Shock-capturing with natural high frequency oscillations

Fuente: arXiv
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Main Authors: Zhou, Y. C., Gu, Yun, Wei, G. W.
Format: Preprint
Published: 2001
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_version_ 1866909853329391616
author Zhou, Y. C.
Gu, Yun
Wei, G. W.
author_facet Zhou, Y. C.
Gu, Yun
Wei, G. W.
contents This paper explores the potential of a newly developed conjugate filter oscillation reduction (CFOR) scheme for shock-capturing under the influence of natural high-frequency oscillations. The conjugate low-pass and high-pass filters are constructed based on the principle of the discrete singular convolution. Two Euler systems, the advection of an isentropy vortex flow and the interaction of shock-entropy wave are considered to demonstrate the utility of the CFOR scheme. Computational accuracy and order of approximation are examined and compared with the literature. Some of the best numerical results are obtained for the shock-entropy wave interaction. Numerical experiments indicate that the proposed scheme is stable, conservative and reliable for the numerical simulation of hyperbolic conservation laws.
format Preprint
id arxiv_https___arxiv_org_abs_math_0110029
institution arXiv
publishDate 2001
record_format arxiv
spellingShingle Shock-capturing with natural high frequency oscillations
Zhou, Y. C.
Gu, Yun
Wei, G. W.
Numerical Analysis
This paper explores the potential of a newly developed conjugate filter oscillation reduction (CFOR) scheme for shock-capturing under the influence of natural high-frequency oscillations. The conjugate low-pass and high-pass filters are constructed based on the principle of the discrete singular convolution. Two Euler systems, the advection of an isentropy vortex flow and the interaction of shock-entropy wave are considered to demonstrate the utility of the CFOR scheme. Computational accuracy and order of approximation are examined and compared with the literature. Some of the best numerical results are obtained for the shock-entropy wave interaction. Numerical experiments indicate that the proposed scheme is stable, conservative and reliable for the numerical simulation of hyperbolic conservation laws.
title Shock-capturing with natural high frequency oscillations
topic Numerical Analysis
url https://arxiv.org/abs/math/0110029