Dynamic mode II fracture mechanism of rocks using a novel double-edge notched flattened Brazilian disc specimen in the split Hopkinson pressure bar tests
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[1] Kedar Kirane,et al. Dynamic crack penetration vs. deflection at material interfaces and the role of rate dependent strength and toughness , 2023, Journal of the Mechanics and Physics of Solids.
[2] A. Pellegrino,et al. Optimal Design, Development and Experimental Analysis of a Tension–Torsion Hopkinson Bar for the Understanding of Complex Impact Loading Scenarios , 2023, Experimental Mechanics.
[3] Kai Liu,et al. Dynamic cracking process of rock interpreted by localized strain-rate, rate-dependent strength field and transition strain-rate , 2023, International Journal of Rock Mechanics and Mining Sciences.
[4] Yi Liu,et al. Experimental and numerical investigation on the dynamic shear failure mechanism of sandstone using short beam compression specimen , 2023, Journal of Rock Mechanics and Geotechnical Engineering.
[5] K. Xia,et al. Dynamic Mode II Fracture Toughness of Rocks Subjected to Various In Situ Stress Conditions , 2022, Rock Mechanics and Rock Engineering.
[6] Diyuan Li,et al. Dynamic shear fracture behavior of rocks: insights from three-dimensional digital image correlation technique , 2022, Engineering Fracture Mechanics.
[7] Yi Liu,et al. Tensile mechanical behavior and fracture characteristics of sandstone exposed to freeze-thaw treatment and dynamic loading , 2022, International Journal of Mechanical Sciences.
[8] K. Xia,et al. Influence of thermal treatment on dynamic mode Ⅱ fracture properties of rocks using the short core in compression (SCC) method , 2022, Theoretical and Applied Fracture Mechanics.
[9] Lizhou Wu,et al. Rock dynamic fracture of a novel semi-circular-disk specimen , 2022, International Journal of Rock Mechanics and Mining Sciences.
[10] W. Hua,et al. T-stress for the double-edge cracked Brazilian disc under compression , 2022, Theoretical and Applied Fracture Mechanics.
[11]
M. Ayatollahi,et al.
Size effect in true mode
[12] F. Dai,et al. Effect of Confining Pressure and Strain Rate on Mechanical Behaviors and Failure Characteristics of Sandstone Containing a Pre-existing Flaw , 2022, Rock Mechanics and Rock Engineering.
[13] M. Ayatollahi,et al. On the role of fracture process zone size in specifying fracturing mechanism under dominant mode II loading , 2021, Theoretical and Applied Fracture Mechanics.
[14] F. Ouchterlony,et al. Energy Requirement for Rock Breakage in Laboratory Experiments and Engineering Operations: A Review , 2021, Rock Mechanics and Rock Engineering.
[15] Jianchun Li,et al. Why are tensile cracks suppressed under dynamic loading?—Transition strain rate for failure mode , 2021, Extreme Mechanics Letters.
[16] Shanyong Wang,et al. Shear fracture (Mode II) toughness measurement of anisotropic rock , 2021 .
[17] F. Dai,et al. Experimental investigation of pre-flawed rocks under combined static-dynamic loading: Mechanical responses and fracturing characteristics , 2021 .
[18] K. Xia,et al. Dynamic Mode Ⅱ fracture behavior of rocks under hydrostatic pressure using the short core in compression (SCC) method , 2021, International Journal of Mining Science and Technology.
[19] T. Yin,et al. Temperature dependences and rate effects on Mode II fracture toughness determined by punch-through shear technique for granite , 2021 .
[20] F. Dai,et al. Dynamic Cracking Behaviors and Energy Evolution of Multi-flawed Rocks Under Static Pre-compression , 2021, Rock Mechanics and Rock Engineering.
[21] F. Dai,et al. New insights into the fracture mechanism of flattened Brazilian disc specimen using digital image correlation , 2021, Engineering Fracture Mechanics.
[22] A. Muñoz‐Ibáñez,et al. Size effect and other effects on mode I fracture toughness using two testing methods , 2021, International Journal of Rock Mechanics and Mining Sciences.
