Solid-state magnetic refrigerator based on the demagnetizing effect

abstract

With population growth, changes in lifestyle and global warming, the demand for ecological and low-energy consumption technologies is rising sharply. Magnetic refrigeration is a promising alternative to conventional refrigeration. However, several factors still impair its performance, thereby delaying commercialization. The use of thermal management elements (such as thermal switches) instead of thermal fluids for heat transfer can avoid some of the main issues arising from conduction/convection, fluid oscillation and mechanical friction. Furthermore, the rotating magnetocaloric effect can effectively solve the problem of the demagnetizing field commonly associated with this technology. Therefore, here we propose and numerically simulate a novel solid-state magnetic refrigerator based on the rotating magnetocaloric effect, generated by the alternated rotation of magnetocaloric material plates under a constant magnetic field. The performance of the proposed device improves with the decrease in the inverse aspect ratio of the magnetocaloric material plates, reaching a maximum no-load temperature span of 2.02 K. The implementation of asymmetric cycles can lead to enhancements of up to 30% in the temperature span, which compensates the use of low-intensity magnetic fields in future applications. This innovative and compact model enables the development of a novel class of magnetic refrigerators based on the rotating magnetocaloric effect.

keywords

THERMAL SWITCH; PYTHON FRAMEWORK

subject category

Thermodynamics; Engineering

authors

Fernandes, CR; Almeida, R; Amaral, JS; Belo, JH; Ventura, JO; Silva, DJ

our authors

acknowledgements

This work was funded by FEDER funds through the COMPETE 2020 Programme and National Funds through FCT-Portuguese Foundation for Science and Technology under projects UID/NAN/50024/2019, PTDC/EME-SIS/31575/2017-POCI-01-0145-FEDER-031575 and PTDC/EME-TED/3099/2020. D. J. S. acknowledges his contract DL57/2016 reference SFRH-BPD-90571/2012. R. A. acknowledges FCT for the PhD grant with reference 2022.13354.BD. This work was developed within the scope of the project CICECO-Aveiro Institute of Materials, UIDB/50011/2020, UIDP/50011/2020 & LA/P/0006/2020, financed by national funds through the FCT/MCTES (PIDDAC). This project has received funding from the European Union's Horizon Europe research and innovation programme through the European Innovation Council under the grant agreement No. 101161135-MAGC-CINE.r for Science and Technology under projects UID/NAN/50024/2019, PTDC/EME-SIS/31575/2017-POCI-01-0145-FEDER-031575 and PTDC/EME-TED/3099/2020. D. J. S. acknowledges his contract DL57/2016 reference SFRH-BPD-90571/2012. R. A. acknowledges FCT for the PhD grant with reference 2022.13354.BD. This work was developed within the scope of the project CICECO-Aveiro Institute of Materials, UIDB/50011/2020, UIDP/50011/2020 & LA/P/0006/2020, financed by national funds through the FCT/MCTES (PIDDAC) . This project has received funding from the European Union's Horizon Europe research and innovation programme through the European Innovation Council under the grant agreement No. 101161135-MAGC-CINE.

Share this project:

Related Publications

We use cookies for marketing activities and to offer you a better experience. By clicking “Accept Cookies” you agree with our cookie policy. Read about how we use cookies by clicking "Privacy and Cookie Policy".