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Recognition of Operating States of a Wheel Loader for Diagnostics Purposes

机译:出于诊断目的识别轮式装载机的工作状态

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In this paper, the operating states of a wheel loader were studied for diagnostics purposes using a real time simulation model of an articulated-frame-steered wheel loader. Test drives were carried out to obtain measurement data, which were then analyzed. The measured time series data were analyzed to find the sequences of operating states using two different data sets, namely the variables of hydrostatic transmission and working hydraulics. A time series is defined as a collection of observations made sequentially in time. In our proposed method, the time series data were first segmented to find operating states. One or more segments build up an operating state. A state is defined as a combination of the patterns of the selected variables. The segments were then clustered and classified. The operating states were further analyzed using the quantization error method to detect anomalies. The recognized operating states define the operation of the machine so the analysis can be focused on specific sections and situations in time series and to identify which kinds of operating situations generate anomalies. Simulated leakages in the main hydraulic components of the hydrostatic transmission and the working hydraulics were used as anomalies to study the changes in the recognized operating states and the magnitude of the quantization error.
机译:在本文中,出于诊断目的,使用了铰接式框架转向轮式装载机的实时仿真模型研究了轮式装载机的工作状态。进行测试驱动以获得测量数据,然后对其进行分析。使用两个不同的数据集(即静液压传动和工作液压变量)对测得的时间序列数据进行分析,以找到工作状态的顺序。时间序列定义为按时间顺序进行的观察的集合。在我们提出的方法中,首先对时间序列数据进行分段以找到运行状态。一个或多个段可建立一种操作状态。状态定义为所选变量的模式的组合。然后将这些片段聚类并分类。使用量化误差方法进一步分析运行状态以检测异常。识别的运行状态定义了机器的运行,因此分析可以集中于时间序列中的特定部分和情况,并确定哪些类型的运行情况会导致异常。静液压传动装置主要液压部件和工作液压系统中的模拟泄漏被用作异常现象,以研究已识别的工作状态的变化和量化误差的大小。

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