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Ore Pretreatment Methods for Grinding: Journey and Prospects

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References

  • Altun, O., Benzer, H., Toprak, A., and Enderle, U., 2015, “Utilization of grinding aids in dry horizontal stirred milling.” Powder Technology, 286. pp. 610–615.
  • Amankwah, R. K., Khan, A. U., Pickles, C. A., and Yen, W. T., 2005, “Improved grindability and gold liberation by microwave pretreatment of a free-milling gold ore.” Transactions of the Institution of Mining and Metallurgy. Section C, 114. pp. C30–C36.
  • Andres, U., 1995, “Electrical disintegration of rock.” Mineral Processing and Extractive Metullargy Review, 14. pp. 87–110.
  • Andres, U., Timoshkin, I., Jirestig, J., and Stallknecht, H., 2001, “Liberation of valuable in ores and slags by electrical pulses.” Powder Technology, 114. pp. 40–50.
  • Batchelor, A. R., Buttress, A. J., Jones, D. A., Katrib, J., Way, D., Chenje, T., Stoll, D., Dodds, C., and Kingman, S. W., 2017, “Towards large scale microwave treatment of ores: part 2–metallurgical testing.” Minerals Engineering, 111. pp. 5–24.
  • Batchelor, A. R., Ferrari-John, R. S., Katrib, J., Udoudo, O., Jones, D. A., Dodds, C., and Kingman, S. W., 2016, “Pilot scale microwave sorting of porphyry copper ores: part 1–laboratory investigations.” Minerals Engineering, 98. pp. 303–327.
  • Bhima Rao, R., 1996, “A novel approach in the beneficiation of ferruginous bauxite by microwave heating.” Minerals and Metallurgical Processing, 13 (3), pp. 200–208.
  • Bhima Rao, R., and Narasimhan, K. S., 1994, “Effect of cryogenic additives on grindability of thermal coal.” Aufbereitungs Technik, 35. pp. 200–208.
  • Bhima Rao, R., Rao, T. C., and Narasimhan, K. S., 1991, “Effect of additives on grinding of magnetite ore.” Minerals & Metallurgical Processing, 91. pp. 144–151.
  • Binner, E., Lester, E., Kingman, S., Dodds, C., Robinson, J., Wu, T., Wardle, P., and Mathews, J. P., 2014, “A review of microwave coal processing.” Journal of Microwave Power and Electromagnetic Energy, 48. pp. 35–60.
  • Brown, J. H., Gaudin, A. H., and Loeb, C. M., 1958, “Intergranular comminution by heating.” Mining Engineering, 10. pp. 490.
  • Butcher, B. M., and Stevens, A. L., 1975, “Shock wave response of window rock coal.” International Journal of Rock Mechanics and Mining Sciences & Geomechanics, 12 (5–6). pp. 147–155.
  • Buttress, A. J., Katrib, J., Jones, D. A., Batchelor, A. R., Craig, D. A., Royal, T. A., Dodds, C., and Kingman, S. W., 2017, “Towards large scale microwave treatment of ores: part 1–basis of design, construction and commissioning.” Minerals Engineering, 109. pp. 169–183.
  • Campbell, P., Vorster, W., Merchant, A. J., and Rowson, N. A., 2001, “The use of the three point bend test to quantify the effects of thermal pre-treatment on rock strength.” Minerals Engineering, 14. pp. 901–904.
  • Chanturiya, V. A., and Bunin, I. J., 2006, Application of high-power electromagnetic pulses to disintegration of noble metals disseminated mineral complexes, In (G. Onal, Ed.), The Proceedings of the XXIII International Mineral Processing Congress, Istanbul: Promed Advertising Agency, Vol. 2, pp. 1535–1540.
  • Chanturiya, V. A., Bunin, I. J., and Kovalev, A. T., 2006, “Mechanisms of disintegration of mineral media exposed to high-power electromagnetic pulses.” Computational Methods, 1. pp. 1607–1614.
  • Chanturiya, V. A., Gulyaev, Y. V., Lunin, V. D., Bunin, I. J., Cherepenin, V. A., Vdovin, V. A., and Korzhenevsky, A. V., 1999, “The opening of the refractory gold-containing ores under power electromagnetic impulses.” Reports of Russian Academic Science (Doklady RAN), 366. pp. 680–683.
  • Chen, J., Blume, H. P., and Beyer, L., 2000, “Weathering of rocks induced by lichen colonization-a review.” Catena, 39. pp. 121–146.
