一种新的实验方法来实现藻板的光学特性,提高办公大楼的视觉热舒适性

Fatemeh Delkhosh , Mohammadjavad Mahdavinejad , Ali Goharian , Christian Hepf , Thomas Auer
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摘要

本研究探讨了微藻光生物反应器面板(PBR)如何影响办公大楼的日光性能和视觉舒适性。采用实验测试和计算模拟相结合的方法,研究了PBR面板中螺旋藻微藻对日光测量和眩光电位的影响。大多数与建筑相关的模拟都没有利用微藻的实际辐射特性。本研究的新颖之处在于强调了在模拟技术中获得最精确光学特性的特定框架,包括镜面透射率、镜面反射率、漫射透射率和漫反射。此外,它在简化藻类浓度变化的同时,解决了模拟故障排除和先前研究中缺乏信息的问题。该方法旨在实现微藻浓度每日增加与透射光减少的数值比例,从而解决一个重要的空白。开发了一种最先进的方法来创建一个综合框架,将所有光学特性从实验数据转移到模拟,最大限度地提高结果的准确性和螺旋藻微藻的性能。使用1:60的微藻与水的比例,85%的空间全年都没有眩光。经过一天的生长,在第二天保持恒定的微藻与水的密度,可以使95.5%的空间全年无眩光。在藻类种植的第二天,两个居住者都达到了视觉上的舒适,其特点是难以察觉的眩光,全年都是如此。考虑到在螺旋藻微藻培养的第一天和第二天获得最高日光效率的密度,并且第一天的眩光量与居住者的眼睛相适应,因此可以在不降低日光效率的情况下为居住者提供视觉舒适。研究发现,PBR面板可以有效地控制眩光,但它们对日光利用率的影响应该最大化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A novel experimental approach to achieve optical properties of algae panels improving visual-thermal comfort in office buildings
This research paper explores how microalgae photobioreactor panels (PBR) impact daylight performance and visual comfort in office buildings. It merges experimental testing and computational simulation to investigate the effects of spirulina platensis microalgae in PBR panels on daylight measurements and glare potential. Most building-related simulations do not utilize the actual radiance properties of microalgae. The novelty of this research lies in highlighting a specific framework to obtain the most accurate optical properties in simulation techniques, including specular transmittance, specular reflectance, diffuse transmittance, and diffuse reflectance. Additionally, it addresses simulation troubleshooting and the lack of information in previous research while simplifying changes in algae concentration. This approach aims to achieve a numerical ratio of the daily increase in microalgae concentration and the decrease in transmitted light, thereby addressing an important gap. A state-of-the-art approach is developed to create a comprehensive framework for transferring all optical properties from experimental data to simulation, maximizing the accuracy of results and the performance of spirulina microalgae. Using a ratio of 1:60 microalgae to water, 85 % of the space is glare-free throughout the year. After one day of growth, maintaining a constant microalgae-to-water density on the second day results in 95.5 % of the space being glare-free throughout the year. Both occupants on the second day of algae cultivation achieve visual comfort, characterized by imperceptible glare, consistently throughout the year. Considering that the density of the highest daylight efficiency was obtained on the first and second days of spirulina microalgae cultivation and the amount of glare was compatible with the occupant's eyes on the first day, so visual comfort can be provided to the residents without reducing the daylight efficiency. The study finds that PBR panels can effectively control glare, but their influence on daylight availability should be maximized.
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