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Isomorph invariance and thermodynamics of repulsive dense bi-Yukawa one-component plasmas

机译:异构形不变性和令人厌恶的致密碧浴川一组分等离子体的热力学

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摘要

In numerous realizations of complex plasmas, dust-dust interactions are characterized by two screening lengths and are thus better described by a combination of Yukawa potentials. The present work investigates the static correlations and the thermodynamics of repulsive dense bi-Yukawa fluids based on the fact that such strongly coupled systems exhibit isomorph invariance. The strong virial-potential energy correlations are demonstrated with the aid of molecular dynamics simulations, an accurate analytical expression for the isomorph family of curves is obtained, and an empirical expression for the fluid-solid phase-coexistence line is proposed. The isomorph-based empirically modified hypernetted-chain approach, grounded on the ansatz of isomorph invariant bridge functions, is then extended to such systems and the resulting structural properties show an excellent agreement with the results of computer simulations. A simple and accurate closed-form expression is obtained for the excess internal energy of dense bi-Yukawa fluids by capitalizing on the compact parameterization offered by the Rosenfeld-Tarazona decomposition in combination with the Rosenfeld scaling, which opens up the energy route to thermodynamics. (C) 2019 Author(s).
机译:在复杂等离子体的许多实现中,除尘相互作用的特征在于两种筛分长度,因此通过Yukawa电位的组合更好地描述。本作者根据这种强耦合的系统表现出异构不实的事实,研究了静态相关性和热力学的静态相关性和热力学的热力学。借助于分子动力学模拟证明了强大的病毒势能相关性,获得了对等异常曲线的准确分析表达,并提出了流体 - 固相连线的经验表达。基于异构的经验修改的高纳链条接地,接地在异构形不变桥功能的ansatz上,然后扩展到这种系统,并且所得到的结构性与计算机模拟结果显示出优异的一致性。通过利用Rosenfeld-Tarazona分解的紧凑型参数化与Rosenfeld缩放结合使用的紧凑型参数化来获得简单且精确的闭合表达式,为茂密的Bi-yukawa流体的多余的内部能量进行了大写,这使得能量途径与热力学的能量途径。 (c)2019年作者。

著录项

  • 来源
    《Physics of plasmas》 |2019年第5期|共10页
  • 作者单位

    Royal Inst Technol Space &

    Plasma Phys SE-10044 Stockholm Sweden;

    Royal Inst Technol Space &

    Plasma Phys SE-10044 Stockholm Sweden;

    Roskilde Univ Dept Sci &

    Environm IMFUFA Glass &

    Time DK-4000 Roskilde Denmark;

    Roskilde Univ Dept Sci &

    Environm IMFUFA Glass &

    Time DK-4000 Roskilde Denmark;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 等离子体物理学;
  • 关键词

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