DC cabinet 43, the other end of the in-cabinet DC component 424 is used for connecting the photovoltaic component 44, and the other end of the outdoor DC cabinet 43 is used for connecting a plurality of charging piles 45.
A system communication architecture diagram based on an energy storage converter parallel operation architecture is shown in FIG. 4. Namely, the communication architecture includes an EMS (energy management system), a PCS1 (first energy storage converter), a PCS2 (second energy storage converter), a BMS (Battery MANAGEMENT SYSTEM ), and a water chiller. Specifically, the energy storage converters (PCS 1 and PCS 2) and the water cooler are directly connected and communicated with the BMS through ACAN in the CAN1 bus, and the PCS protects the energy storage system according to the information of the BMS; (wherein, BMS and EMS CAN be directly connected and communicated through MCAN in CAN2 bus) and energy storage converters (PCS 1 and PCS 2) and EMS are connected and communicated through serial ports or network ports, RS485-1 and RS485-2 serial ports are shown in FIG. 4, the EMS carries out current scheduling on the PCS, and the current scheduling has less strict requirements on the current output real-time response of the PCS. The BMS includes MBMU (Master Battery Management Unit ) and SBMU (Slave Battery Management Unit, cluster-level battery management unit).
Under the condition that the PCS receives fault information of the BMS or maximum allowable charge and discharge current I Allow for , the PCS can stop or perform current following protection action according to I Allow for at the first time, so that PCS output current is always kept within the maximum bearing capacity of the electric cabinet, and overcurrent risk is avoided. If the fault information of the BMS or the maximum allowable charge and discharge I Allow for is received by the EMS for protection, the real-time response time of the EMS communication is longer, so that the output current of the PCS cannot be regulated in a short time, the risk of overcurrent exists, and potential safety hazards are generated for the use of the energy storage system.
When the parallel operation number of the energy storage converters in the communication architecture is 2, the 2 PCS respectively receive the I Allow for of the BMS under the communication architecture, and the I Allow for received by the 2 PCS are the same, so that the 2 PCS output current according to the I Allow for , at this point, the output current of the energy storage system is 2*I Allow for , and there is a possibility of overcurrent output. for example, PCS1 and PCS2 have maximum output current values of I PCS1=IPCS2 =140a; When I Allow for =280A,I Allow for >IPCS1 and I Allow for >IPCS2, then two PCS are output with maximum capability 140A, and the total output current value of the system, I PCS1+IPCS2 =280A, does not exceed I Allow for . When I Allow for =100deg.A, I Allow for <IPCS1 and I Allow for <IPCS2, then PCS1 and PCS2 perform current following, I PCS1=IPCS2=I Allow for =100deg.A, At this time, the total output current of the system is I PCS1+IPCS2=200A>I Allow for =100deg.A, which causes the risk of overcurrent output of the BMS. In the present embodiment, the energy storage converters PCS1 and PCS2 obtain the maximum current value I Allow for and the parallel operation number 2 of the battery management system in advance, and calculate the current output current total value I Total (S) of the energy storage system, if the current output current total value I Total (S) is greater than the maximum current value I Allow for , The output current values I pcs1 and I pcs2 of the PCS1 and the PCS2 are both adjusted to the average current value 1/2I Allow for , so that the total output current value is reduced, and overcurrent output is avoided.
S4, the energy management system receives the output current value and the parallel operation number of the energy storage converter, judges whether the energy storage converter finishes the adjustment response according to the output current value, and adjusts the output current value again according to the parallel operation number if not.
The output current value of the energy storage converter (PCS) may be controlled by an Energy Management System (EMS). If the Energy Management System (EMS) still detects that the output current value I pcs of the energy storage converter (PCS) is greater than I Allow for of 1/n after the output current value adjustment is performed on the energy storage converter (PCS) in steps S1-S3, it indicates that the energy storage converter (PCS) does not respond to step S3, that is, the output current value adjustment is not performed. At this time, the double overcurrent protection may be performed by an Energy Management System (EMS).
Specifically, in S4: the energy management system receives the output current value and the parallel operation number of the energy storage converter, and judges whether the energy storage converter finishes the adjustment response according to the output current value comprises the following steps:
S41, the energy management system receives the output current value and the parallel operation number of the energy storage converter, simultaneously receives the maximum current value uploaded by the battery management system, and calculates an average current value according to the maximum current value and the parallel operation number.
S42, the energy management system judges whether the output current value is smaller than or equal to an average current value, and if yes, the energy storage converter is determined to finish adjusting response; otherwise, determining that the energy storage converter does not complete the adjustment response.
In an alternative embodiment, in S4: readjusting the output current value according to the number of parallel operations includes:
And S43, the energy management system receives the maximum current value uploaded by the battery management system, and calculates an average current value according to the maximum current value and the parallel operation number.
And S44, the energy management system adjusts the output current value to the average current value.
That is, the average current value is directly transmitted to the energy storage converter (PCS) through the Energy Management System (EMS), so that the output current value of the energy storage converter (PCS) is again adjusted.
In another alternative embodiment, in S4: readjusting the output current value according to the number of parallel operations includes:
