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Proof of concept for a smart composite orbital debris detector

机译:智能复合轨道碎片探测器的概念证明

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摘要

Space debris particles with dimensions smaller than tens of millimetres are not trackable with existing monitoring systems and have sufficient energy to harm orbiting Earth satellites during impact events. This paper presents a proof-of-concept for an in-situ smart carbon fibre reinforced plastic (CFRP) composite orbital debris detector that is capable of localising space debris impacts on Earth satellites and measuring the direction and velocity of debris particles. This spacecraft detection system can be used to warn satellites about the impact occurrence and to enhance current Space Surveillance Networks by providing a catalogue of debris objects. The proposed orbital debris detector consists of two thin parallel CFRP composite plates, each instrumented with three piezoelectric transducers embedded into the laminate. The localisation method is based on the measurement of acoustic emissions generated by debris impacts on the CFRP plates, which are processed with the time reversal algorithm. The calculation of the direction of debris particles and their speed are accomplished by determining the arrival time of acquired signals and the speed of waves propagating within each CFRP plate. Experimental results showed accurate estimation of the impact location, direction and velocity, thus demonstrating the potential use of the proposed orbital debris detector in future Earth satellite systems.
机译:具有小于数十毫米的空间碎片颗粒不跟踪现有的监测系统,并且在冲击事件期间具有足够的能量来损害轨道卫星。本文介绍了原位智能碳纤维增强塑料(CFRP)复合轨道碎片探测器的概念,该轨道碎片检测器能够在地球卫星上定位空间碎片,并测量碎片颗粒的方向和速度。该航天器检测系统可用于警告卫星关于冲击发生并通过提供碎片物体目录来增强电流空间监控网络。所提出的轨道碎片探测器由两个薄的并联CFRP复合板组成,每个仪表用三个压电换能器嵌入层压板中。本地化方法基于通过时间反转算法处理的CFRP板产生的碎片产生的声排放的测量。通过确定所获取的信号的到达时间和每个CFRP板内传播的波的到达时间来实现碎片颗粒方向及其速度的计算。实验结果表明,对冲击位置,方向和速度的精确估计,从而展示了在未来地球卫星系统中所提出的轨道碎片探测器的潜在使用。

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