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Elastocaloric Heat Pump by Twist Induced Periodical Non-Linear Stress for Low Hysteresis and High Carnot Efficiency. | LitMetric

Elastocaloric Heat Pump by Twist Induced Periodical Non-Linear Stress for Low Hysteresis and High Carnot Efficiency.

Adv Mater

State Key Laboratory of Medicinal Chemical Biology, Key Laboratory of Functional Polymer Materials, College of Chemistry, Nankai University, 94 Weijin Road, Tianjin, 300071, China.

Published: November 2024

AI Article Synopsis

  • - Elastocaloric cooling is a solid-state technology aimed at enhancing cooling efficiency while reducing energy consumption, addressing global warming and energy shortages.
  • - A new heat pump design using fiber twisting and periodic non-linear stress improves cooling performance, achieving a high coefficient of performance (COP of 30.8) and low hysteresis work.
  • - This innovative design significantly extends the device's cycle life to 14,752 cycles and delivers effective cooling with a temperature span of 25.6 K and a specific cooling power of 1850 W/kg.

Article Abstract

Elastocaloric cooling is one of the most promising solid-state cooling approaches to address the issues of energy shortage and global warming. However, the cooling efficiency and cycle life of this technology need to be improved, and the required driving force shall be reduced. Here, a novel elastocaloric heat pump by periodic non-linear stress is developed by employing fiber twisting and separated cooling and heating media. The non-linear stress generated by fiber twisting yields a hierarchical, rigid-yet-flexible architecture and a periodic entropy spatial distribution, which result in a low mechanical hysteresis work and a high cooling efficiency (a maximum material coefficient of performance (COP) of 30.8 and a maximum Carnot efficiency of 82%). The torsional non-linear stress inhibits crack propagation and results in a highly extended cycle life (14752 cycles, more than ten times of fiber stretching). The heat pump exhibits a maximum average temperature span of 25.6 K, a maximum specific cooling power of 1850 W Kg, a maximum device COP of 19.5, and a maximum device power of 5.0 W, under each optimal condition.

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Source
http://dx.doi.org/10.1002/adma.202407009DOI Listing

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