COMP-PHNANAFLU-DYNJan 19, 2018

An Exponential Time-Integrator Scheme for Steady and Unsteady Inviscid Flows

arXiv:1801.0630027 citationsh-index: 43
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This work provides a more accurate and efficient time-integration method for computational fluid dynamics, particularly for unsteady inviscid flows.

The authors developed a second-order exponential time-integrator scheme (PCEXP) for solving Euler equations with discontinuous Galerkin discretization. For unsteady flows, PCEXP achieved smaller temporal errors than BDF2 while maintaining acceleration, and for steady flows, it achieved computational efficiency comparable to implicit schemes.

An exponential time-integrator scheme of second-order accuracy based on the predictor-corrector methodology, denoted PCEXP, is developed to solve multi-dimensional nonlinear partial differential equations pertaining to fluid dynamics. The effective and efficient implementation of PCEXP is realized by means of the Krylov method. The linear stability and truncation error are analyzed through a one-dimensional model equation. The proposed PCEXP scheme is applied to the Euler equations discretized with a discontinuous Galerkin method in both two and three dimensions. The effectiveness and efficiency of the PCEXP scheme are demonstrated for both steady and unsteady inviscid flows. The accuracy and efficiency of the PCEXP scheme are verified and validated through comparisons with the explicit third-order total variation diminishing Runge-Kutta scheme (TVDRK3), the implicit backward Euler (BE) and the implicit second-order backward difference formula (BDF2). For unsteady flows, the PCEXP scheme generates a temporal error much smaller than the BDF2 scheme does, while maintaining the expected acceleration at the same time. Moreover, the PCEXP scheme is also shown to achieve the computational efficiency comparable to the implicit schemes for steady flows.

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