S43, the energy management system acquires state information of the energy storage converter, updates the parallel operation number of the energy storage converter according to the state information, and transmits the updated parallel operation number to the energy storage converter;
s44, the energy storage converter calculates the total value of the output current according to the parallel operation number and the output current value, and the step S2 is executed.
That is, when the plurality of PCS parallel architectures operate, the PCS may have a situation that shutdown is not allowed, and the Energy Management System (EMS) enables the energy storage converters (PCS) to execute steps S1-S3 again according to the current online parallel operation number by re-issuing the parallel operation number of the energy storage converters (PCS).
Referring to fig. 5, a second embodiment of the present invention is as follows:
A system protection method based on energy storage converter parallel operation architecture is characterized in that the first embodiment is different from the second embodiment in that: the preset current value is an average current value calculated by the battery management system according to the maximum current value and the parallel operation number.
In this embodiment, the method includes:
S1, the battery management system obtains the maximum current value and the parallel operation number, and calculates an average current value according to the maximum current value and the parallel operation number.
S2, the battery management system marks the average current value as a preset current value and sends the preset current value to the energy storage converter.
S3, the energy storage converter adjusts an output current value according to a preset current value.
It should be noted that, the steps S1-S3 are executed when a plurality of PCS parallel architectures are built, and BMS software is correspondingly updated after the steps S1-S3 are executed; the step S4 is performed when the plurality of PCS parallel architectures are running.
In this embodiment, the preset current value obtained by the energy storage converter in step S3 is an average current value calculated by the battery management system according to the maximum current value and the parallel operation number, and the average current value is sent to the energy storage converter (PCS) as the preset current value after the average current value is calculated by the Battery Management System (BMS).
It should be noted that, in the process of actually building the communication architecture, the output current value of the energy storage converter (PCS) may be adjusted by flexibly selecting the method of the first embodiment or the method of the present embodiment according to the difficulty and complexity of modification of the PCS software or the BMS software.
S4, the energy management system receives the output current value and the parallel operation number of the energy storage converter, judges whether the energy storage converter finishes the adjustment response according to the output current value, and adjusts the output current value again according to the parallel operation number if not.
Referring to fig. 6, a third embodiment of the present invention is as follows:
The system protection terminal based on the energy storage converter parallel operation architecture comprises an energy storage converter 1, an energy management system 2 and a battery management system 3; the energy storage converter 1 comprises a first memory 101, a first processor 102 and a first computer program stored on the first memory 101 and running on the first processor 102; the energy management system 2 includes a second memory 201, a second processor 202, and a second computer program stored on the second memory 201 and running on the second processor 202; the battery management system 3 includes a third memory 301, a third processor 302, and a third computer program stored on the third memory 301 and running on the third processor 302; the step of implementing the energy storage converter in the system protection method based on the energy storage converter parallel operation architecture according to the first embodiment or the second embodiment is implemented when the first processor 102 executes the first computer program;
The step of implementing the energy management system in the energy storage converter parallel operation architecture-based system protection method according to the first embodiment or the second embodiment is implemented when the second processor 202 executes the second computer program;
the third processor 302 implements the steps implemented by the battery management system in the system protection method based on the parallel operation architecture of the energy storage converter according to the first embodiment or the second embodiment when executing the third computer program.
In summary, according to the system protection method and the terminal based on the parallel operation architecture of the energy storage converters, when the parallel operation architecture of the energy storage converters is built, the output current value of the energy storage converters is adjusted according to the preset current value, so that the problem that the output current value of the energy storage converters is larger than the preset current value to cause overcurrent output of the energy storage system is avoided, and one-time output protection is realized; when the parallel frame structure of the energy storage converters operates, the energy management system receives the output current value uploaded by the energy storage converters, judges whether the energy storage converters finish the adjustment of the output current value according to the current output current value, and if the adjustment is not finished, the energy management system adjusts the output current value of the energy storage converters again to realize secondary output protection. Based on the original communication architecture is not changed, the PCS parallel operation scheme is flexibly selected according to different requirements of the front end, multiple output protection of the system is realized in a system of a plurality of PCSs to a single BMS, and the effect of alternating-current side current capacity expansion is achieved.
The foregoing description is only illustrative of the present invention and is not intended to limit the scope of the invention, and all equivalent changes made by the specification and drawings of the present invention, or direct or indirect application in the relevant art, are included in the scope of the present invention.

