Day 2 Tue, November 03, 2020 2020
DOI: 10.2118/200740-ms
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Digital Twins for Well Planning and Bit Dull Grade Prediction

Abstract: In this work, we develop and apply an offset well data analysis framework to generate a digital twin that is representative of bit state. We also strive to produce performance maps for well planning. Our workflow involves three major elements: 1) offset well data analysis to generate detailed depth-based and time-based statistics 2) computation of wear on bit and efficient weight-on-bit (WOB) versus depth for all the runs 3) automated machine learning to generate an accurate predictive model for bit dull grade… Show more

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Cited by 7 publications
(2 citation statements)
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“…ZrO 2 nanoparticle aggregation is observed for all composite materials irrespective of ZrO 2 concentration. Te increased surface area of nanoparticles is evidence of their accumulation in the composite structure [29]. Nanoparticle aggregation was reported for AA6063/2ZrO 2 composite.…”
Section: Density and Microstructural Properties Tablementioning
confidence: 78%
“…ZrO 2 nanoparticle aggregation is observed for all composite materials irrespective of ZrO 2 concentration. Te increased surface area of nanoparticles is evidence of their accumulation in the composite structure [29]. Nanoparticle aggregation was reported for AA6063/2ZrO 2 composite.…”
Section: Density and Microstructural Properties Tablementioning
confidence: 78%
“…A digital model used for tank inspection work should include a complete set of processes that take into account automation, accuracy, and standardization. A digital twin (DT) digitally describes the state of a physical entity [10][11][12][13] and can improve the accuracy, efficiency, and reliability of the inspection process [14,15]. TLS has extensive applications in the construction of DT models, providing high-precision geometric information and digital validation tools, making it one of the primary techniques for digital model construction [16][17][18].…”
Section: Introductionmentioning
confidence: 99%