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The use of soft computing methods for the prediction of rock properties based on measurement while drilling data

机译:使用软计算方法在钻探数据时基于测量预测岩石属性的预测

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Due to recent technological advancements drilling operations conducted for different purposes such as exploration, blasting and even grouting are not considered as auxiliary operations any longer. On the contrary, nowadays onsite drilling operations are considered as important resources for getting more information about rock properties. Many researchers have been working on measurement while drilling (MWD) techniques and their possible use for the prediction of rock mass properties. This paper presents a literature survey on the use of MWD technology for the prediction of rock mass properties. The survey indicates that the analysis and interpretation of MWD data is as important as recording the data. Both blackbox modelling such as regression and soft computing or grey-box modelling techniques are used as a tool for the analysis and interpretation of MWD data. This paper presents a case study showing the integration of soft computing methods such as adaptive fuzzy inference system (ANFIS) with MWD data for the prediction of rock mass properties such as rock quality designation (RQD). The results indicated that such soft computing methods can successfully be used as an analysis and interpretation tool.
机译:由于最近的技术进步,为不同目的进行的钻井作业,例如勘探,爆破甚至灌浆,不再被视为辅助操作。相反,当今现场钻井业务被认为是获取有关岩石属性更多信息的重要资源。许多研究人员在钻井(MWD)技术的同时一直在测量和他们可能用于预测岩体质量特性。本文提出了关于使用MWD技术进行岩石质量特性的研究的文献调查。该调查表明,MWD数据的分析和解释与记录数据一样重要。 Blackbox建模,如回归和软计算或灰度盒建模技术用作分析和解释MWD数据的工具。本文介绍了具有MWD数据的软计算方法的集成,如岩石质量指定(RQD)等MWD数据,诸如自适应模糊推理系统(ANFIS)等软计算方法的集成。结果表明,这种软计算方法可以成功用作分析和解释工具。

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