BULLETIN OF THE CHINESE CERAMIC SOCIETY ›› 2023, Vol. 42 ›› Issue (10): 3594-3604.
• Solid Waste and Eco-Materials • Previous Articles Next Articles
SUN Qina1,2, ZHANG Yihan2, XU Jiaqian2, MA Jun2, CAO Haiying3
Received:
2023-06-01
Revised:
2023-07-25
Online:
2023-10-15
Published:
2023-10-17
[1] 电力规划设计总院. 中国能源发展报告-2022[M]. 北京: 人民日报出版社, 2022. China Electric Power Planning and Engineering Institute. China energy development report 2022[M]. Beijing: People’s Daily Publishing House, 2022 (in Chinese). [2] YAO Z T, JI X S, SARKER P K, et al. A comprehensive review on the applications of coal fly ash[J]. Earth-Science Reviews, 2015, 141: 105-121. [3] 李金惠, 刘丽丽, 许晓芳. 2019年固体废物处理利用行业发展评述及展望[J]. 中国环保产业, 2020(3): 15-18. LI J H, LIU L L, XU X F. Review and prospect of the development of solid waste treatment and utilization industry in 2019[J]. China Environmental Protection Industry, 2020(3): 15-18 (in Chinese). [4] XU G, SHI X M. Characteristics and applications of fly ash as a sustainable construction material: a state-of-the-art review[J]. Resources, Conservation and Recycling, 2018, 136: 95-109. [5] JUENGER M C G, SNELLINGS R, BERNAL S A. Supplementary cementitious materials: new sources, characterization, and performance insights[J]. Cement and Concrete Research, 2019, 122: 257-273. [6] 施惠生, 方泽锋. 粉煤灰对水泥浆体早期水化和孔结构的影响[J]. 硅酸盐学报, 2004, 32(1): 95-98. SHI H S, FANG Z F. Influence of fly ash on early hydration and pore structure of cement pastes[J]. Journal of the Chinese Ceramic Society, 2004, 32(1): 95-98 (in Chinese). [7] 中华人民共和国生态环境部. 2020年全国大、中城市固体废物污染环境防治年报[R]. 北京: 中华人民共和国生态环境部, 2020. Ministry of Ecology and Environment of the People’s Republic of China. Annual report on environmental prevention and control of solid waste pollution in large and medium-sized cities in 2020[R]. Beijing: Ministry of Ecology and Environment of the People’s Republic of China, 2020 (in Chinese). [8] 孙道胜, 王爱国, 胡普华. 地质聚合物的研究与应用发展前景[J]. 材料导报, 2009, 23(7): 61-65. SUN D S, WANG A G, HU P H. Research of geopolymer and its applications and development prospects[J]. Materials Review, 2009, 23(7): 61-65 (in Chinese). [9] VAN DEVENTER J S J, PROVIS J L, DUXSON P. Technical and commercial progress in the adoption of geopolymer cement[J]. Minerals Engineering, 2012, 29: 89-104. [10] 翁履谦, 宋申华. 新型地质聚合物胶凝材料[J]. 材料导报, 2005, 19(2): 67-68+80. WENG L Q, SONG S H. Development of novel cementious geopolymers[J]. Materials Review, 2005, 19(2): 67-68+80 (in Chinese). [11] REN B, ZHAO Y L, BAI H Y, et al. Eco-friendly geopolymer prepared from solid wastes: a critical review[J]. Chemosphere, 2021, 267: 128900. [12] BAJPAI R, CHOUDHARY K, SRIVASTAVA A, et al. Environmental impact assessment of fly ash and silica fume based geopolymer concrete[J]. Journal of Cleaner Production, 2020, 254: 120147. [13] SINGH N B, MIDDENDORF B. Geopolymers as an alternative to Portland cement: an overview[J]. Construction and Building Materials, 2020, 237: 117455. [14] 谢和平, 任世华, 谢亚辰, 等. 