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压力管道结构建模中不确定性与全局敏感性分析的综合方法。

An integrated approach to uncertainty and global sensitivity analysis in penstock structural modeling.

作者信息

Haddouch Manal, Hajjout Imane, Boudi El Mostapha

机构信息

Department of Mechanical Engineering, Mohammadia School of Engineering, Avenue Ibn Sina B.P 765, Agdal, Rabat, 10090, Morocco.

Renewable Energies Laboratory, Energy and Farm Machinery Department, Hassan-II Agronomic and Veterinary Institute, Madinat Al Irfane, Rabat, 6202, Morocco.

出版信息

Heliyon. 2024 Dec 12;11(1):e41049. doi: 10.1016/j.heliyon.2024.e41049. eCollection 2025 Jan 15.

Abstract

Enhanced penstock structural models significantly advance hydropower engineering, yet their increasing complexity introduces challenges. As model interactions intensify, predictability and comprehensibility decrease, complicating the evaluation of model accuracy and alignment with operational performance metrics and safety standards. This issue is particularly pronounced in dynamic modeling, where knowledge gaps hinder straightforward validation via observational data. Traditional techniques for model calibration and validation are becoming impractical, necessitating a strategic approach to prioritize sources of uncertainty related to critical response variability. This study aims to advance our understanding and management of structural variabilities in penstock models by developing a comprehensive, step-by-step Global Sensitivity Analysis (GSA), designed to meet the specific needs of penstock modeling. Illustrated through a free vibration analysis model of a penstock span, this structured methodology begins with Uncertainty Analysis (UA) to identify variabilities, followed by a screening phase using the Morris method to enhance computational efficiency. Subsequent application of multi-method GSA ranks parameter sensitivities, assesses robustness, and provides a comparative evaluation, providing insights into the effective tools for conducting GSA on penstock models. The process culminates with Regional Sensitivity Analysis (RSA), targeting local sensitivities and enhancing understanding of local parameter influences, thereby supporting model adjustments and design optimization. Results from this application characterize model sensitivities for the most prominent mode shapes to specific structural parameters and indicate that these sensitivity outcomes are influenced by variability in parameter spaces and output sub-range definitions. This study provides a practical framework for addressing uncertainties in penstock design, enhancing model accuracy, prioritizing parameters, managing risks, and improving the reliability and efficiency of hydropower infrastructure.

摘要

增强型压力管道结构模型显著推动了水电工程的发展,但其日益增加的复杂性也带来了挑战。随着模型相互作用的加剧,可预测性和可理解性降低,使得评估模型准确性以及与运行性能指标和安全标准的一致性变得复杂。这个问题在动态建模中尤为突出,因为知识差距阻碍了通过观测数据进行直接验证。传统的模型校准和验证技术正变得不切实际,因此需要一种战略方法来优先处理与关键响应变异性相关的不确定性来源。本研究旨在通过开发一种全面的、逐步的全局敏感性分析(GSA)来推进我们对压力管道模型结构变异性的理解和管理,该分析旨在满足压力管道建模的特定需求。通过压力管道跨度的自由振动分析模型进行说明,这种结构化方法首先进行不确定性分析(UA)以识别变异性,然后使用莫里斯方法进行筛选阶段以提高计算效率。随后应用多方法GSA对参数敏感性进行排序、评估稳健性并提供比较评估,从而深入了解对压力管道模型进行GSA的有效工具。该过程以区域敏感性分析(RSA)告终,针对局部敏感性并增强对局部参数影响的理解,从而支持模型调整和设计优化。此应用的结果表征了最突出振型对特定结构参数的模型敏感性,并表明这些敏感性结果受参数空间变异性和输出子范围定义的影响。本研究为解决压力管道设计中的不确定性、提高模型准确性、确定参数优先级、管理风险以及提高水电基础设施的可靠性和效率提供了一个实用框架。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/35bb/11721237/4e6374ab3b22/gr1.jpg

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