基于等离子体的超燃冲压发动机流道流动控制技术的发展

D. Gaitonde, M. Lindsey
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引用次数: 0

摘要

概述了一项名为“使用MHD能量旁路的尖端到尾部湍流超燃冲压发动机流道模拟”的综合挑战工作。重点放在在飞行条件下获得的全三维(3-D)结果。目标是采用高保真度模拟,通过革命性的新概念解除超燃冲压发动机发展中的关键限制,这些新概念不容易用于地面或飞行试验研究。这些技术的核心特点是部署三维电磁场来解决恶劣的空气呼吸高超音速环境。所采用的理论模型通过精心混合第一原理和选择的现象学元素来解决多流体,多物理现象,以发现新的使能物理。由此产生的庞大且数学上复杂的方程组既需要先进的数值方法,也需要通过国防部高性能计算计算机(DoD HPC)提供的大规模系统。通过将结果与强大的三维可视化技术相结合,该项目发现了以前未知的与磁场、电场和速度矢量场有关的效应,以及电离区域的位置和范围。这使得阐明了一套简单的原则,有效的基于等离子体的流量控制。其中的关键是通过功和欧姆耗散之间的竞争来实现有源动力和加热之间的热力学平衡,以及使用电极时能量方向的区别作用。这些一般的观察结果被用来开发方法,以减轻传热,分离,混合和能源管理
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of Plasma-based Flow Control Techniques for Scramjet Flow Paths
An overview is presented of a comprehensive challenge effort titled "Tip-to-tail Turbulent Scramjet Flowpath Simulation with MHD Energy Bypass". Emphasis is placed on fully three-dimensional (3-D) results obtained at flight conditions. The goal is to employ high-fidelity simulations to lift critical constraints in scramjet development through revolutionary new concepts, which do not readily lend themselves to ground or flight test investigations. The central feature of these techniques is the deployment of 3-D electromagnetic fields to address the harsh airbreathing hypersonic environment. The theoretical model employed resolves the multi-fluid, multi-physics phenomena through a careful blend of first-principles and phenomenological elements chosen to discover new enabling physics. The resulting large and mathematically complex set of equations requires both advanced numerical methods and the massive systems available through the DoD HPC. By coupling results to powerful 3-D visualization techniques, the project has discovered previously unknown effects relating the magnetic, electric and velocity vector fields, as well as location and extent of the ionized region. This has enabled the elucidation of a simple set of principles for effective plasma-based flow control. Key among these are the thermodynamic balance between ponderomotive force and heating through competition between work and Ohmic dissipation and the discriminating effect of energy direction when electrodes are employed. These general observations are employed to develop methods to mitigate heat transfer, separation, mixing and energy management
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