碳中和目标下煤炭行业发展机遇[J]. 煤炭学报, 2021, 46(7): 2197-2211. XIE H P, REN S H, XIE Y C, et al. Development opportunities of the coal industry towards the goal of carbon neutrality[J]. Journal of China Coal Society, 2021, 46(7): 2197-2211 (in Chinese). [15] 胡鞍钢. 中国实现2030年前碳达峰目标及主要途径[J]. 北京工业大学学报(社会科学版), 2021, 21(3): 1-15. HU A G. China’s goal of achieving carbon peak by 2030 and its main approaches[J]. Journal of Beijing University of Technology (Social Sciences Edition), 2021, 21(3): 1-15 (in Chinese). [16] TIAN Q Z, PAN Y H, BAI Y C, et al. A bibliometric analysis of research progress and trends on fly ash-based geopolymer[J]. Materials, 2022, 15(14): 4777. [17] 陈 悦, 陈超美, 刘则渊, 等. CiteSpace知识图谱的方法论功能[J]. 科学学研究, 2015, 33(2): 242-253. CHEN Y, CHEN C M, LIU Z Y, et al. The methodology function of CiteSpace mapping knowledge domains[J]. Studies in Science of Science, 2015, 33(2): 242-253 (in Chinese). [18] CHEN C M. CiteSpace II: detecting and visualizing emerging trends and transient patterns in scientific literature[J]. Journal of the American Society for Information Science and Technology, 2006, 57(3): 359-377. [19] LI Z P, XU G, SHI X M. Reactivity of coal fly ash used in cementitious binder systems: a state-of-the-art overview[J]. Fuel, 2021, 301: 121031. [20] 彭玉清, 郭荣鑫, 林志伟, 等. 粉煤灰地聚合物力学性能影响因素研究综述[J]. 硅酸盐通报, 2021, 40(3): 858-866. PENG Y Q, GUO R X, LIN Z W, et al. Review on influencing factors of mechanical properties of fly ash geopolymer[J]. Bulletin of the Chinese Ceramic Society, 2021, 40(3): 858-866 (in Chinese). [21] SAJAN P, JIANG T Y, LAU C, et al. Combined effect of curing temperature, curing period and alkaline concentration on the mechanical properties of fly ash-based geopolymer[J]. Cleaner Materials, 2021, 1: 100002. [22] WANG L, JIN M M, GUO F X, et al. Pore structural and fractal analysis of the influence of fly ash and silica fume on the mechanical property and abrasion resistance of concrete[J]. Fractals, 2021, 29(2): 2140003. [23] MA Y, HU J, YE G. The pore structure and permeability of alkali activated fly ash[J]. Fuel, 2013, 104: 771-780. [24] SCHMÜCKER M, MACKENZIE K J D. Microstructure of sodium polysialate siloxo geopolymer[J]. Ceramics International, 2005, 31(3): 433-437. [25] 余润翔, 张 彤, 杨 岩, 等. 煤气化粗渣-粉煤灰基地质聚合物的制备与性能[J]. 硅酸盐通报, 2022, 41(12): 4318-4323. YU R X, ZHANG T, YANG Y, et al. Preparation and properties of coal gasification coarse slag-fly ash based geopolymer[J]. Bulletin of the Chinese Ceramic Society, 2022, 41(12): 4318-4323 (in Chinese). [26] 袁学锋, 王 花. 镍渣-粉煤灰基地质聚合物力学性能及耐久性能的研究[J]. 