[23] F. Dai,et al. A review of experimental and theoretical research on the deformation and failure behavior of rocks subjected to cyclic loading , 2021 .
[24] M. Kuna,et al. Interaction integral method for computation of crack parameters K–T – A review , 2021 .
[25] Cheng Zhai,et al. Dynamic Breakage Characteristics of Shale with Different Bedding Angles under the Different Ambient Temperatures , 2021, Rock Mechanics and Rock Engineering.
[26] F. Dai,et al. An asymmetric semi-circular bend method for investigating fracture behavior of brittle rocks under dynamic mixed mode I/II loading. , 2021, The Review of scientific instruments.
[27] P. Feng,et al. Effects of dynamic strain rate on the energy dissipation and fragment characteristics of cross-fissured rocks , 2021 .
[28] M. Ayatollahi,et al. Theory and experiment on true mode II fracturing of rocks , 2020 .
[29] Ang Li,et al. Dynamic Compression–Shear Response and Failure Criterion of Rocks with Hydrostatic Confining Pressure: An Experimental Investigation , 2020, Rock Mechanics and Rock Engineering.
[30] F. Dai,et al. Numerical investigation on dynamic fracture behavior of cracked rocks under mixed mode I/II loading , 2020 .
[31] Zilong Zhou,et al. Fracture behavior and damage mechanisms of sandstone subjected to wetting-drying cycles , 2020 .
[32] F. Dai,et al. Dynamic Strength and Cracking Behaviors of Single-Flawed Rock Subjected to Coupled Static–Dynamic Compression , 2020, Rock Mechanics and Rock Engineering.
[33] Jia-wen Zhou,et al. Effects of in-situ stresses on dynamic rock responses under blast loading , 2020, Mechanics of Materials.
[34] Hongbo Du,et al. Experimental and numerical studies on compression-shear behaviors of brittle rocks subjected to combined static-dynamic loading , 2020, International Journal of Mechanical Sciences.
[35] Ke Liu,et al. Continuum analysis of the structurally controlled displacements for large-scale underground caverns in bedded rock masses , 2020 .
[36] T. Yin,et al. Determination of double-K fracture toughness parameters of thermally treated granite using notched semi-circular bending specimen , 2020 .
[37] Y. Obara,et al. Anisotropic influence of fracture toughness on loading rate dependency for granitic rocks , 2019, Engineering Fracture Mechanics.
[38] Jianchun Li,et al. Rate effect on crack propagation measurement results with crack propagation gauge, digital image correlation, and visual methods , 2019, Engineering Fracture Mechanics.
[39] K. Xia,et al. Dynamic Mode II Fracture Toughness of Rocks Subjected to Confining Pressure , 2019, Rock Mechanics and Rock Engineering.
[40] Zilong Zhou,et al. Water saturation effects on dynamic fracture behavior of sandstone , 2019, International Journal of Rock Mechanics and Mining Sciences.
[41] Xibing Li,et al. Effect of thermal treatment on the mode I fracture toughness of granite under dynamic and static coupling load , 2018 .
[42] X. Li,et al. Dynamic tensile behaviours of heterogeneous rocks: The grain scale fracturing characteristics on strength and fragmentation , 2018, International Journal of Impact Engineering.
[43] Feng Dai,et al. Dynamic Response and Failure Mechanism of Brittle Rocks Under Combined Compression-Shear Loading Experiments , 2018, Rock Mechanics and Rock Engineering.
[44] K. Xia,et al. Numerical investigation on the dynamic progressive fracture mechanism of cracked chevron notched semi-circular bend specimens in split Hopkinson pressure bar tests , 2017 .
[45] Zhe-ming Zhu,et al. Study of rock dynamic fracture toughness by using VB-SCSC specimens under medium-low speed impacts , 2017 .
[46] Zhe-ming Zhu,et al. Study of mixed-mode I/II fractures using single cleavage semicircle compression specimens under impacting loads , 2017 .
[47] K. Xia,et al. A dynamic punch-through shear method for determining dynamic Mode II fracture toughness of rocks , 2017 .
