On Study of Development Expansive Coal Gangue Portland Cement by Microwave Technology

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Abstract:

Added carbon powder or M mineral powder in unburned kaolinite coal gangue, the mixtures could be changed better expansive mineral additive of Portland cement by microwave irradiation. The microwave activation coal gangue mixtures 5%, 10%, 15%, 20%, 25%, 30% and 35% (by weight) were respectively added intoⅠ42.5 Portland cement. The compressive/flexural strength of various expansive coal gangue Portland cements were determined after 3 and 28 day. The fineness, initial and final setting time, soundness and volume expansive ratio was also measured.    The expansive reasons of coal gangue Portland cement were considered that there were lots of thicker and bigger flaky crystal during hydration processes by scanning electron microscope, and found the Al, Si, O and other elements in flaky crystal by Edax.    The expansive mechanism of coal gangue Portland cement is different from traditional expansive cements theories by microwave irradiation.

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Advanced Materials Research (Volumes 671-674)

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1909-1913

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March 2013

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© 2013 Trans Tech Publications Ltd. All Rights Reserved

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[1] Li Xiaoyong, Li Wanjun, Li Chengmu: Fundamental Property smay and Application of Double Expanded Cement Concrete, Design of hydroelectric power station. Vol. 23. NO. 4. (2007), pp.70-73.

Google Scholar

[2] Zofia Konik, Jan Małolepszy, Wojciech Roszczynialski, Andrzej Stok: Production of Expansive Additive to Portland Cement, Journal of the European Ceramic Society 27 (2007), p.605–609.

DOI: 10.1016/j.jeurceramsoc.2006.04.116

Google Scholar

[3] S. Nagataki, H. Gomi: Expansive Admixtures (mainly ettringite), Cement and Concrete Composites 20 (1998), pp.163-170.

DOI: 10.1016/s0958-9465(97)00064-4

Google Scholar

[4] Yan Fu, Jian Ding, J. J. Beaudoin: Expansion Characteristics of a Compounded-Expansive Additive and Pre-Hydrated High Alumina Cement Based Expansive Additive, Cement and Concrete Research. Vol. 25. NO. 6. ( 1995) , pp.1295-1304.

DOI: 10.1016/0008-8846(95)00122-s

Google Scholar

[5] Vili Lilkova, Nikola Djabarovb, Georgi Becheva, Konstantin Koleva: Properties and hydration products of lightweight and expansive cements, Cement and Concrete Research 29 (1999) , p.1635–1640.

DOI: 10.1016/s0008-8846(99)00150-7

Google Scholar

[6] Gu Bingwei, Wang Peiming: Research on Interaction Between Coal Gangue and Cement in Thermal Activated Coal Gangue-Cement System, Materials Review, 22(7), (2008), pp.139-142.

Google Scholar

[7] Chen Yimin, Zhou Shuangxi, Zhang Wensheng: Effect of Coal Gangue with Different Kaolin Content on Compressive Strength and Pore Size of Blended Cement Paste, Journal of Wuha University of Technology-Mater. Sci. Ed, 23(1), (2008), pp.12-15.

DOI: 10.1007/s11595-006-1012-2

Google Scholar

[8] Hu Shuguang, He Yongjia: Research on the Utility of Burnt Coal Gangue as Highly Reactive Cement Admixture, Journal of Henan Polytechnic University, 25(1), (2006), pp.62-64.

Google Scholar

[9] Mo Liwu, Deng Min: Thermal Behavior of Cement Matrix with High-Volume Mineral Admixtures at Early Hydration Age[J], Cement and Concrete Research, 36, (2006), p.1992-(1998).

DOI: 10.1016/j.cemconres.2006.07.002

Google Scholar

[10] Song Xuyan, Li Dongxu, Han Jingyun: Study on Mechanical Property and Hydration Process of Cement Pastes Containing Thermal-Activated Coal Gangue, Bulletin of The Chinese Ceramic Society, 25(3), (2006), pp.194-199.

Google Scholar

[11] Li Dongxu, Song Xuyan, Gong Chenchen, et al: Research on Cementitious Behavior and Mechanism of Pozzolanic Cement with Coal Gangue[J], Cement and Concrete Research, 36, (2006), pp.1752-1759.

DOI: 10.1016/j.cemconres.2004.11.004

Google Scholar

[12] Zhu Beibei, Yang Quanbing: Study on Surface Thermal Activation of Coal-Gangue, Journal of Building Materials, 9(4), (2006), pp.484-487.

Google Scholar

[13] A. Shvarzman, K. Kovler, I. Schamban, et al: Influence of Chemical and Phase Composition of Mineral Admixtures on Their Pozzolanic Activity, Advances in Cement Research, 14, No. 1, (2002), pp.35-41.

DOI: 10.1680/adcr.2002.14.1.35

Google Scholar

[14] Zhong Shenglian, Zhang Maisheng, Su Qiang: Study of Mechanism of Kaolin Sintered by Microwave Heating, Acta Scientiarum Naturalium Universities Sunyatseni, 44(3), (2005), pp.71-74.

Google Scholar

[15] Tang Jianwei, Zhong Benhe, Xu Xiucheng, et al: Analysis on Crystallizing Course Under Microwave Induced Enhancement, Industrial Minerala & Procsessing, 11, (2002), pp.7-11.

Google Scholar

[16] Peelamedu R D, Roy R, Agrawal D K: Anisothermal Reaction Synthesis of Garnets, Ferrites and Spinels in Microwave Field [J], Materials Research Buletin, 36 (2001), pp.2723-2739.

DOI: 10.1016/s0025-5408(01)00743-7

Google Scholar

[17] Guo Wei, Li Dongxu, Chen Jianhua, et al: Changes in Minerial Composition and Structure of Coal Gangue During Heat Activation, Joural of Materials Science and Engineering, 26(2), (2008), pp.204-207.

Google Scholar

[18] Zhao Zhiman, Cheng Heming, Yuan Bo, et al: Sintering of Yunnan Coal Kaolin by Microwave Radiation Technique, Industrial Minerals & Processing, 11, (2008), pp.13-16.

Google Scholar