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High-resolution boundary variation diminishing scheme for two-phase compressible flow with cavitation and evaporation

  • Hiro Wakimura
  • , Tatsuin Li
  • , Keh Ming Shyue
  • , Takayuki Aoki
  • , Feng Xiao
  • Tokyo Institute of Technology
  • National Taiwan University

Research output: Contribution to journalArticlepeer-review

10 Scopus citations

Abstract

We propose high-resolution numerical schemes for two-phase compressible flow simulations to reproduce dynamically created gas/vapor-liquid interfaces with phase change. In the Godunov-type finite volume framework, suppressing numerical dissipation errors in numerical schemes is crucial for capturing the discontinuous solutions. The MUSCL scheme has second-order accuracy for smooth solutions and non-oscillatory behavior near discontinuous solutions. However, the MUSCL scheme introduces excessive numerical dissipation and diffuses the discontinuities nonphysically, leading to difficulties in distinguishing gas/vapor and liquid phases, and thus causing a blur in the interfaces during the multi-phase flow simulations. The hybrid-type boundary variation diminishing (BVD) scheme in this paper combines the MUSCL scheme and the THINC scheme to reduce the numerical dissipation errors near the discontinuities. The MUSCL-THINC-BVD scheme applies the MUSCL scheme for smooth solutions and the THINC scheme for discontinuous solutions, resulting in the successful capture of the discontinuities including the dynamically created gas/vapor-liquid interfaces. The Adaptive THINC-BVD scheme, which switches two types of THINC schemes with different values of gradient parameter, also captures the discontinuities clearly. The numerical results of the benchmark tests show that the proposed BVD schemes can lucidly reproduce the vapor-liquid interfaces newly created during the dynamical process of phase change.

Original languageEnglish
Article number113164
JournalJournal of Computational Physics
Volume513
DOIs
StatePublished - 15 Sep 2024
Externally publishedYes

Keywords

  • Boundary variation diminishing
  • Compressible multiphase flow
  • Finite volume method
  • Low dissipation
  • Phase change

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