[1] XU Wenqing, WANG Hairui, ZHU Tingyu, et al. Mercury removal from coal combustion flue gas by modified fly ash[J]. Journal of Environmental Sciences, 2013, 25(2):393-398. [2] 何石鱼, 赵会民, 刘长东, 等. 燃煤汞污染控制研究进展[J]. 中国电力, 2016, 49(2):170-175 HE Shiyu, ZHAO Huimin, LIU Changdong, et al. Overview of mercury removal from coal-fired flue gas[J]. Electric Power, 2016, 49(2):170-175 [3] SEBOR S. Environmental strategies:Strategies for compliance with mercury and air toxics standards[J]. Natural Gas & Electricity, 2014, 31(2):8-13. [4] SELIN H, KEANE S E, WANG S, et al. Linking science and policy to support the implementation of the minamata convention on mercury[J]. Ambio, 2018, 47(2):198-215. [5] RODRÍGUEZ-PÉREZ J, LÓPEZ-ANTÓN M A, DÍAZ-SOMOANO M, et al. Regenerable sorbents for mercury capture in simulated coal combustion flue gas[J]. Journal of Hazardous Materials, 2013, 260:869-877. [6] PAVLISH J H, HAMRE L L, ZHUANG Y. Mercury control technologies for coal combustion and gasification systems[J]. Fuel, 2010, 89(4):838-847. [7] 刘发圣, 夏永俊, 徐锐, 等. 燃煤电厂污染控制设备脱汞效果及汞排放特性试验[J]. 中国电力, 2017, 50(4):162-166 LIU Fasheng, XIA Yongjun, XU Rui, et al. Experimental study on mercury removal effect and mercury emission characteristics of pollution control equipment in coal-fired power plants[J]. Electric Power, 2017, 50(4):162-166 [8] CAO Y, CHENG C, CHEN C, et al. Abatement of mercury emissions in the coal combustion process equipped with a fabric filter baghouse[J]. Fuel, 2008, 87(15/16):3322-3330. [9] WANG Fengyang, WANG Shuxiao, MENG Yang, et al. Mechanisms and roles of fly ash compositions on the adsorption and oxidation of mercury in flue gas from coal combustion[J]. Fuel, 2016, 163:232-239. [10] CUI Jian, DUAN Lunbo, JIANG Ying, et al. Migration and emission of mercury from circulating fluidized bed boilers co-firing petroleum coke and coal[J]. Fuel, 2018, 215:638-646. [11] CAO Yan, GAO Zhengyang, ZHU Jiashun, et al. Impacts of halogen additions on mercury oxidation, in a slipstream selective catalyst reduction (SCR), reactor when burning sub-bituminous coal[J]. Environmental Science & Technology, 2008, 42(1):256-261. [12] WANG Shuxiao, ZHANG Lei, ZHAO Bin, et al. Mitigation potential of mercury emissions from coal-fired power plants in China[J]. Energy & Fuels, 2012, 26(8):4635-4642. [13] 史晓宏, 张翼, 赵瑞, 等. 燃煤电厂烟气汞减排技术研究与实践[J]. 中国电力, 2016, 49(8):135-139 SHI Xiaohong, ZHANG Yi, ZHAO Rui, et al. Research and practice of flue gas mercury reduction technology in coal-fired power plants[J]. Electric Power, 2016, 49(8):135-139 [14] ZHOU Qiang, DUAN Yufeng, ZHU Chun, et al. In-flight mercury removal and cobenefit of SO2 and NO reduction by NH4Br impregnated activated carbon injection in an entrained flow reactor[J]. Energy & Fuels, 2015, 29(12):8118-8125. [15] ZHU Chun, DUAN Yufeng, WU Changyu, et al. Mercury removal and synergistic capture of SO2/NO by ammonium halides modified rice husk char[J]. Fuel, 2016, 172:160-169. [16] SJOSTROM S, DURHAM M, BUSTARD C J, et al. Activated carbon injection for mercury control:Overview[J]. Fuel, 2010, 89(6):1320-1322. [17] 洪亚光, 段钰锋, 朱纯, 等. 载硫椰壳活性炭喷射脱汞实验研究[J]. 工程热物理学报, 2015, 36(5):1135-1138 HONG Yaguang, DUAN Yufeng, ZHU Chun, et al. Experimental study on mercury adsorption of S-impregnated coconut shell activated carbon by duct injection[J]. Journal of Engineering Thermophysics, 2015, 36(5):1135-1138 [18] 周强, 冒咏秋, 段钰锋, 等. 溴素改性活性炭汞吸附特性研究[J]. 工程热物理学报, 2014, 35(12):2531-2534 ZHOU Qiang, MAO Yongqiu, DUAN Yufeng, et al. Studies on mercury adsorption on bromine modified activated carbon[J]. Journal of Engineering Thermophysics, 2014, 35(12):2531-2534 [19] LI Chunfeng, DUAN Yufeng, TANG Hongjian, et al. Mercury emissions monitoring in a coal-fired power plant by using the EPA method 30B based on a calcium-based sorbent trap[J]. Fuel, 2018, 221:171-178. [20] ZENG Hancai, JIN Feng, GUO Jia. Removal of elemental mercury from coal combustion flue gas by chloride-impregnated activated carbon[J]. Fuel, 2004, 83(1):143-146. [21] 赵莉, 刘宇, 吴洋文, 等. 燃煤烟气中零价汞的催化氧化理论研究进展[J]. 中国电力, 2018, 51(3):170-176 ZHAO Li, LIU Yu, WU Yangwen, et al. Review on theoretical research of the catalytic oxidation of Hg0 in coal -fired flue gas[J]. Electric Power, 2018, 51(3):170-176 [22] LI Hailong, WU Changyu, LI Ying, et al. Role of flue gas components in mercury oxidation over TiO2, supported MnOx-CeO2, mixed-oxide at low temperature[J]. Journal of Hazardous Materials, 2012, 243(12):117-123. [23] LI Guoliang, WU Qingru, WANG Shuxiao, et al. The influence of flue gas components and activated carbon injection on mercury capture of municipal solid waste incineration in China[J]. Chemical Engineering Journal, 2017, 326:561-569. [24] 高洪亮, 周劲松, 骆仲泱, 等. SO2对模拟燃煤烟气中汞形态分布影响的实验研究[J]. 环境科学学报, 2004, 24(2):204-209 GAO Hongliang, ZHOU Jinsong, LUO Zhongyang, et al. Effect of sulfur dioxide on the speciation of mercury in flue gases[J]. Acta Scientiae Circumstantiae, 2004, 24(2):204-209 |