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Evaluation of Differential Pressure Setpoint of Chilled Water Pumps in Clean Room HVAC Systems for Energy Savings in High-Tech Industries

机译:评估洁净室HVAC系统中冷冻水泵的压差设定点,以节省高科技行业的能源

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摘要

Variable-frequency speed control technologies are widely used in chilled water pumps in clean room heating, ventilation, and air-conditioning (HVAC) systems in high-tech industries to reduce energy consumption. Pumps with variable frequency drivers work based on the reading from the differential pressure sensor placed between the chilled water supply and return lines before the secondary and tertiary pumps. The determination of the differential pressure setpoint must take pipeline topology and material, chilled water flow demand, heat loading, and system equipment aging into account so as to provide operating flexibility for energy conservation while ensuring the secure operation of the clean room. To enhance clean room energy efficiency, a new methodology is proposed in this paper for determining the proper chilled piping pressure setpoint for the pumps. The mathematic model of head loss required for generic secondary and tertiary chilled networks widely used in clean rooms is derived using the Hazen–Williams formula principle. The field testing results confirm the validity of the proposed approach through a practical clean room HVAC system for electronic semiconductor manufacturing, and the energy savings and investment benefits due to the use of the proper differential pressure setpoint are determined.
机译:变频调速技术已广泛应用于高科技行业的洁净室供暖,通风和空调(HVAC)系统中的冷冻水泵中,以降低能耗。带有变频驱动器的泵的工作原理是根据位于二次水泵和三次水泵之前的冷水供应和回水管路之间的压差传感器的读数。压差设定点的确定必须考虑到管道的拓扑结构和材料,冷水流量需求,热负荷以及系统设备的老化,以便在确保洁净室安全运行的同时提供节能的操作灵活性。为了提高洁净室的能源效率,本文提出了一种新的方法来确定泵的适当冷却管道压力设定点。使用Hazen-Williams公式原理推导了在洁净室中广泛使用的通用第二级和第三级冷冻网络所需的水头损失数学模型。现场测试结果通过用于电子半导体制造的实际洁净室HVAC系统证实了该方法的有效性,并确定了由于使用适当的压差设定点而导致的节能和投资收益。

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