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Pairwise adaptive thermostats for improved accuracy and stability in dissipative particle dynamics

机译:成对自适应恒温器,可提高耗散粒子动力学的准确性和稳定性

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We examine the formulation and numerical treatment of dissipative particle dynamics (DPD) and momentum-conserving molecular dynamics. We show that it is possible to improve both the accuracy and the stability of DPD by employing a pairwise adaptive Langevin thermostat that precisely matches the dynamical characteristics of DPD simulations (e.g., autocorrelation functions) while automatically correcting thermodynamic averages using a negative feedback loop. In the low friction regime, it is possible to replace DPD by a simpler momentum-conserving variant of the Nose-Hoover-Langevin method based on thermostatting only pairwise interactions; we show that this method has an extra order of accuracy for an important class of observables (a superconvergence result), while also allowing larger timesteps than alternatives. All the methods mentioned in the article are easily implemented. Numerical experiments are performed in both equilibrium and nonequilibrium settings; using Lees-Edwards boundary conditions to induce shear flow. (C) 2016 The Author(s). Published by Elsevier Inc.
机译:我们研究了耗散粒子动力学(DPD)和动量守恒分子动力学的公式和数值处理。我们表明,通过使用成对的自适应Langevin温控器,可以精确地匹配DPD模拟的动态特性(例如,自相关函数),同时使用负反馈环路自动校正热力学平均值,从而可以提高DPD的准确性和稳定性。在低摩擦状态下,可以使用仅基于成对相互作用的,更简单的Nose-Hoover-Langevin方法的动量守恒变量来替代DPD。我们表明,对于一类重要的可观测对象(超收敛结果),该方法具有额外的精度等级,同时还比其他方法具有更大的时间步长。本文中提到的所有方法都易于实现。在平衡和非平衡条件下均进行了数值实验。使用Lees-Edwards边界条件诱导剪切流。 (C)2016作者。由Elsevier Inc.发布

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