Robust Control of Wide Bandgap Power Electronics Device Enabled Smart Grid

abstract: In recent years, wide bandgap (WBG) devices enable power converters with higher power density and higher efficiency. On the other hand, smart grid technologies are getting mature due to new battery technology and computer technology. In the near future, the two technologies will form the n...

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Other Authors: Yao, Tong (Author)
Format: Doctoral Thesis
Language:English
Published: 2017
Subjects:
Online Access:http://hdl.handle.net/2286/R.I.46215
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spelling ndltd-asu.edu-item-462152018-06-22T03:08:57Z Robust Control of Wide Bandgap Power Electronics Device Enabled Smart Grid abstract: In recent years, wide bandgap (WBG) devices enable power converters with higher power density and higher efficiency. On the other hand, smart grid technologies are getting mature due to new battery technology and computer technology. In the near future, the two technologies will form the next generation of smart grid enabled by WBG devices. This dissertation deals with two applications: silicon carbide (SiC) device used for medium voltage level interface (7.2 kV to 240 V) and gallium nitride (GaN) device used for low voltage level interface (240 V/120 V). A 20 kW solid state transformer (SST) is designed with 6 kHz switching frequency SiC rectifier. Then three robust control design methods are proposed for each of its smart grid operation modes. In grid connected mode, a new LCL filter design method is proposed considering grid voltage THD, grid current THD and current regulation loop robust stability with respect to the grid impedance change. In grid islanded mode, µ synthesis method combined with variable structure control is used to design a robust controller for grid voltage regulation. For grid emergency mode, multivariable controller designed using H infinity synthesis method is proposed for accurate power sharing. Controller-hardware-in-the-loop (CHIL) testbed considering 7-SST system is setup with Real Time Digital Simulator (RTDS). The real TMS320F28335 DSP and Spartan 6 FPGA control board is used to interface a switching model SST in RTDS. And the proposed control methods are tested. For low voltage level application, a 3.3 kW smart grid hardware is built with 3 GaN inverters. The inverters are designed with the GaN device characterized using the proposed multi-function double pulse tester. The inverter is controlled by onboard TMS320F28379D dual core DSP with 200 kHz sampling frequency. Each inverter is tested to process 2.2 kW power with overall efficiency of 96.5 % at room temperature. The smart grid monitor system and fault interrupt devices (FID) based on Arduino Mega2560 are built and tested. The smart grid cooperates with GaN inverters through CAN bus communication. At last, the three GaN inverters smart grid achieved the function of grid connected to islanded mode smooth transition Dissertation/Thesis Yao, Tong (Author) Ayyanar, Raja (Advisor) Karady, George (Committee member) Qin, Jiangchao (Committee member) Tsakalis, Konstantinos (Committee member) Arizona State University (Publisher) Electrical engineering Energy Gallium Nitride Real Time Digital Simulation Robust Control Silicon Carbide Smart Grid Solid State Transformer eng 239 pages Doctoral Dissertation Electrical Engineering 2017 Doctoral Dissertation http://hdl.handle.net/2286/R.I.46215 http://rightsstatements.org/vocab/InC/1.0/ All Rights Reserved 2017
collection NDLTD
language English
format Doctoral Thesis
sources NDLTD
topic Electrical engineering
Energy
Gallium Nitride
Real Time Digital Simulation
Robust Control
Silicon Carbide
Smart Grid
Solid State Transformer
spellingShingle Electrical engineering
Energy
Gallium Nitride
Real Time Digital Simulation
Robust Control
Silicon Carbide
Smart Grid
Solid State Transformer
Robust Control of Wide Bandgap Power Electronics Device Enabled Smart Grid
description abstract: In recent years, wide bandgap (WBG) devices enable power converters with higher power density and higher efficiency. On the other hand, smart grid technologies are getting mature due to new battery technology and computer technology. In the near future, the two technologies will form the next generation of smart grid enabled by WBG devices. This dissertation deals with two applications: silicon carbide (SiC) device used for medium voltage level interface (7.2 kV to 240 V) and gallium nitride (GaN) device used for low voltage level interface (240 V/120 V). A 20 kW solid state transformer (SST) is designed with 6 kHz switching frequency SiC rectifier. Then three robust control design methods are proposed for each of its smart grid operation modes. In grid connected mode, a new LCL filter design method is proposed considering grid voltage THD, grid current THD and current regulation loop robust stability with respect to the grid impedance change. In grid islanded mode, µ synthesis method combined with variable structure control is used to design a robust controller for grid voltage regulation. For grid emergency mode, multivariable controller designed using H infinity synthesis method is proposed for accurate power sharing. Controller-hardware-in-the-loop (CHIL) testbed considering 7-SST system is setup with Real Time Digital Simulator (RTDS). The real TMS320F28335 DSP and Spartan 6 FPGA control board is used to interface a switching model SST in RTDS. And the proposed control methods are tested. For low voltage level application, a 3.3 kW smart grid hardware is built with 3 GaN inverters. The inverters are designed with the GaN device characterized using the proposed multi-function double pulse tester. The inverter is controlled by onboard TMS320F28379D dual core DSP with 200 kHz sampling frequency. Each inverter is tested to process 2.2 kW power with overall efficiency of 96.5 % at room temperature. The smart grid monitor system and fault interrupt devices (FID) based on Arduino Mega2560 are built and tested. The smart grid cooperates with GaN inverters through CAN bus communication. At last, the three GaN inverters smart grid achieved the function of grid connected to islanded mode smooth transition === Dissertation/Thesis === Doctoral Dissertation Electrical Engineering 2017
author2 Yao, Tong (Author)
author_facet Yao, Tong (Author)
title Robust Control of Wide Bandgap Power Electronics Device Enabled Smart Grid
title_short Robust Control of Wide Bandgap Power Electronics Device Enabled Smart Grid
title_full Robust Control of Wide Bandgap Power Electronics Device Enabled Smart Grid
title_fullStr Robust Control of Wide Bandgap Power Electronics Device Enabled Smart Grid
title_full_unstemmed Robust Control of Wide Bandgap Power Electronics Device Enabled Smart Grid
title_sort robust control of wide bandgap power electronics device enabled smart grid
publishDate 2017
url http://hdl.handle.net/2286/R.I.46215
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