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首页> 外文期刊>The Journal of Chemical Physics >Hydrodynamic relaxations in dissipative particle dynamics
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Hydrodynamic relaxations in dissipative particle dynamics

机译:耗散粒子动力学中的流体动力学放松

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This paper studies the dynamics of relaxation phenomena in the standard dissipative particle dynamics (DPD) model [R. D. Groot and P. B. Warren, J. Chem. Phys. 107, 4423 (1997)]. Using fluctuating hydrodynamics as the framework of the investigation, we focus on the collective transverse and longitudinal dynamics. It is shown that classical hydrodynamic theory predicts the transverse dynamics at relatively low temperatures very well when compared to simulation data; however, the theory predictions are, on the same length scale, less accurate for higher temperatures. The agreement with hydrodynamics depends on the definition of the viscosity, and here we find that the transverse dynamics are independent of the dissipative and random shear force contributions to the stress. For high temperatures, the spectrum for the longitudinal dynamics is dominated by the Brillouin peak for large length scales and the relaxation is therefore governed by sound wave propagation and is athermal. This contrasts the results at lower temperatures and small length scale, where the thermal process is clearly present in the spectra. The DPD model, at least qualitatively, re-captures the underlying hydrodynamical mechanisms, and quantitative agreement is excellent at intermediate temperatures for the transverse dynamics. Published by AIP Publishing.
机译:本文研究了标准耗散粒子动力学(DPD)模型中松弛现象的动态[R. D. Groot和P. B.Warren,J.Chem。物理。 107,4423(1997)]。使用波动的流体动力学作为调查的框架,我们专注于集体横向和纵向动态。结果表明,与仿真数据相比,经典流体动力学理论在相对低的温度下预测横向动力学;然而,理论预测是在相同的长度尺度上,对较高温度的准确性较低。与流体动力学的协议取决于粘度的定义,在这里,我们发现横向动力学与压力的耗散和随机剪切力贡献无关。对于高温,纵向动力学的光谱由布里渊峰的主导地位为大长度尺度,因此松弛由声波传播控制,并且是滴管的。这对比较低温度和小长度尺度的结果形成对比,其中热过程清楚地存在于光谱中。 DPD模型至少定性地重新捕获底层的流体动力学机制,并且定量协议在横向动力学的中间温度下优异。通过AIP发布发布。

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