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September 10, 2025Physics of Fluids1 citations

Kinetic study of compressible Rayleigh–Taylor instability with time-varying acceleration

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HLHuilin LaiHXHao XuCLChuandong Lin

Key Points

  • The compressible Rayleigh–Taylor instability evolves under varying acceleration, leading to complex dynamics.
  • Key metrics like density gradient and thermodynamic non-equilibrium strengthen the understanding of instability behavior.
  • Employing a discrete Boltzmann method enables detailed observations of the driving effects of acceleration on instability.
  • Findings suggest the interplay of diffusion and dissipation critically affects the instability under time-varying conditions.

Abstract

Rayleigh–Taylor (RT) instability commonly arises in compressible systems with time-dependent acceleration in practical applications. To capture the complex dynamics of such systems, a two-component discrete Boltzmann method is developed to systematically investigate the compressible RT instability driven by variable acceleration. The simulation results are interpreted from three key perspectives: the density gradient, which characterizes the spatial variation in density; the thermodynamic non-equilibrium strength, which quantifies the system's deviation from local thermodynamic equilibrium; and the non-equilibrium region, which captures the spatial distribution of non-equilibrium behaviors. Notably, the fluid system exhibits rich and diverse dynamic patterns resulting from the interplay of multiple competing physical mechanisms, including RT instability, diffusion, and dissipation effects. Specifically, the amplitude, acceleration period, and phase of the time-varying acceleration play an important role in the evolution of the RT instability. In addition, the phase difference determines whether the RT instability is promoted in the initial stage. These findings provide deeper insight into the evolution and regulation of compressible RT instability under complex driving conditions.

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Cite This Study

Lai et al. (2025) studied this question.

synapsesocial.com/papers/68c1b61454b1d3bfb60eb6a4https://doi.org/10.1063/5.0276693
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