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Energy localization and transport in binary isotopically disordered Fermi-Pasta-Ulam chains.

机译:二元同位素无序费米-帕斯塔-乌兰链中的能量定位和运输。

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摘要

Energy transport in binary isotopically disordered (BID) nonlinear Fermi-Pasta-Ulam (FPU) chains is a competition between localization and mode transitions. Starting from an arbitrary localized pulse, energy will dissipate ballistically until either Anderson localization (a disorder effect) or phonon scattering (a nonlinearity effect) slow the rate of dissipation. To reduce computational effort, we propose starting from a localized energy eigenstate so that in the absence of anharmonicity the energy is stationary and there is no transport. The second moment of the site energies is used to characterize an effective thermal conductivity as a function of impurity concentration and nonlinearity strength.; Calculating the properties of harmonic BID chains at arbitrary impurity concentration is complicated by the pure-disordered-pure transition that occurs as the impurity concentration varies from zero to one. The localization length of dilute impurity harmonic BID chains is calculated exactly using scaling laws and the scattering cross section of a single impurity, which is calculated for discrete systems, differs from the continuum result. For arbitrary impurity concentration, the localization length is estimated by assuming independent contributions from the two limiting cases of pure material.; Information entropy was used to show that the number of modes excited by phonon scattering decreased with increasing impurity concentration, a fact that consistent with density of states calculations. At all impurity concentrations, the second moment of the site energies increases linearly in time, a fact that is corroborated by the number of masses participating in energy transport, as calculated from the localization parameter. The dilute concentration dependence of the effective thermal conductivity was consistent with kinetic theory. At the highest concentrations the thermal conductivity was proportional to the original localization length because mode suppression and dense impurities meant that the same length scale remained dominant over a long period of time.
机译:二元同位素无序(BID)非线性费米-帕斯塔-乌拉姆(FPU)链中的能量传输是局部化和模式转变之间的竞争。从任意局部脉冲开始,能量将弹道耗散,直到安德森局部化(无序效应)或声子散射(非线性效应)使耗散速率减慢。为了减少计算量,我们建议从局部能量本征态开始,以便在不存在非谐性的情况下,能量是固定的,并且不存在输运。位置能量的第二矩用于表征有效热导率,该热导率是杂质浓度和非线性强度的函数。当杂质浓度从零到一变化时,纯无序纯跃迁会导致在任意杂质浓度下计算谐波BID链的特性变得复杂。稀释杂质谐波BID链的定位长度是使用缩放定律精确计算的,而针对离散系统计算的单个杂质的散射截面与连续谱结果有所不同。对于任意的杂质浓度,通过假定两种纯材料极限情况的独立贡献来估算定位长度。信息熵用来表明声子散射激发的模态数随杂质浓度的增加而降低,这一事实与态密度计算相符。在所有杂质浓度下,位点能量的第二矩随时间线性增加,这一事实已得到根据定位参数计算得出的参与能量传输的质量数的证实。有效导热系数的稀浓度依赖性与动力学理论一致。在最高浓度下,热导率与原始定位长度成正比,因为模式抑制和密集的杂质意味着相同的长度范围在很长一段时间内仍然占主导地位。

著录项

  • 作者

    Snyder, Kenneth Alan.;

  • 作者单位

    University of Maryland, College Park.;

  • 授予单位 University of Maryland, College Park.;
  • 学科 Physics Condensed Matter.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 240 p.
  • 总页数 240
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 O49;
  • 关键词

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