A heat-triggered triboelectric nanogenerator for self-powered wireless fire alarm

Xiaobo Lin, Kangyu Su, Lanxin Yang, Chenyang Xing, Zhengchun Peng, Bo Meng
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Abstract

Abstract Power supply is playing an increasingly important role in the rapidly developing era of the Internet of Things. Achieving a sustainable and clean power supply for electronic devices is an urgent and challenging task. In this study, we present a heat-triggered triboelectric nanogenerator (TENG) and develop a self-powered fire alarm system to achieve an early warning without an external power supply. A TENG comprises a gear system that can utilize the elastic potential energy of a spring. A wax block was used as a heat trigger. When melted at high temperatures, the TENG will be triggered to work and generate considerable electric energy. Within a single operation cycle of approximately 6 s, a 22 μ F capacitor can be charged up to 3.7 V. Such electrical energy is sufficient to drive a wireless transmission module through an automatic switching circuit. Overall, this study provides a feasible approach for a self-powered wireless warning system in power-shortage areas.
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一种热触发摩擦电纳米发电机,用于自供电无线火灾报警器
在快速发展的物联网时代,电源发挥着越来越重要的作用。为电子设备提供可持续、清洁的电力供应是一项紧迫而具有挑战性的任务。在这项研究中,我们提出了一种热触发摩擦电纳米发电机(TENG),并开发了一种自供电火灾报警系统,以实现无需外部电源的早期预警。TENG包括一个齿轮系统,可以利用弹簧的弹性势能。一块蜡块被用作热触发器。当在高温下熔化时,TENG将被触发工作并产生可观的电能。在大约6秒的单个工作周期内,一个22 μ F的电容器可以充电到3.7 V。所述电能足以驱动无线传输模块通过自动开关电路。总之,本研究为电力短缺地区的自供电无线预警系统提供了一种可行的方法。
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