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Integration of Grid Fins for the Optimal Design of Missile Systems

机译:网格鳍片集成优化导弹系统设计

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Grid fins are unconventional missile control and stabilization devices that produce unique aerodynamic characteristics that are vastly different from that of the conventional planar fin. History has shown that grid fins are able to achieve much higher angles of attack than planar fins without experiencing any effects of stall. They are also able to produce much lower hinge moments than planar fins, which allows for the use of smaller actuators for fin control. However, the major drawback of grid fins that has prevented them from seeing more applications in missile control is the high drag that is associated with the lattice structure, which is substantially larger than that of a comparable planar fin. Despite the high drag produced by grid fins, there are still several applications where the grid fin is an ideal candidate for missile control. One such application is the maximization of the target strike capability of a missile that is released from an airplane at a designated altitude. The goal of this work is to integrate a set of grid fin aerodynamic prediction algorithms into a missile system preliminary design code in an effort to maximize the target strike area of a missile using both planar fins and grid fins as aerodynamic control devices. It was found that a missile system using grid fins for aerodynamic control is able to strike a larger target area with a higher degree of accuracy than a similar missile system using equivalent planar fins for aerodynamic control.
机译:栅格鳍片是非常规的导弹控制和稳定装置,其产生的独特空气动力学特性与传统的平面鳍片大不相同。历史表明,与平面鳍片相比,栅格鳍片能够获得更高的迎角,而不会遇到失速的影响。它们还能够产生比平面鳍片低得多的铰链力矩,从而允许使用较小的执行器来控制鳍片。然而,阻碍其在导弹控制中获得更多应用的格栅鳍的主要缺点是与格架结构相关的高阻力,该阻力大大大于可比较的平面鳍的阻力。尽管格栅鳍产生了很高的阻力,但是在许多应用中,格栅鳍是导弹控制的理想选择。一种这样的应用是最大化在指定高度从飞机释放的导弹的目标打击能力。这项工作的目标是将一组栅格鳍空气动力学预测算法集成到导弹系统的初步设计规范中,以使用平面鳍和栅格鳍作为气动控制装置,以最大化导弹的目标打击区域。已经发现,与使用等效平面鳍片进行空气动力学控制的类似导弹系统相比,使用栅格翼片进行空气动力学控制的导弹系统能够以更高的精确度打击更大的目标区域。

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