Mechanical properties of rock materials with related to mineralogical characteristics and grain size through experimental investigation: a comprehensive review

Frontiers of Architecture and Civil Engineering in China - Tập 11 Số 3 - Trang 322-328 - 2017
Wenjuan Sun1, Linbing Wang2, Yaqiong Wang3
1USTB-Virginia Tech Joint Lab on Multifunctional Materials, National Center for Materials Service Safety, University of Science and Technology Beijing, Beijing, China
2Virginia Tech, Blacksburg, VA 24061, USA
3Shaanxi Provincial Key Laboratory for Highway Bridge & Tunnel, Chang’an University, Xi’an, 710064, China

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Räisänen M, Kupiainen K, Tervahattu H. The effect of mineralogy, texture and mechanical properties of anti-skid and asphalt aggregates on urban dust. Bulletin of Engineering Geology and the Environment, 2003, 62(4): 359–368

Hou Y, Wang L, Yue P, Pauli T, Sun W. Modeling Mode I Cracking Failure in Asphalt Binder by Using Nonconserved Phase-Field Model. Journal of Materials in Civil Engineering, 2014, 26(4): 684–691

Hou Y, Sun W, Huang Y, Ayatollahi MR,Wang L, Zhang J. Diffuse Interface Model to Investigate the Asphalt Concrete Cracking Subjected to Shear Loading at Low Temperature. Journal of Cold Regions Engineering, 2016, 31(3): 04016009.

United States Geological Survey (USGS). USGS Minerals Information: Crushed Stone. http://minerals.usgs.gov/minerals/pubs/commodity/ stone_crushed/mcs-2014-stonc.pdf, Retrieved 2014-8-11.

Little D, Button J, Jayawickrama P, Solaimanian M, and Hudson B. Uantify shape, angularity and surface texture of aggregates using image nalaysis and study their effect on performance. 2003 FHWA/TX-06/0-1707-4

Liu H, Kou S, Lindqvist P.-A., Lindqvist J.E., and Akesson U. Microscope rock texture characterization and simulation of rock aggregate properties. SGU project 60-1362/2004, 2005

Ozturk C A, Nasuf E, Kahraman S. Estimation of rock strength from quantitative assessment of rock texture. Journal of the South African Institute of Mining and Metallurgy, 2014, 114: 471–480

Howarth D F, Rowlands J C. Development of an index to quantify rock texture for qualitative assessment of intact rock properties. Geotechnical Testing Journal, 1986, 9(4): 169–179

Sun W, Wei Y, Wang D, Wang L. Review of Multiscale Characterization Techniques and Multiscale Modeling Methods for Cement Concrete: From Atomistic to Continuum. Multi-Scale Modeling and Characterization of Infrastructure Materials, 2013, 8: 325–341.

Yusof NQAM, Zabidi H. Correlation of Mineralogical and Textural Characteristics with Engineering Properties of Granitic Rock from Hulu Langat, Selangor. Procedia Chemistry, 2016, 19: 975–980.

Hugman R H H, Friedman M. Effect of texture and composition on mechanical behaviour of experimentally deformed carbonate rocks. American Association of Petroleum Geologists Bulletin, 1979, 63(9): 1478–1489

Brattli B. The influence of geological factors on the mechanical properties of basic igneous rocks used as road surface aggregates. Engineering Geology, 1992, 33(1): 31–44

Lundqvist S, Göransson M. Evaluation and interpretation of microscopic parameters vs. mechanical properties of Precambrian rocks from the Stockholm region, Sweden. Proceedings of the 8th Euroseminar Applied to Building Materials, Athens, 2001, 13–20

Räisänen M. Relationships between texture and mechanical properties of hybrid rocks from the Jaala–Iitti complex, southeastern Finland. Engineering Geology, 2004, 74(3-4): 197–211

Miskovsky K, DuarteMK, Kou S Q, Lindqvist P A. Influence of the mineralogical composition and textural properties on the quality of coarse aggregates. Journal of Materials Engineering and Performance, 2004, 13(2): 144–150

Erichsen E, Ulvik A, Wolden K, Neeb P R. Aggregates in Norway—Properties defining the quality of sand, gravel and hard rock for use as aggregate for building purposes. In Slagstad, T. (ed.) Geology for Society, Geological Survey of Norway, Special Publication, 2008, 11, 37–46.

