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Unstructured Grid Adaptation: Status, Potential Impacts, and Recommended Investments Toward CFD Vision 2030

机译:非结构化网格适应:现状,潜在影响和对CFD愿景2030的建议投资

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Unstructured grid adaptation is a powerful tool to control Computational Fluid Dynamics (CFD) discretization error. It has enabled key increases in the accuracy, automation, and capacity of some fluid simulation applications. Slotnick et al. provide a number of case studies in the CPD Vision 2030 Study: A Path to Revolutionary Computational Aerosciences to illustrate the current state of CFD capability and capacity. The study authors forecast the potential impact of emerging High Performance Computing (HPC) environments forecast in the year 2030 and identify that mesh generation and adaptivity will continue to be significant bottlenecks in the CFD workflow. These bottlenecks may persist because very little government investment has been targeted in these areas. To motivate investment, the impacts of improved grid adaptation technologies are identified. The CFD Vision 2030 Study roadmap and anticipated capabilities in complementary disciplines are quoted to provide context for the progress made in grid adaptation in the past fifteen years, current status, and a forecast for the next fifteen years with recommended investments. These investments are specific to mesh adaptation and impact other aspects of the CFD process. Finally, a strategy is identified to diffuse grid adaptation technology into production CFD work flows.
机译:非结构化网格自适应是控制计算流体动力学(CFD)离散化误差的强大工具。它已使某些流体模拟应用程序的准确性,自动化和处理能力得到了关键性的提高。 Slotnick等。在《 2030年CPD愿景研究:通向革命性计算航空科学的道路》中提供了许多案例研究,以说明CFD能力的现状。该研究的作者预测了2030年新兴的高性能计算(HPC)环境的潜在影响,并确定网格的生成和适应性将继续成为CFD工作流程中的重大瓶颈。这些瓶颈可能会持续存在,因为针对这些领域的政府投资很少。为了激励投资,确定了改进的电网适应技术的影响。引用《 CFD愿景2030研究路线图》和补充学科的预期功能,以提供过去15年电网适应进展,当前状态以及对未来15年的预测(建议投资)的背景信息。这些投资专门用于网格自适应,并且会影响CFD过程的其他方面。最后,确定了一种将网格自适应技术推广到生产CFD工作流程中的策略。

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