Study on the composition and structure characteristics and dry decarbonization separation of coal water slurry gasification fine slag

被引:9
|
作者
Gao Y. [1 ]
Zhao W. [1 ,2 ]
Zhou A.-N. [1 ,2 ]
Han R. [1 ]
Li Z. [1 ,2 ]
Zhang N.-N. [1 ,2 ]
Wang J.-Z. [1 ,3 ]
Ma C. [3 ]
机构
[1] College of Chemistry and Chemical Engineering, Xi’an University of Science and Technology, Xi’an
[2] Key laboratory of Coal Resources Exploration and Comprehensive Utilization, Ministry of Natural Resources, Xi’an
[3] Shaanxi New Energy Star Carbon Energy Co., Ltd., Xi’an
关键词
coal gasification fine slag; composition structure; crushing classification; wet screening;
D O I
10.1016/S1872-5813(22)60007-0
中图分类号
学科分类号
摘要
Efficient separation and high-valued utilization of coal gasification ash or slag limit the clean and green development of coal chemical industry. In this paper, a coal-water slurry gasification fine slag (CWSFS) was studied by wet screening and classification. The relationship between the particle composition with different sizes and the structural characteristics was investigated by means of proximate analysis, XRF, XRD, BET and SEM. A classification method of CWSFS was proposed to guide the high-valued utilization of coal gasification slag. Then, dry separation of a coal-water slurry gasification fine slag was carried out using a combined treatment method of crushing and dissociation and airflow classification. The results show that the CWSFS particles of different sizes have obvious differences in fixed carbon content, ash composition and mineral types. For the CWSFS with the particle size above 74 μm, the fixed carbon content is more than 60%, the calorific value is more than 20 MJ/kg, the specific surface area is relatively high and the main component is the residual carbon that contains magnetite and brookite. For the CWSFS with particle sizes between 13−74 μm, the fixed carbon content is between 20%−60%, the calorific value is between 11−19 MJ/kg, the specific surface area is small and the main mineral types are pyroxene, marcasite and hematite, etc. For the CWSFS with a particle size between 0−13 μm, the fixed carbon content is less than 20% and the calorific value is less than 10 MJ/kg, which mainly includes the amorphous glass phase that was rich in aluminum, iron and calcium, quartz and a small amount of fayalite, muscovite and other minerals. According to the fixed carbon content of CWSFS with different particle sizes, the above three components with varying particle size ranges are defined as high-carbon component, medium-carbon component and low-carbon component, respectively. The dry separation test shows that the air flow crushing and classification process can achieve a higher product yield of 29.60% and a high ignition loss of 93.76%, compared to the traditional disc crushing-classification process. Airflow crushing was proved to be able to effectively increase the dissociation degree of residual carbon and greatly improve the separation and enrichment rate of residual carbon. © 2022 Science Press. All rights reserved.
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页码:954 / 965
页数:11
相关论文
共 36 条
  • [1] ZHU Zi-qi, Migration rule of coal macerals in coal-to-oil preparation plant[J], Clean Coal Technol, 26, 6, pp. 89-95, (2020)
  • [2] REN Zhen-yang, JING Yun-huan, FAN Pan-pan, GAO Yan-chun, WANG Jian-cheng, DONG Lian-ping, BAO Wei-ren, FAN Min-qiang, CHANG Li-ping, Experimental study on the water-medium gravity separation of gasification slag and the preparation of desulfurization and denitrification activated coke using separated carbon[J], J China Coal Soc, 46, 4, pp. 1164-1172, (2021)
  • [3] ZHANG Yi-xin, GUO Yang, WANG Ru-meng, JIA Wen-ke, GUO Fan-hui, WU Jian-jun, Study on the physicochemical properties of Ningdong coal gasification fine slag and its carbon-ash separation products[J], J China Coal Soc, 46, S2, pp. 1096-1104, (2021)
  • [4] LV Fei-yong, CHU Mo, YI Hao-ran, HAO Yan, YANG Yan-bo, SHI Xu, SUN Xing-bo, Distribution characteristics of magnetic ash particles in gasification slag of different particle sizes[J], Chem Ind Eng Prog, 41, 5, pp. 2372-2378, (2022)
  • [5] WU Hao-dong, SHAO Feng-hua, LV Peng, BAI Yong-hui, SONG Xu-dong, WANG Jiao-fei, GUO Qing-hua, WANG Xue-bin, YU Guang-suo, Study on the relationship between structure, properties and size distribution of fine slag from entrained flow gasification[J], J Fuel Chem Technol, 50, 5, pp. 513-522, (2022)
  • [6] GUO F, MIAO Z, GUO Z, LI J, ZHANG Y, WU J., Properties of flotation residual carbon from gasification fine slag[J], Fuel, 267, (2020)
  • [7] ZHAO X, ZENG C, MAO Y, LI W, PENG Y, WANG T, EITENEER B, ZAMANSKY V, FLETCHER T., The surface characteristics and reactivity of residual carbon in coal gasification slag[J], Energy Fuels, 24, 1, (2010)
  • [8] WU S, HUANG S, JI L, WU Y, GAO J., Structure characteristics and gasification activity of residual carbon from entrained-flow coal gasification slag[J], Fuel, 122, (2014)
  • [9] HUANG S, WU S, PING Y, WU Y, GAO J., Effect of CS2 extraction on the physical properties and gasification activity of liquid-phase carbonization cokes[J], J Anal Appl Pyrolysis, 93, (2012)
  • [10] ZHANG Xiao-yu, HE Guo-feng, LI Lei, CHEN Hao, Influence factors and technical progress of CWS performance[J], Clean Coal Technol, 25, 6, pp. 96-104, (2019)