Chemical Oxygen-Iodine Laser Technology Development using 3-D Navier-Stokes Simulation

T. Madden
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引用次数: 1

Abstract

Chemical lasers are complex devices that couple two-phase chemistry, fluid dynamics, and optics to generate coherent radiation capable of projecting high energy fluxes very large distances at the speed of light. Such a capability is an obvious candidate for precision engagement of targets in multiple theaters of operation, as evidenced by development programs that are intended to advance chemical lasers from the laboratory to the weapon platform. Given the complexity of the interactions between the various physical processes, simulation of chemical lasers presents an obvious opportunity for the application of high performance computing to facilitate the understanding and optimization of these devices. The work presented here illustrates how high performance computing is used to achieve an increased understanding of the physics underlying chemical oxygen iodine lasers (COILs) and improve their operation. Computational fluid dynamic (CFD) for the chemically reacting COIL flowfield coupled to radiation transport models for the optical field are executed concomitant with achieving these goals
基于三维Navier-Stokes模拟的化学氧碘激光技术开发
化学激光器是一种复杂的装置,它结合了两相化学、流体动力学和光学来产生相干辐射,能够以光速投射高能通量很远的距离。这种能力显然是在多个作战战区精确打击目标的候选能力,正如旨在将化学激光器从实验室推进到武器平台的发展计划所证明的那样。考虑到各种物理过程之间相互作用的复杂性,化学激光的模拟为高性能计算的应用提供了一个明显的机会,以促进对这些设备的理解和优化。本文介绍的工作说明了如何使用高性能计算来提高对化学氧碘激光器(线圈)的物理基础的理解,并改进其操作。在实现这些目标的同时,对化学反应线圈流场进行了计算流体动力学(CFD),并对光场的辐射输运模型进行了耦合
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