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首页> 外文期刊>ASCE-ASME Journal of Risk and Uncertainty in Engineering Systems, Part B. Mechanical Engineering >Quantifying Parameter Sensitivity and Uncertainty for Interatomic Potential Design: Application to Saturated Hydrocarbons
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Quantifying Parameter Sensitivity and Uncertainty for Interatomic Potential Design: Application to Saturated Hydrocarbons

机译:用于间隙潜在设计的参数灵敏度和不确定性:饱和烃的应用

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摘要

The research objective herein is to understand the relationships between the interatomic potential parameters and properties used in the training and validation of potentials, specifically using a recently developed modified embedded-atom method (MEAM) potential for saturated hydrocarbons (C–H system). This potential was parameterized to a training set that included bond distances, bond angles, and atomization energies at 0?K of a series of alkane structures from methane to n-octane. In this work, the parameters of the MEAM potential were explored through a fractional factorial design and a Latin hypercube design to better understand how individual MEAM parameters affected several properties of molecules (energy, bond distances, bond angles, and dihedral angles) and also to quantify the relationship/correlation between various molecules in terms of these properties. The generalized methodology presented shows quantitative approaches that can be used in selecting the appropriate parameters for the interatomic potential, selecting the bounds for these parameters (for constrained optimization), selecting the responses for the training set, selecting the weights for various responses in the objective function, and setting up the single/multi-objective optimization process itself. The significance of the approach applied in this study is not only the application to the C–H system but that the broader framework can also be easily applied to any number of systems to understand the significance of parameters, their relationships to properties, and the subsequent steps for designing interatomic potentials under uncertainty.
机译:本文的研究目的是了解在训练和验证的潜在培训和验证中使用的间隙潜在参数和性质之间的关系,具体使用最近开发的饱和碳氢化合物(C-H系统)的电位。将该电位参数化为训练集,其包括从甲烷到正辛烷的一系列烷烃结构的粘合距离,键合角和0·k的雾化能量。在这项工作中,通过分数阶乘设计和拉丁超立方体设计探索了MEAM潜力的参数,以更好地了解单个MEAM参数如何影响分子的几种性质(能量,粘合距离,键角和二向角度)以及在这些性质方面量化各种分子之间的关系/相关性。呈现的广义方法示出了可以用于选择适当参数的定量方法,用于为开网势选择适当的参数,选择这些参数的界限(用于约束优化),选择训练集的响应,选择目标中的各种响应的权重功能,并设置单个/多目标优化过程本身。本研究中应用的方法的重要性不仅可以应用于C-H系统,而且更广泛的框架也可以很容易地应用于任何数量的系统,以了解参数的重要性,它们与属性的关系,以及随后的在不确定性下设计内部电位的步骤。

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