Formatted Title
Answering the Challenges of Low Permeability Formations
Background/Objectives
Geo Tactical Remediation Ltd. (Geo Tactical) was employed to emplace high permeability pathways by fracture injection to increase the permeability of the subsurface geology. Geo Tactical emplaced sand proppant by fracture injection, injected fluorescein tracer and conducted tiltmeter mapping at a site in Santa Clarita, California. The project consisted of a pilot and full-scale program to increase permeability to allow for future injection treatments at a low permeability site.
Low permeability formations have challenges like low permeation injection rates, amendment particle size, and the cost of drilling numerous injection wells. Fracture injection is a method that can address many of these challenges by creating a tensile parting in the soil/ bedrock geology. Fracture injection creates permeable pathways that connect secondary geological features and increase the contact area.
Approach/Activities
The pilot program confirmed the successful emplacement of the fracture network and the radius of influence (ROI) using fluorescein tracer and tiltmeter mapping. The fluorescein tracer confirmed that the fractures extended to a minimum ROI of 25 ft and upwards of 75 ft, and tiltmeter mapping showed the location and placement of these fractures to a high degree of certainty. The completed program (pilot and full-scale) delivered 83,000 lbs of sand in 9,300 gals of slurry into five boreholes and 16 emplacement pathways (EPs) (fractures).
Results/Lessons Learned
Borehole instability and zones with higher permeability than anticipated due to sand and gravel layers extending deeper caused challenges in emplacing the mass of sand in the full-scale program (60% mass emplaced). Proper delineation and pre-fracture injection testing, including hydraulic conductivity, is strongly recommended to demarcate any potentially challenging zones. Injection wells were installed and completed in the fractured and higher permeability boreholes (no sand emplaced) for later injection treatment.
A supporting case study will show how fracture injection enhanced the permeability of an inefficient multi-phase extraction (MPE) system. Sand-propped fracture injection enhanced the permeability of the subsurface geology and reduced the number of wells required, and a surfactant increased the rate of desorption of the condensate. Permeability enhancement for low permeability zones can improve inefficient extraction systems, emplace significant masses of amendment, extend the radius of influence, and potentially reduce drilling costs.
Understanding the formation is crucial. The appropriate injection pressure is the key to unlocking the treatment approach to low permeability zones.