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A Method for Fault Detection and Diagnostics in Ventilation Units Using Virtual Sensors

机译:一种使用虚拟传感器的通风机故障检测与诊断方法

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摘要

Buildings represent a significant portion of global energy consumption. Ventilation units are complex components, often customized for the specific building, responsible for a large part of energy consumption. Their faults impact buildings’ energy efficiency and occupancy comfort. In order to ensure their correct operation, proper fault detection and diagnostics methods must be applied. Hardware redundancy, an effective approach to detect faults, leads to increased costs and space requirements. We propose exploiting physical relations inside ventilation units to create virtual sensors from other sensors’ readings, introducing redundancy in the system. We use two different measures to detect when a virtual sensor deviates from the physical one: coefficient of determination for linear models, and acceptable range. We tested our method on a real building at the University of Southern Denmark, developing three virtual sensors: temperature, airflow, and fan speed. We employed linear regression models, statistical models, and non-linear regression models. All models detected an anomalous strong oscillation in the temperature sensors. Readings fell outside the acceptable range and the coefficient of determination dropped. Our method showed promising results by introducing redundancy in the system, which can benefit several applications, such as fault detection and diagnostics and fault-tolerant control. Future work will be necessary to discover thresholds and set up automatic fault detection and diagnostics.
机译:建筑物占全球能源消耗的很大一部分。通风单元是复杂的组件,通常针对特定建筑物进行定制,占很大一部分能耗。它们的故障会影响建筑物的能源效率和居住舒适度。为了确保其正确操作,必须使用适当的故障检测和诊断方法。硬件冗余是一种检测故障的有效方法,导致成本和空间需求增加。我们建议利用通风装置内部的物理关系,根据其他传感器的读数创建虚拟传感器,从而在系统中引入冗余。我们使用两种不同的方法来检测虚拟传感器何时偏离物理传感器:线性模型的确定系数和可接受的范围。我们在南丹麦大学的一栋真实建筑物上测试了我们的方法,并开发了三个虚拟传感器:温度,气流和风扇速度。我们采用了线性回归模型,统计模型和非线性回归模型。所有模型都在温度传感器中检测到异常强烈的振荡。读数超出可接受范围,测定系数下降。通过在系统中引入冗余,我们的方法显示出令人鼓舞的结果,这可以使多种应用受益,例如故障检测和诊断以及容错控制。发现阈值并设置自动故障检测和诊断将需要进一步的工作。

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