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Flowfield Around Spike-Tipped Bodies for High Attack Angles at Mach 4.5

机译:尖刺体周围的流场,以4.5马赫的高攻角

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摘要

The requirements for the design of a new short-range high-velocity missile are both the drag reduction and the correct information acquisition for the optoelectronic sensors embedded in the hemispherical nose. High angles of attack must be studied to fulfill the maneuverability requirements of present and future missiles. A supersonic missile generates a bow shock around its blunt nose, which causes rather high surface pressure and temperature and, as a result, the development of high drag and damage of embedded sensors. The pressure and the temperature on the hemispherical nose surface can be substantially reduced if an oblique shock is generated by a forward-facing spike. Both the experiments and the computations are carried out to study the flowfield around three-dimensional blunt bodies equipped with forward-facing spikes for a large range of attack angles at a Mach number of 4.5. A blunt body, a classical disk-tip spike, a sphere-tip spike, and a biconical-tip spike are studied. The experiments involve high-pressure shock tunnel investigations using a shock tube facility. The differential interferometry technique is applied to visualize the flowfield around the different missile spike geometries. The differential interferogram pictures as well as surface pressure measurements are compared with numerical results. Numerical simulations based on steady-state three-dimensional Navier-Stokes computations are performed to predict the drag, the lift, and the pitching moment for the blunt body and for each spike-tipped missile. The computations allow one to bring out the advantages of each spike geometry in comparison to the blunt body.
机译:设计新型短程高速导弹的要求既包括减阻作用,又要求嵌入在半球形机头中的光电传感器的正确信息获取。必须研究高攻角以满足当前和未来导弹的机动性要求。超音速导弹在其钝鼻周围产生弓形冲击,这会导致相当高的表面压力和温度,并因此导致高阻力的发展以及嵌入式传感器的损坏。如果前向尖峰产生倾斜冲击,则可以大大降低半球形鼻子表面上的压力和温度。实验和计算均用于研究三维钝体周围的流场,该钝体配有面向前方的尖峰,以4.5马赫数的较大攻角。研究了钝体,经典的圆盘尖刺,球形尖刺和双锥尖刺。实验涉及使用激波管设施进行高压激波隧道研究。应用差分干涉技术将不同导弹尖峰几何形状周围的流场可视化。将差分干涉图图片以及表面压力测量结果与数值结果进行比较。进行基于稳态三维Navier-Stokes计算的数值模拟,以预测钝体和每个尖刺导弹的阻力,升力和俯仰力矩。与钝体相比,这些计算使您可以挖掘出每种尖峰几何形状的优点。

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