  • Chen, T. T., Dutrizac, J. E., Haque, K. E., Wyslouzil, W., and Kashyap, S., 1984, “Relative transparency of minerals to microwave radiation.” Canadian Metallurgical Quarterly, 23. pp. 349–351.
  • Chiloane, L. D., 2012, Solar Energy in the Minerals Processing Industry: identifying the First Opportunities, Cape Town, South Africa: Thesis University of Cape Town.
  • Chizhevskiy, V. B., and Shavakuleva, O. P., 2016, “Effect of magnetic pulse treatment upon titanium magnetite ore grindability and crushability.” Obogashchenie Rud (Mineral processing), 4.
  • Choi, H. K., and Choi, W. S., 2003, “Ultra-fine grinding mechanism of inorganic powders in a stirred ball mill.” Korean Journal of Chemical Engineering, 20. pp. 783–789.
  • Daphalapurkar, N. P., Ramesh, K. T., Graham-Brady, L., and Molinari, J F., 2011. “Predicting variability in the dynamic failure strength of brittle materials considering pre-existing flaws.” Journal of The Mechanics and Physics of Solids, 59(2), pp. 297-319. doi:10.1016/j.jmps.2010.10.006
  • Dodds, J. A., Gaete-Garreton, L., Vargas-Hernandez, Y., Chamayou, A., Valderama-Reyes, W., and Montoya-Vitini, F., 2003, “Development of an ultrasonic high-pressure roller press.” Chemical Engineering Science, 58. pp. 4317–4322.
  • Doheim, M. A., Tarshan, M. M., and El-Gendy, M. M., 1978, “Fluidized-bed thermal treatment of phosphate rock: effect of operating variables.” International Journal of Mineral Processing, 5. pp. 183–197.
  • Eksteen, J. J., Scott, G., and Bradshaw, S. M., 2008, “The effect of microwave pretreatment on the liberation of a copper carbonatite ore after milling.” International Journal of Mineral Processing, 85. pp. 121–128.
  • El-Shall, H., and Somasundaran, P., 1984, “Physico-Chemical Aspects of Grinding: a Review of Use of Additives.” Powder Technology, 38. pp. 275–293.
  • European Cement Research Academy. 2013, https://ecra-online.org/research/future-grinding-technologies/
  • Falko, L., 2002, “Shock metamorphism of some minerals: Basic introduction and microstructural observations.” Bulletin of the Czech Geological Survey, 77(4). pp. 265–282.
  • Ford, J. D., and Pei, D. C. T., 1967, “High temperature chemical processing via microwave absorption.” Journal of Microwave Power, 2. pp. 61–64.
  • Fuerstenau, D. W., 1995, “Grinding Aids.” KONA (Powder and Particle), 13. pp. 5–17.
  • Gaete-Garretón, L. F., Vargas-Hermández, Y. P., and Velasquez-Lambert, C., 2000, “Application of ultrasound in comminution.” Ultrasonics, 38. pp. 345–352.
  • Geller, L. B., and Tervo, R. O., 1975, “Grinding of preheated rocks.” Transactions IMM (Section C), 84. pp. 25–33.
  • Golrlich, E., 1982, “The Structure of SiO2 Current Views.” Ceramics International, 8. pp. 1.
  • Grady, D. E., and Kipp, M. E., 1980, “Continuum modelling of explosive fracture in oil shale.” International Journal of Rock Mechanics and Mining Sciences & Geomechanics, 17 (3), pp. 147–157. doi:10.1016/0148-9062(80)91361-3
  • Graff, K. F., 1979, “Ultrasonic Comminution,” Ultrasonic International’ 79 Proc., May, Graz, Austria, pp. 171–175.
  • Griffith, A. A., 1921, “The phenomena of rupture and flow in solids.” Philosophical Transactions of the Royal Society of London, 221. pp. 163–198.
  • Guo, C., and Dong, L., 2007, “Comminution of mica by cavitation abrasive water jet.” Journal of China University of Mining and Technology, 17. pp. 251–254.
  • Harrison, P. C., and Rowson, N. A., 1996a, “The effect of heat treatment on the grindability of coals,” The 1996 ICHEME Research Event: The Second European Conference.
  • Harrison, P. C., and Rowson, N. A., 1997, “The Effect of Microwave and Conventional Heat Treatment on the Comminution of Coal.” I Chemical Research Event, 1. pp. 33–36.
  • Hasegawa, M., Kimata, M., Shimane, M., Shoji, T., and Tsuruta, M., 2001, “The effect of liquid additives on dry ultrafine grinding of quartz.” Powder Technology, 114. pp. 145–151.
