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Automated rendezvous and capture system development and simulation for NASA

机译:NASA的自动集合点和捕获系统开发和仿真

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The United States does not have an Automated Rendezvous and Capture/Docking (AR&C) capability and is reliant on manned control for rendezvous and docking of orbiting spacecraft. This reliance on the labor intensive manned interface for control of rendezvous and docking vehicles has a significant impact on the cost of the operation of the International Space Station (ISS) and precludes the use of any U.S. expendable launch capabilities for Space Station resupply. The Marshall Space Flight Center (MSFC) has conducted pioneering research in the development of an automated rendezvous and capture (or docking) (AR&C) system for U.S. space vehicles. This AR&C system was tested extensively using hardware-in-the-loop simulations in the Flight Robotics Laboratory, and a rendezvous sensor, the Video Guidance Sensor was developed and successfully flown on the Space Shuttle on flights STS-87 and STS-95, proving the concept of a video- based sensor. Further developments in sensor technology and vehicle and target configuration have lead to continued improvements and changes in AR&C system development and simulation. A new Advanced Video Guidance Sensor (AVGS) with target will be utilized as the primary navigation sensor on the Demonstration of Autonomous Rendezvous Technologies (DART) flight experiment in 2004. Realtime closed-loop simulations will be performed to validate the improved AR&C systems prior to flight.
机译:美国没有自动交会和捕获/对接(AR&C)功能,并且依赖有人为交会和对接的航天器进行控制。对交会和对接飞行器的控制需要劳力密集的人机界面,这对国际空间站(ISS)的运营成本产生了重大影响,并且排除了将美国消耗性发射能力用于空间站补给的任何可能性。马歇尔航天飞行中心(MSFC)在开发用于美国航天器的自动会合和捕获(或对接)(AR&C)系统方面进行了开创性研究。该AR&C系统已在飞行机器人实验室中使用硬件在环仿真进行了广泛测试,并且会合传感器,视频制导传感器得以开发并成功在STS-87和STS-95航班的航天飞机上飞行,证明基于视频的传感器的概念。传感器技术以及车辆和目标配置的进一步发展导致AR&C系统开发和仿真的不断改进和变化。一种新型的带有目标的先进视频制导传感器(AVGS)将用作2004年自主交会技术(DART)演示飞行实验的主要导航传感器。在此之前,将进行实时闭环仿真以验证改进的AR&C系统。飞行。

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