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Drilling events detection using hybrid intelligent segmentation algorithm

机译:混合智能分段算法在钻井事件检测中的应用

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Several sensor measurements are collected from drilling rig during oil well drilling process. These measurements carry information not only about the operational states of the drilling rig but also about all higher level operations and activities performed by drilling crew. Automatic detection and classification of such drilling operations and states is considered as a big challenge in drilling industry. Furthermore, the possibility of detecting such events opens the door to detect and analyze hidden lost time of the drilling process. This paper presents a novel algorithm for drilling time series segmentation using Expectation Maximization and Piecewise Linear Approximation algorithms. The suggested algorithm shows that the incorporation of prior-knowledge about the drilling process is a key step to segment drilling time series successfully. The Expectation Maximization algorithm is used to segment drilling time series based on hook-load sensor measurements. In addition, Piecewise Linear Approximation is hired in our approach to slice standpipe pressure, pump flow rate and rotational speed (RPM) and torque of the top drive motor. Merging the results from both, Expectation Maximization and Piecewise Linear Approximation, gives the suggested algorithm the dynamic ability to detect all drilling events and activities.
机译:在油井钻探过程中,从钻机收集了一些传感器测量值。这些测量不仅包含有关钻机的运行状态的信息,而且还包含有关钻井人员进行的所有更高级别的操作和活动的信息。这种钻探操作和状态的自动检测和分类被认为是钻探行业的一大挑战。此外,检测到此类事件的可能性为检测和分析钻探过程中隐藏的损失时间打开了大门。本文提出了一种使用期望最大化和分段线性近似算法的钻井时间序列分割新算法。所建议的算法表明,结合钻井过程的先验知识是成功分割钻井时间序列的关键步骤。期望最大化算法用于根据吊钩载荷传感器的测量结果对钻井时间序列进行分段。另外,在我们的方法中采用分段线性近似法来对立管压力,泵流量和转速(RPM)以及顶部驱动电机的扭矩进行切片。合并“期望最大化”和“分段线性逼近”的结果,可以使建议的算法具有动态能力来检测所有钻井事件和活动。

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