Insulation Coordination of Solid State Devices Connected Directly to the Electric Power Distribution System

abstract: With the penetration of distributed renewable energy and the development of semiconductor technology, power electronic devices could be utilized to interface re- newable energy generation and the distribution power grid. However, when directly connected to the power grid, the semiconduc...

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Other Authors: Rong, Xuening (Author)
Format: Dissertation
Language:English
Published: 2017
Subjects:
Online Access:http://hdl.handle.net/2286/R.I.45531
id ndltd-asu.edu-item-45531
record_format oai_dc
spelling ndltd-asu.edu-item-455312018-06-22T03:08:48Z Insulation Coordination of Solid State Devices Connected Directly to the Electric Power Distribution System abstract: With the penetration of distributed renewable energy and the development of semiconductor technology, power electronic devices could be utilized to interface re- newable energy generation and the distribution power grid. However, when directly connected to the power grid, the semiconductors inside the power electronic devices could be vulnerable to the power system transient, especially to lightning strikes. The work of this research focuses on the insulation coordination of power elec- tronic devices connected directly to the power distribution system. The Solid State Transformer (SST) in Future Renewable Electric Energy Delivery and Management (FREEDM) system could be a good example for grid connected power electronic devices. Simulations were conducted in Power Systems Computer Aided Design (PSCAD) software. A simulation done to the FREEDM SST showed primary re- sults which were then compare to simulation done to the grid-connected operating Voltage Source Converter (VSC) to get more objective results. Based on the simulation results, voltage surges caused by lightning strikes could result in damage on the grid-connected electronic devices. Placing Metal Oxide Surge Arresers (MOSA, also known as Metal Oxide Surge Varistor, MOV) at the front lter could provide eective protection for those devices from power transient. Part of this research work was published as a conference paper and was presented at CIGRE US National Conference: Grid of the Future Symposium [1] and North American Power Symposium [2]. Dissertation/Thesis Rong, Xuening (Author) Karady, George G (Advisor) Heydt, Gerald T (Committee member) Ayyanar, Raja (Committee member) Arizona State University (Publisher) Electrical engineering FREEDM Insulation Coordination Metal Oxide Surge Arrester Power Electronic Devices Solid State Transformer Voltage Source Converter eng 108 pages Masters Thesis Engineering 2017 Masters Thesis http://hdl.handle.net/2286/R.I.45531 http://rightsstatements.org/vocab/InC/1.0/ All Rights Reserved 2017
collection NDLTD
language English
format Dissertation
sources NDLTD
topic Electrical engineering
FREEDM
Insulation Coordination
Metal Oxide Surge Arrester
Power Electronic Devices
Solid State Transformer
Voltage Source Converter
spellingShingle Electrical engineering
FREEDM
Insulation Coordination
Metal Oxide Surge Arrester
Power Electronic Devices
Solid State Transformer
Voltage Source Converter
Insulation Coordination of Solid State Devices Connected Directly to the Electric Power Distribution System
description abstract: With the penetration of distributed renewable energy and the development of semiconductor technology, power electronic devices could be utilized to interface re- newable energy generation and the distribution power grid. However, when directly connected to the power grid, the semiconductors inside the power electronic devices could be vulnerable to the power system transient, especially to lightning strikes. The work of this research focuses on the insulation coordination of power elec- tronic devices connected directly to the power distribution system. The Solid State Transformer (SST) in Future Renewable Electric Energy Delivery and Management (FREEDM) system could be a good example for grid connected power electronic devices. Simulations were conducted in Power Systems Computer Aided Design (PSCAD) software. A simulation done to the FREEDM SST showed primary re- sults which were then compare to simulation done to the grid-connected operating Voltage Source Converter (VSC) to get more objective results. Based on the simulation results, voltage surges caused by lightning strikes could result in damage on the grid-connected electronic devices. Placing Metal Oxide Surge Arresers (MOSA, also known as Metal Oxide Surge Varistor, MOV) at the front lter could provide eective protection for those devices from power transient. Part of this research work was published as a conference paper and was presented at CIGRE US National Conference: Grid of the Future Symposium [1] and North American Power Symposium [2]. === Dissertation/Thesis === Masters Thesis Engineering 2017
author2 Rong, Xuening (Author)
author_facet Rong, Xuening (Author)
title Insulation Coordination of Solid State Devices Connected Directly to the Electric Power Distribution System
title_short Insulation Coordination of Solid State Devices Connected Directly to the Electric Power Distribution System
title_full Insulation Coordination of Solid State Devices Connected Directly to the Electric Power Distribution System
title_fullStr Insulation Coordination of Solid State Devices Connected Directly to the Electric Power Distribution System
title_full_unstemmed Insulation Coordination of Solid State Devices Connected Directly to the Electric Power Distribution System
title_sort insulation coordination of solid state devices connected directly to the electric power distribution system
publishDate 2017
url http://hdl.handle.net/2286/R.I.45531
_version_ 1718701567769575424