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Applying Simulation-based Optimization to Improve Energy Efficiency in Two Generic Office Buildings

机译:应用基于仿真优化,提高两个通用办公大楼的能效

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This study was geared at optimizing the applications of low energy technologies in office buildings.Energy and resource saving measures were extracted from existing high performance buildings practices through a subjective survey among building professionals,which provided guidelines for further optimization work on adapting building parameters and components.The two reference buildings were conceived to meet the requirements of the Canadian Model National Energy Code for Buildings.The path taken for optimization divided the problem into three phases.First,TRNSYS models were developed to predict the energy performance of the two buildings,and the simulation outputs were compared to the results in literature for accuracy confirmation.Then,building characteristics and components were varied in the TRNSYS models to build a database,for training and testing Artificial Neural Network (ANN) models for Response Surface Approximations (RSA).Finally,the ANN model was invoked inside Genetic Algorithm loops,in an attempt to search for the best combination of building parameters that could reduce the energy consumption of the target buildings to the most.The final optimization results demonstrated that up to 39% energy saving could be achieved in both buildings by upgrading the building envelop,enhancing the ventilation regulation,reducing lighting power density,and improving the efficiency of electrical appliance and HVAC systems.
机译:本研究旨在优化低能源技术在办公大楼中的应用。通过建筑专业人员之间的主观调查,从现有的高性能建筑实践中提取了能量和资源节水措施,为适应建筑参数和组件提供了进一步优化工作的准则。构思了两个参考建筑,以满足加拿大模型国家能源规范的建筑物的要求。优化的路径将问题分为三个阶段。首先,开发了Trnsys模型以预测两座建筑物的能量性能,以及将模拟输出与文献中的结果进行比较,以便于准确性确认。在TRNSYS模型中改变了构建特性和组件,以构建数据库,用于训练和测试响应表面近似的人工神经网络(ANN)模型(RSA)。最后,ANN模型在遗传algo内部调用rithm循环,试图搜索最佳建筑参数的最佳组合,这些参数可以降低目标建筑物的能量消耗。最终的优化结果表明,通过升级,可以在两个建筑物中实现高达39%的节能。建筑包围,增强通风调节,降低照明功率密度,提高电器和HVAC系统的效率。

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