Abstract Triboelectric-piezoelectric-electromagnetic hybrid nanogenerator for high-efficient vibration energy harvesting and self-powered wireless monitoring system
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Triboelectric-piezoelectric-electromagnetic hybrid nanogenerator for high-efficient vibration energy harvesting and self-powered wireless monitoring system

机译:用于高效振动能量收集和自动无线监控系统的摩擦电压 - 电磁混合纳米液

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摘要

AbstractEnergy harvesting is a key technology for the self-powered mode of wireless sensor nods and mobile terminals. A large number of devices have been developed to convert mechanical energy into electrical energy. Whereas great efforts have been made to improve the output performance, problems like energy dissipation, device life and response range still need to be addressed. Herein, we report a hybridized triboelectric-piezoelectric-electromagnetic nanogenerator efficiently harvesting vibration energy. Three harvest modes are integrated into a single device, whose core component is a magnetic levitation structure. On the one hand, it presents higher sensitivity than conventional spring or cantilever designs due to low energy loss, which favors the tiny energy harvesting like the slapping desk vibration and the running car vibration. On the other hand, the mechanical fatigue or damage can be avoided by the special structure design. Under 20Hz, triboelectric nanogenerator (TENG) can deliver a peak output power of 78.4μW, while the top (EMG2) and the bottom (EMG1) electromagnetic generator can provide a peak output power of 36mW and 38.4mW, respectively. Piezoelectric generator located at top (PEG2) and bottom (PEG1) can contribute a peak output power of 122mW and 105mW, respectively. The capacitor charge measurement reveals that unit combination performance is remarkably stronger than individual performance, and the combination of TENG+EMG1+EMG2+PEG1+PEG2 has the highest energy harvesting capacity. Finally, this device has been integrated into a wireless sensor system. Results show that the wireless sensor system can be activated and transmit temperature and vibration signal to contro
机译:<![cdata [ 抽象 能量收集是无线传感器点头和移动终端的自供电模式的关键技术。已经开发了大量设备以将机械能转化为电能。虽然已经提高了产出性能的巨大努力,但仍需要解决能源耗散,设备寿命和响应范围等问题。在此,我们报告了杂交的摩擦压电电磁纳米能器有效收获振动能量。三种收获模式集成到单个设备中,其核心部件是磁悬浮结构。一方面,由于低能量损失,它具有比传统的弹簧或悬臂设计更高的灵敏度,这有利于像拍打台振动和运行汽车振动一样的微小能量收获。另一方面,特殊结构设计可以避免机械疲劳或损坏。在20Hz下,摩擦电纳米液(Teng)可以提供78.4μW的峰值输出功率,而顶部(EMG2)和底部(EMG1)电磁发生器可以分别提供36MW和38.4mW的峰值输出功率。位于顶部(PEG2)和底部(PEG1)的压电发电机分别有助于122mW和105MW的峰值输出功率。电容器电荷测量显示,单位组合性能比单个性能更强,而Teng + EMG1 + EMG2 + PEG1 + PEG2的组合具有最高的能量收集能力。最后,该设备已集成到无线传感器系统中。结果表明,无线传感器系统可以激活和传输温度和振动信号以进行矛盾

著录项

  • 来源
    《Nano Energy》 |2018年第2018期|共14页
  • 作者单位

    Science and Technology on Electronic Test and Measurement Laboratory North University of China;

    Science and Technology on Electronic Test and Measurement Laboratory North University of China;

    Science and Technology on Electronic Test and Measurement Laboratory North University of China;

    Science and Technology on Electronic Test and Measurement Laboratory North University of China;

    Science and Technology on Electronic Test and Measurement Laboratory North University of China;

    Science and Technology on Electronic Test and Measurement Laboratory North University of China;

    Science and Technology on Electronic Test and Measurement Laboratory North University of China;

    Science and Technology on Electronic Test and Measurement Laboratory North University of China;

    Science and Technology on Electronic Test and Measurement Laboratory North University of China;

    Science and Technology on Electronic Test and Measurement Laboratory North University of China;

    Science and Technology on Electronic Test and Measurement Laboratory North University of China;

    Science and Technology on Electronic Test and Measurement Laboratory North University of China;

    Science and Technology on Electronic Test and Measurement Laboratory North University of China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 能源与动力工程;
  • 关键词

    Magnetic levitation; Triboelectric; Piezoelectric; Electromagnetic; Self-powered; Wireless sensor system;

    机译:磁悬浮;摩擦电;压电;电磁;自动;无线传感器系统;

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