Internal energy control of a cascaded H-Bridge Energy Router

Energy efficiency is an important requirement in industry. Across several industrial applications, it is desired that maximum output is achieved for a given energy input. At material processing sites, several energy-intensive processes that are powered individually from generators run in various seq...

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Main Author: Okunola, Abdullah Akolade
Format: Thesis (University of Nottingham only)
Language:English
Published: 2024
Subjects:
Online Access:https://eprints.nottingham.ac.uk/78116/
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author Okunola, Abdullah Akolade
author_facet Okunola, Abdullah Akolade
author_sort Okunola, Abdullah Akolade
building Nottingham Research Data Repository
collection Online Access
description Energy efficiency is an important requirement in industry. Across several industrial applications, it is desired that maximum output is achieved for a given energy input. At material processing sites, several energy-intensive processes that are powered individually from generators run in various sequences, but the minimum amount of energy should be used. Power electronic converters can be used to improve energy efficiency at such sites by energising these processes from a single AC power supply source to minimise inefficiency. As such industrial processes are independent, it is essential to apply a power electronic converter topology with a cellular and modular structure to facilitate independent application of the industrial processes across the cells of the converter. The Cascaded H-Bridge converter is suitable for this consideration. With the independence of the industrial processes, unbalanced loading of the converter is expected. It is thus vital to develop the control of the converter to ensure that power from the AC supply source is used to meet the demands of the respective processes. This will ensure sustained operation of the converter and the site. Unbalanced loading of the Cascaded H-Bridge converter has been thoroughly examined in this project. Unbalance limits are derived for unity power factor operation of the converter at the source. These are then extended with non-unity power factor operation, although this is generally undesirable. Closed-loop control is then developed and implemented for the converter. The converter is simulated and subsequently tested experimentally on a rig developed during the project to validate the analytical expressions derived and the control scheme implemented. Simulation and experimental testing show satisfactory outcomes that validate the developed analytical and control concepts.
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format Thesis (University of Nottingham only)
id nottingham-78116
institution University of Nottingham Malaysia Campus
institution_category Local University
language English
last_indexed 2025-11-14T21:01:20Z
publishDate 2024
recordtype eprints
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spelling nottingham-781162025-03-12T09:45:04Z https://eprints.nottingham.ac.uk/78116/ Internal energy control of a cascaded H-Bridge Energy Router Okunola, Abdullah Akolade Energy efficiency is an important requirement in industry. Across several industrial applications, it is desired that maximum output is achieved for a given energy input. At material processing sites, several energy-intensive processes that are powered individually from generators run in various sequences, but the minimum amount of energy should be used. Power electronic converters can be used to improve energy efficiency at such sites by energising these processes from a single AC power supply source to minimise inefficiency. As such industrial processes are independent, it is essential to apply a power electronic converter topology with a cellular and modular structure to facilitate independent application of the industrial processes across the cells of the converter. The Cascaded H-Bridge converter is suitable for this consideration. With the independence of the industrial processes, unbalanced loading of the converter is expected. It is thus vital to develop the control of the converter to ensure that power from the AC supply source is used to meet the demands of the respective processes. This will ensure sustained operation of the converter and the site. Unbalanced loading of the Cascaded H-Bridge converter has been thoroughly examined in this project. Unbalance limits are derived for unity power factor operation of the converter at the source. These are then extended with non-unity power factor operation, although this is generally undesirable. Closed-loop control is then developed and implemented for the converter. The converter is simulated and subsequently tested experimentally on a rig developed during the project to validate the analytical expressions derived and the control scheme implemented. Simulation and experimental testing show satisfactory outcomes that validate the developed analytical and control concepts. 2024-07-18 Thesis (University of Nottingham only) NonPeerReviewed application/pdf en cc_by https://eprints.nottingham.ac.uk/78116/1/Abdullah_A_Okunola_PhD_thesis_16_May_2024.pdf Okunola, Abdullah Akolade (2024) Internal energy control of a cascaded H-Bridge Energy Router. PhD thesis, University of Nottingham. Cascaded H-Bridge (CHB) converter energy router AC/DC converter cell voltage balancing asymmetric loading unbalanced loading
spellingShingle Cascaded H-Bridge (CHB) converter
energy router
AC/DC converter
cell voltage balancing
asymmetric loading
unbalanced loading
Okunola, Abdullah Akolade
Internal energy control of a cascaded H-Bridge Energy Router
title Internal energy control of a cascaded H-Bridge Energy Router
title_full Internal energy control of a cascaded H-Bridge Energy Router
title_fullStr Internal energy control of a cascaded H-Bridge Energy Router
title_full_unstemmed Internal energy control of a cascaded H-Bridge Energy Router
title_short Internal energy control of a cascaded H-Bridge Energy Router
title_sort internal energy control of a cascaded h-bridge energy router
topic Cascaded H-Bridge (CHB) converter
energy router
AC/DC converter
cell voltage balancing
asymmetric loading
unbalanced loading
url https://eprints.nottingham.ac.uk/78116/