Integration of multiple ultra-capacitor banks in DC microgrid part II

The main objective of this final year project is to achieve quality power output in the system through the integration of multiple ultracapacitor banks into the DC microgrid. However, ultracapacitor is an energy storage (ES) with high power density but low energy density. Using ultracapacitor alone...

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Main Author: Foo, Kai Ting
Other Authors: Wang Peng
Format: Final Year Project
Language:English
Published: 2019
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Online Access:http://hdl.handle.net/10356/77800
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-778002023-07-07T16:07:28Z Integration of multiple ultra-capacitor banks in DC microgrid part II Foo, Kai Ting Wang Peng School of Electrical and Electronic Engineering DRNTU::Engineering::Electrical and electronic engineering The main objective of this final year project is to achieve quality power output in the system through the integration of multiple ultracapacitor banks into the DC microgrid. However, ultracapacitor is an energy storage (ES) with high power density but low energy density. Using ultracapacitor alone would not be able to cover all the loads and maintain long term operations. Therefore, ultracapacitor can be integrated with low power density battery to form a hybrid energy storage system (HESS). With HESS, an energy management system (EMS) is used to realise dynamic power sharing. This project will study on the different control algorithms to manage the different kind of ESs in a HESS within a DC microgrid. In this project, the control algorithms are realised by filter-based decentralised control. The net power of the system is passed through the high or low pass filters to generate power references for the different ESs. Conventional VP droop control is used on battery which has limited response and high energy density. A proposed integral-droop (ID) control is used on ultracapacitor to compensate transient power at high frequencies. Aside from the HESS, a DC/DC boost converter is included as an interface to simulate the DC microgrid. All the simulations carried out are done in MATLAB Simulink. Bachelor of Engineering (Electrical and Electronic Engineering) 2019-06-06T07:36:52Z 2019-06-06T07:36:52Z 2019 Final Year Project (FYP) http://hdl.handle.net/10356/77800 en Nanyang Technological University 60 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Electrical and electronic engineering
spellingShingle DRNTU::Engineering::Electrical and electronic engineering
Foo, Kai Ting
Integration of multiple ultra-capacitor banks in DC microgrid part II
description The main objective of this final year project is to achieve quality power output in the system through the integration of multiple ultracapacitor banks into the DC microgrid. However, ultracapacitor is an energy storage (ES) with high power density but low energy density. Using ultracapacitor alone would not be able to cover all the loads and maintain long term operations. Therefore, ultracapacitor can be integrated with low power density battery to form a hybrid energy storage system (HESS). With HESS, an energy management system (EMS) is used to realise dynamic power sharing. This project will study on the different control algorithms to manage the different kind of ESs in a HESS within a DC microgrid. In this project, the control algorithms are realised by filter-based decentralised control. The net power of the system is passed through the high or low pass filters to generate power references for the different ESs. Conventional VP droop control is used on battery which has limited response and high energy density. A proposed integral-droop (ID) control is used on ultracapacitor to compensate transient power at high frequencies. Aside from the HESS, a DC/DC boost converter is included as an interface to simulate the DC microgrid. All the simulations carried out are done in MATLAB Simulink.
author2 Wang Peng
author_facet Wang Peng
Foo, Kai Ting
format Final Year Project
author Foo, Kai Ting
author_sort Foo, Kai Ting
title Integration of multiple ultra-capacitor banks in DC microgrid part II
title_short Integration of multiple ultra-capacitor banks in DC microgrid part II
title_full Integration of multiple ultra-capacitor banks in DC microgrid part II
title_fullStr Integration of multiple ultra-capacitor banks in DC microgrid part II
title_full_unstemmed Integration of multiple ultra-capacitor banks in DC microgrid part II
title_sort integration of multiple ultra-capacitor banks in dc microgrid part ii
publishDate 2019
url http://hdl.handle.net/10356/77800
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