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Input data in Table 2 are used for the comparison between the mudcake model and the fracture-bridging model for wellbore strengthening.
When this method was applied to a model for wellbore flow under asphaltene deposition, a speed up between 7 and 25 times was achieved.
This paper presents a novel, coupled fluid flow and fracture mechanics model for wellbore strengthening applications that accounts for near-wellbore-induced fracture behavior.
Al-Ajmi and Zimmerman (2009) used the Mogi Coulomb criterion to develop a model for wellbore stability analysis and indicated that the Mogi Coulomb criterion shows field conditions more realistically.
For instance, Ma et al. (2015) derived a semi-analytical model for wellbore stability analysis from the analytical solution of stress distribution around a borehole, rock failure criteria and a breakout width model.
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In this paper, some classical and advanced analytical heat transfer models for wellbore, formation and reservoir are reviewed systematically, and the modeling principles for the heat transfer analysis are also introduced in detail.
The traditional thermal models for wellbore and formation cannot actual simulate the temperature fields without considering the effect of permafrost thaw.
Analytical equations are derived to compute forces in the drill string from top to bottom, including models for wellbore friction and pipe strength.
Then a new coupled explicit finite difference model (EFDM) for wellbore flow and heat transfer is proposed.
Aside a hydraulic model for the wellbore, well-formation interactions that give rise to kicks, lost circulation, and wellbore breathing are also modeled and coupled.
This paper presents the development of a model for determining wellbore stability for oil and gas drilling operations.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com