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Deployment of precise and robust sensors on board ISS—for scientific experiments and for operation of the station

机译:在ISS上部署精确而坚固的传感器-用于科学实验和操作站

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摘要

The International Space Station (ISS) is the largest technical vehicle ever built by mankind. It provides a living area for six astronauts and also represents a laboratory in which scientific experiments are conducted in an extraordinary environment. The deployed sensor technology contributes significantly to the operational and scientific success of the station. The sensors on board the ISS can be thereby classified into two categories which differ significantly in their key features: (1) sensors related to crew and station health, and (2) sensors to provide specific measurements in research facilities. The operation of the station requires robust, long-term stable and reliable sensors, since they assure the survival of the astronauts and the intactness of the station. Recently, a wireless sensor network for measuring environmental parameters like temperature, pressure, and humidity was established and its function could be successfully verified over several months. Such a network enhances the operational reliability and stability for monitoring these critical parameters compared to single sensors. The sensors which are implemented into the research facilities have to fulfil other objectives. The high performance of the scientific experiments that are conducted in different research facilities on-board demands the perfect embedding of the sensor in the respective instrumental setup which forms the complete measurement chain. It is shown that the performance of the single sensor alone does not determine the success of the measurement task; moreover, the synergy between different sensors and actuators as well as appropriate sample taking, followed by an appropriate sample preparation play an essential role. The application in a space environment adds additional challenges to the sensor technology, for example the necessity for miniaturisation, automation, reliability, and long-term operation. An alternative is the repetitive calibration of the sensors. This approach, however, increases the operational overhead significantly. But meeting especially these requirements offers unique opportunities for testing these sensor technologies in harsh and dedicated environments which are not available on Earth, therefore pushing the related technologies and methodologies to their limits. The scientific objectives for selected experiments, representing a wide range of research fields, are presented, including the instrument setups and the implemented sensor technologies, and where available, the first scientific results are presented.
机译:国际空间站(ISS)是人类有史以来最大的技术飞行器。它为六名宇航员提供了一个居住区,并且代表了一个实验室,可以在非凡的环境中进行科学实验。部署的传感器技术为该站的运营和科学成功做出了巨大贡献。因此,国际空间站上的传感器可以分为两类,它们的主要特征有很大不同:(1)与机组人员和车站健康有关的传感器,以及(2)在研究设施中提供特定测量值的传感器。车站的运行需要坚固,长期稳定且可靠的传感器,因为它们可以确保宇航员的生存和车站的完好性。最近,建立了一个用于测量环境参数(如温度,压力和湿度)的无线传感器网络,其功能可以在几个月内成功验证。与单个传感器相比,这样的网络提高了监视这些关键参数的操作可靠性和稳定性。应用于研究机构的传感器必须满足其他目标。在船上不同研究设施中进行的科学实验的高性能要求将传感器完美地嵌入相应的仪器设置中,从而形成完整的测量链。结果表明,单个传感器的性能并不能决定测量任务的成功。此外,不同传感器和执行器之间的协同作用以及适当的样品采集以及随后适当的样品制备起着至关重要的作用。在太空环境中的应用给传感器技术增加了其他挑战,例如,小型化,自动化,可靠性和长期运行的必要性。替代方法是传感器的重复校准。但是,这种方法显着增加了操作开销。但是特别满足这些要求提供了在地球上不存在的恶劣和专用环境中测试这些传感器技术的独特机会,因此将相关技术和方法推向了极限。提出了代表广泛研究领域的选定实验的科学目标,包括仪器设置和已实现的传感器技术,并在可能的情况下给出了第一批科学成果。

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