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Development of 20 integrated energy efficiency ratio rooftop units - system modeling and building energy simulations

机译:开发20个综合能效比屋顶单元-系统建模和建筑能耗模拟

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Based on a detailed steady-state system and component modeling, a rooftop unit system design was developed that is can achieve an integrated energy efficiency rating higher than 20. Fin-and-tube and microchannel heat exchangers were modeled using a segment-to-segment approach, and an AHRI 10-coefficient compressor map used to simulate compressor performance. The system modeling is based on a component-based modeling approach, which facilitates flexible simulation of complicated system configurations. Starting with a baseline system having integrated energy efficiency rating of 16.6, numerous technical options were extensively investigated, i.e., varying compressor sizes, heat exchanger fin densities, fin-and-tube or microchannel heat exchanger, suction line heat exchanger, desiccant wheel, tandem compressor (TD), variable-speed compressor (VS), and condenser evaporative pre-cooling; an innovative system configuration was developed by combining a tandem compression system with a variable-speed compression system. The combined system can achieve a high integrated energy efficiency ratio as well as process the outdoor ventilation air over an extensive range. The design concept for a 20-ton (70.4-kW) unit, as well as a 10-ton (35.2-kW) unit was successfully evaluated. All selected components are readily accessible on the market, and performance predictions were validated against existing rooftop unit products at the rating condition. This article illustrates a potentially cost-effective high integrated energy efficiency ratio rooftop unit design. In addtion, extensive building energy simulations were conducted using EnergyPlus to predict seasonal energy saving potentials and peak power reductions using the high integrated energy efficiency ratio rooftop unit in 16 U.S. cities in comparison to a rooftop unit with a minimum efficiency.
机译:基于详细的稳态系统和组件建模,开发了一种屋顶单元系统设计,该设计可以实现高于20的综合能效等级。使用段到段对翅片管和微通道热交换器进行建模。方法,以及用于模拟压缩机性能的AHRI 10系数压缩机图。系统建模基于基于组件的建模方法,该方法可简化复杂系统配置的灵活仿真。从综合能效等级为16.6的基准系统开始,广泛研究了许多技术选择,例如,不同的压缩机尺寸,热交换器的翅片密度,翅片管式或微通道热交换器,吸气管式热交换器,除湿轮,串联式压缩机(TD),变速压缩机(VS)和冷凝器蒸发式预冷;通过将串联压缩系统与变速压缩系统相结合,开发出了创新的系统配置。该组合系统可以实现较高的综合能效比,并可以在较大范围内处理室外通风空气。成功评估了20吨(70.4千瓦)机组和10吨(35.2千瓦)机组的设计理念。所有选定的组件都可以在市场上轻松获得,并且在额定条件下针对现有屋顶单元产品验证了性能预测。本文说明了一种潜在的具有成本效益的高集成能效比屋顶单元设计。另外,与美国能源效率最低的屋顶单元相比,使用EnergyPlus进行了广泛的建筑能耗模拟,以预测美国16个城市中使用高集成能效比屋顶单元的季节性节能潜力和峰值能耗降低。

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