This thesis presents a novel aerodynamic solver for lifting bodies that extends lifting-line theory to deliver higher fidelity and improved unsteady modeling. Building on a time-domain reformulation of the Kussner-Schwarz model, the method is first validated on fixed-wing cases against its frequency-domain counterpart and then generalized to rotary-wing configurations to assess performance under wake interactions and varying reduced frequencies. To reconcile analytical insight with numerical flexibility, a dedicated vortex-filament free-wake model is developed, providing a hybrid framework that captures complex wake dynamics while controlling computational cost. The resulting solver offers a practical balance between accuracy and efficiency for unsteady aerodynamic analyses.
An Innovative Aerodynamic Solver for Rotorcraft Preliminary Design
FRASSOLDATI, GREGORIO
2026
Abstract
This thesis presents a novel aerodynamic solver for lifting bodies that extends lifting-line theory to deliver higher fidelity and improved unsteady modeling. Building on a time-domain reformulation of the Kussner-Schwarz model, the method is first validated on fixed-wing cases against its frequency-domain counterpart and then generalized to rotary-wing configurations to assess performance under wake interactions and varying reduced frequencies. To reconcile analytical insight with numerical flexibility, a dedicated vortex-filament free-wake model is developed, providing a hybrid framework that captures complex wake dynamics while controlling computational cost. The resulting solver offers a practical balance between accuracy and efficiency for unsteady aerodynamic analyses.| File | Dimensione | Formato | |
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https://hdl.handle.net/20.500.14242/375146
URN:NBN:IT:UNIROMA3-375146