Bridging The Gap: Data Driven Method For Linearized Model Fidelity Enhancement
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Accurate flight dynamics models are necessary for cost and development time reduction in modern rotorcraft design. Yet, discrepancies frequently exist between high-fidelity, physics-based models and data-driven models identified from flight. Bridging this gap through physics-based model refinements often requires longer time frames than the tight development schedules allow. This paper presents a practical application of a data-driven Gain-Delay Correction Method (GDCM) to rapidly enhance the fidelity of a physics-based linearized rotorcraft model. The method optimizes a set of input and output gains and delays to address frequency responses discrepancies between linearized multi-body models and identified models derived from flight. This technique is applied the dataset of an AW family helicopter, covering a wide range of flight conditions. The results demonstrate that the method effectively identifies systematic gain discrepancies, for which a correction scheduled with airspeed is synthesized to improve the physics-based model accuracy. Also, a key limitation of the proposed approach is highlighted: the inability of a simple delay structure to compensate for phase underestimation in the physics-based model. The proposed workflow provides a pragmatic solution for rapid model fidelity improvement and offers a way to provide valuable cues to guide long term physics-based model refinements.
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51st European Rotorcraft Forum (ERF 2025), September 9-12, 2025, Venice, Italy : proceeedings. ISBN 9798331335472.
