Desilication of high-silica Indian coal fly ash by alkali leaching with KOH and NaOH: A comparative study

被引:5
作者
Murmu, Anil Kumar [1 ]
Parida, Lipika [1 ]
Senapati, Pradipta Kumar [2 ]
机构
[1] Veer Surendra Sai Univ Technol, Chem Engn Dept, Burla 768018, India
[2] CSIR, Inst Minerals & Mat Technol, Bhubaneswar, India
关键词
Coal fly ash; Silica dissolution; Al/Si ratio; mullite; alkali-desilication <bold>; </bold>; EXTRACTING ALUMINA; DIGESTION;
D O I
10.1080/19392699.2023.2228708
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Indian coal fly ash generally comprises 50-60% SiO2, and 25-35% Al2O3 can potentially replace bauxite as an aluminum resource. Aluminum recovery from coal fly ash is highly dependent on removing amorphous silica, activating the inactive mullite phase, and increasing the Al/Si ratio. This work thoroughly investigated and compared the alkali-desilication operation by two widely used alkalis, KOH and NaOH, based on four operational parameters: liquid-to-solid ratio, KOH or NaOH concentration, leaching time and temperature. Using SEM, EDX, and XRD, the morphology and phase of fly ash and solid byproducts were analyzed. NaOH was more effective than KOH in SiO2 dissolution at all operational parameters. A 20 wt% concentration, 5:1 liquid-to-solid ratio, 2hrs leaching time, and 100 degrees C temperature were the optimum removal conditions for silica from fly ash using NaOH. With KOH, the ideal desilication conditions were obtained at 28 wt% concentration, 3hrs leaching time, and 150 degrees C temperature. The highest Al/Si ratios were obtained under the same optimal desilication conditions. Using KOH and NaOH, the Al/Si ratio was enhanced from 0.58 to 1.26 and 1.45, respectively. The main zeolitic products obtained were Hydroxysodalite in NaOH-treated fly ash and Linde F zeolite and Kalsilite in KOH-treated fly ash.
引用
收藏
页码:866 / 881
页数:16
相关论文
共 35 条
[11]   Novel process of alumina extraction from coal fly ash by pre-desilicating-Na2CO3 activation-Acid leaching technique [J].
Guo, Yanxia ;
Zhao, Zesen ;
Zhao, Qian ;
Cheng, Fangqin .
HYDROMETALLURGY, 2017, 169 :418-425
[12]   Reuse options for coal fired power plant bottom ash and fly ash [J].
Jayaranjan, Madawala Liyanage Duminda ;
van Hullebusch, Eric D. ;
Annachhatre, Ajit P. .
REVIEWS IN ENVIRONMENTAL SCIENCE AND BIO-TECHNOLOGY, 2014, 13 (04) :467-486
[13]   Reaction behaviour of Al2O3 and SiO2 in high alumina coal fly ash during alkali hydrothermal process [J].
Jiang, Zhou-qing ;
Yang, Jing ;
Ma, Hong-wen ;
Wang, Le ;
Ma, Xi .
TRANSACTIONS OF NONFERROUS METALS SOCIETY OF CHINA, 2015, 25 (06) :2065-2072
[14]  
Jinguo Q., 2011, PROCESS RECOVERY SIL
[15]  
Li D., 2019, NONFERROUS METALS EN, V9, P33, DOI DOI 10.3969/J.ISSN.2095
[16]   Research on the alkali-digestion properties of alumina and silicon dioxide during phase transformation roasting process [J].
Li, Da ;
Jiang, Xunxiong ;
Wang, Shengdong ;
Zhao, Feng ;
Jiang, Wei ;
Liu, Wei .
FUEL PROCESSING TECHNOLOGY, 2019, 191 :223-231
[17]   Extraction of alumina from coal fly ash by mixed-alkaline hydrothermal method [J].
Li, Huiquan ;
Hui, Junbo ;
Wang, Chenye ;
Bao, Weijun ;
Sun, Zhenhua .
HYDROMETALLURGY, 2014, 147 :183-187
[18]   Effects of different factors on fly ash-based functional soil and its oat grass cultivation [J].
Liu, Tengteng ;
Han, Fenglan ;
Xing, Zhibing ;
Wang, Jiaqi ;
Dong, Xiongwei ;
An, Changcong .
FRONTIERS IN PLANT SCIENCE, 2022, 13
[19]  
Nanganoa L.T., 2016, INT J CHEM TECH RES, V9, P725
[20]   Nano-crystal glass-ceramics obtained from high alumina coal fly ash [J].
Peng, F ;
Liang, KM ;
Hu, AM .
FUEL, 2005, 84 (04) :341-346