6575102 100 apa-5th-edition default asc toplevel 1
thinking

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6575102 7KFK25R5 1 apa-5th-edition 50 date desc year 1 1 title Grasselli, G. 4515 https://geogroup.utoronto.ca/wp-content/plugins/zotpress/
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Sun, L., Tang, X., Aboayanah, K. R., Xu, X., Liu, Q., & Grasselli, G. (2024). Coupled hydro-mechanical two-phase flow model in fractured porous medium with the combined finite-discrete element method. Engineering with Computers. Cite
Zhao, Q., Tisato, N., Abdelaziz, A., Ha, J., & Grasselli, G. (2023). Numerical investigation of progressive damage and associated seismicity on a laboratory fault. International Journal of Rock Mechanics and Mining Sciences, 167(105392). Cite
Sun, L., Tang, X., Abdelaziz, A., Liu, Q., & Grasselli, G. (2023). Stability analysis of reservoir slopes under fluctuating water levels using the combined finite-discrete element method. Acta Geotechnica. Cite
Tatone, B. S. A., Abdelaziz, A., & Grasselli, G. (2023). Example framework for evaluation of synthetic rock-like materials as applied to a commercial gypsum cement. International Journal of Rock Mechanics and Mining Sciences, 169. Cite
Sun, L., Tang, X., Aboayanah, K. R., Zhao, Q., Liu, Q., & Grasselli, G. (2023). A coupled cryogenic thermo-hydro-mechanical model for frozen medium: Theory and implementation in FDEM. Journal of Rock Mechanics and Geotechnical Engineering. Cite
Magsipoc, E., & Grasselli, G. (2023). A local surface roughness mapping method for post-failure interpretation of brittle fracture propagation. International Journal of Rock Mechanics and Mining Sciences, 172. Cite
Sun, L., Li, M., Abdelaziz, A., Tang, X., Liu, Q., & Grasselli, G. (2023). An efficient 3D cell-based discrete fracture-matrix flow model for digitally captured fracture networks. International Journal of Coal Science & Technology, 10(1), 70. Cite
Sun, L., Tang, X., Li, M., Abdelaziz, A., Aboayanah, K., Liu, Q., & Grasselli, G. (2023). Flow simulation in 3D fractured porous medium using a generalized pipe-based cell-centered finite volume model with local grid refinement. Geomechanics for Energy and the Environment, 36. Cite
Haile, B. F., Lifshitz Sherzer, G., Peterson, K., & Grasselli, G. (2023). Progressive highly stressed volume for size effect analysis. Construction and Building Materials, 400. Cite
Abdelaziz, A., Ha, J., Li, M., Magsipoc, E., Sun, L., & Grasselli, G. (2023). Understanding hydraulic fracture mechanisms: From the laboratory to numerical modelling. Advances in Geo-Energy Research, 7(1), 66–68. Cite
Abdelaziz, A., Baniak, G., Moslow, T. F., Terzuoli, A., & Grasselli, G. (2023). A novel method for digitizing sedimentological graphic logs and exporting into reservoir modelling software. AAPG Bulletin. Cite
Ding, L., Yang, G., Kravchinsky, E., Popoola, A., Goodfellow, S., Liu, Q., & Grasselli, G. (2023). Systematic Uncertainty Quantification of First-Polarity-Based Moment Tensor Inversion Due to Sparse Coverage of Sensor Arrays in Laboratory Acoustic Emission Monitoring. Pure and Applied Geophysics, 180(11), 3733–3752. Cite
Shao, Z., Sun, L., Aboayanah, K. R., Liu, Q., & Grasselli, G. (2022). Investigate the Mode I Fracture Characteristics of Granite After Heating/-LN2 Cooling Treatments. Rock Mechanics and Rock Engineering. Cite
Tatone, B. S. A., Abdelaziz, A., & Grasselli, G. (2022). Novel Mechanical Classification Method of Rock Based on the Uniaxial Compressive Strength and Brazilian Disc Strength. Rock Mechanics and Rock Engineering, 55(4), 2503–2507. Cite
Sun, L., Liu, Q., Abdelaziz, A., Tang, X., & Grasselli, G. (2022). Simulating the entire progressive failure process of rock slopes using the combined finite-discrete element method. Computers and Geotechnics, 141, 104557. Cite
