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A data fusion scheme for building automation systems of building central chilling plants

机译:用于建筑物中央冷却设备的建筑物自动化系统的数据融合方案

摘要

Accurate and reliable building load measurement is essential for robust chiller sequencing control, building air-conditioning system performance monitoring and optimization. This paper presents a scheme adopting the data fusion technique to improve the quality of building cooling load measurement of building automation systems. The strategy uses two types of measurement information on the cooling load, i.e., "direct measurement" of building cooling load, which is calculated directly using the differential water temperature and water flow rate measurements, and "indirect measurement" of building cooling load, which is calculated using a model using the instantaneous chiller electrical power input. Capitalizing their own advantages and disadvantages, a data fusion algorithm is developed to merge these two types of data to remove outliers and system errors as well as to reduce the impacts of measurement noises. Meanwhile, a method is implemented to provide quantitative evaluation of the degree of reliability of the merged measurement. Validation of the data fusion algorithm is conducted using field data collected from a chiller plant in a high-rising building in Hong Kong.
机译:准确而可靠的建筑物负荷测量对于强大的冷却器顺序控制,建筑物空调系统性能监控和优化至关重要。本文提出了一种采用数据融合技术的方案,以提高建筑物自动化系统的建筑物制冷负荷测量的质量。该策略使用两种有关冷却负荷的测量信息,即建筑物冷却负荷的“直接测量”,它是直接使用差分水温和水流量测量值计算得出的;以及建筑物冷却负荷的“间接测量”,这两种信息都是使用瞬时冷却器电功率输入的模型来计算。利用它们各自的优点和缺点,开发了一种数据融合算法来合并这两种类型的数据,以消除异常值和系统错误,并减少测量噪声的影响。同时,实施一种方法来提供对合并测量的可靠性程度的定量评估。数据融合算法的验证是使用从香港一幢高层建筑中的一台冷水机组收集的现场数据进行的。

著录项

  • 作者

    Huang G; Wang S; Xiao F; Sun Y;

  • 作者单位
  • 年度 2009
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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