Ündül O. Assessment of mineralogical and petrographic factors affecting petro-physical properties, strength and cracking processes of volcanic rocks. Engineering Geology, 2016, 210: 10–22

Merriam R, Rieke H H III, Kim Y C. Tensile strength related to mineralogy and texture of some granitic rocks. Engineering Geology, 1970, 4(2): 155–160

Gunsallus K L, Kulhawy F H. A comparative evaluation of rock strength measurements. International Journal of Rock Mechanics and Mining Sciences & Geomechanics Abstracts, 1984, 21(5): 233–248

Tugrul A, Zarif I H. Correlation of mineralogical and textural characteristics with engineering properties of selected granitic rocks from Turkey. Engineering Geology, 1999, 51(4): 303–317

Bell F G. The physical and mechanical properties of the Fell Sandstones, Northumberland, England. Engineering Geology, 1978, 12: 1–29

Fahy MP, Guccione MJ. Estimating the strength of sandstone using petrographic thin section data. Bull. Int. Assoc. Eng. Geol., 1979, 16(4): 467–485

Shakoor A, Bonelli R E. Relationship between petrographic characteristics, engineering index properties, and mechanical properties of selected sandstone. Bull. Int. Assoc. Eng. Geol., 1991, XXVIII(1): 55–71

Åkesson U, Stigh J, Lindqvist J E, Göransson M. The influence of foliation on the fragility of granitic rocks, image analysis and quantitative microscopy. Engineering Geology, 2003, 68(3–4): 275–288

Yusof N Q A M, Zabidi H. Correlation of mineralogical and textural characteristics with engineering properties of granitic rock from Hulu Langat, Selangor. Procedia Chemistry, 2016, 19: 975–980

Sousa L M O. The influence of the characteristics of quartz and mineral deterioration on the strength of granitic dimensional stones. Environmental Earth Sciences, 2013, 69(4): 1333–1346

Brace W F. “Dependence of fracture strength of rocks on grain size.” Bulletin of Mineral Industries Experiment Station, Mining Engineering Series. Rock Mechanics, 1961, 76: 99–103

Mendes F M, Aires-Barros L, Rodrigues F P. The use of modal analysis in the mechanical characterization of rock masses. In: Proc 1st Int. Cong. Rock Mech. Lisbon, 1966, 1, 217–223.

Willard R J, McWilliams J R. Microstructural techniques in the study of physical properties of rocks. International Journal of Rock Mechanics and Mining Sciences, 1969, 6(1): 1–12

Wong R H C, Chau K T, Wang P. Microcracking and grain size effect in Yuen Long marbles. International Journal of Rock Mechanics and Mining Sciences & Geomechanics Abstracts, 1996, 33(5): 479–485

Olsson W A. Grain size dependence of yield stress in marble. Journal of Geophysical Research, 1974, 79(32): 4859–4862

Prikryl R. Some microstructural aspects of strength variation in rocks. International Journal of Rock Mechanics and Mining Sciences, 2001, 38(5): 671–682

Hareland G, Polston C E, White W E. Normalized rock failure envelope as a function of rock grain size. International Journal of Rock Mechanics and Mining Sciences & Geomechanics Abstracts, 1993, 30(7): 715–717

Onodera T F, Asoka K H M. Relationship between texture and mechanical properties of crystalline rocks. Bull Int Assoc Eng Geol, 1980, 22: 173–177

French W J, Kermani S, Mole C F. Petrographic evaluation of aggregate parameters. In: Proceeding of the 8th Euroseminar on microscopy applied to building materials, Athens, 2001, 557–564.

Åkesson U, Lindqvist J E, Göransson M, Stigh J. Relationship between texture and mechanical properties of granites, central Sweden, by use of image-analysing technique. Bulletin of Engineering Geology and the Environment, 2001, 60(4): 277–284

Hatzor Y H, Zur A, Mimran Y. Microstructure effects on microcracking and brittle failure of dolomites. Tectonophysics, 1997, 281(3–4): 141–161

Eberhardt E, Stimpson B, Stead D. Effects of grain size on the initiation and propagation thresholds of stress-induced brittle fractures. Rock Mechanics and Rock Engineering, 1999, 32(2): 81–99

Irfan T Y, Dearman W R. Engineering classification and index properties of a weathered granite. Bulletin of the International Association of Engineering and Geology, 1978, 17(1): 79–90

Hecht C A, Bönsch C, Bauch E. Relations of rock structure and composition to petrophysical and geomechanical rock properties: examples from Permocarboniferous red-beds. Rock Mechanics and Rock Engineering, 2005, 38(3): 197–216

Howarth D F, Rowlands J C. Quantitative assessment of rock texture and correlation with drillability and strength properties. Rock Mechanics and Rock Engineering, 1987, 20(1): 57–85

Ersoy A, Waller M D. Textural characterization of rocks. Engineering Geology, 1995, 39(3–4): 123–136

Azzoni A, Bailo F, Rondena E, Zaninetti A. Assessment of texture coefficient for different rock types and correlation with uniaxial compressive strength and rock weathering. Rock Mechanics and Rock Engineering, 1996, 29(1): 39–46

Ozturk C A, Nasurf E, Bilgin N. The assessment of rock cutability, and physical and mechanical rock properties from a texture coefficient. Journal of the South African Institute of Mining and Metallurgy, 2004, 7: 397–403

Prikryl R. Assessment of rock geomechanical quality by quantitative rock fabric coefficients: Limitations and possible source of misinterpretations. Engineering Geology, 2006, 87(3): 149–162

Alber M, Kahraman S. Predicting the uniaxial compressive strength and elastic modulus of a fault breccia from texture coefficient. Rock Mechanics and Rock Engineering, 2009, 42(1): 117–127