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Efficient roller-driven elastocaloric refrigerator

Engineering and Technology

Efficient roller-driven elastocaloric refrigerator

S. Yao, P. Dang, et al.

This groundbreaking study multiplies the coefficient of performance (COP) of elastocaloric cooling systems by two, achieving an unprecedented 125% improvement through innovative advances in materials and mechanisms. Conducted by esteemed authors from Xi’an Jiaotong University, this research paves the way for enhanced efficiency in practical cooling applications.... show more
Abstract
Elastocaloric cooling has experienced fast development over the past decade owing to its potential to reshape the refrigeration industry. While the solid-state elastocaloric refrigerant is emission-free, the efficiency of the state-of-the-art elastocaloric cooling systems is not sufficient yet to reduce carbon emissions during operation. In this study, we double the coefficient of performance, the most commonly used efficiency metric, via the synergy of material-level advances in TiNiCu and the system-level roller-driven mechanism capable of recovering kinetic energy. On the materials level, a 125% improvement in coefficient of performance is illustrated in TiNiCu compared to NiTi, empowered by the B2-B19 martensitic transformation with improved lattice compatibility and the grain boundary strengthening from the nanocrystalline structure. On the system level, owing to the properly sized angular momentum in rotating parts, 78% work recovery efficiency is reported, transcending the theoretical limit previously unattainable without kinetic energy recovery. This confluence of materials and mechanical innovations propels elastocaloric cooling systems into a new realm of efficiency and paves the way for their practical application.
Publisher
Nature Communications
Published On
Aug 22, 2024
Authors
Sijia Yao, Pengfei Dang, Yiming Li, Yao Wang, Xi Zhang, Ye Liu, Suxin Qian, Dezhen Xue, Ya-Ling He
Tags
elastocaloric cooling
coefficient of performance
TiNiCu alloy
martensitic transformation
energy recovery
mechanical behavior
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