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NASA NTRS · 20240010845

Optimization-Based Parametric Design via High-Fidelity Simulation: Overview + Examples

Abstract

Design-Build-Test approaches for developing spaceflight hardware are prohibitively time and cost intensive and often lead to suboptimal mechanism designs. Approaches that couple machine learning and high-fidelity physics simulation could eliminate the need for hardware prototyping and dramatically accelerate the engineering design cycle, ultimately reducing cost. This talk presents a modular NASA-developed toolchain to optimize hardware mechanisms in a virtual environment using numerical optimization and multi-body physics simulation and includes example applications related to rigid wheel design for autonomous rovers and computational fluid dynamics.

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BibTeXRIS

Alexander Schepelmann. Optimization-Based Parametric Design via High-Fidelity Simulation: Overview + Examples. https://ntrs.nasa.gov/citations/20240010845

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