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Piezoelectric, solar and thermal energy harvesting for hybrid low-power generator systems with thin-film batteries

机译:带有薄膜电池的混合式低功率发电机系统的压电,太阳能和热能收集

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摘要

The harvesting of ambient energy to power small electronic components has received tremendous attention over the last decade. The research goal in this field is to enable self-powered electronic components for use particularly in wireless sensing and measurement applications. Thermal energy due to temperature gradients, solar energy and ambient vibrations constitute some of the major sources of energy that can be harvested. Researchers have presented several papers focusing on each of these topics separately. This paper aims to develop a hybrid power generator and storage system using these three sources of energy in order to improve both structural multifunctionality and system-level robustness in energy harvesting. A multilayer structure with flexible solar, piezoceramic, thin-film battery and metallic substructure layers is developed (with the overhang dimensions of 93 mm X 25 mm X 1.5 mm in cantilevered configuration). Thermal energy is also used for charging the thin-film battery layers using a 30.5 mm X 33 mm X 4.1 mm generator. Performance results are presented for charging and discharging of the thin-film battery layers using each one of the harvesting methods. It is shown based on the extrapolation of a set of measurements that 1 mA h of a thin-film battery can be charged in 20 min using solar energy (for a solar irradiance level of 223 W m~(-2)), in 40 min using thermal energy (for a temperature difference of 31 deg C) and in 8 h using vibrational energy (for a harmonic base acceleration input of 0.5g at 56.4 Hz).
机译:在过去的十年中,为小型电子元件供电的环境能量的收集受到了极大的关注。该领域的研究目标是使自供电电子组件特别用于无线传感和测量应用。由于温度梯度,太阳能和环境振动引起的热能构成了可以收集的一些主要能源。研究人员分别针对这些主题发表了几篇论文。本文旨在开发一种使用这三种能源的混合动力发电机和储能系统,以提高能量采集中的结构多功能性和系统级鲁棒性。开发了具有柔性太阳能,压电陶瓷,薄膜电池和金属子结构层的多层结构(悬臂结构的悬垂尺寸为93 mm X 25 mm X 1.5 mm)。热能还用于通过30.5 mm X 33 mm X 4.1 mm的发电机为薄膜电池层充电。给出了使用每种收集方法对薄膜电池层进行充电和放电的性能结果。根据一组测量值的推断,可以在40分钟内使用太阳能(对于223 W m〜(-2)的太阳辐照度)在20分钟内为1 mA h的薄膜电池充电。分钟使用热能(温度差为31摄氏度),在8小时内使用振动能量(对于在56.4 Hz时0.5g的基本谐波加速度输入)。

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