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Time-averaged ventilation for optimized control of variable-air-volume systems

机译:时间平均通风以优化控制可变风量系统

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Typical variable air volume (VAV) terminals spend the majority of time at their minimum airflow set points. These are often higher than the minimum ventilation requirements defined by code, resulting in excess energy use and a risk of over-cooling the spaces. We developed and tested a time-averaged ventilation (TAV) control strategy in an institutional building on the UC Berkeley campus to address this issue. Whenever a zone does not require cooling, TAV alternates the VAV damper between partially open and fully closed so that the average airflow matches a predefined ventilation setpoint. Compared to the existing, base case scenario using single-max VAV logic, this strategy reduced the mean zone airflow fraction from 0.44 to 0.27 during the intervention period. The corresponding reductions in average heating, cooling, and fan power were 41%, 23%, and 15% respectively. In addition to being programmed directly in a native control system, TAV may be applied via sMAP as a low-cost retrofit strategy in any building that has a BACnet network and direct digital control (DDC) to each VAV terminal. (C) 2016 Elsevier B.V. All rights reserved.
机译:典型的可变风量(VAV)终端会在其最小气流设定点上花费大部分时间。这些通常高于规范定义的最低通风要求,从而导致过多的能源消耗和过冷空间的风险。为了解决此问题,我们在加州大学伯克利分校校园内的一幢机构大楼中开发并测试了平均时间通风(TAV)控制策略。只要某个区域不需要冷却,TAV就会在部分打开和完全关闭之间切换VAV风门,以使平均气流与预定义的通风设定点相匹配。与使用单最大VAV逻辑的现有基本情况相比,该策略在干预期间将平均区域气流比例从0.44降低到0.27。平均供暖,制冷和风扇功率的相应降低分别为41%,23%和15%。除了直接在本机控制系统中进行编程外,TAV还可通过sMAP作为低成本改造策略应用于任何具有BACnet网络并将数字控制(DDC)定向到每个VAV终端的建筑物中。 (C)2016 Elsevier B.V.保留所有权利。

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