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A unified approach to vehicle design, control, and flight path optimization.

机译:车辆设计,控制和飞行路径优化的统一方法。

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A set of vehicle design and control optimization methods is presented that minimizes the difference between the desired and actual dynamical flight paths. The approach taken seeks the optimum, physically admissible mass properties and/or the thrust history of the vehicle to minimize a quadratic measure of departure from the desired path. The minimization process developed here belongs to a family of problems which are commonly referred to as constrained parameter optimization. A recursive quadratic programming algorithm is used to implement the analytical formulation as a numerical algorithm.; The first section of the dissertation provides the derivations of the equations of motion for fixed and variable mass bodies which include the unification of the control volume and particle dynamics analyses of the variable mass body problem.; In the second section, analytical and numerical optimization procedures are discussed in detail. Suboptimal control is employed to parameterize the functional optimal control problem and thereby convert it into a constrained parameter optimization problem. This conversion process creates a unified solution methodology for the parameter optimization approach for solving this family of optimal control problems.; The third section defines basic concepts and measures of stability and robustness of "motion-matching" in terms of the uniform boundedness of the deviation from the desired flight path. The analytical stability analysis of the optimized body produces "similarity parameters" for perfect motion-matching.; Finally, the theoretical results are illustrated with a set of test cases (axisymmetric, sphere-cone reentry body). The fixed mass cases provide the dominant similarity parameters, whereas the variable mass bodies determine the effects of the mass-flow-induced terms, an isentropic nozzle, and a tandem optimization technique. The fixed mass case demonstrates that the moment of inertia ratio is the dominant similarity parameter. This dominance appears as a five second difference in the point of instability. The thrusting case shows the negligible effects of the mass-flow-induced terms and the isentropic nozzle model for this set of trajectories (magnitudes {dollar}cong{dollar} 10{dollar}sp{lcub}-3{rcub}{dollar}). Also, the optimization of the mass properties before the thrust history significantly improves the performance of the vehicle (increased rotational tracking).
机译:提出了一组车辆设计和控制优化方法,可将所需的动态飞行路径与实际的动态飞行路径之间的差异最小化。所采用的方法寻求最佳的,物理上可接受的质量特性和/或车辆的推力历史,以最小化偏离期望路径的二次测量。这里开发的最小化过程属于一类问题,通常称为约束参数优化。递归二次规划算法用于将解析公式实现为数值算法。论文的第一部分提供了固定和可变质量体的运动方程的推导,包括控制体积的统一和可变质量体问题的粒子动力学分析。在第二部分中,详细讨论了分析和数值优化过程。次优控制用于对功能最优控制问题进行参数化,从而将其转换为约束参数优化问题。该转换过程为参数优化方法创建了统一的解决方案方法,以解决这一系列的最佳控制问题。第三部分根据偏离期望飞行路径的均匀有界性,定义了“运动匹配”的稳定性和鲁棒性的基本概念和度量。经过优化的车身的分析稳定性分析可产生“相似参数”,以实现完美的运动匹配。最后,通过一组测试案例(轴对称,球锥折返体)说明了理论结果。固定质量工况提供了主要的相似性参数,而可变质量体确定了质量流感应项,等熵喷嘴和串联优化技术的效果。固定质量情况表明,惯性矩比是主要的相似参数。在不稳定点上,这种优势表现为五秒钟的差异。推力情况显示了对于这组轨迹(量级{dollar} cong {dollar} 10 {dollar} sp {lcub} -3 {rcub} {dollar} )。同样,在推力历史之前优化质量特性可以显着改善车辆的性能(增加旋转跟踪)。

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