首页> 外文期刊>International journal for uncertainty quantifications >INFERENCE AND UNCERTAINTY PROPAGATION OF ATOMISTICALLY INFORMED CONTINUUM CONSTITUTIVE LAWS, PART 2: GENERALIZED CONTINUUM MODELS BASED ON GAUSSIAN PROCESSES
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INFERENCE AND UNCERTAINTY PROPAGATION OF ATOMISTICALLY INFORMED CONTINUUM CONSTITUTIVE LAWS, PART 2: GENERALIZED CONTINUUM MODELS BASED ON GAUSSIAN PROCESSES

机译:知觉的连续本构定律的推论和不确定性传播,第2部分:基于高斯过程的广义连续模型

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Constitutive models in nanoscience and engineering often poorly represent the physics due to significant deviations in model form from their macroscale counterparts. In Part 1 of this study, this problem was explored by considering a continuum scale heat conduction constitutive law inferred directly from molecular dynamics (MD) simulations. In contrast, this work uses Bayesian inference based on the MD data to construct a Gaussian process emulator of the heat flux as a function of temperature and temperature gradient. No assumption of Fourier-like behavior is made, requiring alternative approaches to assess the well-posedness and accuracy of the emulator. Validation is provided by comparing continuum scale predictions using the emulator model against a larger all-MD simulation representing the true solution. The results show that a Gaussian process emulator of the heat conduction constitutive law produces an empirically unbiased prediction of the continuum scale temperature field for a variety of time scales, which was not observed when Fourier's law is assumed to hold. Finally, uncertainty is propagated in the continuum model and quantified in the temperature field so the impact of errors in the model on continuum quantities can be determined.
机译:纳米科学和工程学中的本构模型通常无法很好地表示物理学,这是由于模型形式与宏观模型的显着差异所致。在本研究的第1部分中,通过考虑直接从分子动力学(MD)模拟推断出的连续尺度热传导本构定律来探索此问题。相比之下,这项工作使用基于MD数据的贝叶斯推断来构造热通量随温度和温度梯度变化的高斯过程仿真器。没有做出类似傅立叶行为的假设,需要其他方法来评估仿真器的良好状态和准确性。通过将使用仿真器模型的连续体规模预测与代表真实解决方案的较大的全MD仿真进行比较,可以提供验证。结果表明,热本构方程的高斯过程仿真器在各种时间尺度上都对连续体尺度温度场产生了经验上无偏的预测,而在假定傅立叶定律成立时并未观察到。最后,不确定性在连续模型中传播并在温度场中量化,因此可以确定模型中的误差对连续量的影响。

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