金属矿山, 2022(11): 259-264. YUAN X F, WANG H. Study on mechanical properties and durability of nickel slag-fly ash based geopolymer[J]. Metal Mine, 2022(11): 259-264 (in Chinese). [27] LAN T, MENG Y, JU T Y, et al. Synthesis and application of geopolymers from municipal waste incineration fly ash (MSWI FA) as raw ingredient: a review[J]. Resources, Conservation and Recycling, 2022, 182: 106308. [28] CHEN Y C, CHEN F Y, ZHOU F, et al. Early solidification/stabilization mechanism of heavy metals (Pb, Cr and Zn) in Shell coal gasification fly ash based geopolymer[J]. Science of the Total Environment, 2022, 802: 149905. [29] SHUBHAM J, NEMKUMAR B, TOM T. Conditioning of simulated cesium radionuclides in NaOH-activated fly ash-based geopolymers[J]. Journal of Cleaner Production, 2022, 380: 134984. [30] DINDI A, QUANG D V, VEGA L F, et al. Applications of fly ash for CO2 capture, utilization, and storage[J]. Journal of CO2 Utilization, 2019, 29: 82-102. [31] 谢静怡, 赵晟锌, 陈忠林, 等. 粉煤灰基吸附剂去除水中重金属的研究进展[J]. 环境科学与技术, 2023, 46(增刊1): 116-124. XIE J Y, ZHAO S X, CHEN Z L, et al. Research progress on preparation of adsorbent based on fly ash and its application in the removal of heavy metals in water[J]. Environmental Science & Technology, 2023, 46(supplement 1): 116-124 (in Chinese). [32] HYNES N R J, KUMAR J S, KAMYAB H, et al. Modern enabling techniques and adsorbents based dye removal with sustainability concerns in textile industrial sector: a comprehensive review[J]. Journal of Cleaner Production, 2020, 272: 122636. [33] JOSEPH I V, TOSHEVA L, DOYLE A M. Simultaneous removal of Cd(II), Co(II), Cu(II), Pb(II), and Zn(II) ions from aqueous solutions via adsorption on FAU-type zeolites prepared from coal fly ash[J]. Journal of Environmental Chemical Engineering, 2020, 8(4): 103895. [34] 朱颖灿, 张祖华, 刘 意, 等. 地质聚合物基废水处理吸附材料研究进展[J]. 硅酸盐通报, 2020, 39(8): 2458-2467. ZHU Y C, ZHANG Z H, LIU Y, et al. Geopolymer-based adsorbents for wastewater treatment: a review[J]. Bulletin of the Chinese Ceramic Society, 2020, 39(8): 2458-2467 (in Chinese). [35] 王英明, 姜 亮, 董彦博, 等. 粉煤灰基地质聚合物制备及其对Cu2+的吸附性能[J]. 洁净煤技术, 2018, 24(5): 120-125+131. WANG Y M, JIANG L, DONG Y B, et al. Preparation condition and Cu2+ adsorption properties of fly ash based geopolymer[J]. Clean Coal Technology, 2018, 24(5): 120-125+131 (in Chinese). [36] ROŻEK P, KRÓL M, MOZGAWA W. Geopolymer-zeolite composites: a review[J]. Journal of Cleaner Production, 2019, 230: 557-579. [37] HE P Y, ZHANG Y J, ZHANG X M, et al. Diverse zeolites derived from a circulating fluidized bed fly ash based geopolymer for the adsorption of lead ions from wastewater[J]. Journal of Cleaner Production, 2021, 312: 127769. [38] SARKAR C, BASU J K, SAMANTA A N. Removal of Ni2+ ion from waste water by geopolymeric adsorbent derived from LD slag[J]. Journal of Water Process Engineering, 2017, 17: 237-244. [39] 宋学锋, 王 楠. 原位合成LDHs@地聚物复合材料的矿物组成及其除磷效果[J/OL]. 材料导报, 2024(8): 1-12 [2023-05-20]. http://kns.cnki.net/kcms/detail/50.1078.TB.20230324.1811.031.html. SONG X F, WANG N. Mineral composition and phosphorus removal effect of in-situ synthesize LDHs@geopolymer composites[J/OL]. Materials Reports, 2024(8): 1-12 [2023-05-20]. http://kns.cnki.net/kcms/detail/50.1078.TB.20230324.1811.031.html (in Chinese). [40] 丁 浩, 宋学锋. 