Application of selection hyper-heuristics to the simultaneous optimisation of turbines and cabling within an offshore windfarm

Open Access
Authors
  • J. Kreeft
Publication date 05-2023
Journal Renewable Energy
Volume | Issue number 208
Pages (from-to) 1-16
Number of pages 16
Organisations
  • Faculty of Economics and Business (FEB) - Amsterdam Business School Research Institute (ABS-RI)
Abstract

Global warming has focused attention on how the world produces the energy required to power the planet. It has driven a major need to move away from using fossil fuels for energy production toward cleaner and more sustainable methods of producing renewable energy. The development of offshore windfarms, which harness the power of the wind, is seen as a viable approach to creating renewable energy but they can be difficult to design efficiently. The complexity of their design can benefit significantly from the use of computational optimisation. The windfarm optimisation problem typically consists of two smaller optimisation problems: turbine placement and cable routing, which are generally solved separately. This paper aims to utilise selection hyper-heuristics to optimise both turbine placement and cable routing simultaneously within one optimisation problem. This paper identifies and confirms the feasibility of using selection hyper-heuristics within windfarm optimisation to consider both cabling and turbine positioning within the same single optimisation problem. Key results could not identify a conclusive advantage to combining this into one optimisation problem as opposed to considering both as two sequential optimisation problems.

Document type Article
Note Publisher Copyright: © 2023 The Author(s)
Language English
Published at https://doi.org/10.1016/j.renene.2023.03.075
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1-s2.0-S0960148123003701-main (Final published version)
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