Technical Topics
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Lean Six Sigma, through its DMAIC framework, offers a data‑driven approach for reducing waste and variation in oil and gas operations and is explored here as a practical solution for improving drill-bit inventory and lease management despite limited industry adoption.
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Gas chromatography is a proven tool supporting the safe, compliant, and optimal operation of operation of carbon capture, utilization, and storage processes.
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The third and final part of the series covers the facility engineering and petroleum economics aspects of a field development plan.
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Agentic AI could help upstream oil and gas operations reduce emissions by enabling real-time methane detection, optimizing flaring and energy use, and improving carbon capture efficiency.
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This article examines how domain experts can use no-code ML platforms to explore decision-relevant problems, validate hypotheses, quickly build prototypes, and engage more effectively with data science teams when solutions transition toward production.
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Geoscientists are shifting from primarily discovering and extracting resources to integrating knowledge, guiding sustainable decisions, and using Earth’s history to help balance resource development with long-term planetary health.
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Venezuela’s oil recovery will depend on restoring disciplined, reliable day-to-day operations by stabilizing existing assets, fixing operational failures, and using practical tools to rebuild predictable production.
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Hydrogen is emerging as a key low-carbon energy carrier for the energy transition, with multiple production pathways that differ in cost, emissions, and scalability trade-offs.
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Over the past decade, oilfield service companies have transformed logging-while-drilling (LWD) development into a faster, collaborative, system-level process that delivers improved reliability from the first run and makes development philosophy as important as the technology itself.
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Digital transformation in oil and gas depends less on adopting advanced technologies and more on maturing data so people and processes can reliably convert raw information into aligned, asset-level value.
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