A Differential BCG Sensor System for Long Term Health Monitoring Experiment on the ISS

U. Kulau, Jochen Rust, Daniel Szafranski, M. Drobczyk, Urs-Vito Albrecht
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引用次数: 6

Abstract

Comprehensive health monitoring is highly relevant for the safety of manned spaced missions. Ballistocardiography (BCG) is a method for providing information of the heart physiology by measuring accelerations on the body surface that are caused by forwarded heart and blood movements in the vascular system. In order to provide a sensor system with a high signal quality, this paper presents differential BCG sensing at the system level for digital accelerometers and its integration into a sensing system. The system is part of a running experiment of the Cosmic Kiss mission on the International Space Station (ISS). Compared to single sensor solutions, the noise power scales down to about 50%, the Signal to Noise Ratio (SNR) is increased by a factor of 1.87 and the BCG signal variability especially improves for diastole area. Furthermore, by exploiting differential sensing techniques, both high reliability is achieved and common mode interference is mitigated, which is of high importance within the scope of space applications. Beside the presentation of the entire wireless sensor system including differential sensing approach, pre-processing unit and Ultra Wideband (UWB) communication module, results of the pre-flight tests show the performance of the system as well as the suitability for targeted mission.
用于国际空间站长期健康监测实验的差分卡介苗传感器系统
全面的健康监测与载人航天飞行的安全密切相关。超声心动图(BCG)是一种通过测量体表加速来提供心脏生理信息的方法,这种加速是由血管系统中的心脏和血液运动引起的。为了提供一个具有高信号质量的传感器系统,本文提出了一种用于数字加速度计的系统级差分BCG传感技术,并将其集成到传感系统中。该系统是国际空间站(ISS)“宇宙之吻”任务正在进行的实验的一部分。与单传感器解决方案相比,噪声功率降低到50%左右,信噪比提高了1.87倍,特别是在舒张区,BCG信号变异性得到改善。此外,通过利用差分传感技术,既实现了高可靠性,又减轻了共模干扰,这在空间应用范围内具有重要意义。除了介绍了整个无线传感器系统,包括差分传感方法、预处理单元和超宽带(UWB)通信模块外,飞行前测试结果表明了系统的性能以及对目标任务的适用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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