Journal Article10.1126/science.adg7043
High-performance multimode elastocaloric cooling system
Suxin Qian,David Catalini,Jan Muehlbauer,Boyang Liu,Huilong Hou,Yunho Hwang,Reinhard Radermacher,Ichiro Takeuchi +7 more
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TL;DR: In this article , the authors developed an elastocaloric cooling system with a maximum cooling power of 260 watts and a maximum temperature span of 22.5 kelvin, which is among the highest reported for any caloric cooling system.
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Abstract: Developing zero–global warming potential refrigerants has emerged as one area that helps address global climate change concerns. Various high-efficiency caloric cooling techniques meet this goal, but scaling them up to technologically meaningful performance remains challenging. We have developed an elastocaloric cooling system with a maximum cooling power of 260 watts and a maximum temperature span of 22.5 kelvin. These values are among the highest reported for any caloric cooling system. Its key feature is the compression of fatigue-resistant elastocaloric nitinol (NiTi) tubes configured in a versatile multimode heat exchange architecture, which allows the harnessing of both high delivered cooling power and large temperature spans. Our system shows that elastocaloric cooling, which only emerged 8 years ago, is a promising direction for commercializing caloric cooling. Description Editor’s summary Vapor compression cooling often relies on refrigerants that are greenhouse gases or have other issues with flammability and toxicity. Caloric cooling is a different strategy that instead relies on moving solids through a phase transition. Qian et al. developed an elastocaloric cooling device that compresses fatigue-resistant bundles of nickel–titanium tubes to obtain an attractive cooling power and maximum temperature difference. The device is competitive relative to other caloric strategies and may be attractive for eventual commercialization. —Brent Grocholski Compressing metal refrigerants in a versatile heat-exchange design leads to the delivery of technologically relevant cooling performance.
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Citations
Core‐shell TiO2@Au Nanofibers Derived from a Unique Physical Coating Strategy for Excellent Capacitive Energy Storage Nanocomposites
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Continuous and efficient elastocaloric air cooling by coil-bending
Xueshi Li,Peng Hua,Qingping Sun +2 more
TL;DR: Researchers develop a low-force, energy-efficient elastocaloric air cooling system using coil-bending of NiTi ribbons/wires, achieving a 10.6 K temperature drop and 2.5 W g-1 specific cooling power at a low driving force of 26 N g-1.
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Large elastocaloric effect covering a broad temperature window in a composition-graded Ni50Mn31.5Ti18.5 alloy prepared by magnetic field-assisted directional solidification
Honglin Wang,Zongbin Li,Long Hou,Xi Li,Hai Yan,Bo Yang,Liang Zuo +6 more
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Crystallography of stress-induced martensitic transformation and giant elastocaloric effect in a <001>A textured Ni27Cu21Mn46Sn6 shape memory alloy
Jiajing Yang,Honglin Wang,Zongbin Li,Naifu Zou,Hai Yan,Liang Zuo +5 more
TL;DR: Researchers studied the crystallography of stress-induced martensitic transformation in a Ni27Cu21Mn46Sn6 shape memory alloy, revealing a specific transformation orientation relationship and a remarkable elastocaloric effect with an adiabatic temperature variation of up to –31.8 K.
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A multi-material cascade elastocaloric cooling device for large temperature lift
Qiuhong Wang,Yuxiang Zhu,Peng Hua +2 more
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TL;DR: The resulting magnetocaloric, electrocaloric and mechanocaloric effects are compared here in terms of history, experimental method, performance and prospective cooling applications.
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Giant solid-state barocaloric effect in the Ni-Mn-In magnetic shape-memory alloy
Lluís Mañosa,David González-Alonso,Antoni Planes,Erell Bonnot,Maria Barrio,Josep-Lluís Tamarit,Seda Aksoy,Mehmet Acet +7 more
TL;DR: It is shown that the application of a moderate hydrostatic pressure to a magnetic shape-memory alloy gives rise to a caloric effect with a magnitude that is comparable to the giant magnetocaloric effect reported in this class of materials.
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Description and Performance of a Near-Room Temperature Magnetic Refrigerator
Carl B. Zimm,A. Jastrab,A. Sternberg,Vitalij K. Pecharsky,Karl A. Gschneidner,M. G. Osborne,I. E. Anderson +6 more
TL;DR: In this article, a reciprocating magnetic refrigerator that uses water as a heat transfer fluid has been demonstrated to achieve cooling powers exceeding 500 watts at coefficients of performance of 6 or more.
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