Towards Internet of Things for event-driven low-power gas sensing using carbon nanotubes

V. Jelicic, M. Magno, K. Chikkadi, C. Roman, C. Hierold, V. Bilas, L. Benini
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引用次数: 10

Abstract

One of most important applications of sensing devices under the Internet of Things paradigm is air quality monitoring, which is particularly useful in urban and industrial environments where air pollution is an increasing public health problem. As these sensing systems are usually battery-powered and gas sensors are power-hungry, energy-efficient design and power management are required to extend the device's lifetime. In this paper, we present a two-stage concept where a novel low-power carbon nanotube is used as a gas detector for an energy-consuming metal-oxide (MOX) semiconductor gas sensor. We propose a design of a heterogeneous sensor node where we exploit the low-power nanotube gas sensor and the more accurate MOX sensor. This work performs energy consumption simulations for three event-driven scenarios to evaluate the power consumption reduction, as well as the limitations of carbon nanotubes. Our results show the benefits of the proposed approach over the scenarios with adaptive duty-cycling with only MOX gas sensors, proved with 20%-35% node lifetime prolongation. The delay introduced due to the nanotube recovery time can be overcome by radio duty-cycled activity for detecting alarm messages from the neighbour nodes.
利用碳纳米管实现事件驱动的低功耗气体传感的物联网
物联网模式下传感设备最重要的应用之一是空气质量监测,这在空气污染日益成为公共卫生问题的城市和工业环境中特别有用。由于这些传感系统通常由电池供电,而气体传感器非常耗电,因此需要节能设计和电源管理来延长设备的使用寿命。在本文中,我们提出了一个两阶段的概念,其中一种新型低功耗碳纳米管用作耗能金属氧化物(MOX)半导体气体传感器的气体探测器。我们提出了一种利用低功耗纳米管气体传感器和更精确的MOX传感器的异构传感器节点的设计。本工作对三种事件驱动的场景进行了能耗模拟,以评估功耗降低以及碳纳米管的局限性。我们的研究结果表明,与仅使用MOX气体传感器的自适应占空比方案相比,所提出的方法具有优势,节点寿命延长了20%-35%。由于纳米管恢复时间引起的延迟可以通过无线电占空比活动来克服,以检测来自邻居节点的报警信息。
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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