利用足跟冲击诱导气流收集足步能量用于人体活动感应

Hailing Fu, K. Cao, R. Xu, Mohamed Aziz Bhouri, R. Martinez-Botas, Sang-Gook Kim, E. Yeatman
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引用次数: 13

摘要

身体传感器网络在医疗、体育、军事和安全领域越来越受欢迎。然而,传统电池供电是制约人体状态监测发展的关键瓶颈。从人体运动中收集能量来为可穿戴或植入式设备供电是一个很有前途的选择。本文提出了一种利用人体脚步运动能量的气流能量采集器。设计了一种气囊式涡轮能量采集器,将脚步运动转化为电能。这些气囊被嵌入鞋子中,以诱导脚撞击产生的气流。涡轮被用来从气流中产生电能。采用计算流体力学(CFD)方法对涡轮转子叶片数、叶片内径(涡轮轴直径)等设计参数进行了优化。一个原型被开发出来,并测试了一个65公斤重的人的脚步。首先测量了不同电阻性负载下收割机的峰值输出功率,在30.4 Ω负载下,最大输出功率为90.6 mW。然后,收集的能量被调节并存储在电源管理电路中。165个脚步在回路中储存了14.8 mJ,即每一步获得90 μJ。调节后的能量最终被用来为一个由计步器和蓝牙模块组成的健身追踪器供电。跟踪器每次蓝牙配置和数据传输消耗7.38 mJ。跟踪器运行正常,收割机连续工作。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Footstep energy harvesting using heel strike-induced airflow for human activity sensing
Body sensor networks are increasingly popular in healthcare, sports, military and security. However, the power supply from conventional batteries is a key bottleneck for the development of body condition monitoring. Energy harvesting from human motion to power wearable or implantable devices is a promising alternative. This paper presents an airflow energy harvester to harness human motion energy from footsteps. An air bladder-turbine energy harvester is designed to convert the footstep motion into electrical energy. The bladders are embedded in shoes to induce airflow from foot-strikes. The turbine is employed to generate electrical energy from airflow. The design parameters of the turbine rotor, including the blade number and the inner diameter of the blades (the diameter of the turbine shaft), were optimized using the computational fluid dynamics (CFD) method. A prototype was developed and tested with footsteps from a 65 kg person. The peak output power of the harvester was first measured for different resistive loads and showed a maximum value of 90.6 mW with a 30.4 Ω load. The harvested energy was then regulated and stored in a power management circuit. 14.8 mJ was stored in the circuit from 165 footsteps, which means 90 μJ was obtained per footstep. The regulated energy was finally used to fully power a fitness tracker which consists of a pedometer and a Bluetooth module. 7.38 mJ was consumed by the tracker per Bluetooth configuration and data transmission. The tracker operated normally with the harvester working continuously.
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