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Bayesian uncertainty analysis of inversion models applied to the inference of thermal properties of walls

机译:贝叶斯的不确定性分析应用于墙壁热特性推理的逆转模型

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In this work, we propose a fully Bayesian uncertainty analysis of the indirect measurement of thermal properties of walls from in situ temperature and flux measurements, obtained with an active method, using a one dimensional transient thermal model. We show that this approach is able to take into account the uncertainty of the inputs of the thermal model and the uncertainty of the output observations, for a more reliable uncertainty estimation of the calibration parameters and any derived quantity. For this problem, we improve the classical Bayesian inversion model by taking into account underestimated uncertainty on reported output observations, which is a frequently encountered issue in practice. We provide some recommendations for a wider applicability of the method. We illustrate the principles of uncertainty evaluation of the Guide to the Expression of Uncertainty in Measurement in terms of a real case study to evaluate the thermal resistance of a multilayer wall placed in a climatic chamber. For this application, we compare results of the Bayesian inversion with classical steady-state results in compara-ble experimental conditions. We perform a sensitivity analysis to study the effect of duration, input uncertainties and excess variance prior, and we make recommendations. R code is made available that enables a Bayesian uncertainty evaluation of inversion models for related applications. (c) 2021 Elsevier B.V. All rights reserved.
机译:在这项工作中,我们使用一维瞬态热模型提出了一种完全贝叶斯的不确定性分析,从原位温度和磁通测量中获得墙壁的热性能的间接测量。我们表明这种方法能够考虑热模型输入的不确定性和输出观测的不确定性,以便更可靠地对校准参数和任何导出量的不确定性估计。对于这个问题,我们通过考虑到报告的产出观察的低估不确定性,改善了古典贝叶斯反演模型,这是在实践中经常遇到的问题。我们为该方法的更广泛适用性提供了一些建议。我们说明了对测量中的不确定性表达的指南的不确定度评价原理,以评估放置在气候室中的多层壁的热阻。对于此申请,我们将贝叶斯反演的结果与经典稳态结果相比,比较 - BLE实验条件。我们进行敏感性分析,以研究持续时间,输入不确定性和过度方差的效果,我们提出建议。 R代码可用,使贝叶斯的不确定性对相关申请的反转模型进行评估。 (c)2021 elestvier b.v.保留所有权利。

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