NASA NTRS · 20030018926
Implicit Approaches for Moving Boundaries in a 3-D Cartesian Method
Abstract
This work considers numerical simulation of three-dimensional flows with time-evolving boundaries. Such problems pose a variety of challenges for numerical schemes, and have received a substantial amount of attention in the recent literature. Since such simulations are unsteady, time-accurate solution of the governing equations is required. In special cases, the body motion can be treated by a uniform rigid motion of the computational domain. For the more general situation of relative-body motion, however, this simplification is unavailable and the simulations require a mechanism for ensuring that the mesh evolves with the moving boundaries. This involves a "remeshing" of the computational domain (either localized or global) at each physical timestep, and places a premium on both the speed and robustness of the remeshing algorithms. This work presents a method which includes unsteady flow simulation, rigid domain motion, and relative body motion using a time-evolving Cartesian grid system in three dimensions.
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Murman, Scott M., Aftosmis, Michael J., Berger, Marsha J., Kwak, Dochan. 2003-01-09. Implicit Approaches for Moving Boundaries in a 3-D Cartesian Method. https://ntrs.nasa.gov/citations/20030018926
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