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Optimisation of hybrid energy systems for maritime vessels

  • Wenshuo Tang (Corresponding author)
  • , Ross Dickie
  • , Darius Roman
  • , Valentin Robu
  • , David Flynn

Research output: Contribution to journalConference articlepeer-review

Abstract

The decarbonisation agenda in maritime transport requires that asset owners and operators adopt greener technologies within their existing and new vessels. The primary drivers within this agenda relate to improved environmental metrics, efficient energy performance, and improved asset management. However, the integration of new technologies always presents technical and financial risks. Here, utilising energy and environmental monitoring from real vessels, the authors propose an energy system optimisation architecture, hybrid fusion energy management system (HyFES), that optimises the key performance indicators of energy performance, reduction of diesel engine nitrogen oxide (NOx), and particulate matter (PM), and prognostic state of health assessment of energy storage technologies. Using state of the art machine-learning techniques, the authors are able to determine the on-board lithium-ion and lead acid batteries' state of health with accuracy > 8 and 4%, respectively. Dependent on the mode of operation, optimisation of energy performance indicates fuel saving of between 70 and 80% for the vessel operator. Future research will focus on the integration of more assets into the optimisation architecture and increased vessel journey use cases.
Original languageEnglish
Pages (from-to)4516-4521
Number of pages6
JournalJournal of Engineering
Volume2019
Issue number17
DOIs
Publication statusPublished - Jun 2019
Externally publishedYes
Event9th International Conference on Power Electronics, Machines and Drives, PEMD 2018 - Liverpool, United Kingdom
Duration: 17 Apr 201819 Apr 2018

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

Keywords

  • exhaust systems
  • diesel engines
  • hybrid electric vehicles
  • battery management systems
  • asset management
  • energy conservation
  • energy management systems
  • nitrogen compounds
  • energy storage
  • transportation
  • lead acid batteries
  • air pollution control
  • condition monitoring
  • learning (artificial intelligence)
  • ships
  • power engineering computing
  • hybrid energy systems
  • maritime vessels
  • decarbonisation agenda
  • maritime transport
  • asset owners
  • greener technologies
  • primary drivers
  • efficient energy performance
  • technical risks
  • financial risks
  • utilising energy
  • environmental monitoring
  • energy system optimisation architecture
  • hybrid fusion energy management system
  • key performance indicators
  • diesel engine nitrogen oxide
  • energy storage technologies
  • art machine-learning techniques
  • vessel operator
  • increased vessel journey use cases
  • environmental metrics
  • HyFES
  • energy performance
  • particulate matter
  • prognostic state of health assessment
  • on-board lithium-ion batteries

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