Geomechanical modeling of salt diapirs: A field scale analysis for a 3D salt structure from the North Sea
Геомеханическое моделирование соляных диапиров: анализ 3D-структуры соляного тела в масштабе месторождения в Северном море
2026-02-04
SCID: 54.1/kydw4dvs
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North Sea salt structureborehole stabilitygeomechanical modelingin-situ stress distributionsalt diapirs
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Abstract (AI)
Underground salt deposits deform with time, leading to a structure known geologically as a salt diapir. Salt diapirs play an important part in hydrocarbon developments and are significant for petroleum exploration. Presence of geological inhomogeneities such as salt domes causes significant perturbation of in-situ stresses, which has serious implications for the stability of boreholes drilled in the vicinity of the diapirs. This work presents a modelling methodology to study stress distribution throughout a rock mass surrounding a diapir. Salt diapirs of simplified axisymmetric geometry were modeled, and the effects of grid zone size, stress regime, rock mechanical properties and creep constitutive behaviour were analysed. The results showed good agreement with the published data. Also actual salt dome geometry from the North Sea was modeled. The results of the computations agreed well with those found in literature showing raised deviatoric stress in certain areas in the vicinity of the diapir, which results in greater potential for borehole instability. The model can be useful in borehole failure risk assessment with the potential to improve drilling efficiency, reduce downtime, by planning the boreholes so that their trajectories avoid areas of high risk where practicable.
Key Findings
1
A geomechanical modeling methodology was developed to calculate stress distributions in rock surrounding salt diapirs.
2
Elevated deviatoric stress zones indicate increased borehole-instability potential and can guide trajectories to reduce drilling risk and downtime.
3
Modeling of an actual North Sea salt dome also agreed well with literature and identified elevated deviatoric stresses near the diapir.
4
Parametric analyses examined the effects of grid-zone size, stress regime, rock mechanical properties, and salt creep constitutive behavior.
5
Simplified axisymmetric diapir models produced results consistent with published data, supporting the modeling approach.
Research Object
North Sea salt diapir and the surrounding rock mass
Research Subject
Stress distribution and borehole instability risk around the salt diapir under varying stress regimes, rock properties, grid sizes, and salt creep behavior
Publication Details
Publication Date
2026-02-04
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