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The design of a ultra-low power RF wakeup sensor for wireless sensor networks

机译:用于无线传感器网络的超低功耗射频唤醒传感器的设计

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Conventional MAC protocols for wireless sensor networks have adopted duty cycling to reduce idle listening, but duty cycling leads to energy-latency tradeoff, which is one of the major challenges for designing energy efficient and high performance MAC protocols for wireless sensor networks. To break through the energy-latency tradeoff caused by duty cycling in the existing wireless sensor network, we propose a new RF wakeup sensor, which is a dedicated small RF module to check potential communications by sensing the presence of a RF signal. With RF wakeup sensor each node no longer requires duty cycling, eliminating both sleep delay and idle listening. The distinctive feature of our RF design from the existing radio sensor studies is that the RF wakeup sensor can provide the same sensitivity as the underlying RF communication module with two orders of magnitude lower energy consumption. To equalize the RF sensing range to the communication range, the RF wakeup sensor uses a dedicated amplifier for input signal. The amplifier can selectively sense signals on the predefined frequency band by employing a frequency filter that requires neither mixer nor oscillator. We evaluate the circuital characteristics of our RF wakeup sensor design by using Advanced Design System 2009 simulator. The results show that RF wakeup sensor allows a sensor node to completely turn off their communication module by performing the around-the-clock carrier sensing while it consumes only 1% energy of an idle communication module.
机译:用于无线传感器网络的常规MAC协议已采用占空比来减少空闲侦听,但是占空比导致能量等待时间的折衷,这是设计用于无线传感器网络的高效节能和高性能MAC协议的主要挑战之一。为了打破现有无线传感器网络中由于占空比引起的能量等待时间折衷,我们提出了一种新型的RF唤醒传感器,它是专用的小型RF模块,可通过检测RF信号的存在来检查潜在的通信。使用RF唤醒传感器,每个节点都不再需要占空比,从而消除了睡眠延迟和空闲监听。现有无线电传感器研究得出的我们RF设计的显着特征是RF唤醒传感器可以提供与底层RF通信模块相同的灵敏度,并且能耗降低了两个数量级。为了使RF感应范围与通信范围相等,RF唤醒传感器使用专用放大器输入信号。放大器可以通过使用既不需要混频器也不需要振荡器的频率滤波器来选择性地感测预定频带上的信号。我们使用Advanced Design System 2009模拟器评估RF唤醒传感器设计的电路特性。结果表明,RF唤醒传感器允许传感器节点通过全天候执行载波侦听来完全关闭其通信模块,而它仅消耗空闲通信模块的1%能量。

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