光学
曲面镜
物理
半径
焦距
光线追踪(物理)
辐射通量
光学(聚焦)
光圈(计算机存储器)
光学设计
圆对称性
抛物面反射器
焊剂(冶金)
几何光学
蒙特卡罗方法
辐射
直线(几何图形)
光轴
几何学
镜头(地质)
材料科学
经典力学
软件
数学
统计
计算机科学
计算机安全
冶金
声学
程序设计语言
作者
M. Ebrahim Foulaadvand,Amir Aghamohammadi,Parvin Karimi,Hadi Borzouei
标识
DOI:10.1038/s41598-021-03768-w
摘要
We analytically, experimentally and computationally explore the solar radiation flux distribution in the interior region of a spherical mirror and compare it to that of a paraboloidal one with the same aperture area. Our investigation has been performed in the framework of geometrical optics. It is shown that despite one can assign a quasi focus, at half the radius, to a spherical mirror, the light concentration occurs as well on an extended line region which starts at half-radius on the optical axis. In contrast to a paraboloidal concentrator, a spherical mirror can concentrate the radiation parallel to its optical axis both in a point-focus and in a line-focus manner. The envelope of the reflected rays is also obtained. It is shown that the flux distribution has an axial symmetry. The radial dependence of the flux on a flat circular receiver is obtained. The flux longitudinal dependence is shown to exhibit three distinctive regions in the interval [0, R] (R is mirror radius). We obtain the radiational (optical) concentration ratio characteristics and find the optimal location of the flat receiver of a given size at which the concentration ratio is maximised. In contrast to a parabolic mirror, it is shown that this location depends on the receiver size. Our findings offers that in spherical mirrors one can alternatively use a line receiver and gains a considerable thermal energy harvest. Our results are supported by Monte Carlo ray tracing performed by Zemax optical software. Experimental validation has been performed in lab with a silver-coated lens as the spherical mirror.
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