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A Method Based on Multi-Sensor Data Fusion for Fault Detection of Planetary Gearboxes

机译:基于多传感器数据融合的行星齿轮箱故障检测方法

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Studies on fault detection and diagnosis of planetary gearboxes are quite limited compared with those of fixed-axis gearboxes. Different from fixed-axis gearboxes, planetary gearboxes exhibit unique behaviors, which invalidate fault diagnosis methods that work well for fixed-axis gearboxes. It is a fact that for systems as complex as planetary gearboxes, multiple sensors mounted on different locations provide complementary information on the health condition of the systems. On this basis, a fault detection method based on multi-sensor data fusion is introduced in this paper. In this method, two features developed for planetary gearboxes are used to characterize the gear health conditions, and an adaptive neuro-fuzzy inference system (ANFIS) is utilized to fuse all features from different sensors. In order to demonstrate the effectiveness of the proposed method, experiments are carried out on a planetary gearbox test rig, on which multiple accelerometers are mounted for data collection. The comparisons between the proposed method and the methods based on individual sensors show that the former achieves much higher accuracies in detecting planetary gearbox faults.
机译:与固定轴齿轮箱相比,行星齿轮箱的故障检测和诊断研究非常有限。与固定轴齿轮箱不同,行星齿轮箱表现出独特的性能,这使故障诊断方法无效,该方法对于固定轴齿轮箱有效。事实上,对于像行星齿轮箱这样复杂的系统,安装在不同位置的多个传感器可提供有关系统健康状况的补充信息。在此基础上,介绍了一种基于多传感器数据融合的故障检测方法。在这种方法中,为行星齿轮箱开发的两个特征用于表征齿轮的健康状况,而自适应神经模糊推理系统(ANFIS)则用于融合来自不同传感器的所有特征。为了证明该方法的有效性,在行星齿轮箱试验台上进行了实验,在该试验台上安装了多个加速度计以进行数据收集。所提出的方法与基于单个传感器的方法之间的比较表明,前者在检测行星齿轮箱故障方面具有更高的精度。

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