Journal of Alloys and Compounds2022,Vol.9209.DOI:10.1016/j.jallcom.2022.165891

Room-temperature polymer-assisted additive manufacturing of microchanneled magnetocaloric structures

Sharma V. Bishop O. Hadimani R.L. Zhao H. Barua R. Hunt C.S.M. Carpenter E.E. Heo R. Balderson L.
Journal of Alloys and Compounds2022,Vol.9209.DOI:10.1016/j.jallcom.2022.165891

Room-temperature polymer-assisted additive manufacturing of microchanneled magnetocaloric structures

Sharma V. 1Bishop O. 1Hadimani R.L. 1Zhao H. 1Barua R. 1Hunt C.S.M. 2Carpenter E.E. 2Heo R. 3Balderson L.2
扫码查看

作者信息

  • 1. Department of Mechanical & Nuclear Engineering Virginia Commonwealth University
  • 2. Department of Chemistry Virginia Commonwealth University
  • 3. Department of Biomedical Engineering Virginia Commonwealth University
  • 折叠

Abstract

? 2022 Elsevier B.V.Magnetic refrigeration is an energy-efficient, sustainable, environmentally-friendly alternative to the conventional vapor-compression cooling technology. There are several magnetic refrigerator device designs in existence today that are predicted to be highly energy-efficient, on condition that suitable working materials can be developed. This challenge in manufacturing magnetocaloric devices is unresolved, mainly due to issues related to shaping the mostly brittle magnetocaloric alloys into thin-walled channeled regenerator structures to facilitate efficient heat transfer between the solid refrigerant and the heat exchange fluid in an active magnetic regenerator (AMR) cooling device. To address this challenge, a novel extrusion-based additive manufacturing (AM) method has been developed to 3D print microchanneled magnetocaloric structures. The printing ink consists of magnetocaloric powders, a polymer binder, and multiple solvents to achieve desirable shear-thinning property, which is critical for a robust printing process. Acting as a sacrificial binding agent for the magnetic powders, the polymer binder holds the 3D printed structures in place and is removed subsequently using a two-step heat-treatment process. To demonstrate the effectiveness of the fabrication process, spatially designed microchannels with minimum dimensions of 150 μm were achieved using nanoscaled La0.6Ca0.4MnO3 powders (diameter~10 nm). Results indicate that the crystallographic properties and magnetofunctional response of the sintered 3D printed samples are comparable to that of the precursor powders. Overall, this study provides a promising route for realizing low-cost magnetic regenerators, thus potentially eliminating one of the main barriers to the commercialization of magnetic cooling technology.

Key words

3D-printed magnetocaloric regenerators/Active magnetic regenerative (AMR) refrigeration technology/Extrusion-based additive manufacturing

引用本文复制引用

出版年

2022
Journal of Alloys and Compounds

Journal of Alloys and Compounds

EISCI
ISSN:0925-8388
段落导航相关论文