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使用标准和能量守恒耗散粒子动力学方法从爱因斯坦 - 赫尔芬德关系得出的输运系数。

Transport coefficients from Einstein-Helfand relations using standard and energy-conserving dissipative particle dynamics methods.

作者信息

Malaspina D C, Lísal M, Larentzos J P, Brennan J K, Mackie A D, Avalos J Bonet

机构信息

Departament d'Enginyeria Química, ETSEQ, Universitat Rovira i Virgili, Tarragona 43007, Spain.

Department of Molecular and Mesoscopic Modelling, The Czech Academy of Sciences, Institute of Chemical Process Fundamentals, Prague 16501, Czech Republic.

出版信息

Phys Chem Chem Phys. 2023 May 3;25(17):12025-12040. doi: 10.1039/d2cp04838h.

DOI:10.1039/d2cp04838h
PMID:37082893
Abstract

In this article we demonstrate that contrary to general belief, the standard Einstein-Helfand (EH) formulas are valid for the evaluation of transport coefficients of systems containing dissipative and random forces provided that for these mesoscopic systems: (i) the corresponding conservation laws are satisfied, and (ii) the transition probabilities satisfy detailed balance. Dissipative particle dynamics (DPD) and energy-conserving DPD methods (DPDE), for instance, are archetypical of such mesoscopic approaches satisfying these properties. To verify this statement, we have derived a mesoscopic heat flux form for the DPDE method, suitable for the calculation of the thermal conductivity from an EH expression. We have compared EH measurements against non-equilibrium simulation values for different scenarios, including many-body potentials, and have found excellent agreement in all cases. The expressions are valid notably for systems with density- and temperature-dependent potentials, such as the recently developed generalised DPDE method (GenDPDE) [Avalos , , 2019, , 24891]. We thus demonstrate that traditional EH formulas in equilibrium simulations can be widely used to obtain transport coefficients, provided that the appropriate expression for the associated flux is used.

摘要

在本文中,我们证明,与普遍看法相反,标准的爱因斯坦 - 赫尔芬德(EH)公式对于评估包含耗散力和随机力的系统的输运系数是有效的,前提是对于这些介观系统:(i)满足相应的守恒定律,并且(ii)跃迁概率满足细致平衡。例如,耗散粒子动力学(DPD)和能量守恒的DPD方法(DPDE)就是满足这些性质的此类介观方法的典型代表。为了验证这一说法,我们为DPDE方法推导了一种介观热流形式,适用于根据EH表达式计算热导率。我们将EH测量值与不同情况下(包括多体势)的非平衡模拟值进行了比较,发现在所有情况下都有很好的一致性。这些表达式尤其适用于具有密度和温度依赖势的系统,例如最近开发的广义DPDE方法(GenDPDE)[阿瓦洛斯,,2019,,24891]。因此,我们证明,在平衡模拟中,只要使用相关通量的适当表达式,传统的EH公式就可以广泛用于获得输运系数。

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