Elastocaloric heat pump with specific cooling power of 20.9 W g-1 exploiting snap-through instability and strain-induced crystallization

被引:88
作者
Greibich, F. [1 ,2 ]
Schwoediauer, R. [1 ,2 ]
Mao, G. [2 ]
Wirthl, D. [1 ,2 ]
Drack, M. [1 ,2 ]
Baumgartner, R. [1 ]
Kogler, A. [1 ]
Stadlbauer, J. [1 ,2 ]
Bauer, S. [1 ]
Arnold, N. [1 ,2 ]
Kaltenbrunner, M. [1 ,2 ]
机构
[1] Johannes Kepler Univ Linz, Div Soft Matter Phys, Inst Expt Phys, Linz, Austria
[2] Johannes Kepler Univ Linz, Soft Mat Lab, Linz Inst Technol, Linz, Austria
关键词
NATURAL-RUBBER; ROOM-TEMPERATURE; PERFORMANCE; SCALE; REFRIGERATION; DEVICE; MODEL;
D O I
10.1038/s41560-020-00770-w
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Conventional refrigeration relies on hazardous agents, contributing to global warming. Soft, cheap, biodegradable solid-state elastocaloric cooling based on natural rubber offers an environmentally friendly alternative. However, no such practical cooler has been developed, as conventional soft elastocaloric designs are not fast enough to ensure adiabaticity. Here, we combine snap-through instability with strain-induced crystallization and achieve a sub-100 ms quasi-adiabatic cycling, which is 30 times faster than previous designs. Negligible heat exchange in expansion/contraction stages combined with the latent heat of phase transitions results in a giant elastocaloric crystallization effect. The rubber-based all-soft heat pump enables a specific cooling power of 20.9 W g(-1), a heat flux of 256 mW cm(-2), a coefficient of performance of 4.7 and a single-stage temperature span between hot and cold reservoirs of 7.9 K (full adiabatic temperature change of rubber membrane exceeding 23 K). The pump permits a compact all-soft voltage-actuated set-up, opening up the opportunity of a viable plug-in-ready cooling device. Solid-state caloric cooling is a promising alternative to vapour compression, yet only a few prototypes have been shown. Greibich et al. now report an elastocaloric cooling device based on natural rubber with a cooling power of over 20 W g(-1) that exploits snap-through instability and strain-induced crystallization.
引用
收藏
页码:260 / 267
页数:8
相关论文
共 50 条
  • [1] [Anonymous], 2014, Energy Savings Potential and RDD Opportunities for Non-Vapor-Compression HVAC Technologies
  • [2] A Lesson from Plants: High-Speed Soft Robotic Actuators
    Baumgartner, Richard
    Kogler, Alexander
    Stadlbauer, Josef M.
    Foo, Choon Chiang
    Kaltseis, Rainer
    Baumgartner, Melanie
    Mao, Guoyong
    Keplinger, Christoph
    Koh, Soo Jin Adrian
    Arnold, Nikita
    Suo, Zhigang
    Kaltenbrunner, Martin
    Bauer, Siegfried
    [J]. ADVANCED SCIENCE, 2020, 7 (05)
  • [3] SMA foil-based elastocaloric cooling: from material behavior to device engineering
    Bruederlin, F.
    Ossmer, H.
    Wendler, F.
    Miyazaki, S.
    Kohl, M.
    [J]. JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2017, 50 (42)
  • [4] Elastocaloric Cooling on the Miniature Scale: A Review on Materials and Device Engineering
    Bruederlin, Florian
    Bumke, Lars
    Chluba, Christoph
    Ossmer, Hinnerk
    Quandt, Eckhard
    Kohl, Manfred
    [J]. ENERGY TECHNOLOGY, 2018, 6 (08) : 1588 - 1604
  • [5] Giant room-temperature barocaloric effects in PDMS rubber at low pressures
    Carvalho, A. M. G.
    Imamura, W.
    Usuda, E. O.
    Bom, N. M.
    [J]. EUROPEAN POLYMER JOURNAL, 2018, 99 : 212 - 221
  • [6] A magnet-based device for active magnetic regenerative refrigeration
    Clot, P
    Viallet, D
    Allab, F
    Kedous-Lebouc, A
    Fournier, JM
    Yonnet, JP
    [J]. IEEE TRANSACTIONS ON MAGNETICS, 2003, 39 (05) : 3349 - 3351
  • [7] Colossal Elastocaloric Effect in Ferroelastic Ni-Mn-Ti Alloys
    Cong, Daoyong
    Xiong, Wenxin
    Planes, Antoni
    Ren, Yang
    Manosa, Lluis
    Cao, Peiyu
    Nie, Zhihua
    Sun, Xiaoming
    Yang, Zhi
    Hong, Xiufeng
    Wang, Yandong
    [J]. PHYSICAL REVIEW LETTERS, 2019, 122 (25)
  • [8] Enhanced electrocaloric efficiency via energy recovery
    Defay, E.
    Faye, R.
    Despesse, G.
    Strozyk, H.
    Sette, D.
    Crossley, S.
    Moya, X.
    Mathur, N. D.
    [J]. NATURE COMMUNICATIONS, 2018, 9
  • [9] Future prospects for elastocaloric devices
    Engelbrecht, Kurt
    [J]. JOURNAL OF PHYSICS-ENERGY, 2019, 1 (02):
  • [10] RUBBER HEAT ENGINES, ANALYSES AND THEORY
    FARRIS, RJ
    [J]. POLYMER ENGINEERING AND SCIENCE, 1977, 17 (10) : 737 - 744