Causal implications of viscous damping in compressible fluid flows

Jordan, Meyer, Puri
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引用次数: 57

Abstract

Classically, a compressible, isothermal, viscous fluid is regarded as a mathematical continuum and its motion is governed by the linearized continuity, Navier-Stokes, and state equations. Unfortunately, solutions of this system are of a diffusive nature and hence do not satisfy causality. However, in the case of a half-space of fluid set to motion by a harmonically vibrating plate the classical equation of motion can, under suitable conditions, be approximated by the damped wave equation. Since this equation is hyperbolic, the resulting solutions satisfy causal requirements. In this work the Laplace transform and other analytical and numerical tools are used to investigate this apparent contradiction. To this end the exact solutions, as well as their special and limiting cases, are found and compared for the two models. The effects of the physical parameters on the solutions and associated quantities are also studied. It is shown that propagating wave fronts are only possible under the hyperbolic model and that the concept of phase speed has different meanings in the two formulations. In addition, discontinuities and shock waves are noted and a physical system is modeled under both formulations. Overall, it is shown that the hyperbolic form gives a more realistic description of the physical problem than does the classical theory. Lastly, a simple mechanical analog is given and connections to viscoelastic fluids are noted. In particular, the research presented here supports the notion that linear compressible, isothermal, viscous fluids can, at least in terms of causality, be better characterized as a type of viscoelastic fluid.

可压缩流体流动中粘性阻尼的因果含义
经典地,一个可压缩的、等温的、粘性的流体被认为是一个数学连续体,它的运动是由线性化的连续性、纳维-斯托克斯方程和状态方程控制的。不幸的是,这个系统的解具有扩散性质,因此不满足因果关系。然而,在半空间的流体由一个简谐振动板运动的情况下,经典的运动方程可以在适当的条件下用阻尼波动方程近似。因为这个方程是双曲的,所以结果解满足因果关系的要求。在这项工作中,拉普拉斯变换和其他分析和数值工具被用来研究这个明显的矛盾。为此,找到了两种模型的精确解,并对其特殊情况和极限情况进行了比较。研究了物理参数对溶液和相关量的影响。结果表明,只有在双曲模型下才有波前传播的可能,而相速度的概念在两种公式中具有不同的含义。此外,还注意到不连续和激波,并在这两种公式下对物理系统进行了建模。总的来说,证明了双曲形式比经典理论更能真实地描述物理问题。最后,给出了一个简单的力学模拟,并指出了粘弹性流体的联系。特别地,这里提出的研究支持这样一个概念,即线性可压缩、等温、粘性流体至少在因果关系方面可以更好地表征为一种粘弹性流体。
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