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AIR-HANDLING UNIT SUPPLY AIR TEMPERATURE OPTIMAL ECONOMIZER CONTROL EXPERIMENT

机译:空气处理装置空气温度最佳经济控制实验

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Most air handling units (AHUs) in commercial buildings have an air economizer cycle for free cooling under certain outside air conditions. During the economizer cycle, the outside air and return air dampers are modulated to seek supply air temperature at its setpoint. The supply air temperature is typically set at 13°C(55 °F) to control humidity in the space. However, dehumidification is not necessary when the outside air is dry. Meanwhile, the space may have less cooling load due to envelope heat loss and/or occupant schedule changes. These facts provide an opportunity to use higher supply air temperature to reduce or eliminate mechanical cooling and terminal box reheat. On the other hand, a higher supply air temperature requires increased air flow as well as fan power. Therefore, an optimization question was formed, through which an optimal supply air temperature is identified to minimize total energy consumption. In our previous studies, through simulation, 90% of energy savings were concluded and a universal control sequence was also proposed for implementing the optimal control strategy. In this paper, experiments were conducted to validate the previously documented theory concerning the optimal supply air temperature reset. The previously recommended universal control sequence is implemented into the building automation system for an air-handling unit control to make the program ready for the next step of verifying energy savings previously simulated. This paper presents optimization control system setup and experimental results showing the program tuning procedures, through which the program is ready for the next step.
机译:商业建筑中的大多数空气处理机组(AHU)都有一个空气节约器循环系统,可以在一定的室外空气条件下进行免费冷却。在省煤器循环期间,对外部空气和回风阀进行调节,以在其设定点处寻找送风温度。送风温度通常设置为13°C(55°F),以控制空间中的湿度。但是,当外部空气干燥时,除湿是不必要的。同时,由于包壳热损失和/或乘员时间表的变化,该空间可能具有较少的冷却负荷。这些事实为使用较高的送风温度提供了机会,以减少或消除机械冷却和接线盒的再热。另一方面,较高的送风温度需要增加气流以及风扇功率。因此,形成了一个优化问题,通过该问题可以确定最佳的送风温度,以最大程度地减少总能耗。在我们以前的研究中,通过仿真,得出90%的节能量,并且还提出了实施最佳控制策略的通用控制顺序。在本文中,进行了实验以验证先前记录的有关最佳送风温度重置的理论。先前推荐的通用控制顺序已实施到楼宇自动化系统中,以进行空气处理单元控制,以使程序为下一步验证先前模拟的节能做好准备。本文介绍了优化控制系统的设置和实验结果,这些结果显示了程序调整过程,通过该程序可以为下一步做好准备。

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