Natural Fractures in shale: A review and new observations

Природные трещины в сланцах: обзор и новые наблюдения
Stephen E. Laubach, Jon E. Olson, Julia Gale, Peter Eichhuble, András Fall
2014-11-01

fracture diagenesisfracture stratigraphyhydraulic-fracture stimulationnatural fracturesshale reservoirs
Natural fractures have long been suspected as a factor in production from shale reservoirs because gas and oil production commonly exceeds the rates expected from low-porosity and low-permeability shale host rock. Many shale outcrops, cores, and image logs contain fractures or fracture traces, and microseismic event patterns associated with hydraulic-fracture stimulation have been ascribed to natural fracture reactivation. Here we review previous work, and present new core and outcrop data from 18 shale plays that reveal common types of shale fractures and their mineralization, orientation, and size patterns. A wide range of shales have a common suite of types and configurations of fractures: those at high angle to bedding, faults, bed-parallel fractures, early compacted fractures, and fractures associated with concretions. These fractures differ markedly in their prevalence and arrangement within each shale play, however, constituting different fracture stratigraphies—differences that depend on interface and mechanical properties governed by depositional, diagenetic, and structural setting. Several mechanisms may act independently or in combination to cause fracture growth, including differential compaction, local and regional stress changes associated with tectonic events, strain accommodation around large structures, catagenesis, and uplift. Fracture systems in shales are heterogeneous; they can enhance or detract from producibility, augment or reduce rock strength and the propensity to interact with hydraulic-fracture stimulation. Burial history and fracture diagenesis influence fracture attributes and may provide more information for fracture prediction than is commonly appreciated. The role of microfractures in production from shale is currently poorly understood yet potentially critical; we identify a need for further work in this field and on the role of natural fractures generally.
1
Fracture prevalence and arrangement vary substantially among shale plays, forming distinct fracture stratigraphies controlled by depositional, diagenetic, structural, interfacial, and mechanical properties.
2
Heterogeneous fracture systems can either enhance or reduce shale producibility and rock strength, and can influence interactions with hydraulic-fracture stimulation; the role of microfractures remains poorly understood but potentially critical.
3
Natural fracture growth may result from differential compaction, tectonic stress changes, strain accommodation around structures, catagenesis, uplift, or combinations of these mechanisms.
4
Review and new data from 18 shale plays show that natural fractures commonly occur across diverse shales and exhibit systematic variation in mineralization, orientation, and size.
5
Shales share a common suite of fracture types, including high-angle fractures, faults, bed-parallel fractures, early compacted fractures, and concretion-associated fractures.

Natural fracture systems in shale reservoirs and shale plays

The types, mineralization, orientations, sizes, stratigraphic arrangements, formation mechanisms, and effects on shale producibility and interaction with hydraulic fracturing

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2014-11-01
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Stephen E. Laubach
Jon E. Olson
Julia Gale
Peter Eichhuble
András Fall
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