机动弹丸非定常空气动力学数值计算

J. Sahu, J. Despirito, K. Heavey, M. Costello, Jenna Stahl
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引用次数: 7

摘要

本文描述了一项多学科的计算研究,以模拟飞行轨迹和自由飞行的空气动力学的鳍状弹丸有和没有控制机动。计算流体动力学(CFD)、刚体动力学(RBD)和飞行控制系统(FCS)方面的先进计算能力已经成功地完全耦合在高性能计算(HPC)平台上,用于基于物理的弹药“虚拟飞出”。在高度并行的Linux集群上,采用先进的可扩展非结构化流求解器,利用商用CFD++软件进行了时间精确的Navier-Stokes计算,以计算与翅片弹丸自由飞行相关的非定常空气动力学。介绍了在弹丸飞行动力学建模中有效地生成由静态和动态气动系数组成的完整气动描述的新技术的探索进展。一种使用时间精确扫描的新程序可以快速生成静态气动系数。另一种方法采用非定常、时间精确的CFD仿真,该仿真与RBD弹丸飞行动力学仿真紧密耦合,可以同时生成静态和动态系数。利用CFD/RBD/FCS集成软件计算了一组不同马赫数下的模拟弹丸运动的短时间片段,并将其作为基线数据。该技术正在一种鳍状和鸭翼控制的弹丸上进行试验。利用虚拟飞出法和CFD/RBD/FCS软件计算鸭角偏转对鸭翼控制弹气动性能的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical Computations of Unsteady Aerodynamics of Maneuvering Projectiles
This paper describes a multidisciplinary computational study undertaken to model the flight trajectories and the free-flight aerodynamics of finned projectiles both with and without control maneuvers. Advanced computational capabilities in computational fluid dynamics (CFD), rigid body dynamics (RBD) and flight control system (FCS) have been successfully fully coupled on high performance computing (HPC) platforms for physics-based “Virtual Fly-Outs” of munitions. Timeaccurate Navier-Stokes computations have been performed with the commercial CFD++ software to compute the unsteady aerodynamics associated with the free flight of finned projectiles using an advanced scalable unstructured flow solver on a highly parallel Linux Cluster. Progress made in the exploration of new techniques to efficiently generate a complete aerodynamic description consisting of both static and dynamic aerodynamic coefficients for projectile flight dynamic modeling is described. A new procedure that uses timeaccurate sweeps allows rapid generation of static aerodynamic coefficients. Another method uses an unsteady, time accurate CFD simulation that is tightly coupled to a RBD projectile flight dynamic simulation and can generate both static and dynamic coefficients. A set of short time snippets of simulated projectile motion at different Mach numbers is computed using the integrated CFD/RBD/FCS software and employed as baseline data. The technique is being exercised on a finned and a canard-controlled projectile. The effect of canard angle deflection on the aerodynamics of the canard controlled projectile is currently being computed using the virtual fly out method and the CFD/RBD/FCS software.
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