Scaling and super-cooling in heat storage harvesting devices

被引:0
|
作者
M. E. Kiziroglou
A. Elefsiniotis
N. Kokorakis
S. W. Wright
T. T. Toh
P. D. Mitcheson
U. Schmid
Th. Becker
E. M. Yeatman
机构
[1] Imperial College London,Department of Electrical and Electronic Engineering
[2] Airbus Group Innovations,Communication and Sensor Department
[3] Vienna University of Technology,Institute of Sensor and Actuator Systems
[4] Alexander Technological Educational Institute of Thessaloniki,Department of Automation Engineering
来源
Microsystem Technologies | 2016年 / 22卷
关键词
Phase Change Material; Heat Storage; Cumulative Energy; Heat Leakage; Phase Change Temperature;
D O I
暂无
中图分类号
学科分类号
摘要
Aircraft sensors are typically cable powered, imposing a significant weight overhead. The exploitation of temperature variations during flight by a phase change material (PCM) based heat storage thermoelectric energy harvester, as an alternative power source in aeronautical applications, has recently been flight tested. In this work, the applicability of this technology to use cases with smaller and larger size specifications is studied by fabrication, testing and analysis of a scaled-down and a scaled-up prototype. Output energy of 4.1 J/g of PCM from a typical flight cycle is demonstrated for the scaled-down device, and 2.3 J/g of PCM for the scaled-up device. The higher energy density of the scaled down prototypes is attributed to the reduction in temperature inhomogeneity inside the PCM. The impact of super-cooling on performance is analyzed by employing a simulation model extended to include super-cooling effects. It is found that super-cooling may be beneficial for scaling down, in applications with slow temperature fluctuations.
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页码:1905 / 1914
页数:9
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