We develop an integrated guidance and control system that in conjunction with a stabilized seeker and landing site detection software can achieve precise and safe planetary landing. The seeker tracks the designated landing site by adjusting seeker elevation and azimuth angles to center the designated landing site in the sensor field of view. The seeker angles, closing speed, and range to the designated landing site are used to formulate a velocity field that is used by the guidance and control system to achieve a safe landing at the designated landing site. The guidance and control system maps this velocity field, attitude, and rotational velocity directly to a commanded thrust vector for the lander's four engines. The guidance and control system is implemented as a policy optimized using reinforcement meta learning. We demonstrate that the guidance and control system is compatible with multiple diverts during the powered descent phase, and is robust to seeker lag, actuator lag and degradation, and center of mass variation induced by fuel consumption. We outline several concepts of operations, including an approach using a preplaced landing beacon.
翻译:我们开发了一个综合指导和控制系统,与稳定的搜索器和着陆场探测软件一起,可以实现精确和安全的行星着陆。搜索者通过调整搜索器高度和方位角度跟踪指定着陆场,将指定着陆场置于传感器视野的中心。搜索者角度、关闭速度和射程用于设计一个速度场,由指导和控制系统用于在指定着陆场实现安全着陆。指导和控制系统将速度场、姿态和旋转速度直接映射到着陆器四引擎的指令推进矢量上。指导和控制系统是作为一项政策,通过强化元学优化执行的。我们证明指导和控制系统与有动力的下降阶段的多重偏移相容,并且能够捕捉到拉力、动作拉力拉力和降解,以及燃料消耗引发的大规模变化中心。我们概述了几个操作概念,包括使用预先定位着陆信标的方法。