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Parametric dependence on shear viscosity of SPC/E water from equilibrium and non-equilibrium molecular dynamics simulations

机译:平衡和非平衡分子动力学模拟对SPC / E水剪切粘度的参数依赖性

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摘要

A parametric dependent study is crucial for the accurate determination of transport coefficients such as shear viscosity. In this study, we calculate the shear viscosity of extended simple point charge water using a transverse current auto-correlation function (TCAF) from equilibrium molecular dynamics (EMD) and the periodic perturbation method from non-equilibrium molecular dynamics (NEMD) simulations for varying coupling time and system sizes. Results show that the shear viscosity calculated using EMD simulations with different thermostats varies significantly with coupling times and system size. The use of Berendsen and velocity-rescale thermostats in NEMD simulations generates a significant drift from the target temperature and results in an inconsistent shear viscosity with coupling time and system size. The use of Nosé-Hoover thermostat in NEMD simulations offers thermodynamic stability which results in a consistent shear viscosity for various coupling times and system sizes.
机译:参数相关研究对于准确确定传输系数(例如剪切粘度)至关重要。在这项研究中,我们使用平衡分子动力学(EMD)的横向电流自相关函数(TCAF)和非平衡分子动力学(NEMD)模拟的周期性扰动方法,计算扩展单点电荷水的剪切粘度耦合时间和系统尺寸。结果表明,使用EMD模拟和不同的恒温器计算得出的剪切粘度会随着耦合时间和系统尺寸的变化而显着变化。 NEMD模拟中使用Berendsen和速度调节恒温器会使目标温度产生明显的漂移,并导致剪切粘度与耦合时间和系统尺寸不一致。在NEMD模拟中使用Nosé-Hoover恒温器可提供热力学稳定性,从而在各种耦合时间和系统尺寸下均具有一致的剪切粘度。

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