基于POD的非线性有限元模拟油田替代模型评价

de Gooijer, Boukje M., Havinga, Jos, Geijselaers, Hubert J. M., van den Boogaard, Anton H.
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引用次数: 10

摘要

代理建模是一种强大的工具,可以取代计算昂贵的非线性数值模拟,具有快速表示,用于逆分析,基于模型的控制或优化。对于某些问题,需要代理模型描述完整的输出字段。为了构建这样的代理模型,可以使用适当的正交分解(POD)来降低输出数据的维数。代理模型的准确性很大程度上取决于用于准备数据以进行降维的(预)处理操作。在这项工作中,基于pod的代理模型与径向基函数插值被用于建模高维有限元数据场。系统地研究了各种预处理方法对结果场精度的影响。比较了现有的几种代理模型构建方法,提出了一种新的方法。特别注意由几个物理含义组成的数据字段,例如位移、应变和应力。对由于截断引起的误差和由于数据插值引起的误差进行了区分。研究发现,按物理部分对数据进行缩放可以大大提高代理模型的准确性。
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Evaluation of POD based surrogate models of fields resulting from nonlinear FEM simulations
Surrogate modelling is a powerful tool to replace computationally expensive nonlinear numerical simulations, with fast representations thereof, for inverse analysis, model-based control or optimization. For some problems, it is required that the surrogate model describes a complete output field. To construct such surrogate models, proper orthogonal decomposition (POD) can be used to reduce the dimensionality of the output data. The accuracy of the surrogate models strongly depends on the (pre)processing actions that are used to prepare the data for the dimensionality reduction. In this work, POD-based surrogate models with Radial Basis Function interpolation are used to model high-dimensional FE data fields. The effect of (pre)processing methods on the accuracy of the result field is systematically investigated. Different existing methods for surrogate model construction are compared with a novel method. Special attention is given to data fields consisting of several physical meanings, e.g. displacement, strain and stress. A distinction is made between the errors due to truncation and due to interpolation of the data. It is found that scaling the data per physical part substantially increases the accuracy of the surrogate model.
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来源期刊
Advanced Modeling and Simulation in Engineering Sciences
Advanced Modeling and Simulation in Engineering Sciences Engineering-Engineering (miscellaneous)
CiteScore
6.80
自引率
0.00%
发文量
22
审稿时长
30 weeks
期刊介绍: The research topics addressed by Advanced Modeling and Simulation in Engineering Sciences (AMSES) cover the vast domain of the advanced modeling and simulation of materials, processes and structures governed by the laws of mechanics. The emphasis is on advanced and innovative modeling approaches and numerical strategies. The main objective is to describe the actual physics of large mechanical systems with complicated geometries as accurately as possible using complex, highly nonlinear and coupled multiphysics and multiscale models, and then to carry out simulations with these complex models as rapidly as possible. In other words, this research revolves around efficient numerical modeling along with model verification and validation. Therefore, the corresponding papers deal with advanced modeling and simulation, efficient optimization, inverse analysis, data-driven computation and simulation-based control. These challenging issues require multidisciplinary efforts – particularly in modeling, numerical analysis and computer science – which are treated in this journal.
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