  • Holman, B. W., 1926, “Heat treatment as an agent in rock breaking.” Trans IMM, 26. pp. 219–225.
  • Industrial Reviews and Mining Year Book, 1970, “Nuclear blasting proposed for Pilbara Iron Ore Project,” pp. 255–259.
  • Irwin, G., 1957, “Analysis of stresses and strains near the end of a crack traversing a plate.” Journal of Applied Mechanics, 24. pp. 361–364.
  • Ito, M., Owada, S., Nishimura, T., and Ota, T., 2009, “Experimental study of coal liberation: electrical disintegration versus roll-crusher comminution.” International Journal of Mineral Processing, 92. pp. 7–14.
  • Jones, M. P., and Fullard, R. J., 1966, “Mineral liberation by thermal decomposition of a carbonate rock.” Transactions IMM (Section C), 75. pp. 127.
  • Kawala, Z., and Atamaczuk, T., 1998, “Microwave-enhanced thermal decontamination of soil.” Environmental Science Technology, 32. pp. 2602–2607.
  • Kingman, S. W., Jackson, K., Cumbane, A., Bradshaw, S. M., Rowson, N. A., and Greenwood, R., 2004, “Recent developments in microwave-assisted comminution.” International Journal of Mineral Processing, 74. pp. 71–83.
  • Kingman, S. W., and Rowson, N. A., 1998, “Microwave treatment of minerals- a review.” Minerals Engineering, 11. pp. 1081–1087.
  • Kingman, S. W., Rowson, N. A., and Blackburn, S., 1996, “The Effect of Dielectric Heating on the Ring Loaded Strength of Norwegian Ilmenite.” MIRO: Microwave Workshop, Nov 1996, University of Birmingham, United Kingdom.
  • Klimpel, R. R., and Austin, L. G., 1982, “Chemical additives for wet grinding of minerals.” Powder Technology, 31. pp. 239–253.
  • Kuyumcu, H. Z., and Rolf., L., 2004, “Application of high-pressure water jets for comminution.” International Journal of Mineral Processing, 74. pp. S191–S198.
  • Lastra, R., and Carbri, L. J., 2003, “Comparative liberation study by image analysis of Merensky reef samples comminuted by electric-pulse disaggregation and by conventional crusher,” Proceedings of the XXII International Mineral Processing Congress, 1, pp. 251–260.
  • Lee, H. J., Zhang, S., Bar-Cohen, Y., and Sherrit, S., 2014, “High temperature, high power piezoelectric composite transducers.” Sensors, 14. pp. 14526–14552.
  • Li, Y., 2012, “Effects of coal comminution in relation to waterjet and selected feed properties,” Masters Theses, 5288.
  • Link, T., and Killmeyer, R. P., 1988, “Ultrasonic Comminution of Coal,” PETC Coal Preparation Division Internal Report.
  • Liu, Z., and Sun, Z., 2005. Wet comminution of raw salt using high-pressure fluid jet technology. Powder Technology, 160, pp. 194–197. doi:10.1016/j.powtec.2005.08.027
  • Lizcano, M., and Mackey, J. A., 2014, “Status and evaluation of microwave furnace capabilities at NASA Glenn Research Center,” Technical Report, NASA Glenn Research Center.
  • Lowndes, I. S., Jones, D. A., Kingman, S. W., and Whittles, D. N., 2005, “Understanding microwave assisted breakage.” Minerals Engineering, 18. pp. 659–669.
  • Lynch, A. J., and Rowland, C. A., 2005, “The history of grinding,” Society for Mining, Metallurgy, and Exploration, Inc. 8307 Shaffer Parkway.
  • Ma, S. J., 2009, “A new practical method to determine the microwave energy absorption ability of materials.” Minerals Engineering, 22. pp. 1154–1159.
  • Marland, S., Han, B., Merchant, A., and Rowson, N., 2000, “The effect of microwave radiation on coal grindability.” Fuel, 79. pp. 1283–1288.
  • Martello, E. D., Bernardis, S., Larsen, R. B., Tranell, G., Sabatino, M. D., and Arnberg, L., 2012, “Electrical fragmentation as a novel route for the refinement of quartz raw materials for trace mineral impurities.” Powder Technology, 224. pp. 209–216.
  • Masri, M., Sibai, M., Shao, J. F., and Mainguy, M., 2014, “Experimental investigation of the effect of temperature on the mechanical behavior of Tournemire shale.” International Journal of Rock Mechanics and Mining Sciences, 70. pp. 185–191.
