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Towards improved capability and confidence in coupled atmospheric and wildland fire modeling.

机译:增强对大气和野外火灾耦合建模的能力和信心。

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摘要

This dissertation work is aimed at improving the capability and confidence in a modernized and improved version of Los Alamos National Laboratory's coupled atmospheric and wild- land fire dynamics model, Higrad-Firetec. Higrad is the hydrodynamics component of this large eddy simulation model that solves the three dimensional, fully compressible Navier-Stokes equations, incorporating a dynamic eddy viscosity formulation through a two-scale turbulence closure scheme. Firetec is the vegetation, drag forcing, and combustion physics portion that is integrated with Higrad. The modern version of Higrad-Firetec incorporates multiple numerical methodologies and high performance computing aspects which combine to yield a unique tool capable of augmenting theoretical and observational investigations in order to better understand the multi-scale, multi-phase, and multi-physics, phenomena involved in coupled atmospheric and environmental dynamics. More specifically, the current work includes extended functionality and validation efforts targeting component processes in coupled atmospheric and wildland fire scenarios. Since observational data of sufficient quality and resolution to validate the fully coupled atmosphere-wildfire scenario simply does not exist, we instead seek to validate components of the full prohibitively convoluted process. This manuscript provides first, an introduction and background into the application space of Higrad-Firetec. Second we document the model formulation, solution procedure, and a simple scalar transport verification exercise. Third, we perform a validate model results against observational data for time averaged flow field metrics in and above four idealized forest canopies. Fourth, we carry out a validation effort for the non-buoyant jet in a crossflow scenario (to which an analogy can be made for atmosphere-wildfire interactions) comparing model results to laboratory data of both steady-in-time and unsteady-in-time metrics. Finally, an extension of model multi-phase physics is implemented, allowing for the representation of multiple collocated fuels as separately evolving constituents leading to differences resulting rate of spread and total burned area. In combination these efforts demonstrate improved capability, increased validation of component functionality, and unique applicability the Higrad-Firetec modeling framework. As a result this work provides a substantially more robust foundation for future new, more widely acceptable investigations into the complexities of coupled atmospheric and wildland fire behavior.
机译:这篇论文的目的是提高对洛斯阿拉莫斯国家实验室的大气和野火耦合动力学模型Higrad-Firetec进行现代化改进的能力和信心。 Higrad是这个大型涡流仿真模型的流体力学组成部分,它解决了三维可完全压缩的Navier-Stokes方程,并通过两级湍流闭合方案结合了动态涡流粘度公式。 Firetec是与Higrad集成的植被,阻力和燃烧物理部分。现代版本的Higrad-Firetec融合了多种数值方法论和高性能计算方面,两者结合产生了一种独特的工具,能够增强理论和观察研究的能力,以便更好地理解多尺度,多阶段和多物理现象。参与大气和环境动力学耦合。更具体地说,当前的工作包括针对大气和野外火灾场景中的组件过程的扩展功能和验证工作。由于根本没有足够的质量和分辨率的观测数据来验证完全耦合的大气-野火场景,因此我们试图验证整个令人费解的旋涡过程的组成部分。该手稿首先提供了Higrad-Firetec的应用空间的介绍和背景。其次,我们记录模型公式,求解程序和简单的标量运输验证练习。第三,我们针对四个理想化林冠层及以上的时间平均流场指标,针对观测数据执行验证模型结果。第四,我们对横流情况下的非浮力射流进行了验证工作(可以对大气-野火相互作用进行类比),将模型结果与稳定时间和不稳定时间的实验室数据进行比较时间指标。最后,实现了模型多相物理的扩展,允许将多种并置的燃料表示为单独演化的成分,从而导致扩散率和总燃烧面积的差异。这些努力共同证明了Higrad-Firetec建模框架具有增强的功能,增强的组件功能验证以及独特的适用性。结果,这项工作为未来对大气与野火耦合行为的复杂性进行新的,更广泛接受的研究奠定了坚实的基础。

著录项

  • 作者

    Sauer, Jeremy A.;

  • 作者单位

    The Florida State University.;

  • 授予单位 The Florida State University.;
  • 学科 Geophysics.;Meteorology.;Atmospheric sciences.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 129 p.
  • 总页数 129
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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