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A Method to Determine the Optimal Tank Size for a Chilled Water Storage System Under a Time-of-Use Electricity Rate Structure

机译:分时电价结构下冷水储水系统最优水箱尺寸的确定方法

摘要

In the downtown area of Austin, it is planned to build a new naturally stratified chilled water storage tank and share it among four separated chilled water plants. An underground piping system is to be established to connect these four plants together. This paper presents the method of determining the optimal tank size as well as corresponding optimal operating strategies for this project. Based on the analysis of the historical log data, utility rate structures, and equipment information, the baseline profiles of electricity fed to buildings, plant cooling load, and utility billing cost for each plant are generated. A simplified TES plus four plants model is built based on some assumptions. The results show that a 3.5 million gallon tank has the shortest payback time and the projected total capital cost is within the budget. The annual billing cost savings are $907,231 and the simple payback time is 12.5 years.
机译:计划在奥斯汀市中心地区建造一个新的自然分层冷冻水储罐,并在四个独立的冷冻水厂之间共享。将建立一个地下管道系统,将这四个工厂连接在一起。本文介绍了确定该项目的最佳油箱尺寸的方法以及相应的最佳运行策略。基于对历史日志数据,公用事业费率结构和设备信息的分析,生成了为建筑物供电的基准线,工厂冷却负荷以及各工厂的公用事业费用。基于一些假设,构建了简化的TES加四工厂模型。结果表明,一个350万加仑的储罐的投资回收期最短,预计总资本成本在预算之内。每年节省的帐单成本为907,231美元,简单的投资回收期为12.5年。

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