RESEARCH PAPER |
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Preparation of Calcium Based Chemically Bonded Phosphate Ceramics Using Ferrochrome Slag and Its Utilization on Immobilization of Pb2+, Cd2+ and Cu2+ |
LIU Shouqing1,2, HAO Xutao3, ZHOU Xintao3, JIA Qingming3
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1 Faculty of Environmental Science and Engineering, Kunming University of Science and Technology, Kunming 650500; 2 Faculty of Science, Southwest Forestry University, Kunming 650224; 3 Faculty of Chemical Engineering, Kunming University of Science and Technology, Kunming 650500 |
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Abstract Calcium based chemically bonded phosphate ceramics (CBPCs) were prepared through the reaction between calcium oxide-rich ferrochrome slag (FS) and potassium dihydrogen phosphate (P), and the prepared CBPCs was used to solidify/stabilize the heavy metal ions such as Pb2+,Cd2+,Cu2+. The influences of the potassium dihydrogen phosphate-to-ferrochrome slag (P/FS) molar ratio, the dosage of the retarders (borax) and the addition of heavy metals on the initial setting time and compressive strength of cementing material were investigated. It was showed that the CBPCs with best performance could be prepared when P/FS was 1/4 and the dosage of borax is 2%, and the compressive strength of the CBPCs reached 25.65 MPa and 36.86 MPa by curing at room temperature for 28 d and curing at hydrothermal condition for 24 h, respectively. The compressive strength of the CBPCs decreased with the addition of heavy metals, and when the dosage of the heavy metal was up to 3%, the compressive strength of the samples were greater than 10 MPa by curing at room temperature for 28 d and hydrothermal condition for 24 h, which could all meet the standard of the building materials. The leachability of heavy metals including Pb2+,Cd2+,Cu2+ was determined by toxicity characte-ristic leaching procedure. The results showed that the CBPCs could efficiently solidify/stabilize the heavy metals, and the concentrations of heavy metals in the leachate were all far lower than the national standard (5 mg/L, 1 mg/L and 100 mg/L). The solidified forms were characterized by means of X-ray diffraction (XRD), Fourier transform infrared (FTIR) and scanning electron microscopy (SEM) to reveal the mechanism of heavy metal immobilization by CBPCs, which included the chemically incorporation, physical adsorption and inclusion.
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Published: 25 February 2017
Online: 2018-05-02
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1 Patel H, Pandey S. Evaluation of physical stability and leachability of Portland Pozzolona Cement (PPC) solidified chemical sludge gene-rated from textile wastewater treatment plants [J]. J Hazard Mater,2012,207:56. 2 Ma Baoguo, Wang Jingran, et al. The solidification of magnesium phosphate cement with lead nitrate in different environmental conditions [J]. J Funct Mater,2013,44(21):3183(in Chinese). 马保国, 王景然, 等. 不同环境条件下磷酸镁水泥对硝酸铅的固化[J]. 功能材料,2013,44(21):3183. 3 Wang Jingran, Ma Baoguo, Li Xiangguo, et al. The solidification and hydration products of magnesium phosphate cement with Pb2+, Zn2+ and Cu2+ [J]. J Funct Mater,2014,45(5):5060(in Chinese). 王景然,马保国,李相国,等.磷酸镁水泥固化Pb2+ 、Zn2+ 、Cu2+及其水化产物研究[J]. 功能材料,2014,45(5):5060. 4 Shi Junbing, Lai Zhenyu, Lu Zhongyuan, et al. Effect of lead ion on the hydration of compound phosphate based magnesium phosphate cement[J]. J Funct Mater,2015,46(2):2060(in Chinese). 石军兵, 赖振宇, 卢忠远, 等. 铅离子对复合磷酸盐磷酸镁水泥水化硬化特性的影响[J]. 功能材料,2015,46(2):2060. 5 Wu C T, Chang J. Synthesis and apatite-formation ability of akermanite [J]. Mater Lett,2004,58(19):2415. 6 Chen Xianchun, Yin Guangfu, Ou Jun, et al. In vitro bioactivity of merwinite prepared by sol-gel process [J]. J Funct Mater,2007,38(3):435(in Chinese). 陈显春, 尹光福, 欧俊, 等. 溶胶-凝胶法制备镁蔷薇辉石的体外生物活性研究[J]. 功能材料,2007,38(3):435. 7 Ou Jun, Yin Guangfu, Zhu Hongyang, et al. Bioactivity of merwinite ceramic [J]. J Guilin University of Technology,2007,27(1):97(in Chinese). 欧俊, 尹光福, 朱宏扬, 等. 镁蔷薇辉石的生物活性[J]. 桂林工学院学报,2007,27(1): 97. 8 Cao Nana, Zhang Wandong, Wang Yonglan. Wet-process preparation technique of hydroxyapatite and progress of its application research [J]. Inorg Chem Ind,2012,44(12):9(in Chinese). 曹娜娜, 张万东, 王永兰. 羟基磷灰石湿法制备技术及应用研究进展[J]. 无机盐工业,2012,44(12):9. 9 Zhao Xinyu, Zhu Yingjie, Zhao Jing, et al. Hydroxyapatite na-nosheet-assembled microspheres: Hemoglobin-templated synthesis and adsorption for heavy metal ions [J]. J Colloid Interface Sci,2014,46:11. 10 Wang Yanli, Dong Yinsheng, Liu Bin, et al. Effect of particle size of raw material on hydroxyapatite synthesis via the precipitation method based on Ca(OH)2-H3PO4 system [J]. J Chin Ceram Soc,2008,36(3):373(in Chinese). 王艳莉, 董寅生, 刘斌, 等. 氢氧化钙-磷酸体系在沉淀法合成羟基磷灰石过程中原料粒度的影响[J]. 硅酸盐学报,2008,36(3):373. 11 Lai Zhenyu, Qian Jueshi, Lu Zhongyuan, et al. Simulated radioactive incineration ash solidification by magnesium phosphate cement [J]. J Chin Ceram Soc,2012,40(2):221(in Chinese). 赖振宇, 钱觉时, 卢忠远, 等. 磷酸镁水泥固化模拟放射性焚烧灰[J]. 硅酸盐学报,2012,40(2):221. 12 Akemi Yasukawa, Takashi Yokoyama, Kazuhiko Kandori, et al. Reaction of calcium hydroxyapatite with Cd2+ and Pb2+ ions [J]. Colloids Surf A,2007,299(1-3):203. 13 Zhu Zhiliang, Li Ling, Zhang Hua, et al. Adsorption of lead and cadmium on Ca-deficient hydroxyapatite [J]. Separat Sci Technol,2010,45(2):262. 14 Jin Mantong. Immobilizaion of heavy metals in municipal solid waste incineration (MSWI) fly ash with geopolymer [D].Nanjing:Nanjing University of Science and Technology,2011(in Chinese). 金漫彤. 地聚合物固化生活垃圾焚烧飞灰中重金属的研究[D]. 南京: 南京理工大学,2011. 15 Xu Jianzhong, Zhou Yunlong, Tang Ranxiao. Study on the solidification of heavy metals by fly ash based geopolymers [J]. J Build Mater,2006,9(3):341(in Chinese). 徐建中,周云龙,唐然肖.地聚合物水泥固化重金属的研究[J]. 建筑材料学报,2006,9(3):341. 16 Yan Y, Dong X, Sun X, et al. Conversion of waste FGD gypsum into hydroxyapatite for removal of Pb2+ and Cd2+ from wastewater [J]. Colloid Interface Sci,2014,429:68.
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