通过占空比可重构传感器电子器件,最大限度地减少无线传感器网络的功耗

Kai Lutz, A. König
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引用次数: 10

摘要

在过去的十年中,无线传感器网络(WSN)获得了相当大的重视和发展势头。它们与越来越多的传感器一起用于各种各样的应用,例如,从环境智能(AmI)、辅助生活(AAL)到农业。基于WSN的测量和仪表系统通常必须在严格的功耗限制下运行。特别是得益于微机电系统(MEMS)小型化的WSN,由于存储元件的能量密度较低,其功耗预算非常有限。虽然现在有高度优化的微控制器,但今天的传感器和传感器电子设备是WSN功耗的主要原因。标准方法是通过低功耗传感器、电桥和放大器设计来最小化待机电流。相比之下,本文研究了一种用于电阻桥式传感器的占空比、可重构传感器电子器件的方法,该方法可无缝集成到微控制器的睡眠模式中。针对自主WSN中基于各向异性磁阻(AMR)传感器定位的特殊情况,对电路进行了优化。在系统分析中,放大器电流,旋转速率和读出或准时Ton被优化为三轴AMR传感器的最小功耗。在所需的读出速率下,例如,每分钟测量一次,能量消耗可以减少到连续操作的1.5·10−6倍。标准0.35 μ m块CMOS技术的可重构芯片正在准备中,增加了不同传感器类型和校准需求的灵活性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Minimizing power consumption in wireless sensor networks by duty-cycled reconfigurable sensor electronics
In the last decade, wireless sensor networks (WSN) have gained considerable importance and momentum. They are used with a growing diversity of sensors in a plethora of applications, e.g., from Ambient Intelligence (AmI), Assisted Living (AAL) to agriculture. WSN based measurement and instrumentation systems commonly have to operate under tight power consumption constraints. In particular, WSN benefiting from micro-electro-mechanical-system (MEMS) miniaturization have a very limited power budget due to poor energy density of storage elements. While highly optimized microcontrollers are available by now, today's sensors and sensor electronics are the predominant cause of power consumption in WSN. The standard approach tries to minimize standby currents by low-power sensor, bridge, and amplifier design. In contrast, this paper investigates an approach of duty-cycled, reconfigurable sensor electronics for resistive bridge sensors, that seamlessly integrates into microcontroller' sleep modes. The circuit is optimized for the particular case of anisotropic magneto-resistive (AMR) sensor based localization in autonomous WSN. In a systematic analysis amplifier currents, slew-rate, and read-out or on-time Ton are optimized for minimum power consumption of a tri-axial AMR sensor. At the required read-out rates, e.g., one measurement per minute, energy consumption can be reduced to a factor 1.5·10−6 of the continuous operation. A reconfigurable chip in a standard 0.35 µm bulk CMOS technology is under preparation adding flexibility for different sensor types and calibration needs.
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