TY - JOUR
T1 - Performance study of dual-layer active magnetic regenerators with different filling ratios in the room temperature magnetic refrigerator
AU - Li, Jiaxin
AU - Hai, Peng
AU - Li, Zhenxing
AU - Gao, Xinqiang
AU - Mo, Zhaojun
AU - Shen, Jun
N1 - Publisher Copyright:
© 2025
PY - 2025/8
Y1 - 2025/8
N2 - Magnetic refrigeration technology is a solid-state cooling technology based on the magnetocaloric effect and possesses significant potential to replace vapor compression cooling technology. However, current magnetic refrigeration systems remain less competitive compared to vapor compression systems in terms of both cooling power density and energy efficiency. Employing a layered regenerator with magnetocaloric materials of different Curie temperatures is one of the promising strategies to improve the performance of magnetic refrigeration systems. Four regenerators composed of a packed bed of 0.36 mm - 0.60 mm Gd and Gd94Er6 spheres were constructed in this paper. The filling ratios were 1:0, 8:2, 6:4, and 4:6 (Gd: Gd94Er6) respectively. Based on the previous magnetic refrigerator, the performance of four regenerators was evaluated for different operating conditions, which based on the temperature span with zero thermal load, cooling capacity, magnet power consumption, and COP. Experimental results indicate that the regenerator with a filling ratio of 6:4 exhibited optimal temperature span performance under all tested conditions. When operated at 1 Hz frequency, 0.6 utilization factor, and 30 °C hot-side temperature, it achieved a maximum temperature span of 22.7 K with zero thermal load. The magnet power consumption decreases as the filling ratio of Gd94Er6 increases. In consideration of COP values, single-layer Gd regenerator and those with filling ratios of 8:2 and 6:4 perform similarly at a 5 K temperature span, but the regenerator with a 6:4 filling ratio outperforms at spans over 15 K.
AB - Magnetic refrigeration technology is a solid-state cooling technology based on the magnetocaloric effect and possesses significant potential to replace vapor compression cooling technology. However, current magnetic refrigeration systems remain less competitive compared to vapor compression systems in terms of both cooling power density and energy efficiency. Employing a layered regenerator with magnetocaloric materials of different Curie temperatures is one of the promising strategies to improve the performance of magnetic refrigeration systems. Four regenerators composed of a packed bed of 0.36 mm - 0.60 mm Gd and Gd94Er6 spheres were constructed in this paper. The filling ratios were 1:0, 8:2, 6:4, and 4:6 (Gd: Gd94Er6) respectively. Based on the previous magnetic refrigerator, the performance of four regenerators was evaluated for different operating conditions, which based on the temperature span with zero thermal load, cooling capacity, magnet power consumption, and COP. Experimental results indicate that the regenerator with a filling ratio of 6:4 exhibited optimal temperature span performance under all tested conditions. When operated at 1 Hz frequency, 0.6 utilization factor, and 30 °C hot-side temperature, it achieved a maximum temperature span of 22.7 K with zero thermal load. The magnet power consumption decreases as the filling ratio of Gd94Er6 increases. In consideration of COP values, single-layer Gd regenerator and those with filling ratios of 8:2 and 6:4 perform similarly at a 5 K temperature span, but the regenerator with a 6:4 filling ratio outperforms at spans over 15 K.
KW - Active magnetic regenerator
KW - Dual-layer
KW - Experimental performance
KW - Filling ratio
KW - Magnetic refrigeration
UR - http://www.scopus.com/inward/record.url?scp=105004733695&partnerID=8YFLogxK
U2 - 10.1016/j.ijrefrig.2025.05.003
DO - 10.1016/j.ijrefrig.2025.05.003
M3 - Article
AN - SCOPUS:105004733695
SN - 0140-7007
VL - 176
SP - 226
EP - 237
JO - International Journal of Refrigeration
JF - International Journal of Refrigeration
ER -