Micromorphology and physicochemical properties of hydrophobic blasting dust in iron mines

Jian-guo Liu , Long-zhe Jin , Jia-ying Wang , Sheng-nan Ou , Jing-zhong Ghio , Tian-yang Wang

International Journal of Minerals, Metallurgy, and Materials ›› 2019, Vol. 26 ›› Issue (6) : 665 -672.

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International Journal of Minerals, Metallurgy, and Materials ›› 2019, Vol. 26 ›› Issue (6) : 665 -672. DOI: 10.1007/s12613-019-1793-x
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Micromorphology and physicochemical properties of hydrophobic blasting dust in iron mines

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Abstract

The micromorphology and physicochemical properties of hydrophobic blasting dust (HBD) from an iron mine were comprehensively analyzed by laser particle size analysis (LPSA), scanning electron microscopy (SEM), X-ray diffraction (XRD), and X-ray photoelectron spectroscopy (XPS). The results show that the HBD particles can be classified into three types based on their particle size (PS): larger particles (PS > 10 µm), medium particles (1 µm ≤ PS ≤ 10 µm), and nanoparticles (PS > 1 µm). The cumulative volume of respirable dust (PS > 10 µm) was 84.45%. In addition, three shapes of HBD were observed by SEM: prism, flake, and bulk. In particular, the small particles were mostly flaky, with a greater possibility of being inhaled. Furthermore, the body and surface chemical compounds of HBD were determined by XRD and XPS, respectively. Ammonium adipate (C6H16N2O4) was the only organic compound in the body of HBD, but its mass fraction was only 13.4%. However, the content of organic C on the surface of HBD was 85.35%. This study demonstrated that the small-particle size and large amount of organic matter on the surface of HBD are the main reasons for its hydrophobicity, which can provide important guidance for controlling respirable dust in iron mines.

Keywords

iron mine dust / respirable dust / hydrophobic blasting dust / microstructure / physicochemical properties / particle size

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Jian-guo Liu, Long-zhe Jin, Jia-ying Wang, Sheng-nan Ou, Jing-zhong Ghio, Tian-yang Wang. Micromorphology and physicochemical properties of hydrophobic blasting dust in iron mines. International Journal of Minerals, Metallurgy, and Materials, 2019, 26(6): 665-672 DOI:10.1007/s12613-019-1793-x

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References

[1]

Feng XT, Liu JP, Chen BR, Xiao YX, Feng GL, Zhang FP. Monitoring, warning, and control of rockburst in deep metal mines. Engineering, 2017, 3(4): 538.

[2]

Cai MF. Prediction and prevention of rockburst in metal mines-A case study of Sanshandao gold mine. J. Rock Mech. Geotech. Eng., 2016, 8(2): 204.

[3]

Zhao GY, Ju MA, Dong LJ, Li XB, Chen GH, Zhang CX. Classification of mine blasts and microseismic events using starting-up features in seismograms. Trans. Nonferrous Met. Soc. China, 2015, 25(10): 3410.

[4]

Norgate T, Haque N. Energy and greenhouse gas impacts of mining and mineral processing operations. J. Cleaner Prod., 2010, 18(3): 266.

[5]

Greenberg MI, Waksman J, Curtis J. Silicosis: A review. Disease-a-Month, 2007, 53(8): 394.

[6]

Wang XZ, Jiang ZA, Wang SW, Liu Y. Numerical simulation of distribution regularities of dust concentration during the ventilation process of coal roadway driving. J. China Coal Soc., 2007, 32(4): 386.

[7]

Toraño J, Torno S, Menéndez M, Gent M. Auxiliary ventilation in mining roadways driven with roadheaders: Validated CFD modelling of dust behaviour. Tunnelling Underground Space Technol., 2011, 26(1): 201.

[8]

Wang HT, Wang DM, Ren WX, Lu XX, Han FW, Zhang YK. Application of foam to suppress rock dust in a large cross-section rock roadway driven with roadheader. Adv. Powder Technol., 2013, 24(1): 257.

[9]

Wang HT, Wang DM, Tang Y, Qin BT, Xin HH. Experimental investigation of the performance of a novel foam generator for dust suppression in underground coal mines. Adv. Powder Technol., 2014, 25(3): 1053.

[10]

Lu XX, Wang DM, Xu CH, Zhu CB, Shen W. Experimental investigation and field application of foam used for suppressing roadheader cutting hard rock in underground tunneling. Tunnelling Underground Space Technol., 2015, 49, 1.

[11]

Ma SP, Kou ZM. Study on mechanism of reducing dust by spray. J. China Coal Soc., 2005, 30(3): 297.

[12]

Almuhanna EA, Maghirang RG, Murphy JP, Erickson LE. Effectiveness of electrostatically charged water spray in reducing dust concentration in enclosed spaces. Trans. ASABE, 2008, 51(1): 279.

[13]

Yang J, Wu XK, Gao JG, Li GP. Surface characteristics and wetting mechanism of respirable coal dust. Min. Sci. Technol., 2010, 20(3): 365.

[14]

Jin LZ, Zhu JM, Ren ZG, Wei W. Research on an antifreezing dust depressor used to the road in open-pit mine. J. Univ. Sci. Technol. Beijing, 2004, 26(1): 4.

[15]

Jin LZ, Yang JX, Ou SN. Experimental study of wetting chemical dust-depressor. J. Saf. Environ., 2007, 7(6): 109.

