Experimental investigation on damage evolution behaviour of a granitic rock under loading and unloading

Bing Dai , Guo-yan Zhao , H. Konietzky , P. L. P. Wasantha

Journal of Central South University ›› 2018, Vol. 25 ›› Issue (5) : 1213 -1225.

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Journal of Central South University ›› 2018, Vol. 25 ›› Issue (5) : 1213 -1225. DOI: 10.1007/s11771-018-3819-3
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Experimental investigation on damage evolution behaviour of a granitic rock under loading and unloading

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Abstract

In-situ rock failures can result from stress changes due to pure loading and/or unloading. Understanding of the damage evolution behavior in brittle rocks during loading and unloading is imperative for the designs of rock structures. In this paper, we investigate the damage evolution characteristics of a granitic rock during loading and unloading after a series of triaxial experiments performed at different confining pressures. The axial stress—axial strain variations of the tested specimens revealed that the specimens undergoing unloading fail with a lower axial strain compared to the specimens failed purely by loading. Higher confining pressures were observed to exacerbate the difference. Volumetric strain versus axial strain curves indicated that the curves reverse the trend with the beginning of major damage of specimens. We suggest here a new form of equation to describe the secant modulus variation of brittle rocks against the axial stress for the unloading process. Failure mechanisms of tested specimens showed two distinct patterns, namely, specimens under pure loading failed with a single distinct shear fracture while for the unloading case specimens displayed multiple intersecting fractures. In addition, analysis of the evolution of dissipation and elastic energy during deformation of the specimens under loading and unloading conditions showed differentiable characteristics. Moreover, we evaluated the variations of two damage indices defined based on the energy dissipation and secant modulus evolution during deformation and observed that both of them satisfactorily distinguish key stages of damage evolution.

Keywords

damage evolution / loading and unloading / granitic rock / triaxial testing

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Bing Dai, Guo-yan Zhao, H. Konietzky, P. L. P. Wasantha. Experimental investigation on damage evolution behaviour of a granitic rock under loading and unloading. Journal of Central South University, 2018, 25(5): 1213-1225 DOI:10.1007/s11771-018-3819-3

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References

[1]

DuK, LiX-b, LiD-y, WENGLei. Failure properties of rocks in true triaxial unloading compressive test [J]. Transactions of Nonferrous Metals Society of China, 2015, 25(2): 571-581

[2]

LiX-b, YaoJ-r, GongF-qiang. Dynamic problems in deep exploitation of hard rock metal mines [J]. The Chinese Journal of Nonferrous Metals, 2011, 21(10): 2551-2563

[3]

WahlM H, MckellarH N, WilliamsT M. Patterns of nutrient loading in forested and urbanized coastal streams [J]. Journal of Experimental Marine Biology and Ecology, 1997, 213(1): 111-131

[4]

DaiB, HeG-c, ZhangZ-jun. A numerical research on crack process of gypsum containing single flaw with different angle and length in uniaxial loading [J]. Shock and Vibration, 2018

[5]

DaiB, ZhaoG-y, DongL-j, YangChen. Mechanical characteristics for rocks under different paths and unloading rates under confining pressures [J]. Shock and Vibration, 2015

[6]

WangM, CaoP, WanW, ZhaoY-l, LiuJ, LiuJ-shuo. Crack growth analysis for rock-like materials with ordered multiple pre-cracks under biaxial compression [J]. Journal of Central South University, 2017, 24(4): 866-874

[7]

YinT-b, WangP, LiX-bing. Effects of thermal treatment on physical and mechanical characteristics of coal rock [J]. Journal of Central South University, 2016, 23(9): 2336-2345

[8]

WasanthaP L P, RanjithP G, VieteD R. Influence of the geometry of partially-spanning joints on the uniaxial compressive strength of rock [J]. International Journal of Rock Mechanics and Mining Sciences, 2012, 50: 140-146

[9]

LiX-b, CaoW-z, ZhouZ-long. Influence of stress path on excavation unloading response [J]. Tunnelling and Underground Space Technology, 2014, 42: 237-246

[10]

HuangQ-r, HuangDa. Experimental research on affection laws of unloading rates on mechanical properties of Jinping marble under high geostress [J]. Chinese Journal of Rock Mechanics and Engineering, 2010, 29(1): 21-33

