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Precision Munition Guidance and Estimation of Target Position in 2-D

机译:二维精确弹药制导与目标位置估计

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The efficacy of a munition depends on target detection, navigation, guidance, tracking and control; in fact, even more so if the target is moving. This paper is concerned with flight dynamics of a munition in atmosphere under proportional navigation guidance augmented with drag and gravity to intercept an evasive ground target. Three-dimensional flight of the munition and its pitch and yaw motion model are developed and simulated. The forward and lateral motion of a target tank on the ground is modeled as second-order Gauss-Markov process. To estimate the target location on the ground and the line-of-sight rate to intercept it an Extended Kalman Filter is composed whose state vector consists of cascaded state vectors of missile dynamics and target dynamics. The line-of-sight angle measurement from the infrared seeker and range measurement from the millimeter wave radar are used in the Kalman Filter for relative navigation of the munition. It is capable of hitting the target with high accuracy as well as minimizing the lateral acceleration demand.
机译:弹药的效力取决于目标的探测,导航,制导,跟踪和控制;实际上,如果目标正在移动,则更是如此。本文涉及在比例导航制导下的弹药在大气中的飞行动力学,该制导具有阻力和重力,以拦截逃避的地面目标。研制并仿真了弹药的三维飞行及其俯仰和偏航运动模型。目标坦克在地面上的向前和横向运动被建模为二阶高斯-马尔可夫过程。为了估计地面上的目标位置以及拦截目标的视线速率,组成了扩展卡尔曼滤波器,其状态向量由导弹动力学和目标动力学的级联状态向量组成。卡尔曼滤波器使用红外导引器的视线角测量和毫米波雷达的测距器进行弹药的相对导航。它能够高精度地击中目标,并最大程度地减少横向加速度需求。

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