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An Efficient HPC Framework for Parallel Long-Time and Large-Scale Simulation of a Class of Anomalous Single-Phase Models

机译:用于一类异常单相模型的并行长期和大规模仿真的高效HPC框架

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摘要

Anomalous sub-diffusion models are currently considered to be efficient for characterization of complex single - (and hence multi -) phase fluid flow in reservoir simulations. For simulation of such models in three space dimensions, typically, millions of degree of freedoms (DoF) are required to resolve multiscale features in reservoirs. Further, the key quantity of interest is on long-time behavior of reservoirs. Consequently, standard time-stepping serial algorithms are not practical. In this article, we develop a high performance computing (HPC) framework to efficiently simulate a class of anomalous sub-diffusion models. The framework is based on hybrid parallel-in-time and parallel-in-space multiple message passing interface (MPI) communicators and efficient load balancing techniques, in conjunction with efficient discretization of the continuous local and non-local operators in the sub-diffusion models.
机译:目前,反常子扩散模型被认为在表征油藏模拟中复杂的单相(因而是多相)流体流方面非常有效。为了在三个空间维度上仿真此类模型,通常需要数百万个自由度(DoF)才能解析储层中的多尺度特征。此外,关注的关键数量在于储层的长期行为。因此,标准的时间步进串行算法不切实际。在本文中,我们开发了一个高性能计算(HPC)框架来有效地模拟一类异常的子扩散模型。该框架基于混合并行时间和空间并行多消息传递接口(MPI)通信器以及有效的负载平衡技术,并结合了子扩散中连续本地和非本地运算符的有效离散化楷模。

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