Convexity of self-similar transonic shocks and free boundaries for the Euler equations for potential flow

We are concerned with geometric properties of transonic shocks as free boundaries in two-dimensional self-similar coordinates for compressible fluid flows, which are not only important for the understanding of geometric structure and stability of fluid motions in continuum mechanics, but are also fu...

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Main Authors: Chen, G-Q, Feldman, M, Xiang, W
Format: Journal article
Language:English
Published: Springer 2020
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author Chen, G-Q
Feldman, M
Xiang, W
author_facet Chen, G-Q
Feldman, M
Xiang, W
author_sort Chen, G-Q
collection OXFORD
description We are concerned with geometric properties of transonic shocks as free boundaries in two-dimensional self-similar coordinates for compressible fluid flows, which are not only important for the understanding of geometric structure and stability of fluid motions in continuum mechanics, but are also fundamental in the mathematical theory of multidimensional conservation laws. A transonic shock for the Euler equations for self-similar potential flow separates elliptic (subsonic) and hyperbolic (supersonic) phases of the self-similar solution of the corresponding nonlinear partial differential equation in a domain under consideration, in which the location of the transonic shock is apriori unknown. We first develop a general framework under which self-similar transonic shocks, as free boundaries, are proved to be uniformly convex, and then apply this framework to prove the uniform convexity of transonic shocks in the two longstanding fundamental shock problems—the shock reflection–diffraction by wedges and the Prandtl–Meyer reflection for supersonic flows past solid ramps. To achieve this, our approach is to exploit underlying nonlocal properties of the solution and the free boundary for the potential flow equation.
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spelling oxford-uuid:b028c0a5-e2e7-4e00-92de-c7674acaa1702022-03-27T03:54:37ZConvexity of self-similar transonic shocks and free boundaries for the Euler equations for potential flowJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:b028c0a5-e2e7-4e00-92de-c7674acaa170EnglishSymplectic ElementsSpringer2020Chen, G-QFeldman, MXiang, WWe are concerned with geometric properties of transonic shocks as free boundaries in two-dimensional self-similar coordinates for compressible fluid flows, which are not only important for the understanding of geometric structure and stability of fluid motions in continuum mechanics, but are also fundamental in the mathematical theory of multidimensional conservation laws. A transonic shock for the Euler equations for self-similar potential flow separates elliptic (subsonic) and hyperbolic (supersonic) phases of the self-similar solution of the corresponding nonlinear partial differential equation in a domain under consideration, in which the location of the transonic shock is apriori unknown. We first develop a general framework under which self-similar transonic shocks, as free boundaries, are proved to be uniformly convex, and then apply this framework to prove the uniform convexity of transonic shocks in the two longstanding fundamental shock problems—the shock reflection–diffraction by wedges and the Prandtl–Meyer reflection for supersonic flows past solid ramps. To achieve this, our approach is to exploit underlying nonlocal properties of the solution and the free boundary for the potential flow equation.
spellingShingle Chen, G-Q
Feldman, M
Xiang, W
Convexity of self-similar transonic shocks and free boundaries for the Euler equations for potential flow
title Convexity of self-similar transonic shocks and free boundaries for the Euler equations for potential flow
title_full Convexity of self-similar transonic shocks and free boundaries for the Euler equations for potential flow
title_fullStr Convexity of self-similar transonic shocks and free boundaries for the Euler equations for potential flow
title_full_unstemmed Convexity of self-similar transonic shocks and free boundaries for the Euler equations for potential flow
title_short Convexity of self-similar transonic shocks and free boundaries for the Euler equations for potential flow
title_sort convexity of self similar transonic shocks and free boundaries for the euler equations for potential flow
work_keys_str_mv AT chengq convexityofselfsimilartransonicshocksandfreeboundariesfortheeulerequationsforpotentialflow
AT feldmanm convexityofselfsimilartransonicshocksandfreeboundariesfortheeulerequationsforpotentialflow
AT xiangw convexityofselfsimilartransonicshocksandfreeboundariesfortheeulerequationsforpotentialflow