  • Mazumder, B., Uddin, I., Khan, S., Ravi, V., Selvraj, K., Poddar, P., and Ahmad, A., 2007, “Bio-milling technique for the size reduction of chemically synthesized BiMnO3 nanoplates.” Journal of Materials Chemistry, 17. pp. 3910–3914.
  • Mazurkiewicz, M., 1984, “High pressure liquid jet as a tool for disintegrating organic and non-organic materials,” Invention Disclosure 85-UMR-009.
  • McGill, S. L., Walkiewicz, J. W., and Smyres, G. A., 1988, The effect of power level on microwave heating of selected chemicals and minerals,”, In Material Research. Society Symposium. Proceeding, (W. H. Sutton, et al., Eds.), Reno, NV: Cambridge University Press, M 4.6, Vol. 124.
  • Meikap, B. C., Kumar, P., Sahoo, B. K., De, S., Kar, D. D., and Chakraborty, S., 2010, “Iron ore grindability improvement by microwave pre-treatment.” Journal of Industrial and Engineering Chemistry, 16. pp. 805–812.
  • Menacho, J., Yerkovic, C., and Gaete Garreton, L., 1993, “Exploring the ultrasonic comminution of copper ores.” Minerals Engineering, 6. pp. 607–617.
  • National Research Council, 1981, Comminution and Energy Consumption, Washington, DC: The National Academies Press. doi:10.17226/19669.
  • Ofori-Sarpong, G., and Amankwah, R. K., 2011, “Microwave heating of gold ores for enhanced grindability and cyanide amenability.” Minerals Engineering, 24. pp. 541–544.
  • Öjmertz, C., 1997, “A study on abrasive waterjet milling,” PhD thesis, Chalmers University of Technology, Göteborg Sweden, p. 81.
  • Omran, M., Fabritius, T., Elmahdy, A. M., Abdel-Khalek, N. A., and Gornostayev, S., 2015a, “Improvement of phosphorus removal from iron ore using combined microwave pretreatment and ultrasonic treatment.” Separation and Purification Technology, 156. pp. 724–737.
  • Omran, M., Fabritius, T., and Mattila, R., 2015b, “Thermally assisted liberation of high phosphorus oolitic iron ore: a comparison between microwave and conventional furnaces.” Powder Technology, 269. pp. 7–14.
  • Padovani, D., and Magistri, M., 2008, “Improvement of mechanical strengths by the use of grinding aids: optimization of sulphate content in cement” 15th Arab International Cement Conference and Exhibition, Cairo.
  • Pan, Y. C., 1992, “Extra fine uniform equipment,” China practical and new pattern patent, No: Zl 92218302.3.
  • Paramasivam, R., and Vedaraman, R., 1992, “Studies in additive grinding of minerals.” Advanced Powder Technology, 3. pp. 31–37.
  • Parker, T., Shi, F., Evans, C., and Powell, P., 2015, “The effects of electrical comminution on the mineral liberation and surface chemistry of a porphyry copper ore.” Mineral Engineering, 82. pp. 101–106.
  • Peng, J.-H., Guo, S.-H., Guo, C., Jin, C. H., Li, D.-B., and Liu, L.-J., 2011, “Microwave assisted grinding of ilmenite ore.” Transactions of Nonferrous Metals Society of China, 21. pp. 2122–2126.
  • Pérez-Maqueda, L. A., Duran, A., and Pérez-Rodríguez, J. L., 2005, “Preparation of submicron talc particles by sonication.” Applied Clay Science, 28. pp. 245–255.
  • Qian, H., Fang, Y., and Li, Z., 2014, “The research and development situation of cement grinding aid.” New Chemical Materials, 42. pp. 27–29.
  • Rao, R. B., Veeresh, M. B., and Banerjee, G. N., 2002, “Effect of thermal pretreatment on grindability and upgradation of bauxite for refractory applications,” Light Metals: Proceedings of Sessions, TMS Annual Meeting (Warrendale, Pennsylvania), pp. 205–208.
  • Rizmanoski, V., 2011, “The effect of microwave pretreatment on impact breakage of copper ore.” Minerals Engineering, 24. pp. 1609–1618.
  • Rose, H. E., and Sullivan, R. M. E., 1958, The Role of Additives in Milling, A Treatise on the Internal Mechanisms of Ball, Tube and Rod Mills, New York, NY:  Chemical Publishing Co., pp. 236–251.
