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Electromechanical and Electronic Integrated Harvester for Shoes Application

机译:机电一体化收鞋机

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Energy harvesting allows making sensors or transmitters electrically autonomous. Several studies have been proposed but most cases lack electrical and mechanical parts integration and practical application purpose. Here, with the aim of supplying a Bluetooth step-counter placed in the sole of a training shoe, a complete system is presented. It consists of a magnetoinductive transducer embedded with an electronic interface for power conditioning and exploits only the energy recovered by the impact on the ground. A  27   16 mm cylindrical device containing the transducer, the electronic interface, the step-counter electronics, and the protective shell is developed. Energy recovery derives from the magnet-free oscillation following the shoe impact. The proposed interface exploits pulse-width modulation to perform transducer output rectification and to emulate optimal load impedance while charging a storage capacitor. Numerical and experimental analysis show effective optimal resistive load emulation and energy recovery gain of 2 compared with the standard ac–dc interface. Prototypes have been manufactured and tested. Considering a sample footstep, energy recovery is 360 μJ against 400 μJ dissipated on optimal resistor. Mean energy recovery over a complete run is 644 μJ/footstep. In spite of variable excitation, energy recovery at each footstep is larger than the required and allows the step-counter transmitting the information.
机译:能量收集使传感器或变送器具有电子自主性。已经提出了一些研究,但是大多数情况下缺乏机电部件的集成和实际应用目的。这里,为了提供放置在训练鞋鞋底中的蓝牙步数计数器,提出了一个完整的系统。它由嵌入有用于功率调节的电子接口的磁感应换能器组成,并且仅利用通过撞击地面而回收的能量。开发了一个27毫米×16毫米的圆柱形设备,其中包含传感器,电子接口,步进计数器电子设备和保护壳。能量回收来自靴撞击后的无磁铁振荡。所提出的接口利用脉冲宽度调制来执行换能器输出整流,并在为存储电容器充电时仿真最佳负载阻抗。数值和实验分析表明,与标准的ac-dc接口相比,有效的最佳阻性负载仿真和能量恢复增益为2。原型已经制造和测试。考虑到样品的足迹,能量回收为360μJ,而最佳电阻上的耗散为400μJ。整个运行过程中的平均能量回收率为644μJ/足迹。尽管激励方式可变,但每个脚步的能量回收仍大于所需的能量,并允许步数计数器传输信息。

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