遏制(计算机编程)
水力压裂
各向异性
断裂(地质)
地质学
岩土工程
采矿工程
石油工程
计算机科学
物理
光学
程序设计语言
作者
Guanyi Lu,Seyyedmaalek Momeni,Carlo Peruzzo,Fatima‐Ezzahra Moukhtari,Brice Lecampion
标识
DOI:10.48550/arxiv.2310.04374
摘要
We report laboratory experiments and numerical simulations demonstrating that the anisotropic characteristics of rocks play a major role in the elongation of hydraulic fractures propagating in a plane perpendicular to bedding. Transverse anisotropy leads to larger hydraulic fracture extension in the parallel-to-bedding/divider direction compared to the perpendicular-to-bedding/arrester direction. This directly promotes vertical containment of hydraulic fractures in most sedimentary basins worldwide even in the absence of any favorable in-situ stress contrasts or other material heterogeneities. More importantly, the ratio of the energy dissipated in fluid viscous flow in the fracture to the energy dissipated in the creation of new surfaces is found to play a critical role on fracture elongation, with fracture-energy dominated hydraulic fractures being the most elongated while the viscous dominated ones remain more circular. These results open the door to a better engineering and control of hydraulic fractures containment at depth in view of the competition between material anisotropy and injection parameters (fluid viscosity and rate of injection).
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