[48] Yi Liu,et al. Loading-rate-dependent progressive fracturing of cracked chevron-notched Brazilian disc specimens in split Hopkinson pressure bar tests , 2016 .
[49] Xiating Feng,et al. Do disk-type specimens generate a mode II fracture without confinement? , 2016 .
[50] F. Lu,et al. Dynamic Fracture Properties of Rocks Subjected to Static Pre-load Using Notched Semi-circular Bend Method , 2016, Rock Mechanics and Rock Engineering.
[51] T. Zhao,et al. Numerical Investigation of Dynamic Rock Fracture Toughness Determination Using a Semi-Circular Bend Specimen in Split Hopkinson Pressure Bar Testing , 2016, Rock Mechanics and Rock Engineering.
[52] Wei Yao,et al. Dynamic rock tests using split Hopkinson (Kolsky) bar system - A review , 2015 .
[53] E. Hoek,et al. Fracture initiation and propagation in intact rock – A review , 2014 .
[54] Jian Zhao,et al. A Review of Dynamic Experimental Techniques and Mechanical Behaviour of Rock Materials , 2014, Rock Mechanics and Rock Engineering.
[55] Jian Zhao,et al. Effect of loading rate on fracture toughness and failure micromechanisms in marble , 2013 .
[56] Xibing Li,et al. Effect of Thermal Treatment on the Dynamic Fracture Toughness of Laurentian Granite , 2012, Rock Mechanics and Rock Engineering.
[57] Y. X. Wang,et al. Determination of dynamic rock Mode-I fracture parameters using cracked chevron notched semi-circular bend specimen , 2011 .
[58] K. Xia,et al. Dynamic cracked chevron notched Brazilian disc method for measuring rock fracture parameters , 2010 .
[59] Feng Dai,et al. Some Fundamental Issues in Dynamic Compression and Tension Tests of Rocks Using Split Hopkinson Pressure Bar , 2010 .
[60] Fangyun Lu,et al. Determination of dynamic fracture parameters using a semi-circular bend technique in split Hopkinson pressure bar testing , 2009 .
[61] B. Mohanty,et al. Fracture toughness anisotropy in granitic rocks , 2008 .
[62] G. Bezine,et al. Advantages of the J-integral approach for calculating stress intensity factors when using the commercial finite element software ABAQUS , 2005 .
[63] P. Cao,et al. A mode II fracture analysis of double edge cracked Brazilian disk using the weight function method , 2005 .
[64] M. Nasseri,et al. Characterization of microstructures and fracture toughness in five granitic rocks , 2005 .
[65] Zongqi Sun,et al. Shear fracture (Mode II) of brittle rock , 2003 .
[66] Weinong W Chen,et al. Pulse shaping techniques for testing brittle materials with a split hopkinson pressure bar , 2002 .
[67] M. J. Forrestal,et al. A split Hopkinson pressure bar technique to determine compressive stress-strain data for rock materials , 2001 .
[68] Per-Arne Lindqvist,et al. Effects of high temperatures on dynamic rock fracture , 2001 .
[69] Yingxin Zhou,et al. Rock dynamics research related to cavern development for Ammunition storage , 1999 .
[70] A. Evans,et al. Crack deflection at an interface between dissimilar elastic materials: Role of residual stresses , 1994 .
[71] Z. Bažant,et al. Determination of fracture energy, process zone longth and brittleness number from size effect, with application to rock and conerete , 1990 .
[72] H. Kolsky. An Investigation of the Mechanical Properties of Materials at very High Rates of Loading , 1949 .
[73] W. Hua,et al. Stress intensity factors for the double-edge cracked Brazilian disc under compression: Theory and experiment , 2022, European Journal of Mechanics - A/Solids.
[74] X. Li,et al. Transgranular fracturing of crystalline rocks and its influence on rock strengths: Insights from a grain-scale continuum–discontinuum approach , 2021 .
[75] Xibing Li,et al. Suggested Methods for Determining the Dynamic Strength Parameters and Mode-I Fracture Toughness of Rock Materials , 2012 .
[76] K. Chong,et al. New specimens for mixed mode fracture investigations of geomaterials , 1988 .