Harting Jens, Chin Jonathan, Venturoli Maddalena, Coveney Peter V
Institute for Computational Physics, University of Stuttgart, Stuttgart, Germany.
Philos Trans A Math Phys Eng Sci. 2005 Aug 15;363(1833):1895-915. doi: 10.1098/rsta.2005.1618.
During the last 2.5 years, the RealityGrid project has allowed us to be one of the few scientific groups involved in the development of computational Grids. Since smoothly working production Grids are not yet available, we have been able to substantially influence the direction of software and Grid deployment within the project. In this paper, we review our results from large-scale three-dimensional lattice Boltzmann simulations performed over the last 2.5 years. We describe how the proactive use of computational steering, and advanced job migration and visualization techniques enabled us to do our scientific work more efficiently. The projects reported on in this paper are studies of complex fluid flows under shear or in porous media, as well as large-scale parameter searches, and studies of the self-organization of liquid cubic mesophases.
在过去的两年半时间里,RealityGrid项目使我们成为参与计算网格开发的少数科学团队之一。由于尚未有稳定运行的生产网格,我们得以在很大程度上影响项目内软件和网格部署的方向。在本文中,我们回顾了过去两年半里进行的大规模三维格子玻尔兹曼模拟的结果。我们描述了如何通过积极使用计算引导、先进的作业迁移和可视化技术,使我们能够更高效地开展科研工作。本文所报道的项目包括对剪切作用下或多孔介质中复杂流体流动的研究、大规模参数搜索以及液体立方中间相自组织的研究。