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Computation of Nonequilibrium High-Temperature Axisymmetric Boundary-Layer Flows

机译:非平衡高温轴对称边界层流的计算

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摘要

Efficient and accurate Hermitian-type multipoint finite difference methods are used to develop a general boundary-layer code for analyzing reacting flows around bodies of revolution. The main motivation is to build a reliable code that can be used for the investigation of the influence of different physico-chemical models for transport properties, chemical kinetics, and finite rate wall catalysis on practically relevant quantities like heat flux and skin friction at the body surface. Special care has been devoted to the correct modeling of diffusion fluxes, an aspect that is often neglected in literature. The exact Stefan-Maxwell equations are used to model the diffusion fluxes and are solved with an efficient iterative technique. Finite rate catalysis is an important aspect of thermal protection system (TPS) materials studies, for which a boundary-layer code is a very useful tool because it allows the computation of the heat flux at a cost that is a fraction of a Navier-Stokes approach. Wall catalyticity effects are taken into account by means of a model that allows one to express a suitable set of wall reactions with the associated reaction-rate probabilities. Computations performed on a variety of problems and the results shown here on some typical test cases indicate the ability and reliability of the code to cope with a wide range of nonequilibrium conditions, making it a potentially useful tool for physico-chemical and TPS material studies.
机译:高效,准确的Hermitian型多点有限差分方法用于开发通用的边界层代码,用于分析旋转体周围的反应流。主要动机是建立一个可靠的代码,该代码可用于研究不同物理化学模型对运输特性,化学动力学和有限速率壁催化对实际相关量(如人体的热通量和皮肤摩擦)的影响表面。一直特别注意扩散通量的正确建模,这在文献中经常被忽略。精确的Stefan-Maxwell方程用于建模扩散通量,并通过有效的迭代技术求解。有限速率催化是热防护系统(TPS)材料研究的一个重要方面,边界层代码是非常有用的工具,因为它允许以仅Navier-Stokes几分之一的成本计算热通量。方法。通过一种模型来考虑壁催化作用,该模型可以表达一组具有相关反应速率概率的壁反应。针对各种问题进行的计算以及此处显示的一些典型测试用例的结果表明,该代码具有应付各种非平衡条件的能力和可靠性,这使其成为理化和TPS材料研究的潜在有用工具。

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