Prediction of sand production onset in petroleum reservoirs using a reliable classification approach

2017年 3卷 第2期
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Farhad Gharagheizi Amir H. Mohammadi Milad Arabloo Amin Shokrollahi
Controlling sand production in the petroleum industry has been a long-standing problem for more than 70 years. To provide technical support for sand control strategy, it is necessary to predict the conditions at which sanding occurs. To this end, for the first time, least square support machine (LSSVM) classification approach, as a novel technique, is applied to identify the conditions under which sand production occurs. The model presented in this communication takes into account different parameters that may play a role in sanding. The performance of proposed LSSVM model is examined using field data reported in open literature.
Sand production; Least square SVM; ROC graph; Classification description; Modeling; Sanding onset;
https://doi.org/10.1016/j.petlm.2016.02.001