Sun, L., Grasselli, G., Liu, Q., Tang, X., & Abdelaziz, A. (2022). The role of discontinuities in rock slope stability: Insights from a combined finite-discrete element simulation. Computers and Geotechnics, 147, 104788. Cite
Aboayanah, K. R., Popoola, A., Abdelaziz, A., Sun, L., Ossetchkina, E., Peterson, K., & Grasselli, G. (2022). Effect of pre-existing cracks on thermal cracking of granitic rocks under confinement. Geomechanics and Geophysics for Geo-Energy and Geo-Resources, 8(4). Cite
Zhao, X., Huang, B., & Grasselli, G. (2021). Numerical Investigation of the Fracturing Effect Induced by Disturbing Stress of Hydrofracturing. Frontiers in Earth Science, 9(838). Cite
Li, M., Magsipoc, E., Abdelaziz, A., Ha, J., Peterson, K., & Grasselli, G. (2021). Mapping Fracture Complexity of Fractured Shale in Laboratory: Three-dimensional Reconstruction From Serial-section Images. Rock Mechanics and Rock Engineering, 55(5), 2937–2948. Cite
Ha, J., Tatone, B. S. A., Gaspari, G. M., & Grasselli, G. (2021). Simulating tunnel support integrity using FEM and FDEM based on laboratory test data. Tunnelling and Underground Space Technology, 111, 103848. Cite
Chen, Y., Ma, G., Zhou, W., Wei, D., Zhao, Q., Zou, Y., & Grasselli, G. (2021). An enhanced tool for probing the microscopic behavior of granular materials based on X-ray micro-CT and FDEM. Computers and Geotechnics, 132, 103974. Cite
Abdelaziz, A., & Grasselli, G. (2020). How believable are published laboratory data? A deeper look into system-compliance and elastic modulus. Journal of Rock Mechanics and Geotechnical Engineering, 13(3), 487–499. Cite
Ay, B., Parolia, K., Liddell, R. S., Qiu, Y., Grasselli, G., Cooper, D. M. L., & Davies, J. E. (2020). Hyperglycemia compromises Rat Cortical Bone by Increasing Osteocyte Lacunar Density and Decreasing Vascular Canal Volume. Commun Biol, 3(1), 20. Cite
Sun, L., Liu, Q., Grasselli, G., & Tang, X. (2020). Simulation of thermal cracking in anisotropic shale formations using the combined finite-discrete element method. Computers and Geotechnics, 117, 103237. Cite
Zhao, Q., Glaser, S. D., Tisato, N., & Grasselli, G. (2020). Assessing Energy Budget of Laboratory Fault Slip Using Rotary Shear Experiments and Micro‐Computed Tomography. Geophysical Research Letters, 47(1). Cite
Sun, L., Grasselli, G., Liu, Q., & Tang, X. (2019). Coupled hydro-mechanical analysis for grout penetration in fractured rocks using the finite-discrete element method. International Journal of Rock Mechanics and Mining Sciences, 124, 104138. Cite
Sun, L., Grasselli, G., Liu, Q., & Tang, X. (2019). Thermal cracking simulation of functionally graded materials using the combined finite–discrete element method. Computational Particle Mechanics, 7(5), 903–917. Cite
Magsipoc, E., Zhao, Q., & Grasselli, G. (2019). 2D and 3D Roughness Characterization. Rock Mechanics and Rock Engineering, 53(3), 1495–1519. Cite
Wei, W., Zhao, Q., Jiang, Q., & Grasselli, G. (2019). A New Contact Formulation for Large Frictional Sliding and Its Implement in the Explicit Numerical Manifold Method. Rock Mechanics and Rock Engineering, 53(1), 435–451. Cite
He, T.-M., Zhao, Q., Ha, J., Xia, K., & Grasselli, G. (2018). Understanding progressive rock failure and associated seismicity using ultrasonic tomography and numerical simulation. Tunnelling and Underground Space Technology, 81, 26–34. Cite
Abdelaziz, A., Zhao, Q., & Grasselli, G. (2018). Grain based modelling of rocks using the combined finite-discrete element method. Computers and Geotechnics, 103, 73–81. Cite
Zhao, Q., He, T. M., Ha, J., Xia, K., & Grasselli, G. (2018). Dataset for time-lapse ultrasonic tomography of a granite slab under uniaxial compression test. Data Brief, 20, 614–616. Cite
Zhao, Q., Tisato, N., Kovaleva, O., & Grasselli, G. (2018). Direct Observation of Faulting by Means of Rotary Shear Tests Under X-Ray Micro-Computed Tomography. Journal of Geophysical Research: Solid Earth, 123(9), 7389–7403. Cite