[16]

Tang HH, Zhao LH, Sun W, Hu YH, Han HS. Surface characteristics and wettability enhancement of respirable sintering dust by nonionic surfactant. Colloids Surf. A, 2016, 509, 323.

[17]

Liu XF, Nie BS. Fractal characteristics of coal samples utilizing image analysis and gas adsorption. Fuel, 2016, 182, 314.

[18]

Liu XF, Song DZ, He XQ, Wang ZP, Zeng MR, Wang LK. Quantitative analysis of coal nanopore characteristics using atomic force microscopy. Powder Technol., 2019, 346, 332.

[19]

He XQ, Liu XF, Song DZ, Nie BS. Effect of microstructure on electrical property of coal surface. Appl. Surf. Sci., 2019, 483, 713.

[20]

Liu XF, Song DZ, He XQ, Nie BS, Wang LK. Insight into the macromolecular structural differences between hard coal and deformed soft coal. Fuel, 2019, 245, 188.

[21]

Liu XF, Song DZ, He XQ, Wang ZP, Zeng MR, Deng K. Nanopore structure of deep-burial coals explored by AFM. Fuel, 2019, 246, 9.

[22]

Kollipara VK, Chugh YP, Mondal K. Physical, mineralogical and wetting characteristics of dusts from Interior Basin coal mines. Int. J. Coal Geol., 2014, 127, 75.

[23]

Xu CH, Wang DM, Wang HT, Xin HH, Ma LY, Zhu XL, Zhang Y, Wang QG. Effects of chemical properties of coal dust on its wettability. Powder Technol., 2017, 318, 33.

[24]

Wang HT, Zhang L, Wang DM, He XX. Experimental investigation on the wettability of respirable coal dust based on infrared spectroscopy and contact angle analysis. Adv. Powder Technol., 2017, 28(12): 3130.

[25]

G. Zhou, C.C. Xu, W.M. Cheng, Q. Zhang, and W. Nie, Effects of oxygen element and oxygen-containing functional groups on surface wettability of coal dust with various metamorphic degrees based on XPS experiment, J. Anal. Methods Chem., 2015(2015), art. No. 467242.

[26]

Lu SS, Liu HF, Guo XL, Liu X, Gong X. Determination method of particle size and distribution of coal by laser size analyzer. China Powder Sci. Technol., 2010, 16(4): 5.

[27]

Gustafsson Krais AM, Gorzsás A, Lundh T, Gerde P. Isolation and characterization of a respirable particle fraction from residential house-dust. Environ. Res., 2018, 161, 284.

[28]

Cao ZG, Yu G, Chen YS, Liu C, Liu K, Zhang TT, Wang B, Deng SB, Huang J. Mechanisms influencing the BFR distribution patterns in office dust and implications for estimating human exposure. J. Hazard. Mater., 2013, 252, 11.

[29]

Negrila CC, Logofatu C, Ghita RV, Cotirlan C, Ungureanu F, Manea AS, Lazarescu MF. Angle-resolved XPS structural investigation of GaAs surfaces. J. Cryst. Growth, 2008, 310, 1576.

[30]

Takahagi T, Ishitani A. XPS studies by use of the digital difference spectrum technique of functional groups on the surface of carbon fiber. Carbon, 1984, 22(1): 43.

[31]

Taki Y, Takai O. XPS structural characterization of hydrogenated amorphous carbon thin films prepared by shielded arc ion plating. Thin Solid Films, 1998, 316(1–2): 45.

[32]

Devillers M, Dupuis O, Janosi A, Soumillion JP. Coordination compounds as precursors for laser deposition of nickel-based conducting films. Appl. Surf. Sci., 1994, 81(1): 83.

[33]

Jordan JL, Kovac CA, Morar JF, Pollak RA. High-resolution photoemission study of the interfacial reaction of Cr with polyimide and model polymers. Phys. Rev. B, 1987, 36(3): 1369.

[34]

Kurmaev EZ, Fedorenko VV, Galakhov VR, Bartkowski S, Uhlenbrock S, Neumann M, Slater PR, Greaves C, Miyazaki Y. Analysis of oxyanion (BO3 3−, CO3 2−, SO4 2−, PO4 3−, SeO4 4−) substitution in Y123 compounds studied by X-ray photoelectron spectroscopy. J. Supercond., 1996, 9(1): 97.

[35]

Christie AB, Lee J, Sutherland I, Walls JM. An XPS study of ion-induced compositional changes with group II and group IV compounds. Appl. Surf. Sci., 1983, 15(1–4): 224.

[36]

Paparazzo E. XPS and auger spectroscopy studies on mixtures of the oxides SiO2, Al2O3, Fe2O3 and Cr2O3. J. Electron Spectrosc. Relat. Phenom., 1987, 43(2): 97.

[37]

Sosulnikov MI, Teterin YA. X-ray photoelectron study of calcium, strontium, barium and their oxides. Dokl. Akad. Nauk SSSR, 1991, 317(2): 418.

[38]

Sprenger D, Bach H, Meisel W, Gütlich P. XPS study of leached glass surfaces. J. Non-Cryst. Solids, 1990, 126(1–2): 111.

[39]

Buchwalter LP, Czornyj C. Poly(methyl methacrylate) degradation during x-ray photoelectron spectroscopy analysis. J. Vac. Sci. Technol. A, 1990, 8(2): 781.

[40]

Briggs D, Beamson G. Primary and secondary oxygen-induced C1s binding energy shifts in X-ray photoelectron spectroscopy of polymers. Anal. Chem., 1992, 64(15): 1729.

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