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Simulation-Based Model for Integrated Daylighting System Design

机译:基于仿真的集成采光系统设计模型

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摘要

Repeated modifications of multiple design parameters are required to optimize daylighting system design. However, a large number of optional design parameters increase the computation time. This research developed a simulation-based model to evaluate daylighting system design based on system daylighting and thermal performance. The model utilized the prediction methods to speed up computation. The methods that predict the daylight levels and energy usage were developed based on sample simulation results using Radiance and EnergyPlus software. A prominent multiobjective optimization technique, strength Pareto evolutionary approach II, was applied to optimize four main design parameters (window dimensions and position, glazing transmittance, and blind reflectance). A patch division scheme was proposed to limit the maximum number of daylighting simulations if there was a larger number of window dimensions and positions. A case study was conducted to illustrate the application of the model and to validate the accuracy of the prediction methods. The percentage errors between the predicted and simulation results for both energy and daylighting performances were less than 5%. The research contribution is the development of a new faster approach for predicting building energy consumption and daylight levels as well as the development of an integrated simulation environment for the daylighting system design.
机译:需要重复修改多个设计参数以优化采光系统设计。但是,大量的可选设计参数会增加计算时间。这项研究开发了基于仿真的模型,用于基于系统采光和热性能评估采光系统设计。该模型利用了预测方法来加快计算速度。使用Radiance和EnergyPlus软件根据样本模拟结果开发了预测日光量和能源使用量的方法。一项杰出的多目标优化技术,即强度帕累托进化方法II,被用于优化四个主要设计参数(窗口尺寸和位置,玻璃透光率和盲反射率)。如果有更多的窗户尺寸和位置,则提出了补丁分割方案以限制最大的采光模拟次数。进行了案例研究以说明模型的应用并验证预测方法的准确性。能源和采光性能的预测结果与模拟结果之间的百分比误差小于5%。该研究的贡献是开发了一种新的更快的方法来预测建筑能耗和日光水平,以及开发了用于日光系统设计的集成仿真环境。

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