Control Co-Design for Buoyancy-Controlled MHK Turbine: A Nested Optimization of Geometry and Spatial-Temporal Path Planning
Arezoo Hasankhani, Yufei Tang, Austin Snyder, James VanZwieten, Wei, Qiao

TL;DR
This paper introduces a nested optimization framework for co-designing ocean current turbine systems, integrating geometry, control, and path planning to maximize power-to-weight ratio and energy capture.
Contribution
It presents a novel control co-design framework that simultaneously optimizes plant geometry and path planning for marine hydrokinetic turbines.
Findings
Optimized OCT design achieves higher power-to-weight ratio.
Framework effectively accounts for ocean current uncertainties.
Significant increase in energy capture compared to baseline designs.
Abstract
Recent research progress has confirmed that using advanced controls can result in massive increases in energy capture for marine hydrokinetic (MHK) energy systems, including ocean current turbines (OCTs) and wave energy converters (WECs); however, to realize maximum benefits, the controls, power-take-off system, and basic structure of the device must all be co-designed from early stages. This paper presents an OCT turbine control co-design framework, accounting for the plant geometry and spatial-temporal path planning to optimize the performance. Developing a control co-design framework means that it is now possible to evaluate the effects of changing plant geometry on a level playing field when accounting for the OCT plant power optimization. The investigated framework evaluates the key design parameters, including the sizes of the generator, rotor, and variable buoyancy tank in the…
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Taxonomy
TopicsWind Energy Research and Development · Wave and Wind Energy Systems · Wind Turbine Control Systems
