Deep Learning and Time-Series Analysis for the Early Detection of Lost Circulation Incidents During Drilling Operations

Глубокое обучение и анализ временных рядов для раннего обнаружения поглощений бурового раствора в процессе бурения
Mohammed Albassam, Mohammad Aljubran, Jothibasu Ramasamy, Arturo Magana-Mora
2021-01-01

early detectionfocal losslost circulation incidentsone-dimensional convolutional neural networktime-series analysis
Drilling operations consist of breaking the rock to deepen a wellbore for oil or gas extraction. A drilling fluid, circulating from the surface through the drill pipe and from the annulus to the surface, is used to remove rock cuttings and maintain hydrostatic pressure. Drilling fluid lost circulation incidents (LCIs) are major sources of non-productive time (NPT) in drilling operations. These incidents occur due to preexisting natural fractures (vugs, caverns, etc.) and/or drilling-induced hydraulic fractures. The initiation of an LCI could lead to other hazardous drilling phenomena, such as formation influx or kick/blowout, stuck pipe incidents, among others. LCIs are typically monitored at the rig site by observing drilling fluid levels in the fluid tanks. This manual process incurs missing the occurrence or late detection of LCIs. Machine learning (ML) and deep learning (DL) classification algorithms are powerful in processing time-series data and achieving early detection of such temporal phenomena. In this study, we performed a large-scale analysis of the surface drilling and rheology data obtained from historical wells with LCIs. This analysis includes primary and secondary preprocessing steps including, aggressive sampling, feature engineering, and window normalization to derive generalizable DL models for real-time operations. Focal loss was utilized to account for data class imbalance and train robust and generalizable models. The results obtained from different ML/DL algorithms showed that one-dimensional convolutional neural network models resulted in the best performance with state-of-the-art precision, recall, and F1scores of 87.34%, 73.40%, and 79.77%, respectively, on unseen test drilling data.
1
Aggressive sampling, feature engineering, and window normalization were used to develop generalizable deep-learning models for real-time LCI detection.
2
Automated time-series classification offers earlier LCI detection than manual monitoring of drilling-fluid tank levels, which can miss or delay incident recognition.
3
Focal loss addressed severe class imbalance, supporting more robust and generalizable classification models.
4
One-dimensional convolutional neural networks achieved the best performance on unseen drilling data, with 87.34% precision, 73.40% recall, and 79.77% F1 score.
5
The study analyzes large-scale surface drilling and rheology time-series data from historical wells experiencing lost circulation incidents.

lost circulation incidents in drilling operations

early detection and classification of lost circulation incidents from surface drilling and rheology time-series data

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2021-01-01
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Mohammed Albassam
Mohammad Aljubran
Jothibasu Ramasamy
Arturo Magana-Mora
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