TY - JOUR
T1 - Thermal Diodes Based on Fractal Structures with Tunable Thermal Threshold
AU - Li, Tian
AU - Jiang, Weitao
AU - Zhang, Yue
AU - Li, Baotong
AU - Wang, Lanlan
AU - Niu, Dong
AU - Liu, Hongzhong
AU - Yin, Lei
AU - Shi, Yongsheng
AU - Chen, Bangdao
AU - Chen, Jinju
AU - Liu, Xiaokang
AU - Peng, Donglin
N1 - Publisher Copyright:
© 2021 Wiley-VCH GmbH.
PY - 2022/4/25
Y1 - 2022/4/25
N2 - The asymmetry of heat conduction in thermal diodes is attributed to the thermal regulation in thermal logic circuits, thermal control devices, etc. Currently, thermal rectification devices, however, are constrained by either specific on/off switching thresholds, or low sensitivity to manufacturing errors, as well as the restrictions for specific roughness and material characteristics. Here, a thermal diode based on fractal structures (inverted tapered branch channel, 5.7 mm branch length, and 4 branches) with liquid metal/insulator interface is proposed to avoid these existing constraints. The thermal rectification coefficient reaches 0.4704 (16.43 times larger than that of the basic structures) when the filling fraction only increases 1.33 times. The maximum temperature difference for the optimized thermal diodes is 18.31 °C when the heating temperature is 80 °C. By different arrangements of two thermal diodes mounted on chambers’ surfaces, the interior temperatures range from 16.06 to 52.34 °C in the same ambient conditions (23.49 °C), indicating the excellent thermal regulation effect of the thermal diodes. These controlled temperature chambers can be applied in greenhouses or cold chain storage devices, more combinations with higher degree of thermal-threshold tunability offer possibilities in solving complicated thermal management problems and promote the energy utilization efficiency.
AB - The asymmetry of heat conduction in thermal diodes is attributed to the thermal regulation in thermal logic circuits, thermal control devices, etc. Currently, thermal rectification devices, however, are constrained by either specific on/off switching thresholds, or low sensitivity to manufacturing errors, as well as the restrictions for specific roughness and material characteristics. Here, a thermal diode based on fractal structures (inverted tapered branch channel, 5.7 mm branch length, and 4 branches) with liquid metal/insulator interface is proposed to avoid these existing constraints. The thermal rectification coefficient reaches 0.4704 (16.43 times larger than that of the basic structures) when the filling fraction only increases 1.33 times. The maximum temperature difference for the optimized thermal diodes is 18.31 °C when the heating temperature is 80 °C. By different arrangements of two thermal diodes mounted on chambers’ surfaces, the interior temperatures range from 16.06 to 52.34 °C in the same ambient conditions (23.49 °C), indicating the excellent thermal regulation effect of the thermal diodes. These controlled temperature chambers can be applied in greenhouses or cold chain storage devices, more combinations with higher degree of thermal-threshold tunability offer possibilities in solving complicated thermal management problems and promote the energy utilization efficiency.
KW - fractal structures
KW - heat conduction
KW - liquid metal
KW - temperature chambers
KW - thermal diodes
UR - https://www.scopus.com/pages/publications/85121582872
U2 - 10.1002/adfm.202111229
DO - 10.1002/adfm.202111229
M3 - 文章
AN - SCOPUS:85121582872
SN - 1616-301X
VL - 32
JO - Advanced Functional Materials
JF - Advanced Functional Materials
IS - 17
M1 - 2111229
ER -