  • Rowson, N. A., and Rice, N. M., 1990, “Technical note: desulphurization of coal using low power microwave energy.” Minerals Engineering, 3. pp. 363–368.
  • Ryncarz, A., and Laskowski, J., 1977, “Influence of flotation reagents on the wet grinding of quartz.” Powder Technology, 18. pp. 179–185.
  • Scott, G., 2006, “Microwave Pretreatment of a Low Grade Copper Ore to Enhance Milling Performance and Liberation.” MSc Thesis, University of Stellenbosch, South Africa.
  • Sen, S., 2017, “Grinding of magnetite using a waterjet driven cavitation cell.” Powder Technology, 297. pp. 34–43.
  • Shakhova, L. D., Luginina, I. G., and Cherkasov, R. A., 2014, “Intensification of cement grinding with apply grinding aids with modify effect.” Modern Applied Science, 8. pp. 296.
  • Shi, F., Krishnan, N., Weid, F., Wielen, K. P., Zuo, W., and Manlapig, E., 2014, “A potential application of high voltage pulse technology in a gold-copper ore grinding circuit,” 27th International Mineral Processing Congress, Santiago, Chile, Chapter 14, pp. 106–115.
  • Singh, V., Samuelraj, I. O., Venugopal, R., Jagadeesh, G., and Banerjee, P. K., 2015a, “Study the effect of electrical and mechanical shock loading on liberation and milling characteristics of mineral materials.” Minerals Engineering, 70. pp. 207–216.
  • Singh, V., Saxena, V. K., Raj, R., and Venugopal, R., 2015b, “Artificial weathering of coal to enhance milling performance.” Fuel, 142. pp. 117–120.
  • Singh, V., Venugopal, R., Saxena, V. K., and Mukherjee, A. K., 2016, “Study of the effect of ultrasonic treatment on mineral materials of different morphologies.” Minerals & Metallurgical Processing, 33. pp. 88–96.
  • Singh, V., Venugopal, R., Tripathy, S. K., and Saxena, V. K., 2017, “Comparative analysis of the effect of microwave pretreatment on the milling and liberation characteristics of mineral matters of different morphologies.” Minerals & Metallurgical Processing, 34. pp. 65–75.
  • Somani, A., Nandi, T. K., Pal, S. K., and Majumder, A. K., 2017, “Pre-treatment of rocks prior to comminution–a critical review of present practices.” International Journal of Mining Science and Technology, 27. pp. 339–348.
  • Sottili, L. and Padovani, D., 2002. “Effect of grinding aids in the cement industry.” Proceedings of the Petrochem Conference, Saint Petersburg, Russia, pp. 16–24.
  • Sun, Z., and Hou, F., 2002, “Orthogonal analysis for factors of water power comminuting raw salt.” Fluid Mach, 30. pp. 47–50.
  • Suzuki, I., 2001, “Microbial leaching of metals from sulfide minerals.” Biotechnology Advances, 19. pp. 119–132.
  • Swart, A. J., 2012, Evaluating the effects of radio-frequency treatment on rock samples: Implications for rock comminution. https://www.intechopen.com/books/geochemistry-earth-s-system-processes/evaluating-the-effects-of-rf-treatment-on-rock-samples-implications-for-rock-comminution
  • Swart, A. J., and Mendonidis, P., 2013, “Evaluating the effect of radio-frequency pre-treatment on granite rock samples for comminution purposes.” International Journal of Mineral Processing, 120. pp. 1–7.
  • Tarpley, W. B., Howard, P. L., and Moulder, G. R., 1980, “Efficient ultrasonic grinding: a new technology for micron-sized coal,” Quarterly Technical Progress Report No. 2.
  • Tavares, L. M., and King, R. P., 1995, “Application of thermal treatment to improve comminution,” SME Annual Meeting, Denver, Colorado, USA, pp. 95–238.
  • Tavares, L. M., and King, R. P., 1999, “Evaluation of thermally-assisted fracture of particles using microscale fracture measurements.” KONA Powder and Particle Journal, 17. pp. 163–172.
  • Teipel, U., Leisinger, K., and Mikonsaari, I., 2004, “Comminution of crystalline material by ultrasonics.” International Journal of Mineral Processing, 74S. pp. S183.
  • Tilocca, M. C., Surracco, M., Maggio, E., and Deiana, P., 2016, Sulcis Coal Water Jet Assisted Comminution, In XVIII International Coal Preparation Congress, (V. Litvinenko, eds), Saint-Petersburg, Russia: Springer, Cham.
