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Loads and Acoustics Prediction on Deployed Weapons Bay Doors

机译:部署的武器舱门上的载荷和声学预测

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摘要

Unsteady separated flow from deployed weapons bay doors can interact with the highly unsteady flow in the open bay cavity, which is known to exhibit strong acoustic content and could lead to fluid-resonance and high-intensity acoustic noise. The culmination of these unique flow physics can potentially excite structural modes of the doors, aircraft surfaces, or externally carried munitions and fuel tanks and can ultimately lead to aeroe-lastic instabilities, such as buffet, flutter, limit-cycle oscillations, or fatigue-induced failures. A hybrid Reynolds-averaged Navier-Stokes large eddy simulation (RANS/LES) method with low-dissipation schemes is developed to improve flow and acoustics predictive capabilities for supersonic weapons bays. Computational simulations are conducted for a weapons cavity with different deployed bay doors configurations, including the effect of dynamically moving doors, to assess the tonal content and unsteady aerodynamic loads on the doors. Wind tunnel testing is also carried out to provide unsteady experimental data for use in validating the high-fidelity simulation capability. The simulation results in terms of unsteady pressure, velocity fluctuations, and pressure resonant frequencies are computed and presented. The results suggest that the deployed doors energize the shear layer and cause it to go deeper into the cavity and produce higher unsteady fluctuations on the weapons cavity floor and aft wall. The deployed doors also cause a shift in the dominant resonant modes.
机译:来自已部署武器舱门的不稳定流动会与开放式舱室中的高度不稳定流动相互作用,众所周知,该不稳定流动会表现出强烈的声波含量,并可能导致流体共振和高强度声噪声。这些独特的流动物理学的顶点可能会激发门,飞机表面或外部携带的弹药和燃料箱的结构模式,并最终导致气动弹性不稳定性,例如自助餐,颤振,极限循环振荡或疲劳强度。导致的故障。开发了具有低耗散方案的混合雷诺平均Navier-Stokes大涡模拟(RANS / LES)方法,以改善超音速武器舱的流动和声学预测能力。针对具有不同部署的舱门构造的武器腔(包括动态移动的门的影响)进行了计算仿真,以评估门上的色调含量和不稳定的气动载荷。还进行了风洞测试以提供不稳定的实验数据,以用于验证高保真仿真能力。计算并给出了非稳态压力,速度波动和压力共振频率方面的仿真结果。结果表明,展开的门会给剪切层提供动力,并使其深入到空腔中,并在武器空腔的地板和后壁上产生更大的不稳定波动。展开的门还会引起主导共振模式的偏移。

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  • 来源
    《Journal of Vibration and Acoustics》 |2017年第3期|031007.1-031007.14|共14页
  • 作者单位

    CFD Research Corporation, 701 McMillian Way, Huntsville, AL35806;

    CFD Research Corporation, 701 McMillian Way, Huntsville, AL 35806;

    Department of Mechanical and Aerospace Engineering, University of Florida, Gainesville, FL 32611;

    Department of Mechanical and Aerospace Engineering, University of Florida, Gainesville, FL 32611;

    Department of Computer Science and Engineering, Mississippi State University, Mississippi State, MS 39762;

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