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Simulation Tool to Study High Performance Avionic for Active Debris Removal Missions

机译:用于研究用于主动清除碎片任务的高性能航空电子的仿真工具

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This paper describes the development of a simulation tool that allows to perform trade-offs of avionic architectures for future Active Debris Removal (ADR) space missions. The main challenges of ADR missions lay in their ability to first detect and track a target, then perform proximity operation and capture. All these mission phases imply a variety of sensors which are mainly needed for the Guidance, Navigation and Control (GNC) of the spacecraft. First, sensors outputs need to be processed to retrieve position and attitude estimation of the target, then results are transmitted to the GNC algorithms for precise navigation. To obtain accurate target information, the algorithms require a high input data rate and multiple sensor sources. At the EPFL Space Center, we have developed a simulation tool to help design the highly demanding avionic of our ADR mission, CleanSpace One (CSO). The simulator supports analyses and “trade-offs” with respect to various hardware configurations. To reproduce realistic scenarios, the simulator has to consider requirements of the different mission phases since they vary in term of data processing, vision algorithm complexity and control loop speed. This newly developed tool has been used to investigate multiple hardware configurations with specific ADR requirements. Results obtained during these simulations offer a first set of consolidated requirements that will help the design of the highly demanding avionic needed for the mission.
机译:本文介绍了一种仿真工具的开发,该仿真工具可以对未来的主动碎片清除(ADR)太空任务进行航空电子架构的权衡。 ADR任务的主要挑战在于其首先检测并跟踪目标,然后执行近距作战和捕获的能力。所有这些任务阶段都暗示着航天器的制导,导航和控制(GNC)主要需要的各种传感器。首先,需要处理传感器输出以检索目标的位置和姿态估计,然后将结果传输到GNC算法以进行精确导航。为了获得准确的目标信息,这些算法需要较高的输入数据速率和多个传感器源。在EPFL太空中心,我们开发了一种仿真工具,可帮助设计对ADR任务CleanSpace One(CSO)要求很高的航空电子设备。该模拟器支持针对各种硬件配置的分析和“权衡”。为了重现现实情况,模拟器必须考虑不同任务阶段的要求,因为它们在数据处理,视觉算法复杂度和控制循环速度方面会有所不同。此新开发的工具已用于调查具有特定ADR要求的多种硬件配置。在这些模拟过程中获得的结果提供了第一套综合要求,这将有助于设计任务所需的高度苛刻的航空电子设备。

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