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Evolutionary algorithm applied to ballistic launch vehicle design using hybrid rocket engine evaluated by enhanced flight simulation

机译:通过增强飞行模拟评估混合火箭发动机的窜囊发动机设计的进化算法

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A multi-objective genetic algorithm (MOGA) has been applied to the multidisciplinary design optimization (MDO) of a launch vehicle (LV) with a hybrid rocket engine (HRE) to investigate the ability of an HRE to serve as a sounding rocket from various perspectives. In this study, the flight evaluation was enhanced to 3-degree-of-freedom (3DoF) in order to consider the equations of motion for horizontal and vertical motion and rotation of the LV. In the consideration of the rotation of the LV, the time variation of the center of gravity due to the fuel burn was estimated. The non-dominated sorting genetic algorithm-II (NSGA-II) was used to solve multi-objective problems (MoPs). Four design problems were examined in order to understand the practical physics of hybrid rocket. As a result, tradeoff information was observed for all design problems. The results for the present four design problems indicate that economical performance of LV is limited with the HRE in terms of the maximum altitude and maximum downrange distances achievable. The hypervolume, which was used as the metric to evaluate the difficulty of the design problems, reveals that the convergence of the solutions for not only altitude maximization in the case of a vertical launch but also the maximization of downrange at higher target altitudes was affected by the severe limitation. To observe the dependence of the design problems on the constraint, the design problems were visualized using a colored parallel coordinates plot (PCP), and the LV geometries determined from the nondominated solutions were successfully examined.
机译:多目标遗传算法(MOGA)已应用于发射车辆(LV)的多学科设计优化(MDO),其中混合火箭发动机(HRE)来研究HRE作为来自各种探测火箭的能力观点。在这项研究中,飞行评估得到了3-自由度(3DOF),以便考虑用于水平和垂直运动和LV旋转的运动方程。在考虑LV的旋转时,估计引起燃料燃烧引起的重心的时间变化。非主导的分类遗传算法-II(NSGA-II)用于解决多目标问题(MOPS)。检查了四个设计问题,以了解混合动力火箭的实际物理。因此,针对所有设计问题观察到权衡信息。目前四个设计问题的结果表明,在最大高度和可实现的最大下游距离方面,LV的经济性能受到限制。用作评估设计问题的难度的超级潜水机构揭示了在垂直发射的情况下,不仅在垂直发射的情况下,解决方案的收敛性,而且还影响了更高目标高度的下游的最大化严重限制。为了观察设计问题对约束的依赖性,使用彩色并联坐标绘图(PCP)来可视化设计问题,并且成功地检查了从非接种溶液确定的LV几何形状。

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