Parallel Control of Converters with Energy Storage Equipment in a Microgrid
The converter in a microgrid uses the active power and reactive power (PQ) control strategy when connected to the grid. In the case of failure of large power grid, the converters are required to be connected in parallel under the condition of island to provide power to the load. In this paper, a new...
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doaj-7aebeeb65acb4e5a801517a1880d02772020-11-25T01:25:26ZengMDPI AGElectronics2079-92922019-10-01810111010.3390/electronics8101110electronics8101110Parallel Control of Converters with Energy Storage Equipment in a MicrogridGuopeng Zhao0Hongwei Yang1School of Electrical and Electronic Engineering, North China Electric Power University, Beijing 102206, ChinaSchool of Electrical and Electronic Engineering, North China Electric Power University, Beijing 102206, ChinaThe converter in a microgrid uses the active power and reactive power (PQ) control strategy when connected to the grid. In the case of failure of large power grid, the converters are required to be connected in parallel under the condition of island to provide power to the load. In this paper, a new control method for the parallel operation of converters based on V/F control is proposed. The V/F control is used to ensure the output voltages have the same amplitude and frequency, then the converters will only produce circulating current caused by phase angle inconsistency. The phase angle self-synchronization strategy is proposed to make sure the phase angle of output voltage of all converters in the system are consistent. First, a large inductor is added to the end of the converter to ignore the line reactance, through this, the measured voltage at the terminal of the converter roughly equals to the voltage of the load, thus, every converter has the same reference of phase angle. Using the proposed phase angle self-synchronization strategy allows the output voltage of every converter to have the same phase angle, so that there is no circulating current between converters, and the power is evenly distributed among the converters. The simulation verification was carried out on the Power Simulation (PSIM) simulation platform, and the experimental verification was implemented on the hardware experimental platform. Both results demonstrate the effectiveness of the proposed strategy. This method is highly reliable and easy to implement, and the circulating current can be reduced effectively.https://www.mdpi.com/2079-9292/8/10/1110microgridconverter parallel operationv/f controllarge inductancephase angle self-synchronization strategy |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Guopeng Zhao Hongwei Yang |
spellingShingle |
Guopeng Zhao Hongwei Yang Parallel Control of Converters with Energy Storage Equipment in a Microgrid Electronics microgrid converter parallel operation v/f control large inductance phase angle self-synchronization strategy |
author_facet |
Guopeng Zhao Hongwei Yang |
author_sort |
Guopeng Zhao |
title |
Parallel Control of Converters with Energy Storage Equipment in a Microgrid |
title_short |
Parallel Control of Converters with Energy Storage Equipment in a Microgrid |
title_full |
Parallel Control of Converters with Energy Storage Equipment in a Microgrid |
title_fullStr |
Parallel Control of Converters with Energy Storage Equipment in a Microgrid |
title_full_unstemmed |
Parallel Control of Converters with Energy Storage Equipment in a Microgrid |
title_sort |
parallel control of converters with energy storage equipment in a microgrid |
publisher |
MDPI AG |
series |
Electronics |
issn |
2079-9292 |
publishDate |
2019-10-01 |
description |
The converter in a microgrid uses the active power and reactive power (PQ) control strategy when connected to the grid. In the case of failure of large power grid, the converters are required to be connected in parallel under the condition of island to provide power to the load. In this paper, a new control method for the parallel operation of converters based on V/F control is proposed. The V/F control is used to ensure the output voltages have the same amplitude and frequency, then the converters will only produce circulating current caused by phase angle inconsistency. The phase angle self-synchronization strategy is proposed to make sure the phase angle of output voltage of all converters in the system are consistent. First, a large inductor is added to the end of the converter to ignore the line reactance, through this, the measured voltage at the terminal of the converter roughly equals to the voltage of the load, thus, every converter has the same reference of phase angle. Using the proposed phase angle self-synchronization strategy allows the output voltage of every converter to have the same phase angle, so that there is no circulating current between converters, and the power is evenly distributed among the converters. The simulation verification was carried out on the Power Simulation (PSIM) simulation platform, and the experimental verification was implemented on the hardware experimental platform. Both results demonstrate the effectiveness of the proposed strategy. This method is highly reliable and easy to implement, and the circulating current can be reduced effectively. |
topic |
microgrid converter parallel operation v/f control large inductance phase angle self-synchronization strategy |
url |
https://www.mdpi.com/2079-9292/8/10/1110 |
work_keys_str_mv |
AT guopengzhao parallelcontrolofconverterswithenergystorageequipmentinamicrogrid AT hongweiyang parallelcontrolofconverterswithenergystorageequipmentinamicrogrid |
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1725113940271169536 |