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Internet of Things and Big Data Analytics for Smart Oil Field Malfunction Diagnosis

机译:智能油田故障诊断的事物互联网和大数据分析

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With the rapid development of information technology and digital communication, the data types are more abundant by integration of various technologies. In this paper, based on the analysis of a large number of historical data of oil and water wells, the changes of some important parameters of the wells can be monitored and then used in the trend prediction and the early warning system. Subsequently, we use 6 Sigma algorithm to process the historical data, and by the big data trend analysis combining with various parameters, we can diagnose six operating conditions, such as sand production, abnormal of moisture content etc. Through experiments, the algorithm is stable and reliable in practical application, and it has great significance to ensure the normal production of oil field and improve the management ability for oil field.
机译:随着信息技术的快速发展和数字通信,通过整合各种技术,数据类型更加丰富。本文基于分析了大量的石油和水井历史数据,可以监测井的一些重要参数的变化,然后用于趋势预测和预警系统。随后,我们使用6个Sigma算法来处理历史数据,并通过大数据趋势分析与各种参数组合,我们可以诊断六种操作条件,如砂生产,水分含量异常等通过实验,算法稳定在实际应用中可靠,具有重要意义,以确保油田的正常生产,提高油田的管理能力。

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