  • Toyohisa., F., Isao., Y., Atsushi., S., Toshio., M., Keisuke., A., Masashi., S., Wan, Y., and Svoboda, T., 2001, “Crushing and liberation of materials by electrical disintegration.” The European Journal of Mineral Processing and Environmental Protection, Jan, 1. pp. 113–122.
  • Tromans, D., 2008, “Mineral comminution: energy efficiency considerations.” Minerals Engineering, 21. pp. 613–620.
  • Uddin, I., Poddar, P., Kumar, U., and Phogat, N., 2013, “A novel microbial bio-milling technique for the size reduction of micron sized Gd2O3 particles into nanosized particles.” Journal of Green Science and Technology, 1. pp. 48–53.
  • Usov, A., Tsukerman, V., Potokin, A., and Ilin, D., 2016, “The experience in development of technique and technology of electric pulse disintegration of rocks and ores.” Rewas, 2016. pp. 325–332.
  • Viswanathan, M., 1990, “Investigations on the effect of micro wave pre-treatment on comminution/beneficiation and desulphurisation of coals,” 11th International Coal Preparation Congress. October 22–25, Tokyo, Japan
  • Vorster, W., Rowson, N. A., and Kingman, S. W., 2001, “The effect of microwave radiation upon the processing of Neves Corvo copper ore.” International Journal of Mineral Processing, 63. pp. 29–44.
  • Walkiewicz, J. W., Clark, A. E., and McGill, S. L., 1991, “Microwave-assisted grinding.” IEEE Transactions on Industry Applications, 27. pp. 239–243.
  • Wang, D., and Wang, Z., 2011, “Research and application of functional polymer grinding aids,” Materials Science & Technology 2009 Conference and Exhibition, pp. 1974–1983.
  • Wang, E., Shi, F., and Manlapig, E., 2012, “Factors affecting electrical comminution performance.” Minerals Engineering, 34. pp. 48–54.
  • Weibel, M., and Mishra, R. K., 2014, “Comprehensive understanding of grinding aids.” ZKG International, 67 (6). pp. 28–39.
  • Wills, B. A., and Napier-Munn, T., 2006, Wills’ Mineral Processing Technology: an Introduction to the Practical Aspects of Ore Treatment and Mineral Recovery, 7th, Oxford: Butterworth-Heinemann.
  • Wills, B. A., Parker, R. H., and Binns, D. G., 1987, “Thermally assisted liberation of cassiterite.” Minerals and Metallurgical Processing, 86. pp. 94–96.
  • Xia, D. K., and Pickles, C. A., 1997, “Microwave applications in extractive metallurgy, a review.” Challenges in Process Intensification, proceedings of the 35th Annual Conference of Metallurgical of CIM, Montreal, Eds., CIM Bulletin, 90. pp. 96–107.
  • Xie, H., Wang, J. A., and Kwaśniewski, M. A., 1999, “Multifractal characterization of rock fracture surfaces.” International Journal of Rock Mechanics and Mining Sciences, 36. pp. 19–27.
  • Xin, L., 2000, “Effect of shock waves on microstructure and fracture behavior of pre-cracked steel weld metal.” Material Science Engineering (A), 293 (1–2). pp. 247–251.
  • Yang, J. K., and Wu, Y. M., 1987, “Relation between dielectric property and desulphurization of coal by microwaves.” Fuel, 66. pp. 1745–1747.
  • Yan-Mei, G., and Shao-Fei, S., 2017, “The effect on the performance of cement grinding aid components.” Journal of Materials, Processing and Design, 1. pp. 29–39.
  • Yao, Y., Liu, D., Cai, Y., and Li, J., 2010, “Advanced characterization of pores and fractures in coals by nuclear magnetic resonance and X-ray computed tomography.” Science China Earth Sciences, 53. pp. 854–862.
  • Yu, J. W., Han, Y. X., Li, Y. J., and Gao, P., 2016, “Effect of magnetic pulse pretreatment on grindability of a magnetite ore and its implication on magnetic separation.” Journal of Central South University, 23. pp. 3108–3114.
  • Yukselen, Y., and Kaya, A., 2006, “Comparison of methods for determining specific surface area of soils.” Journal of Geotechnical and Geo-Environmental Engineering, 132. pp. 931–936.
  • Zuo, H., Long, S., Wang, C., and Zhang, P., 2016, A Review of Microwave Treatment on Coal, In 7th International Symposium on High-Temperature Metallurgical Processing, (J. Y. Hwang, et al., eds.), Pittsburgh, PA: Springer.

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