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Reentry trajectory planning optimization based on sequential quadratic programming

机译:基于顺序二次规划的再入弹道规划优化

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An optimal trajectory is very important to reusable launch vehicle (RLV) which facing the critical heating and aero force in reentry environment. The trajectory planning is a typical large scale and multi-constraint optimization problem. In this paper, an optimal trajectory planning for RLV from the beginning upper atmosphere state to lower atmosphere site with the minimum accumulated heat load or maximum range under multi-constraint reentry condition is studied. To achieve this goal, the dynamics of RLV is first described and the cost function of the optimal problem is formulated with multi reentry constraints. Then, a series of discrete trajectory points were designed on reentry corridor. The process of searching the optimized trajectory for RLV with the Sequential Quadratic Programming(SQP) is proposed. This algorithm is implemented on a RLV which similar the X-33 and its validity is proven by simulation result.
机译:对于可重用运载火箭(RLV)而言,最佳轨迹是非常重要的,可运载火箭在重入环境中面临临界的加热和气动作用。轨迹规划是一个典型的大规模多约束优化问题。本文研究了在多约束再入条件下,从初始高空状态到低空站点的RLV的最佳轨迹规划,该路径具有最小的累积热负荷​​或最大范围。为了实现这一目标,首先描述了RLV的动力学特性,并用多重可重入约束条件制定了最优问题的成本函数。然后,在折返通道上设计了一系列离散的轨迹点。提出了用序列二次规划(SQP)搜索RLV的最优轨迹的过程。该算法在类似于X-33的RLV上实现,并通过仿真结果证明了其有效性。

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