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用于从人类步态中收集能量的简易驻极体制造方法。

Facile Electret Fabrication for Energy Harvesting from Human Gait.

作者信息

Zanoletti Michele, Vitulo Paolo, Morina Riccardo, Callegari Daniele, Viola Riccardo, Mustarelli Piercarlo, Patrini Maddalena

机构信息

Dipartimento di Fisica and Centro di Ricerca Interdipartimentale in Materiali Avanzati e Dispositivi (MADE), Università degli Studi di Pavia, Via A. Bassi 6, 27100 Pavia, Italy.

Istituto Nazionale di Fisica Nucleare-Pavia, Via Bassi 6, 27100 Pavia, Italy.

出版信息

Polymers (Basel). 2025 Feb 28;17(5):664. doi: 10.3390/polym17050664.

Abstract

Dielectric elastomer generators (DEGs) are electrostatic transducers capable of harvesting electrical energy from oscillating mechanical parts and storing it in a battery or supercapacitor. The energy conversion element typically consists of a flexible capacitor with a variable capacitance that depends on the applied stress cycle and requires an external voltage source (bias voltage). In designing an energy harvesting device from human gait, we propose integrating two components: a dielectric elastomer fabricated using a nanocomposite polyurethane (TPU-CaCuTiO) and an electret serving as a bias voltage source. In this work, we report on the electret fabrication and long-term charge retention properties using corona charging. The manufactured electrets are tested in coupling with the dielectric elastomer and allowed us to harvest an energy amount of 62 µJ/cycle (3.1 µJ/cm) on a resistive load of 450 MΩ during motion cycles at a frequency of 0.5 Hz. Given the materials used, this approach is well suited to harvesting energy from human gait and holds promise for powering wearable devices.

摘要

介电弹性体发电机(DEG)是一种静电换能器,能够从振荡的机械部件中收集电能并将其存储在电池或超级电容器中。能量转换元件通常由一个可变电容的柔性电容器组成,该电容取决于施加的应力周期,并且需要一个外部电压源(偏置电压)。在设计一种基于人类步态的能量收集装置时,我们建议集成两个组件:一种使用纳米复合聚氨酯(TPU-CaCuTiO)制造的介电弹性体和一个用作偏置电压源的驻极体。在这项工作中,我们报告了使用电晕充电的驻极体制造和长期电荷保持特性。制造的驻极体与介电弹性体耦合进行测试,在频率为0.5Hz的运动周期中,在450MΩ的电阻负载上,我们能够收获62µJ/周期(3.1µJ/cm)的能量。鉴于所使用的材料,这种方法非常适合从人类步态中收集能量,并有望为可穿戴设备供电。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0afe/11902382/2df231b25239/polymers-17-00664-g0A1.jpg

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