Effect of order of accuracy of fluid-structure-interaction algorithms on actuator-line simulations of wind turbines
ORAL
Abstract
Actuator-line simulations of wind turbines often use loose coupling for the fluid-structure interaction (FSI) algorithm that reduces the numerical order of accuracy of fluid and structural solver. Demonstrating expected convergence rates with spatial- and temporal-grid refinement is the ``gold standard'' of code and algorithm verification. With increasing size and flexibility of modern wind turbines, the order of accuracy of the FSI algorithm could also play a major role in the prediction of coupled unsteady aerodynamic effects. In this work, we demonstrate that a new FSI algorithm is second-order accurate using the method of manufactured solutions for actuator-line CFD simulations with a simplified structural model. We then implement the same FSI algorithm for actuator-line simulations coupled to the multi-physics OpenFAST wind turbine simulation tool. We demonstrate the effects of the order of accuracy of the FSI algorithm on simulations of wind turbines in a wind farm.
*This work was funded by the U.S. Department of Energy, Office of Energy Efficiency and Renewable Energy, Wind Energy Technologies Office under Contract No. DE-AC36-08-GO28308 with the National Renewable Energy Laboratory.
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Presenters
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Ganesh Vijayakumar
- Natl Renewable Energy Lab