Optimal and automated decentralised converter control design in more electrical aircraft power electronics embedded grids

Abstract In modern power systems, the proliferation of power electronics converters, and distributed generation raises important issues concerning inter‐connected switching units in terms of performance, stability and robustness. Such phenomenon are more prominent in micro‐grids, such as modern loca...

Full description

Bibliographic Details
Main Authors: D. Dewar, A. Formentini, K. Li, P. Zanchetta, P. Wheeler
Format: Article
Language:English
Published: Wiley 2021-02-01
Series:IET Power Electronics
Online Access:https://doi.org/10.1049/pel2.12056
id doaj-348b77111d14433c8f8ad158fb2a57e2
record_format Article
spelling doaj-348b77111d14433c8f8ad158fb2a57e22021-08-02T08:30:13ZengWileyIET Power Electronics1755-45351755-45432021-02-0114369070510.1049/pel2.12056Optimal and automated decentralised converter control design in more electrical aircraft power electronics embedded gridsD. Dewar0A. Formentini1K. Li2P. Zanchetta3P. Wheeler4The University of Nottingham Nottingham NG7 2RD United KingdomThe University of Nottingham Nottingham NG7 2RD United KingdomThe University of Nottingham Nottingham NG7 2RD United KingdomThe University of Nottingham Nottingham NG7 2RD United KingdomThe University of Nottingham Nottingham NG7 2RD United KingdomAbstract In modern power systems, the proliferation of power electronics converters, and distributed generation raises important issues concerning inter‐connected switching units in terms of performance, stability and robustness. Such phenomenon are more prominent in micro‐grids, such as modern local low voltage distribution systems, more electric aircraft power systems etc., where many power converters are connected to the same non‐stiff low power ac grid, and strongly interact with each other. Locally designed converter control systems on the same electrical bus exhibit interactive behaviour. If not taken properly into account, external disturbances to the system at given operating conditions may result in the degradation of performance, failure to meet operating conditions and, in some cases, instability. This paper presents a new approach to synthesise converter controllers in more electric aircraft ac distribution grids (which is, however, applicable to all power electronics embedded systems), keeping in consideration dynamic interactions among subsystems. An optimal control design approach based on H2 optimisation is therefore proposed. Phase‐locked loops have also been considered, and their tuning has been included in the general tuning procedure of the whole system. Simulation, and experimental results show good improvements in terms of dynamic performance, and interaction mitigation.https://doi.org/10.1049/pel2.12056
collection DOAJ
language English
format Article
sources DOAJ
author D. Dewar
A. Formentini
K. Li
P. Zanchetta
P. Wheeler
spellingShingle D. Dewar
A. Formentini
K. Li
P. Zanchetta
P. Wheeler
Optimal and automated decentralised converter control design in more electrical aircraft power electronics embedded grids
IET Power Electronics
author_facet D. Dewar
A. Formentini
K. Li
P. Zanchetta
P. Wheeler
author_sort D. Dewar
title Optimal and automated decentralised converter control design in more electrical aircraft power electronics embedded grids
title_short Optimal and automated decentralised converter control design in more electrical aircraft power electronics embedded grids
title_full Optimal and automated decentralised converter control design in more electrical aircraft power electronics embedded grids
title_fullStr Optimal and automated decentralised converter control design in more electrical aircraft power electronics embedded grids
title_full_unstemmed Optimal and automated decentralised converter control design in more electrical aircraft power electronics embedded grids
title_sort optimal and automated decentralised converter control design in more electrical aircraft power electronics embedded grids
publisher Wiley
series IET Power Electronics
issn 1755-4535
1755-4543
publishDate 2021-02-01
description Abstract In modern power systems, the proliferation of power electronics converters, and distributed generation raises important issues concerning inter‐connected switching units in terms of performance, stability and robustness. Such phenomenon are more prominent in micro‐grids, such as modern local low voltage distribution systems, more electric aircraft power systems etc., where many power converters are connected to the same non‐stiff low power ac grid, and strongly interact with each other. Locally designed converter control systems on the same electrical bus exhibit interactive behaviour. If not taken properly into account, external disturbances to the system at given operating conditions may result in the degradation of performance, failure to meet operating conditions and, in some cases, instability. This paper presents a new approach to synthesise converter controllers in more electric aircraft ac distribution grids (which is, however, applicable to all power electronics embedded systems), keeping in consideration dynamic interactions among subsystems. An optimal control design approach based on H2 optimisation is therefore proposed. Phase‐locked loops have also been considered, and their tuning has been included in the general tuning procedure of the whole system. Simulation, and experimental results show good improvements in terms of dynamic performance, and interaction mitigation.
url https://doi.org/10.1049/pel2.12056
work_keys_str_mv AT ddewar optimalandautomateddecentralisedconvertercontroldesigninmoreelectricalaircraftpowerelectronicsembeddedgrids
AT aformentini optimalandautomateddecentralisedconvertercontroldesigninmoreelectricalaircraftpowerelectronicsembeddedgrids
AT kli optimalandautomateddecentralisedconvertercontroldesigninmoreelectricalaircraftpowerelectronicsembeddedgrids
AT pzanchetta optimalandautomateddecentralisedconvertercontroldesigninmoreelectricalaircraftpowerelectronicsembeddedgrids
AT pwheeler optimalandautomateddecentralisedconvertercontroldesigninmoreelectricalaircraftpowerelectronicsembeddedgrids
_version_ 1721238129836294144