Liu Yang, Chen Fangqi, Caratenuto Andrew, Tian Yanpei, Liu Xiaojie, Zhao Yitong, Zheng Yi
Department of Mechanical and Industrial Engineering, Northeastern University, Boston, MA 02115, USA.
Department of Mechanical Engineering, California State Polytechnic University Pomona, Pomona, CA 91768, USA.
Materials (Basel). 2022 Jan 27;15(3):998. doi: 10.3390/ma15030998.
Nanoscale radiative thermal transport between a pair of metamaterial gratings is studied within this work. The effective medium theory (EMT), a traditional method to calculate the near-field radiative heat transfer (NFRHT) between nanograting structures, does not account for the surface pattern effects of nanostructures. Here, we introduce the effective approximation NFRHT method that considers the effects of surface patterns on the NFRHT. Meanwhile, we calculate the heat flux between a pair of silica (SiO) nanogratings with various separation distances, lateral displacements, and grating heights with respect to one another. Numerical calculations show that when compared with the EMT method, here the effective approximation method is more suitable for analyzing the NFRHT between a pair of relatively displaced nanogratings. Furthermore, it is demonstrated that compared with the result based on the EMT method, it is possible to realize an inverse heat flux trend with respect to the nanograting height between nanogratings without modifying the vacuum gap calculated by this effective approximation NFRHT method, which verifies that the NFRHT between the side faces of gratings greatly affects the NFRHT between a pair of nanogratings. By taking advantage of this effective approximation NFRHT method, the NFRHT in complex micro/nano-electromechanical devices can be accurately predicted and analyzed.
在本研究中,我们对一对超材料光栅之间的纳米级辐射热传输进行了研究。有效介质理论(EMT)是一种计算纳米光栅结构间近场辐射热传递(NFRHT)的传统方法,但该理论没有考虑纳米结构的表面图案效应。在此,我们引入了考虑表面图案对NFRHT影响的有效近似NFRHT方法。同时,我们计算了一对二氧化硅(SiO)纳米光栅之间的热通量,这对光栅具有不同的间距、横向位移以及相对于彼此的光栅高度。数值计算表明,与EMT方法相比,有效近似方法更适合分析一对相对位移的纳米光栅之间的NFRHT。此外,研究表明,与基于EMT方法的结果相比,在不改变通过这种有效近似NFRHT方法计算出的真空间隙的情况下,有可能实现纳米光栅之间热通量相对于光栅高度的反向趋势,这证实了光栅侧面之间的NFRHT对一对纳米光栅之间的NFRHT有很大影响。利用这种有效近似NFRHT方法,可以准确预测和分析复杂微纳机电设备中的NFRHT。