[11]

AylingM R, MeredithP G. Microcracking during triaxial deformation of porous rocks monitored by changes in rock physical properties, I. Elastic-wave propagation measurements on dry rocks [J]. Tectonophysics, 1995, 245(3): 205-221

[12]

BaudP, MeredithP G. Damage accumulation during triaxial creep of Darley Dale sandstone from pore volumometry and acoustic emission [J]. International Journal of Rock Mechanics and Mining Sciences, 1997, 34(3): 24

[13]

EberhardtE, STEADD, STIMPSONB. Identifying crack initiation and propagation thresholds in brittle rock [J]. Canadian Geotechnical Journal, 1998, 352222-233

[14]

CaiM, KaiserP K, TasakaY. Generalized crack initiation and crack damage stress thresholds of brittle rock masses near underground excavations [J]. International Journal of Rock Mechanics and Mining Sciences, 2004, 41(5): 833-847

[15]

SunD A, MatsuokaH. Deformation and strength characteristics of weathered soft rock using triaxial tests [J]. International Journal of Rock Mechanics and Mining Sciences, 2004, 41: 87-92

[16]

LiJ, WangM-y, FanP-xian. Study of loading-unloading states and energy distribution relationship for rock mass [J]. Rock and Soil Mechanics, 2012, 33(2): 125-132

[17]

WasanthaP L P, RanjithP G. Water-weakening behavior of Hawkesbury sandstone in brittle regime [J]. Engineering Geology, 2014, 178: 91-101

[18]

ShaoS, RanjithP G, WasanthaP L P. Experimental and numerical studies on the mechanical behavior of Australian Strathbogie granite at high temperatures: An application to geothermal energy [J]. Geothermics, 2015, 54: 96-108

[19]

GuoY-t, YangC-h, FuJ-jun. Experimental research on mechanical characteristics of salt rock under tri-axial unloading test [J]. Rock and Soil Mechanics, 2012, 33(3): 725-732

[20]

ZhaoX D, WangJ, CaiM, ChengC, MaL K, SuR, ZhaoF, LiD J. Influence of unloading rate on the strain burst characteristics of Beishan granite under true triaxial unloading conditions [J]. Rock Mechanics and Rock Engineering, 2014, 47(2): 467-483

[21]

QiuS-l, FengX-ting. Experimental research on mechanical properties of deep-buried marble under different unloading rates of confining pressures [J]. Chinese Journal of Rock Mechanics and Engineering, 2010, 29(9): 1807-1817

[22]

ZhangK, ZhouH, PanP-z, ShenL-f, FengX-t, ZhangY-gang. Characteristics of strength of rocks under different unloading rates [J]. Rock and Soil Mechanics, 2010, 31(7): 2072-2078

[23]

UlusayR, HudsonJ. A ISRM. The complete ISRM suggested methods for rock characterization, testing and monitoring: 1974–2006. [C]. Commission on Testing Methods International Society of Rock Mechanics, 2007, Turkey: Ankara, ISRM Turkish National Group: 628

[24]

LajtaiE Z, CarterB J, DuncanE S. Mapping the state of fracture around cavities [J]. Engineering Geology, 1991, 31(3): 277-289

[25]

ChenW, KonietzkyH, TanXin. Pre-failure damage analysis for brittle rocks under triaxial compression [J]. Computers and Geotechnics, 2016, 74: 45-55

[26]

ZhaoG-y, DaiB, DongL-jun. Energy conversion of rocks in process of unloading confining pressure under different unloading paths [J]. Transactions of Nonferrous Metals Society of China, 2015, 25(5): 1626-1632

[27]

HuangD, LiY. Conversion of strain energy in triaxial unloading tests on marble [J]. International Journal of Rock Mechanics and Mining Sciences, 2014, 66: 160-168

[28]

XieH-p, PengR-d, JuYang. On energy analysis of rock failure [J]. Chinese Journal of Rock Mechanics and Engineering, 2015, 24(15): 2603-2608

[29]

XieH-p, JuY, PengR-dong. Energy mechanism of deformation and failure of rock masses [J]. Chinese Journal of Rock Mechanics and Engineering, 2008, 27(9): 1729-1739

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