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Numerical Analysis of an Active Thermomagnetic Device for Thermal Energy Harvesting
Author(s) -
Makita R. Phillips,
Gregory P. Carman
Publication year - 2020
Publication title -
journal of energy resources technology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.615
H-Index - 48
eISSN - 1528-8994
pISSN - 0195-0738
DOI - 10.1115/1.4046273
Subject(s) - thermomagnetic convection , materials science , thermal energy , thermal , energy transformation , waste heat , neodymium , magnetic field , optoelectronics , mechanical engineering , thermodynamics , optics , heat exchanger , physics , engineering , laser , quantum mechanics
The abundance of low-grade waste heat necessitates energy harvesting devices to convert thermal energy to electrical energy. Through magnetic transduction, thermomagnetics can perform this conversion at reasonable efficiencies. Thermomagnetic materials use thermal energy to switch between magnetic and non-magnetic states and convert thermal energy into electrical energy. In this study, we numerically analyzed an active thermomagnetic device for thermal energy harvesting composed of gadolinium (Gd) and neodymium iron boron (NdFeB). A parametric study to determine the device efficiency was conducted by varying the gap distance, heat source temperature, and Gd thickness. Furthermore, the effect of the thermal conductance and applied field was also evaluated. It was found that the relative efficiency for smaller gap distances ranges from ∼15% to 28%; the largest allowable volume of Gd should be used and higher applied field leads to higher efficiencies.

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