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Control with Building Mass- Part Ⅱ: Simulation

机译:建筑质量控制-第二部分:仿真

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Reductions in building peak electrical demand can be achieved by incorporating building-specific models of thermal dynamics into controllers that will implement short-term peak-period curtailment of HVAC capacity or pre-cool the building prior to peak-period cutbacks to increase the magnitude and duration of the load reduction. The same building-specific model can be used to effect energy savings by providing optimal-start control or optimal-pre-cooling control during unoccupied hours. Control logic was developed for pre-cooling with a central HVAC plant equipped with an air-side economizer. Measurement-based estimates were made of chiller performance and internal-gains schedules. The general transient-thermal-response model of the companion paper (Armstrong et al. 2006) was then used to determine building-specific thermal response and estimate the seasonal benefits of several peak-shifting and night-cooling strategies in the office building. Simulations showed a 30% to 60% reduction in seasonal mechanical cooling loads in the office building due to night cooling.
机译:可以通过将特定于建筑物的热力学模型合并到控制器中来实现建筑物峰值用电需求的减少,该控制器将在短期内减少HVAC容量的峰值时段或在峰值时段减少之前对建筑物进行预冷以增加幅度和减少负载的持续时间。通过在空闲时间提供最佳启动控制或最佳预冷控制,可以使用同一建筑物特定的模型来实现节能。控制逻辑是通过配备空气侧节能器的中央HVAC设备进行预冷却而开发的。基于测量的估计值是对冷却器性能和内部收益计划进行的。然后,使用随行论文的一般瞬态热响应模型(Armstrong等人,2006年)来确定特定于建筑物的热响应,并估算办公楼中几种调峰和夜间降温策略的季节性收益。模拟显示,由于夜间制冷,办公大楼的季节性机械制冷负荷减少了30%至60%。

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