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An energy-efficient cyber-physical system for wireless on-board aircraft structural health monitoring

机译:用于无线板载飞机结构健康监测的节能网络系统

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In this paper, an energy-efficient cyber-physical system using piezoelectric transducers (PZTs) and wireless sensor networks (WSN) is proposed, designed and experimentally validated for on-board aircraft structural health monitoring (SHM). A WSN is exploited to coordinate damage detection using PZTs distributed on the whole aircraft. An active sensing methodology is adopted for PZTs to evaluate the structural integrity in a pitch-catch manner. The system configuration and operation principle are discussed in the first place. Then, the detailed hardware design was introduced. The proposed system is not only characterized as low-power, high-compactness and wireless, but also capable of processing actuating-sensing signals at megahertz, generating actuating signals with great flexibility, handling multiple actuating-sensing channels with marginal crosstalk. The design was implemented on a 4-layer printed circuit board (8 x 6.5 cm) and evaluated on a large-scale composite fuselage. A 5 MHz sampling rate for actuating and 1.8 MHz for sensing (8 channels) were realized, and the accuracy was validated by comparing the results with those from an oscilloscope. The crosstalk issue caused by actuation on sensing channels is properly addressed using a 2-stage attenuation method. An ultra-low current (81.7 mu A) was measured when no detection was required; the average current was 0.45 mA with a detection rate of twice per hour, which means the system can continuously work for up to 12.6 months for 2 AA batteries. Eventually, an example of damage detection is provided, showing the capability of such a system in SHM. (C) 2019 Elsevier Ltd. All rights reserved.
机译:在本文中,提出了一种使用压电换能器(PZT)和无线传感器网络(WSN)的节能网络物理系统,为车载飞机结构健康监测(SHM)设计和实验验证。利用WSN使用在整个飞机上分布的PZTS坐标损坏检测。采用活性感测方法,以评价距离捕获方式的结构完整性。首先讨论系统配置和操作原理。然后,引入了详细的硬件设计。所提出的系统不仅表征为低功率,高紧凑性和无线,而且还能够在MegaHerTZ处理致动感测信号,产生具有很大的灵活性的致动信号,处理具有边缘串扰的多个致动感测通道。该设计在4层印刷电路板(8 x 6.5cm)上实现,并在大规模的复合机身上进行评估。实现了用于致动和1.8MHz的5MHz采样率(8个通道),通过将结果与来自示波器的结果进行比较来验证精度。使用2级衰减方法适当地解决了由感测通道的驱动引起的串扰问题。无需检测时测量超低电流(81.7μA);平均电流为0.45 mA,检测率为每小时两次,这意味着该系统可以连续工作高达12.6个月的2 AA电池。最终,提供了损坏检测的示例,显示了SHM中这种系统的能力。 (c)2019 Elsevier Ltd.保留所有权利。

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