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Modeling of enhanced micro-energy harvesting of thermal ambient fluctuations with metallic foams embedded in Phase Change Materials

机译:嵌入相变材料中金属泡沫的热环境波动增强微能采伐的建模

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摘要

We present an enhanced micro-energy harvester to transform ambient thermal fluctuations into electricity. The design consists of a Thermoelectric Generator (TEG) joined to a thermal storage unit improved with a Phase Change Material within a metallic foam (pPCM). We show how the augmented effective conductivity of the heat storage unit multiplies the production of electric power through voltage generation in higher and shorter sprouts. The porosity of the metallic foam accelerates the heat transfer and permits higher volumes of the heat storage unit to be effective in harvesting more energy from the surroundings. The pPCM/TEG device is a robust and cost-effective means to optimize the output of TEG based systems to power low-consumption electronics. The potential of this design is demonstrated with examples of micro-energy harvesting under ambient thermal conditions in an aircraft and ground solar irradiation. In these applications, a single TEG module with a moderate merit figure is used and found that pPCM allows a substantial optimization of energy conversion. As an example, the pPCM/TEG devices produce about twenty times more electric energy at even small volume fractions of the foam epsilon = 0.95 than PCM/TEG systems in solar micro-energy harvesting on ground conditions with low thermal gradients. (c) 2020 The Author(s). Published by Elsevier Ltd. This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
机译:我们提出了一种增强的微能收割机,可以将环境热波动转变为电力。该设计由连接到热存储单元的热电发电机(TEG)组成,所述热存储单元在金属泡沫(PPCM)内具有相变材料。我们展示了蓄热单元的增强有效电导率如何将电力的产生通过较高和较短的芽沟的电压产生。金属泡沫的孔隙率加速了传热,并且允许更高体积的蓄热单元有效地收集来自周围环境的更多能量。 PPCM / TEG器件是一种坚固且经济效益的方法,可优化基于TEG的系统输出到功率低耗电子设备。该设计的潜力通过在飞机和地面太阳照射的环境热条件下微能收获的示例进行了说明。在这些应用中,使用具有中等优异图形的单个TEG模块,发现PPCM允许大量优化能量转换。作为示例,PPCM / TEG器件在泡沫ε= 0.95的小体积分数中产生大约20倍的电能,比PCM / TEG系统在具有低热梯度的地面条件下的太阳微能收获。 (c)2020提交人。由elsevier有限公司发布这是CC下的开放式访问文章(http://creativecommomons.org/licenses/by/4.0/)。

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