Claims (6)

1. The system protection method based on the parallel operation architecture of the energy storage converter is characterized by comprising the following steps of:
The energy storage converter obtains the maximum current value and the parallel operation number of the battery management system, and calculates the total value of the output current according to the parallel operation number and the output current value before adjustment;
The energy storage converter judges whether the total value of the output current is larger than the maximum current value, if so, the output current value is regulated according to a preset current value;
the energy storage converter adjusts an output current value according to a preset current value;
If the preset current value obtained by the energy storage converter is the maximum current value of the battery management system, the energy storage converter adjusts the output current value according to the preset current value, wherein the adjusting comprises the following steps:
the energy storage converter calculates an average current value according to the maximum current value and the parallel operation number;
the energy storage converter regulates the output current value to the average current value;
The energy management system receives the output current value and the parallel operation number of the energy storage converter after adjustment, judges whether the energy storage converter finishes adjustment response according to the adjusted output current value, and adjusts the output current value again according to the parallel operation number if not;
the energy management system receives the output current value and the parallel operation number of the energy storage converter after adjustment, and judges whether the energy storage converter finishes adjustment response according to the adjusted output current value, and the method comprises the following steps:
The energy management system receives the output current value and the parallel operation number which are regulated by the energy storage converter, and simultaneously receives the maximum current value uploaded by the battery management system, and calculates an average current value according to the maximum current value and the parallel operation number;
The energy management system judges whether the adjusted output current value is smaller than or equal to an average current value, if yes, the energy storage converter is determined to finish adjusting response; otherwise, determining that the energy storage converter does not complete the adjustment response;
the energy management system readjusting the output current value according to the number of parallel operations includes:
The energy management system receives the maximum current value uploaded by the battery management system, and calculates an average current value according to the maximum current value and the parallel operation number;
the energy management system adjusts the adjusted output current value to the average current value.
2. The system protection method based on an energy storage converter parallel operation architecture according to claim 1, wherein if the preset current value obtained by the energy storage converter is an average current value of the battery management system, before the energy storage converter adjusts the output current value according to the preset current value, the method comprises:
the battery management system obtains a maximum current value and the parallel operation number, and calculates an average current value according to the maximum current value and the parallel operation number;
and the battery management system marks the average current value as a preset current value and sends the preset current value to the energy storage converter.
3. The system protection method based on energy storage converter parallel operation architecture according to claim 1, wherein the energy management system readjusts the output current value according to the parallel operation number comprises:
If the energy storage converter adopts a shutdown operation, the energy management system acquires state information of the energy storage converter, updates the parallel operation number of the energy storage converter according to the state information, and transmits the updated parallel operation number to the energy storage converter;
And the energy storage converter calculates an output current total value according to the updated parallel operation number and the adjusted output current value, and executes the step of judging whether the output current total value is larger than the maximum current value.
4. The system protection method based on the parallel operation architecture of the energy storage converter according to claim 3, wherein the energy management system obtains state information of the energy storage converter, and updates the parallel operation quantity of the energy storage converter according to the state information specifically as follows:
And the energy management system reads the state information of the energy storage converter, counts the number of non-stop states in the energy storage converter according to the state information, and obtains the updated parallel operation number.
5. The method of claim 4, wherein the maximum current value is a maximum allowable charge current or a maximum allowable discharge current of the battery management system.
6. A system protection terminal based on an energy storage converter parallel operation architecture comprises an energy storage converter, an energy management system and a battery management system; the energy storage converter comprises a first memory, a first processor and a first computer program stored on the first memory and running on the first processor; the energy management system includes a second memory, a second processor, and a second computer program stored on the second memory and running on the second processor; the battery management system includes a third memory, a third processor, and a third computer program stored on the third memory and running on the third processor; the method is characterized in that the first processor executes the first computer program to realize the step of realizing the energy storage converter in the system protection method based on the parallel operation architecture of the energy storage converter according to any one of claims 1-5;
a step of implementing an energy management system in a system protection method based on an energy storage converter parallel operation architecture according to any one of claims 1 to 5 when the second processor executes the second computer program;
The third processor performs the step of implementing the battery management system in the energy storage converter parallel operation architecture-based system protection method according to any one of claims 1 to 5 when executing the third computer program.
CN202310916804.5A 2023-07-25 System protection method and terminal based on energy storage converter parallel operation architecture Active CN117134444B (en)

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Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN113852205A (en) * 2020-06-28 2021-12-28 江苏多益能源科技有限公司 High-performance plug-and-play micro-grid energy storage system
CN114744720A (en) * 2022-04-27 2022-07-12 杭州电子科技大学 Power balance control method for multi-battery energy storage system

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN113852205A (en) * 2020-06-28 2021-12-28 江苏多益能源科技有限公司 High-performance plug-and-play micro-grid energy storage system
CN114744720A (en) * 2022-04-27 2022-07-12 杭州电子科技大学 Power balance control method for multi-battery energy storage system

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