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Energy-efficient miniature-scale heat pumping based on shape memory alloys

Authors :
Shuichi Miyazaki
Manfred Kohl
Franziska Lambrecht
Marcel Gueltig
Frank Wendler
Hinnerk Ossmer
Source :
Smart Materials and Structures. 25:085037
Publication Year :
2016
Publisher :
IOP Publishing, 2016.

Abstract

Cooling and thermal management comprise a major part of global energy consumption. The by far most widespread cooling technology today is vapor compression, reaching rather high efficiencies, but promoting global warming due to the use of environmentally harmful refrigerants. For widespread emerging applications using microelectronics and micro-electro-mechanical systems, thermoelectrics is the most advanced technology, which however hardly reaches coefficients of performance (COP) above 2.0. Here, we introduce a new approach for energy-efficient heat pumping using the elastocaloric effect in shape memory alloys. This development is mainly targeted at applications on miniature scales, while larger scales are envisioned by massive parallelization. Base materials are cold-rolled textured Ti49.1Ni50.5Fe0.4 foils of 30 μm thickness showing an adiabatic temperature change of +20/−16 K upon superelastic loading/unloading. Different demonstrator layouts consisting of mechanically coupled bridge structures with large surface-to-volume ratios are developed allowing for control by a single actuator as well as work recovery. Heat transfer times are in the order of 1 s, being orders of magnitude faster than for bulk geometries. Thus, first demonstrators achieve values of specific heating and cooling power of 4.5 and 2.9 W g−1, respectively. A maximum temperature difference of 9.4 K between heat source and sink is reached within 2 min. Corresponding COP on the device level are 4.9 (heating) and 3.1 (cooling).

Details

ISSN :
1361665X and 09641726
Volume :
25
Database :
OpenAIRE
Journal :
Smart Materials and Structures
Accession number :
edsair.doi...........08276d739d00d0ad9acbf6074ac5dfee
Full Text :
https://doi.org/10.1088/0964-1726/25/8/085037