Microseismic Deformation Rate Monitoring

S. C. Maxwell, Julie Shemeta, Elizabeth Campbell, D. Quirk

SPE Annual Technical Conference and Exhibition · 2008 · 100 citations · 8 references

Concepts

TL;DR

Microseismic monitoring of hydraulic fractures is crucial for imaging fracture networks, optimizing reservoir engineering, and assessing seismic hazards, with magnitude ranges governed by array sensitivity, site conditions, pumping energy, stress state, and fault interactions. This paper examines how microseismic magnitude ranges vary with injection and site characteristics. The study suggests that understanding these variations can inform stimulation design to maximize deformation.

Abstract

Abstract Microseismic monitoring of hydraulic fractures is an important tool for imaging fracture networks and optimizing the reservoir engineering of the stimulation. The range of magnitudes of the recorded microseisms depends at the lower limit on the array sensitivity; while the upper limit varies significantly from site to site. In this paper the variation in the microseismic magnitude range is examined and compared with the injection and site characteristics. Although there are numerous potential factors effecting the seismic deformation, the energy of the pumping and state of stress appear to be the two dominant factors. However, interaction with pre-existing faults also results in increased deformation. Ultimately, this can potentially be used to design the stimulation to maximize the deformation. Characterization of the seismogenic potential is also important for seismic hazard assessment, as well as the design of passive monitoring.

References

8