TY - GEN
T1 - Effects of Fractal Cantor Structured Hot Surface on Thermal Management System
AU - He, J. J.
AU - Chu, W. X.
AU - Wang, Q. W.
N1 - Publisher Copyright:
© The Author(s), under exclusive license to Springer Nature Switzerland AG 2024.
PY - 2024
Y1 - 2024
N2 - Phase change material (PCM) has been implemented in thermal management systems. However, the heterogeneous interface between hot surface and PCM may lead to non-negligible thermal slip, resulting in alleviated energy storage efficiency. This study investigates the heat transfer performance of PCM at fractal Cantor structured hot surfaces. A total enthalpy-based lattice Boltzmann method is developed to study the pore-scale solid-liquid phase change problems with the natural convection. The effects of fractal dimension, Ste and gravity on heat transfer performance are analyzed. Meanwhile, the local velocity distribution and interfacial heat transfer performance are evaluated and regarded as the criteria. Results show that the presented results are in good agreement with experimental results. Fractal Cantor structure can significantly reduce the average thermal slip length, thus enhancing the heat transfer between heat source and PCM. As the fractal dimension increases, the localized convection can be gradually revolutionized into widespread convection, resulting in a more uniform melt-front evolution along the horizontal direction. As a result, the total melting time can be minimized by 5% with the fractal dimension of 3. Elevating Ste and gravity can significantly increase the flow rate of liquid PCM, which leads to enhanced convective heat transfer strength. Between them, gravitational acceleration yields the most significant enhancement in heat transfer performance.
AB - Phase change material (PCM) has been implemented in thermal management systems. However, the heterogeneous interface between hot surface and PCM may lead to non-negligible thermal slip, resulting in alleviated energy storage efficiency. This study investigates the heat transfer performance of PCM at fractal Cantor structured hot surfaces. A total enthalpy-based lattice Boltzmann method is developed to study the pore-scale solid-liquid phase change problems with the natural convection. The effects of fractal dimension, Ste and gravity on heat transfer performance are analyzed. Meanwhile, the local velocity distribution and interfacial heat transfer performance are evaluated and regarded as the criteria. Results show that the presented results are in good agreement with experimental results. Fractal Cantor structure can significantly reduce the average thermal slip length, thus enhancing the heat transfer between heat source and PCM. As the fractal dimension increases, the localized convection can be gradually revolutionized into widespread convection, resulting in a more uniform melt-front evolution along the horizontal direction. As a result, the total melting time can be minimized by 5% with the fractal dimension of 3. Elevating Ste and gravity can significantly increase the flow rate of liquid PCM, which leads to enhanced convective heat transfer strength. Between them, gravitational acceleration yields the most significant enhancement in heat transfer performance.
KW - Fractal Cantor structure
KW - Melt-front
KW - Phase change material
KW - Thermal management
UR - https://www.scopus.com/pages/publications/85204616804
U2 - 10.1007/978-3-031-66609-4_30
DO - 10.1007/978-3-031-66609-4_30
M3 - 会议稿件
AN - SCOPUS:85204616804
SN - 9783031666087
T3 - Lecture Notes in Mechanical Engineering
SP - 322
EP - 330
BT - Advances in Computational Heat and Mass Transfer - Proceedings of the 14th International Conference on Computational Heat and Mass Transfer ICCHMT 2023
A2 - Benim, Ali Cemal
A2 - Bennacer, Rachid
A2 - Mohamad, Abdulmajeed A.
A2 - Ocłoń, Paweł
A2 - Taler, Jan
A2 - Suh, Sang-Ho
PB - Springer Science and Business Media Deutschland GmbH
T2 - 14th International Conference on Computational Heat and Mass Transfer, ICCHMT 2023
Y2 - 4 September 2023 through 8 September 2023
ER -