首页> 外文会议>ASME Joint US-European Fluids Engineering Division summer meeting;FEDSM2010 >THERMAL HYDRAULICS STRUCTURAL UNCERTAINTY ANALYSIS; APPROACHES AND CHALLENGES
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THERMAL HYDRAULICS STRUCTURAL UNCERTAINTY ANALYSIS; APPROACHES AND CHALLENGES

机译:热工液压结构不确定性分析;方法和挑战

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Model uncertainty is a relatively new topic of discussion in TH code calculations, despite being often the major contributor to the overall uncertainty and a challenging practice in uncertainty analysis. The Integrated thermal-hydraulics uncertainty analysis (IMTHUA) methodology, developed by the authors, treats the TH code structural uncertainties (generally known as model uncertainty) explicitly by treating internal sub-model uncertainties, and by propagating such model uncertainties in the code calculations, including uncertainties about input parameters. This paper presents systematic model uncertainty of thermal-hydraulics system codes as part of IMTHUA methodology. The objective is to demonstrate effectiveness and practicality of the methodology on complex thermal-hydraulics system codes calculations and discuss the challenges dealing with these types of uncertainty sources. TH codes are an assembly of models and correlations for simulation of physical phenomena and behavior of system parameters in temporal domain. In some cases, there are alternative sub-models, or several different correlations for calculation of a specific phenomenon of interest. There are also "user options" for choosing one of several models or correlations in performing a specific code computation. Dynamic characteristics of TH calculations add more complexity to the code calculation, meaning for example, that specific code models and correlations invoked are sequence-dependent, and based certain (dynamic) conditions being satisfied. Structural uncertainty assessment (model uncertainty) for a single model will be discussed by considering "correction factor", "bias" , and also through Bayesian sub-model output updating with available experimental evidence. In case of multiple alternative models, several techniques including dynamic model switching, user controlledmodel selection, model mixing, will be discussed. This paper discusses the challenges in treatment of the structural uncertainties in Thermal-Hydraulics system codes. Subjectivity and dependency on expert judgment in some of the solutions leaves some concerns on context of such systematic solutions to utilize imperfect and partially relevant data and information.
机译:模型不确定性是TH代码计算中一个相对较新的讨论主题,尽管它通常是导致总体不确定性的主要因素,并且是不确定性分析中具有挑战性的实践。作者开发的综合热工液压不确定性分析(IMTHUA)方法通过处理内部子模型不确定性并在代码计算中传播此类模型不确定性来显式处理TH代码的结构不确定性(通常称为模型不确定性),包括有关输入参数的不确定性。作为IMTHUA方法的一部分,本文介绍了热工液压系统代码的系统模型不确定性。目的是证明该方法在复杂的热工液压系统代码计算中的有效性和实用性,并讨论应对这类不确定性源的挑战。 TH代码是模型和相关性的组合,用于在时域中模拟物理现象和系统参数的行为。在某些情况下,存在替代子模型或几种不同的相关性,用于计算特定的关注现象。还有“用户选项”,用于在执行特定代码计算时选择几种模型或相关性之一。 TH计算的动态特性增加了代码计算的复杂性,例如,这意味着所调用的特定代码模型和相关性是与序列相关的,并且满足某些(动态)条件。单个模型的结构不确定性评估(模型不确定性)将通过考虑“校正因子”,“偏差”以及通过使用可用实验证据进行贝叶斯子模型输出更新来讨论。如果有多个替代模型,则包括动态模型切换,用户控制在内的多种技术 将讨论模型选择,模型混合。本文讨论了在热工-液压系统代码中处理结构不确定性的挑战。在某些解决方案中,主观性和对专家判断的依赖性使人们对这种系统性解决方案的上下文产生了担忧,这些系统性解决方案利用了不完善的和部分相关的数据和信息。

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