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Further development and flight test of an autonomous precision landing system using a parafoil

机译:使用机翼的自主精确着陆系统的进一步开发和飞行测试

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摘要

NASA Dryden Flight Research Center and NASA Johnson Space Center are jointly conducting a phased program to determine the feasibility of the autonomous recovery of a spacecraft using a ram-air parafoil system for the final stages of entry from space to a precision landing. The feasibility is being studied using a flight model of a spacecraft in the generic shape of a flattened biconic that weighs approximately 120 lb and is flown under a commercially available ram-air parafoil. Key components of the vehicle include the global positioning system (GPS) guidance for navigation, a flight control computer, an electronic compass, a yaw rate gyro, and an onboard data recorder. A flight test program is being used to develop and refine the vehicle. The primary flight goal is to demonstrate autonomous flight from an altitude of 3,000 m (10,000 ft) with a lateral offset of 1.6 km (1.0 mi) to a precision soft landing. This paper summarizes the progress to date. Much of the navigation system has been tested, including a heading tracker that was developed using parameter estimation techniques and a complementary filter. The autoland portion of the autopilot is still in development. The feasibility of conducting the flare maneuver without servoactuators was investigated as a means of significantly reducing the servoactuator rate and load requirements.
机译:NASA德莱登飞行研究中心和NASA约翰逊航天中心正在联合进行一项分阶段计划,以确定使用冲压空气翼型系统在从太空进入精确着陆的最终阶段进行自动回收的可行性。正在使用航天器的飞行模型来研究其可行性,该航天器的外形为扁平的双锥齿轮,重约120磅,在市售的冲压空气翼型下飞行。车辆的关键组件包括用于导航的全球定位系统(GPS)指南,飞行控制计算机,电子罗盘,偏航角速度陀螺仪和机载数据记录仪。飞行测试程序正在用于开发和改进车辆。主要的飞行目标是演示自动飞行,该飞行器从3,000 m(10,000 ft)的高度,侧向偏移1.6 km(1.0 mi)到精确的软着陆。本文总结了迄今为止的进展。许多导航系统已经过测试,包括使用参数估计技术和互补滤波器开发的航向跟踪器。自动驾驶仪的自动着陆部分仍在开发中。研究了在没有伺服执行器的情况下进行火炬操纵的可行性,以此作为显着降低伺服执行器速率和负载要求的一种手段。

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