Wei, W., Zhao, Q., Jiang, Q., & Grasselli, G. (2018). Three new boundary conditions for the seismic response analysis of geomechanics problems using the numerical manifold method. International Journal of Rock Mechanics and Mining Sciences, 105, 110–122. Cite
Kalogerakis, G. C., Zhao, Q., Grasselli, G., & Sleep, B. E. (2018). In situ chemical oxidation processes: 4D quantitative visualization of byproduct formation and deposition via micro-CT imaging. The Leading Edge, 37(6), 462–467. Cite
Lisjak, A., Mahabadi, O. K., He, L., Tatone, B. S. A., Kaifosh, P., Haque, S. A., & Grasselli, G. (2018). Acceleration of a 2D/3D finite-discrete element code for geomechanical simulations using General Purpose GPU computing. Computers and Geotechnics, 100, 84–96.Scopus. Cite
Zhao, Q., Tisato, N., & Grasselli, G. (2017). Rotary shear experiments under X-ray micro-computed tomography. Rev Sci Instrum, 88(1), 015110. Cite
Miglietta, P. C., Bentz, E. C., & Grasselli, G. (2017). Finite/discrete element modelling of reversed cyclic tests on unreinforced masonry structures. Engineering Structures, 138, 159–169.Scopus. Cite
Lisjak, A., Kaifosh, P., He, L., Tatone, B. S. A., Mahabadi, O. K., & Grasselli, G. (2017). A 2D, fully-coupled, hydro-mechanical, FDEM formulation for modelling fracturing processes in discontinuous, porous rock masses. Computers and Geotechnics, 81, 1–18.Scopus. Cite
Alcolea, A., Kuhlmann, U., Marschall, P., Lisjak, A., Grasselli, G., Mahabadi, O. K., de La Vaissière, R., et al. (2017). A pragmatic approach to abstract the excavation damaged zone around tunnels of a geological radioactive waste repository: application to the HG-A experiment in Mont Terri. Geological Society, London, Special Publications, 443(1), 127–147.Scopus. Cite
Huang, X., Zhao, Q., Qi, S., Xia, K., Grasselli, G., & Chen, X. (2016). Numerical Simulation on Seismic Response of the Filled Joint under High Amplitude Stress Waves Using Finite-Discrete Element Method (FDEM). Materials (Basel), 10(1), 13. Cite
Miglietta, P. C., Grasselli, G., & Bentz, E. C. (2016). Finite/discrete element model of tension stiffening in GFRP reinforced concrete. Engineering Structures, 111, 494–504.Scopus. Cite
Biryukov, A., Tisato, N., & Grasselli, G. (2016). Attenuation of elastic waves in bentonite and monitoring of radioactive waste repositories. Geophysical Journal International, 205(1), 105–121.Scopus. Cite
Lisjak, A., Garitte, B., Grasselli, G., Müller, H. R., & Vietor, T. (2015). The excavation of a circular tunnel in a bedded argillaceous rock (Opalinus Clay): Short-term rock mass response and FDEM numerical analysis. Tunnelling and Underground Space Technology, 45, 227–248.Scopus. Cite
Tatone, B. S. A., & Grasselli, G. (2015). A calibration procedure for two-dimensional laboratory-scale hybrid finite–discrete element simulations. International Journal of Rock Mechanics and Mining Sciences, 75, 56–72.Scopus. Cite
Lisjak, A., Tatone, B. S. A., Mahabadi, O. K., Grasselli, G., Marschall, P., Lanyon, G. W., Vaissière, R. de la, et al. (2015). Hybrid Finite-Discrete Element Simulation of the EDZ Formation and Mechanical Sealing Process Around a Microtunnel in Opalinus Clay. Rock Mechanics and Rock Engineering, 49(5), 1849–1873.Scopus. Cite
Zhao, Q., Tisato, N., Grasselli, G., Mahabadi, O. K., Lisjak, A., & Liu, Q. (2015). Influence ofin situstress variations on acoustic emissions: a numerical study. Geophysical Journal International, 203(2), 1246–1252. Cite
Mahabadi, O. K., Tatone, B. S. A., & Grasselli, G. (2014). Influence of microscale heterogeneity and microstructure on the tensile behavior of crystalline rocks. Journal of Geophysical Research: Solid Earth, 119(7), 5324–5341.Scopus. Cite
Zheng, L., Zhao, Q., Milkereit, B., Grasselli, G., & Liu, Q. (2014). Spectral-element simulations of elastic wave propagation in exploration and geotechnical applications. Earthquake Science, 27(2), 179–187.Scopus. Cite