Laboratory Investigation of the Effect of Injection Rate on Hydraulic Fracturing Performance in Artificial Transversely Laminated Rock Using 3D Laser Scanning

被引:0
作者
Y. Wang
D. Zhang
Y. Z. Hu
机构
[1] University of Science and Technology Beijing,Beijing Key Laboratory of Urban Underground Space Engineering, Department of Civil Engineering, School of Civil and Resource Engineering
[2] Chinese Academy of Sciences,Key Laboratory of Shale Gas and Geoengineering, Institute of Geology and Geophysics
来源
Geotechnical and Geological Engineering | 2019年 / 37卷
关键词
Laboratory test; Hydraulic fracturing; Injection rate; Fracture surface; 3-D laser scanning;
D O I
暂无
中图分类号
学科分类号
摘要
Among many factors that affect the hydraulic fracturing responses, the injection rate is identified as the first critical factor to be considered by many researchers. However, the internal mechanism of injection rate on the morphology of fracturing surface and gas productivity are still not well understood. In scaled laboratory experiments, artificial interlayered model blocks were produced, according to the development characteristics of silty laminae in continental shale, China, to investigate the effect of injection rate on hydraulic fracturing effectiveness. Macroscopic failure morphology descriptions combined with mesoscopic 3-D laser scanning techniques are both used to reveal the internal influence mechanism of injection rate. Results show that hydraulic fracturing effectiveness improves with the increase of injection rate, by enhancing the total contact area of fracture system, and increasing micro-fractures in the fracture surface. The experimental result first reveals the influential mechanism of injection rate on hydraulic fracturing performance.
引用
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页码:2121 / 2133
页数:12
相关论文
共 85 条
[1]  
Barker JA(1988)A generalized radial flow model for hydraulic tests in fractured rock Water Resour Res 24 1796-1804
[2]  
Berchenko I(2004)An in situ thermo-hydraulic experiment in a saturated granite I: design and results Int J Rock Mech Min Sci 41 1377-1394
[3]  
Detournay E(2002)Fractured shale-gas systems AAPG Bull 86 1921-1938
[4]  
Chandler N(1994)Experimental verification of dimensional analysis for hydraulic fracturing SPE Prod Facil 9 230-238
[5]  
Martino J(2017)Near wellbore hydraulic fracture propagation from perforations in tight rocks: the roles of fracturing fluid viscosity and injection rate Energies 10 359-380
[6]  
Curtis JB(2014)Experimental study of hydraulic fracturing for shale by stimulated reservoir volume Fuel 128 373-1666
[7]  
de Pater CJ(2011)Geologic analysis of the upper jurassic Haynesville shale in East Texas and West Louisiana AAPG Bull 95 1643-838
[8]  
Cleary MP(2014)Propagation area evaluation of hydraulic fracture networks in shale gas reservoirs Petrol Explor Dev 41 833-xii
[9]  
Quinn TS(1996)Laminated sediments as palaeo-indicators Geol Soc Lond Spec Publ 116 vii-687
[10]  
Barr DT(2015)Characteristics of silty laminae in Zhangjiatan shale of southeastern Ordos Basin, China: Implications for shale gas formation AAPG Bull 99 661-215