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arXiv · 1612.03307

Particle velocity based hydrofracturing algorithm for a penny-shaped crack

Abstract

A universal particle velocity based algorithm for simulating hydraulic fracture with leak-off, previously demonstrated for the PKN and KGD models, is extended to obtain solutions for a penny-shaped crack. The numerical scheme is capable of dealing with both the viscosity and toughness dominated regimes, with the fracture being driven by a power-law fluid. The computational approach utilizes two dependent variables; the fracture aperture and the reduced particle velocity. The latter allows for the application of a local condition of the Stefan type (the speed equation) to trace the fracture front. The obtained numerical solutions are carefully tested using various methods, and are shown to achieve a high level of accuracy. Simple, accurate, semi-analytical approximations of the solution are provided for the zero leak-off case. A comparison with other results available in the literature is undertaken.

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Daniel Peck, Michel Wrobel, Monika Perkowska, Gennady Mishuris. 2018-11-14. Particle velocity based hydrofracturing algorithm for a penny-shaped crack. https://doi.org/10.1007/s11012-018-0903-6%2C%2010.1007%2Fs11012-018-0899-y

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