Wu Lei, Sun Xiangyang, Gong Feng, Luo Junyi, Yin Chunyu, Sun Zhipeng, Xiao Rui
Key Laboratory of Energy Thermal Conversion and Control of Ministry of Education, School of Energy and Environment, Southeast University, Nanjing 210096, China.
Science and Technology on Reactor System Design Technology Laboratory, Nuclear Power Institute of China (NPIC), Chengdu 610041, China.
Nanomaterials (Basel). 2022 Mar 8;12(6):894. doi: 10.3390/nano12060894.
Owing to the excellent thermal properties of graphene, silicon carbide (SiC) combined with graphene is expected to obtain more outstanding thermal performance and structural stability at high temperatures. Herein, the thermal conductivity of graphene/SiC heterostructures (GS-Hs) with different structures and atomic orientations was calculated through non-equilibrium molecular dynamics (NEMD) simulations. The temperature dependence and size effect on the thermal transport properties of GS-Hs were systematically investigated and discussed. The continuous addition of graphene layers did not always have a positive effect. The thermal transport performance of GS-Hs approached the intrinsic thermal conductivity of SiC when the interaction gradually decreased with the distance between SiC and graphene. Studies on temperature and size dependence show opposite trends. The enhancement effect of graphene was limited at small distances. The thermal conductivity of GS-Hs had a negative correlation with temperature and increased with the system size. Meanwhile, the thermal conductivity of GS-Hs was predicted to be 156.25 (W·m·K) at the macroscopic scale via extrapolation. The model established in this paper is also applicable to other material simulation processes, as long as the corresponding parameters and potential functions are available. This study will provide inspiration for the optimized design and preparation of highly efficient cladding materials in nuclear reactors.
由于石墨烯具有优异的热性能,碳化硅(SiC)与石墨烯结合有望在高温下获得更出色的热性能和结构稳定性。在此,通过非平衡分子动力学(NEMD)模拟计算了具有不同结构和原子取向的石墨烯/碳化硅异质结构(GS-Hs)的热导率。系统地研究和讨论了温度依赖性和尺寸效应对GS-Hs热输运性质的影响。石墨烯层的连续添加并不总是产生积极影响。当SiC与石墨烯之间的相互作用随距离逐渐减弱时,GS-Hs的热输运性能接近SiC的本征热导率。对温度和尺寸依赖性的研究显示出相反的趋势。在小距离时,石墨烯的增强作用有限。GS-Hs的热导率与温度呈负相关,并随系统尺寸增加而增大。同时,通过外推预测GS-Hs在宏观尺度下的热导率为156.25(W·m·K)。本文建立的模型也适用于其他材料的模拟过程,只要有相应的参数和势函数即可。该研究将为核反应堆中高效包层材料的优化设计和制备提供启示。