Home > Research > Publications & Outputs > General Power Flow Calculation for Multi-termin...

Associated organisational unit

Links

Text available via DOI:

View graph of relations

General Power Flow Calculation for Multi-terminal HVDC System Based on Sensitivity Analysis and Extended AC Grid Method

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Published

Standard

General Power Flow Calculation for Multi-terminal HVDC System Based on Sensitivity Analysis and Extended AC Grid Method. / Li, Quan; Zhao, Nan.
In: IEEE Transactions on Sustainable Energy, Vol. 13, No. 4, 31.10.2022, p. 1886-1899.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

APA

Vancouver

Li Q, Zhao N. General Power Flow Calculation for Multi-terminal HVDC System Based on Sensitivity Analysis and Extended AC Grid Method. IEEE Transactions on Sustainable Energy. 2022 Oct 31;13(4):1886-1899. Epub 2022 May 13. doi: 10.1109/TSTE.2022.3175154

Author

Li, Quan ; Zhao, Nan. / General Power Flow Calculation for Multi-terminal HVDC System Based on Sensitivity Analysis and Extended AC Grid Method. In: IEEE Transactions on Sustainable Energy. 2022 ; Vol. 13, No. 4. pp. 1886-1899.

Bibtex

@article{a6d35f9e3add4fd1b0291cb073a25a79,
title = "General Power Flow Calculation for Multi-terminal HVDC System Based on Sensitivity Analysis and Extended AC Grid Method",
abstract = "The power flow calculation of the multiterminal high voltage direct current (MTDC) system is essential for planning sustainable energy sources and power flow analysis for the MTDC system. However, the traditional unified methods require a large system of non-linear equations leading to low calculational efficiency. Also, for a large DC grid, there is a concern about the convergence of sequential methods. This paper proposes a general power flow calculation method for voltage source converter (VSC) based MTDC systems. Based on an extended topology of an AC grid, a generalized calculation model of the MTDC power flow is proposed. Then, a novel sensitivity analysis-based power flow (SAPF) method is proposed, in which the state variables of the extended AC grid are calculated via sensitivity analysis. With a smaller system of equations, the proposed SAPF method has less computational burden than the traditional unified methods and causes no convergence problem compared to sequential methods. To further improve the calculational efficiency, the sensitivity-based variable updating is adopted to accelerate the iterative process. By comparing with the existing methods in calculating power flow for different MTDC systems, including large systems with multiple AC/DC grids, the effectiveness and scalability of the proposed methods are verified.",
author = "Quan Li and Nan Zhao",
year = "2022",
month = oct,
day = "31",
doi = "10.1109/TSTE.2022.3175154",
language = "English",
volume = "13",
pages = "1886--1899",
journal = "IEEE Transactions on Sustainable Energy",
issn = "1949-3029",
publisher = "IEEE",
number = "4",

}

RIS

TY - JOUR

T1 - General Power Flow Calculation for Multi-terminal HVDC System Based on Sensitivity Analysis and Extended AC Grid Method

AU - Li, Quan

AU - Zhao, Nan

PY - 2022/10/31

Y1 - 2022/10/31

N2 - The power flow calculation of the multiterminal high voltage direct current (MTDC) system is essential for planning sustainable energy sources and power flow analysis for the MTDC system. However, the traditional unified methods require a large system of non-linear equations leading to low calculational efficiency. Also, for a large DC grid, there is a concern about the convergence of sequential methods. This paper proposes a general power flow calculation method for voltage source converter (VSC) based MTDC systems. Based on an extended topology of an AC grid, a generalized calculation model of the MTDC power flow is proposed. Then, a novel sensitivity analysis-based power flow (SAPF) method is proposed, in which the state variables of the extended AC grid are calculated via sensitivity analysis. With a smaller system of equations, the proposed SAPF method has less computational burden than the traditional unified methods and causes no convergence problem compared to sequential methods. To further improve the calculational efficiency, the sensitivity-based variable updating is adopted to accelerate the iterative process. By comparing with the existing methods in calculating power flow for different MTDC systems, including large systems with multiple AC/DC grids, the effectiveness and scalability of the proposed methods are verified.

AB - The power flow calculation of the multiterminal high voltage direct current (MTDC) system is essential for planning sustainable energy sources and power flow analysis for the MTDC system. However, the traditional unified methods require a large system of non-linear equations leading to low calculational efficiency. Also, for a large DC grid, there is a concern about the convergence of sequential methods. This paper proposes a general power flow calculation method for voltage source converter (VSC) based MTDC systems. Based on an extended topology of an AC grid, a generalized calculation model of the MTDC power flow is proposed. Then, a novel sensitivity analysis-based power flow (SAPF) method is proposed, in which the state variables of the extended AC grid are calculated via sensitivity analysis. With a smaller system of equations, the proposed SAPF method has less computational burden than the traditional unified methods and causes no convergence problem compared to sequential methods. To further improve the calculational efficiency, the sensitivity-based variable updating is adopted to accelerate the iterative process. By comparing with the existing methods in calculating power flow for different MTDC systems, including large systems with multiple AC/DC grids, the effectiveness and scalability of the proposed methods are verified.

U2 - 10.1109/TSTE.2022.3175154

DO - 10.1109/TSTE.2022.3175154

M3 - Journal article

VL - 13

SP - 1886

EP - 1899

JO - IEEE Transactions on Sustainable Energy

JF - IEEE Transactions on Sustainable Energy

SN - 1949-3029

IS - 4

ER -