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A printable trapezoid-structured UWB micro-strip antenna applicable to MEMS wireless sensor networks

机译:可印刷梯形结构化UWB微带天线,适用于MEMS无线传感器网络

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摘要

This paper comprises of two related works. Firstly, a printable trapezoid-structured UWB micro-strip antenna applicable to MEMS wireless sensor networks (WSN) is proposed from the view point of both the return loss and the impedance bandwidth. A dimensionless parameter, defined as the width ratio of the top edge to the bottom edge of the proposed trapezoid-structure, is introduced to explore the relevance between the trapezoidal geometry and the S-11 curve. An optimized trapezoidal structure with better S-11 curve is achieved and expected to have various WSN applications. Secondly, a wireless electric current sensor via integrating a magnetic piezoelectric cantilever and the optimized trapezoidal-structured micro-strip antenna is presented for the first time to show the applicability to WSN preliminarily. The wireless current sensor system, consisting of both the magnetic piezoelectric cantilever for measuring electric currents and the trapezoidal-structural micro-strip antenna for transmitting output voltages, are designed and integrated for demonstration, at an operating frequency of 3 GHz with the lowest return loss. Although output errors of 2-7% are observed for output voltage range of 88-116 mV, the signal transmission measurement demonstrates that the proposed integration is experimentally feasible and effective. Due to the ultra-wideband (2-11 GHz) and low power consumption of the integrated micro-strip antenna, the proposed integration is expected to be applicable to various kinds of wireless sensor nodes of different frequencies or multi-sensors monitoring systems.
机译:本文包括两个相关的作品。首先,从回波损耗和阻抗带宽的视点提出了一种适用于MEMS无线传感器网络(WSN)的可印刷梯形结构UWB微剥离天线。引入了定义为所提出的梯形结构的顶部边缘的顶部边缘的宽度比的无量纲参数,以探讨梯形几何形状和S-11曲线之间的相关性。实现了具有更好S-11曲线的优化梯形结构,并预期具有各种WSN应用。其次,首次通过集成磁压电悬臂和优化的梯形结构微带天线的无线电流传感器,以预先显示对WSN的适用性。由用于测量电流的磁性压电悬臂和用于传输输出电压的梯形结构微带天线的无线电流传感器系统,以3GHz的工作频率设计和集成了用于演示的磁电流和用于传输输出电压的梯形结构微剥离天线。 。虽然对于输出电压范围为88-116 mV的输出误差,但信号传输测量表明,所提出的集成是通过实验可行和有效的。由于超宽带(2-11 GHz)和集成的微带天线的低功耗,预计建议的集成将适用于不同频率的各种无线传感器节点或多传感器监控系统。

著录项

  • 来源
    《Microsystem technologies》 |2018年第6期|共8页
  • 作者单位

    Changchun Univ Sci &

    Technol Sch Elect &

    Informat Engn Changchun 130022 Jilin Peoples R China;

    Jilin Univ Sch Mech Sci &

    Engn Micro Engn &

    Micro Syst Lab JML Changchun 130022 Jilin Peoples R China;

    Jilin Univ Sch Mech Sci &

    Engn Micro Engn &

    Micro Syst Lab JML Changchun 130022 Jilin Peoples R China;

    Jilin Univ Sch Mech Sci &

    Engn Micro Engn &

    Micro Syst Lab JML Changchun 130022 Jilin Peoples R China;

    Changchun Univ Sci &

    Technol Sch Elect &

    Informat Engn Changchun 130022 Jilin Peoples R China;

    Jilin Univ Sch Elect Sci &

    Engn Changchun 130022 Jilin Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 微电子学、集成电路(IC);
  • 关键词

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