Articles | Volume 9, issue 2
https://doi.org/10.5194/wes-9-385-2024
https://doi.org/10.5194/wes-9-385-2024
Research article
 | 
16 Feb 2024
Research article |  | 16 Feb 2024

Development and application of a mesh generator intended for unsteady vortex-lattice method simulations of wind turbines and wind farms

Bruno A. Roccia, Luis R. Ceballos, Marcos L. Verstraete, and Cristian G. Gebhardt

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Thematic area: Fluid mechanics | Topic: Wind turbine aerodynamics
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Cited articles

Abdelkefi, A., Ghommem, M., Nuhait, A. O., and Hajj, M. R.: Nonlinear analysis and enhancement of wing-based piezoaeroelastic energy harvesters, J. Sound Vib., 333, 166–177, https://doi.org/10.1016/j.jsv.2013.08.032, 2014. a
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Beltramo, E., Pérez Segura, M. E., Roccia, B. A., Valdez, M. F., Verstraete, M. L., and Preidikman, S.: Constructive Aerodynamic Interference in a Network of Weakly Coupled Flutter-Based Energy Harvesters, Aerospace, 7, 167, https://doi.org/10.3390/aerospace7120167, 2020. a
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In the literature there is a lack of meshing tools when it comes to building aerodynamic grids of wind turbines/farms to be used along with potential flow solvers. In this work, we present a detailed description of the geometric modeling and computational implementation of an interactive mesh generator, named UVLMeshGen, for onshore/offshore wind farms. The work is completed by providing a series of aerodynamic results related to wind turbines/farms to show the capacity of the mesh generator.
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