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OPTIMISATION OF ASCENT AND DESCENT TRAJECTORIES FOR LIFTING BODY SPACE ACCESS VEHICLES

机译:优化升降车身空间接入车辆的上升轨迹

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One of the forerunners for future space access vehicles is the spaceplane, a lifting body vehicle capable of powered horizontal take-off and landing. Employing strategies from multidisciplinary design optimisation, this paper outlines the approaches and models used towards developing an integrated design platform to assess the preliminary design and performance of a spaceplane. The trajectory and control is optimised, based on different mission objectives and constraints, for the ascent and descent mission segments of a conceptual single stage to orbit vehicle, to a circular low Earth orbits from different take-off and landing sites. A modular approach is employed, dividing the mission into phases based on model discontinuities, changes in the operating environment or vehicle operation, mission objectives or constraints. The problem is reformulated by direct transcription using multiple shooting into a constrained NLP problem, and solved by a combination of genetic algorithms for a global search, and SQP plus interior point methods for local refinement with hard constraints.
机译:未来空间接入车辆的一个先驱是航天飞机,一个升降机身车辆,能够提供水平起飞和着陆。本文采用多学科设计优化的策略,概述了开发集成设计平台的方法和模型,以评估飞行器的初步设计和性能。基于不同的任务目标和约束,针对概念单阶段到轨道车辆的上升和血统的特征分段,从不同起飞和着陆位点的圆形低地轨道进行了优化了轨迹和控制。采用模块化方法,将任务划分为基于模型不连续性的阶段,操作环境或车辆操作,使命目标或约束的变化。问题由使用多次拍摄到约束的NLP问题的直接转录来重新重新重新重新重新重新重新重新重新重新重新重新重新重新重新重新重新重新重新重新重新重新重新重新重新重新重新重新重新重新重新重新重新重新重新重新转换。通过全局搜索的遗传算法的组合来解决,SQP Plus内部点方法与硬约束的局部改进。

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