基于交互式多模型增强无气味卡尔曼滤波的暖通空调系统故障检测与诊断(FDD)

N. Tudoroiu, M. Zaheeruddin, Elena-Roxana Tudoroiu, V. Jeflea
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引用次数: 21

摘要

如今,在各种占用和负荷相关的运行条件下,对现代复杂的暖通空调(HVAC)建筑系统进行监测和控制已成为一项艰巨而具有挑战性的任务。它们的复杂性急剧增加,由于它们之间的几个控制回路相互作用,控制变得更加困难。在这些控制回路中,排放空气温度(DAT)回路、静压回路(SP)和变风量(VAV)终端单元回路是需要频繁重新调整的候选回路。设备故障和失去控制导致低于可接受的室内环境条件是在这些系统中报告的常见问题。在我们的论文中,我们考虑了由阀执行器的间隙逐渐增加和过程中出现的一些干扰引起的DAT回路性能的退化。本文的主要目的是描述基于增强无气味卡尔曼滤波(UKF)估计算法(imaukf)[2]的交互式多模型(IMM)[9]在暖通空调系统数据回路阀门执行器故障检测诊断与隔离(FDDI)问题中的应用[4]。本文提出的算法是文献中基于扩展卡尔曼滤波标准技术[2],[3]-[5],[7]-[11]开发的交互式多重模型(IMM)的替代方案,IMM是近40年来最流行的估计技术。该算法的主要优点是计算量少,速度快,精度高,鲁棒性好,完全消除了系统动力学的线性化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fault Detection and Diagnosis (FDD) in Heating Ventilation Air Conditioning Systems (HVAC) Using an Interactive Multiple Model Augmented Unscented Kalman Filter (IMMAUKF)
Nowadays monitoring and controlling the modern and sophisticated heating ventilation air conditioning (HVAC) building systems under a wide variety of occupancy and load related operating conditions is becoming a difficult and challenging task. Their complexity drastically increases and the control becomes more difficult task due to the several control loops that interact between them. Among these control loops the discharge air temperature (DAT) loops, the static pressure loop (SP), and the variable air volume (VAV) terminal unit loop are the candidate loops requiring frequent re-tuning. Equipment failures and loss of control leading to less than acceptable indoor environment conditions is a common problem reported in these systems. In our paper we consider the degradation in the DAT loop performance caused by a gradual increase in backlash of the valve actuator and several disturbances that occur in the process. The main objective of this paper is to describe the application of an interactive multiple model (IMM) [9] based on an augmented unscented Kalman filter (UKF) estimation algorithm (IMMAUKF) [2] to the problem of fault detection diagnosis and isolation (FDDI) of the valve actuator failures in DAT loop of the HVAC systems [4]. The proposed algorithm is an alternative to the interactive multiple model (IMM) developed in the literature based on the extended Kalman filter standard technique [2], [3]-[5], [7]-[11], the most popular estimation technique used in the last 40 years. The main advantage of the proposed algorithm is the less computation, consequently faster, high accuracy, robustness and eliminates completely the linearization of the system dynamics.
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