自支撑粉煤灰基多孔吸附材料的制备与NH+4-N吸附效果[J]. 材料科学与工程学报, 2022, 40(5): 841-847+900. DING H, SONG X F. Preparation of self-supporting fly ash-based porous adsorption materials and adsorption effect of NH+4-N[J]. Journal of Materials Science and Engineering, 2022, 40(5): 841-847+900 (in Chinese). [41] 易龙生, 刘 苗, 吴 倩. 镧改性粉煤灰地质聚合物泡沫材料吸附含磷废水研究[J]. 矿冶工程, 2020, 40(6): 103-107. YI L S, LIU M, WU Q. Adsorption of phosphorus-containing wastewater by lanthanum modified fly ash geopolymer foam material[J]. Mining and Metallurgical Engineering, 2020, 40(6): 103-107 (in Chinese). [42] 李巧云, 贺 艳. 粉煤灰基地质聚合物微球吸附水中铜(Ⅱ)的研究[J]. 无机盐工业, 2022, 54(12): 113-118. LI Q Y, HE Y. Study on adsorption of copper (Ⅱ) in water by fly ash-based geopolymer microspheres[J]. Inorganic Chemicals Industry, 2022, 54(12): 113-118 (in Chinese). [43] LIU Y, YAN C J, ZHANG Z H, et al. A comparative study on fly ash, geopolymer and faujasite block for Pb removal from aqueous solution[J]. Fuel, 2016, 185: 181-189. [44] ALI SIYAL A, SHAMSUDDIN M R, RABAT N E, et al. Fly ash based geopolymer for the adsorption of anionic surfactant from aqueous solution[J]. Journal of Cleaner Production, 2019, 229: 232-243. [45] ZHANG Y J, LIU L C. Fly ash-based geopolymer as a novel photocatalyst for degradation of dye from wastewater[J]. Particuology, 2013, 11(3): 353-358. [46] ALI SIYAL A, SHAMSUDDIN M R, LOW A. Fly ash based geopolymer for the adsorption of cationic and nonionic surfactants from aqueous solution-A feasibility study[J]. Materials Letters, 2021, 283: 128758. [47] AÇIŞLI Ö, ACAR İ, KHATAEE A. Preparation of a surface modified fly ash-based geopolymer for removal of an anionic dye: parameters and adsorption mechanism[J]. Chemosphere, 2022, 295: 133870. [48] 昌 姗, 崔学民, 贺 艳, 等. 碳酸酐酶在地质聚合物微球表面的固定及活性表征[J]. 材料导报, 2023, 37(3): 257-263. CHANG S, CUI X M, HE Y, et al. Immobilization and activity characterization of carbonic anhydrase on the surface of geopolymer microspheres[J]. Materials Reports, 2023, 37(3): 257-263 (in Chinese). [49] BALACHANDRA A M, NASTARAN A, DARSANASIRI A G N D, et al. Landfilled coal ash for carbon dioxide capture and its potential as a geopolymer binder for hazardous waste remediation[J]. Journal of Environmental Chemical Engineering, 2021, 9(4): 105385. [50] FREIRE A L, MOURA-NICKEL C D, SCARATTI G, et al. Geopolymers produced with fly ash and rice husk ash applied to CO2 capture[J]. Journal of Cleaner Production, 2020, 273: 122917. [51] SATHSARANI H B S, SAMPATH K H S M, RANATHUNGA A S. Utilization of fly ash-based geopolymer for well cement during CO2 sequestration: a comprehensive review and a meta-analysis[J]. Gas Science and Engineering, 2023, 113: 204974. [52] LI Z, CHEN R, ZHANG L Y. Utilization of chitosan biopolymer to enhance fly ash-based geopolymer[J]. Journal of Materials Science, 2013, 48(22): 7986-7993. |
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