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Fast and green parallel isogeometric analysis computations for multi-objective optimization of liquid fossil fuel reserve exploitation with minimal groundwater contamination

机译:快速,绿色并行等几何分析计算,用于多目标优化液态化石燃料储量的开采,并减少了地下水污染

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We present a general optimization technique to minimize the execution time, energy consumption, and numerical error of a parallel isogeometric finite element method (IGA-FEM) solver for time-dependent problems. The IGA-FEM solver is called upon multiple times during inverse problem computations. It is used to evaluate the inverse problem parameters. As an exemplary challenging problem, we consider the IGA-FEM solver as a primal solver for the inverse optimization of hydraulic fracking. Liquid Fossil Fuel Extraction Problem (LFFEP) is defined to maximize extraction and minimize contamination for the hydraulic fracking process. Solving the LFFEP problem requires hundreds of computationally demanding calls to the IGA-FEM solver. Thus, we research the optimal configuration of the IGA-FEM solver to make computations more efficient; i.e., to reduce computation time and energy consumption where the input parameters are the number of utilized CPUs in a parallel environment, mesh size, and B-spline order. The algorithm presented in this paper can be used to optimize any similar time-dependent IGA-FEM simulation. (C) 2019 Elsevier Inc. All rights reserved.
机译:我们提出一种通用的优化技术,以最大程度地减少针对时间相关问题的并行等几何有限元方法(IGA-FEM)求解器的执行时间,能耗和数值误差。在逆问题计算期间,会多次调用IGA-FEM解算器。它用于评估反问题参数。作为一个具有挑战性的示例性问题,我们认为IGA-FEM求解器是用于水力压裂反优化的主要求解器。定义了液态化石燃料提取问题(LFFEP),以最大程度地提取水力压裂工艺,并最大程度地减少污染。解决LFFEP问题需要对IGA-FEM求解器进行数百次计算量大的调用。因此,我们研究了IGA-FEM求解器的最佳配置,以提高计算效率。即,在输入参数为并行环境中使用的CPU数量,网格大小和B样条顺序的情况下,减少计算时间和能耗。本文提出的算法可用于优化任何类似的与时间相关的IGA-FEM仿真。 (C)2019 Elsevier Inc.保留所有权利。

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