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      Subsonic-sonic Limit of Approximate Solutions to Multidimensional Steady Euler Equations

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          Abstract

          A compactness framework is established for approximate solutions to subsonic-sonic flows governed by the steady full Euler equations for compressible fluids in arbitrary dimension. The existing compactness frameworks for the two-dimensional irrotational case do not directly apply for the steady full Euler equations in higher dimensions. The new compactness framework we develop applies for both non-homentropic and rotational flows. One of our main observations is that the compactness can be achieved by using only natural weak estimates for the mass balance and the vorticity, along with the Bernoulli law and the entropy relation, through a more delicate analysis on the phase space. As direct applications, we establish two existence theorems for multidimensional subsonic-sonic full Euler flows through infinitely long nozzles.

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          A version of the fundamental theorem for young measures

          J M Ball (1989)
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            Divergence-Measure Fields and Hyperbolic Conservation Laws

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                Author and article information

                Journal
                15 November 2013
                2015-07-24
                Article
                10.1007/s00205-015-0905-7
                1311.3985
                d0f2e3a3-d7e1-48d0-8842-cf4779b871e4

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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                Custom metadata
                35Q31, 35M30, 35L65, 76N10, 76G25, 35B40, 35D30
                17 pages, 2 figures, Archive for Rational Mechanics and Analysis, 2015
                math.AP

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