Abstract
AbstractProppant embedment is a serious issue that reduces fracture width and conductivity. The paper presents the results of experiments on embedment phenomena on a shale rock from the region of the Baltic Basin, which is regarded as an unconventional gas deposit. A novel laboratory imaging procedure was implemented to the proppant embedment visualization. The tests were performed for conditions corresponding to the average reservoir conditions occurring in the studied deposit formation. The parameters characterizing damage of the surface of the fracture faces by the grains of proppant material, after the application of axial compressive stress to two shale core samples with proppant placed in between, are presented. The tests were carried out for rock samples pre-saturated with fracturing fluid. The obtained results of relatively low total effective penetration depth of proppant grains into the walls of the fracture (0.293 mm), and high effective width of fracture with proppant material after hydraulic fracturing (87.9%), indicate the proper selection of proppant and fracturing fluid for the properties of the rock and the reservoir conditions. The results of the experiments present a range of embedment parameters, that have not been widely described before. The test procedure presented in the article is a good method for assessing the vulnerability of a deposit rock to embedment phenomenon.
Publisher
Springer Science and Business Media LLC
Subject
Geology,Geotechnical Engineering and Engineering Geology,Civil and Structural Engineering
Reference42 articles.
1. Akrad O, Miskimins J, Prasad M (2011) The effects of fracturing fluids on shale rock mechanical properties and proppant embedment. Paper Society of Petroleum Engineers presented at Annual Technical Conference and Exhibition, 30 October-2 November, Denver, Colorado, USA SPE-146658-MS. https://doi.org/10.2118/146658-MS
2. Alramahi B, Sundberg MI (2012) Proppant embedment and conductivity of hydraulic fractures in Shales. Am Rock Mech Assoc ARMA 12–291:1–6
3. American Petroleum Institute (1989) Recommended practices for evaluating short-term proppant-pack conductivity 61. American Petroleum Institute, Washington
4. Bandara KMAS, Ranjith PG, Rathnaweera TD (2019) Improved understanding of proppant embedment behavior under reservoir conditions: a review study. Powder Technol 352:170–192
5. Barree RD, Conway MW (2009) Multiphase non-darcy flow in proppant packs. SPE Prod Oper 24:257–268. https://doi.org/10.2118/109561-PA (SPE-109561-PA)
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