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Model-based fault detection and diagnosis for centrifugal chillers

机译:基于模型的离心式冷水机组故障检测与诊断

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Faulty operations of Heating, Ventilation and Air Conditioning (HVAC) chiller systems can lead to discomfort for the users, energy wastage, system unreliability and shorter equipment life. Faults need to be early diagnosed to prevent further deterioration of the system behaviour and energy losses. In this paper a model-based approach is used in order to detect important chiller systems faults. First, a linear dynamic black-box model is identified for each of the relevant characteristic features of the system during the normal functioning of the chiller. Then, an on-line correlogram method verifies the whiteness property of the residuals in order to distinguish anomalies from normal operations. A decision table, that matches the influence of anomalies with the characteristic features, allows to identify chiller faults. The proposed fault detection and diagnosis approach is assessed by using real chiller data provided by the ASHRAE research project RP-1043.
机译:加热,通风和空调(HVAC)冷却器系统的错误操作会导致用户不舒服,浪费能量,系统不可靠并缩短设备寿命。需要及早诊断故障,以防止系统性能和能量损失进一步恶化。在本文中,基于模型的方法用于检测重要的冷却系统故障。首先,在冷却器正常运行期间,为系统的每个相关特征识别线性动态黑匣子模型。然后,在线关联图方法验证残差的白度属性,以便将异常与正常操作区分开。决策表将异常的影响与特征相匹配,可以识别冷水机故障。通过使用ASHRAE研究项目RP-1043提供的实际冷却器数据评估提出的故障检测和诊断方法。

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