A robust, high-order implicit shock tracking method for simulation of complex, high-speed flows
Tianci Huang, Matthew J. Zahr

TL;DR
This paper introduces a robust optimization solver for high-order implicit shock tracking methods, enabling accurate simulation of complex, high-speed flows with discontinuities on coarse meshes by aligning the mesh with flow features.
Contribution
It develops a practical, robust optimization approach incorporating stability measures, allowing reliable tracking of complex shocks in high-order flow simulations.
Findings
Solver demonstrates robustness across multiple complex flow scenarios.
Meshes accurately track discontinuities and non-smooth features.
Achieves optimal convergence rates even with coarse meshes.
Abstract
High-order implicit shock tracking is a new class of numerical methods to approximate solutions of conservation laws with non-smooth features. These methods align elements of the computational mesh with non-smooth features to represent them perfectly, allowing high-order basis functions to approximate smooth regions of the solution without the need for nonlinear stabilization, which leads to accurate approximations on traditionally coarse meshes. The hallmark of these methods is the underlying optimization formulation whose solution is a feature-aligned mesh and the corresponding high-order approximation to the flow; the key challenge is robustly solving the central optimization problem. In this work, we develop a robust optimization solver for high-order implicit shock tracking methods so they can be reliably used to simulate complex, high-speed, compressible flows in multiple…
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