CEGEO-PHMay 20

HyFrac.fun: A 3D Hydraulic Fracturing Simulator on Cloud

arXiv:2605.2076455.2
Predicted impact top 6% in CE · last 90 daysOriginality Incremental advance
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For petroleum engineers and researchers, this provides an integrated tool to quantify the effect of non-planar fracture geometries on reservoir drainage, revealing physics insights that were previously inaccessible due to incompatible solvers.

HyFrac.fun is a cloud-native 3D hydraulic fracturing simulator that integrates fracture propagation and production solvers via a structural isomorphism between SGBEM-FEM operators, enabling automated lifecycle simulation. It reveals a double shadow phenomenon where mechanical stress shadow during stimulation mirrors a fluid pressure shadow during production, and shows that stress-shadow-controlled geometry, not fluid rheology, primarily determines long-term production efficiency.

When multiple hydraulic fractures propagate simultaneously from a horizontal wellbore, elastic stress-shadow interactions generate complex non-planar three-dimensional geometries whose effect on subsequent reservoir drainage has infrequently been quantified, because the propagation and production solvers have historically been incompatible stand-alone tools. This paper presents HyFrac.fun, a cloud-native platform that bridges this gap by exploiting a structural isomorphism between the two SGBEM--FEM governing operator systems. The platform enables automated zero-conversion handoff of the evolved 3D fracture mesh directly to the steady-state Darcy production solver for realizing a fully integrated lifecycle simulation of multi-stage non-planar hydraulic fractures. The lifecycle analysis reveals a double shadow phenomenon: the mechanical stress shadow that suppresses inner-fracture growth during stimulation mirrors a fluid pressure shadow that reduces the inner fracture's drawout rate at small cluster spacing. Critically, switching to a shear-thinning power-law fracturing fluid leaves the fracture trajectories and production rates almost unchanged, demonstrating that stress-shadow-controlled fracture geometry instead of fluid rheology is the primary determinant of long-term production efficiency at equal injection rates. These physics findings are accessible from integrated fracture propagation and production simulations.

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