Authors :
Kayode Emmanuel Akinleye; Shereef Olayinka Jinadu; Chinelo Nwaamaka Onwusi; Onum Friday Okoh; Lawrence Anebi Enyejo
Volume/Issue :
Volume 10 - 2025, Issue 8 - August
Google Scholar :
https://tinyurl.com/yc3jezu9
Scribd :
https://tinyurl.com/4kwfp89n
DOI :
https://doi.org/10.38124/ijisrt/25aug626
Note : A published paper may take 4-5 working days from the publication date to appear in PlumX Metrics, Semantic Scholar, and ResearchGate.
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Abstract :
Tight shale formations have emerged as a cornerstone of the United States’ unconventional hydrocarbon
resources, offering significant potential for long-term energy security. However, unlocking these reserves requires advanced
stimulation technologies to overcome the inherent low permeability of shale reservoirs. Multistage hydraulic fracturing has
become a vital strategy to enhance reservoir contact and stimulate hydrocarbon flow. This paper explores the optimization
of multistage hydraulic fracturing techniques aimed at improving recovery efficiency in various shale plays across the United
States, including the Permian Basin, Bakken, Eagle Ford, and Marcellus formations. Emphasis is placed on understanding
how fracture geometry, spacing, sequencing, and proppant distribution influence production outcomes. The study highlights
key geological and operational factors that affect fracture propagation and reservoir connectivity, focusing on how these can
be aligned to achieve higher recovery rates. Moreover, the integration of real-time monitoring, data analytics, and reservoir
characterization tools is discussed as a means to support decision-making in complex shale environments. The research
underscores the critical need for site-specific fracturing strategies that balance economic viability with environmental
considerations. By optimizing multistage fracturing designs tailored to geological heterogeneity, the United States can
continue to lead in unconventional resource development while maximizing output and minimizing operational risks in tight
shale formations.
Keywords :
Multistage Hydraulic Fracturing, Tight Shale Formation, Recovery Efficiency, Unconventional Resources, United States Shale Plays.
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Tight shale formations have emerged as a cornerstone of the United States’ unconventional hydrocarbon
resources, offering significant potential for long-term energy security. However, unlocking these reserves requires advanced
stimulation technologies to overcome the inherent low permeability of shale reservoirs. Multistage hydraulic fracturing has
become a vital strategy to enhance reservoir contact and stimulate hydrocarbon flow. This paper explores the optimization
of multistage hydraulic fracturing techniques aimed at improving recovery efficiency in various shale plays across the United
States, including the Permian Basin, Bakken, Eagle Ford, and Marcellus formations. Emphasis is placed on understanding
how fracture geometry, spacing, sequencing, and proppant distribution influence production outcomes. The study highlights
key geological and operational factors that affect fracture propagation and reservoir connectivity, focusing on how these can
be aligned to achieve higher recovery rates. Moreover, the integration of real-time monitoring, data analytics, and reservoir
characterization tools is discussed as a means to support decision-making in complex shale environments. The research
underscores the critical need for site-specific fracturing strategies that balance economic viability with environmental
considerations. By optimizing multistage fracturing designs tailored to geological heterogeneity, the United States can
continue to lead in unconventional resource development while maximizing output and minimizing operational risks in tight
shale formations.
Keywords :
Multistage Hydraulic Fracturing, Tight Shale Formation, Recovery Efficiency, Unconventional Resources, United States Shale Plays.