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Occupancy profile variation analyzed through generative modelling to control building energy behavior

机译:通过生成建模来控制建筑能源行为的占用概况变化

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Nowadays, building energy models use parametric analyses to optimize design strategies considering multiple variables. Integrated dynamic models combining design tool and visual programming language (VPL) and simulation tools to calculate building performance with BIM tool for the whole-building energy simulation have been adopted in the recent studies. Through these tools, it is possible to identify parametric systems, which become a "genome", where a rapid comparison of different alternatives is possible through fitness criteria defined by design goals. The aim of the paper is to use this concept and the suitable parametric tools such as Grasshopper for Rhinoceros to handle variable hypotheses on users' occupancy that influence building energy performance. The paper focuses on occupancy variability applying the methodology to a university building located in northern Italy in the University of Brescia Campus to evaluate how generative modelling can represent an adequate approach to energy simulation of occupant behaviour. Sensors are now monitoring the real occupancy trend of the case study building and different scenarios defined in the parametric model could be compared to the real weekly. Using parametric tool and GA (Genetic Algorithms) can be analysed hundreds of occupancy patterns in order to better understand the influence of the occupancy on the building energy use and at the same time evaluate different strategies to save energy.
机译:如今,建筑能量模型使用参数分析来优化考虑多个变量的设计策略。在最近的研究中采用集成设计工具和视觉编程语言(VPL)和仿真工具来计算使用BIM工具进行建筑性性能的仿真工具。通过这些工具,可以识别成为“基因组”的参数系统,其中通过设计目标定义的适应性标准,可以快速比较不同替代方案。本文的目的是使用这种概念和合适的参数工具,例如犀牛的蚱蜢,以处理影响建筑能量性能的用户占用的变量假设。本文重点介绍将该方法应用于位于布雷西亚大学校园内意大利北部的大学大楼的占用差异性,以评估生成的建模如何代表足够的能量模拟占用行为的方法。传感器现在监控案例研究建设的真正占用趋势,并且可以将参数模型中定义的不同场景与真实的每周相比。可以使用参数工具和GA(遗传算法)分析数百个占用模式,以更好地了解占用对建筑能源使用的影响,同时评估不同的策略以节省能量。

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