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PARALLELIZATION OF A LARGE SCALE HYDROCARBON POOL FIRE IN THE UINTAH PSE

机译:犹他州PSE大型油气库火灾的并行化

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摘要

Realistic simulation of complicated systems such as large-scale pool fires requires the representation of relevant physical processes such as turbulent reacting flows, convective and radiative heat transfer, and fundamental gas-phase chemistry. Resolution of the length and time scales responsible for controlling the dynamic features of fire are also required to capture important fire physics. Resolving these length and time scales, however, requires massively parallel computations. To achieve coupling of these complicated processes in a massively parallel environment, software components that reuse physics-based, legacy fire codes (written in Fortran) are developed and integrated with Uintah, a component-based, visual Problem Solving Environment (PSE). Uintah provides the framework for large-scale parallelization for different applications. The integration of the new fire code in Uintah is built on three principles: 1) Develop different, reusable, physics-based components that can be used interchangeably and interact with other components, 2) reuse the legacy fire code as much as possible, and 3) use components developed by third parties, specifically non-linear and linear solvers designed for solving complex-flow problems. The simulation of a 10-m heptane pool fire illustrates the parallel scalability obtained with the integrated fire code. Linear scalability to 1000 processors is obtained on the SGI Origin 2000 at Los Alamos National Laboratory.
机译:对复杂系统(例如大规模水池火灾)的真实模拟需要表示相关的物理过程,例如湍流反应流,对流和辐射换热以及基本的气相化学反应。还需要解析负责控制火的动态特征的长度和时间尺度,以捕获重要的火物理学。然而,解决这些长度和时间尺度需要大量的并行计算。为了在大规模并行环境中实现这些复杂过程的耦合,开发了可重用基于物理的旧式防火代码(用Fortran编写)的软件组件,并将其与基于组件的可视化问题解决环境(PSE)Uintah集成在一起。 Uintah提供了用于不同应用程序的大规模并行化的框架。在Uintah中将新的火警代码集成基于以下三个原则:1)开发不同的,可重用的,基于物理的组件,这些组件可以互换使用并与其他组件交互; 2)尽可能重用旧的火警代码;以及3)使用第三方开发的组件,特别是为解决复杂流问题而设计的非线性和线性求解器。 10 m庚烷池火的仿真说明了使用集成火代码获得的并行可伸缩性。在Los Alamos国家实验室的SGI Origin 2000上可以线性扩展到1000个处理器。

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