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Mathematical model for designing a light redirecting prismatic panel

机译:用于设计光重定向棱镜面板的数学模型

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Adequate daylighting inside built spaces helps reaching satisfactory levels of energy consumption by reducing the usage of artificial lighting. Moreover, it is a major source in adjusting the occupants' visual comfort which boosts productivity and concentration. Nevertheless, inefficient design would result in increasing the solar hear gain and increasing the indoor temperatures, as well as uneven light distribution would result in the "cave effect" phenomena. A Sustainable complex fenestration system is proposed in this paper that diffuses and redirects daylight through a prismatic panel. The panel will redirect the excessive direct light upwards and reduce the light from going downwards in hot climate desert areas with high solar altitudes in the summer. A suitable design was obtained through a self-developed optical mathematical model using evolutionary algorithm. Afterwards, the mathematical model was validated using an optical ray tracing software called TracePro. Further analysis and interpretation on the light behaviour was viable using the ray tracing software which included the power transmission of the light. The final design resulted in the redirection of light upwards for all solar altitudes, increasing as the solar altitude is higher. And the mathematical model was validated against the computer ray tracing model with a standard error of the mean (SEM) of +/- 1.03 for the upward angles and +/- 2.47 for the downward angles. The design workflow including the mathematical model and the optimization tool proved to be a cheap and reliable solution for an initial design of light redirecting panels.
机译:建筑空间内足够的日光通过减少人工照明的使用,有助于达到令人满意的能源消耗水平。此外,它是调节乘员视觉舒适感的主要来源,从而提高了生产率和注意力。然而,低效的设计将导致增加太阳的听到增益并增加室内温度,以及不均匀的光分布将导致“凹面效应”现象。本文提出了一种可持续的复杂开窗系统,该系统可以通过棱镜面板散射和重定向日光。在夏季,在太阳高度较高的炎热气候沙漠地区,该面板将使过多的直射光向上重定向,并减少光向下传播。通过使用演化算法的自行开发的光学数学模型获得了合适的设计。之后,使用称为TracePro的光线追踪软件验证了数学模型。使用包括光的功率传输的光线追踪软件,可以对光的行为进行进一步的分析和解释。最终设计导致所有太阳高度的光向上重定向,随着太阳高度的增加而增加。并针对计算机射线跟踪模型对数学模型进行了验证,其中,向上角度的平均标准误差(SEM)为+/- 1.03,向下角度的标准误差为+/- 2.47。事实证明,包括数学模型和优化工具的设计工作流程是光重定向面板初始设计的一种廉价且可靠的解决方案。

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