Electric Power ›› 2021, Vol. 54 ›› Issue (6): 153-158.DOI: 10.11930/j.issn.1004-9649.202003232
Previous Articles Next Articles
DU Zhen1, WANG Zhidong2, JIANG Jianping1, ZHU Yue1
Received:
2020-03-30
Revised:
2020-10-12
Published:
2021-06-05
Supported by:
DU Zhen, WANG Zhidong, JIANG Jianping, ZHU Yue. Analysis on PM2.5 Emission Characteristics of Wet Desulfurization System[J]. Electric Power, 2021, 54(6): 153-158.
[1] 武亚凤, 陈建华, 蒋靖坤, 等. 燃煤电厂细颗粒物排放粒径分布特征[J]. 环境科学研究, 2017, 30(8):1174-1183 WU Yafeng, CHEN Jianhua, JIANG Jingkun, et al. Size distribution characteristics of fine particles from a coal-fired power plant[J]. Research of Environmental Sciences, 2017, 30(8):1174-1183 [2] 翁卫国, 严佩, 邬成贤, 等. 湿法脱硫系统对烟气中可吸入颗粒物特性影响的实验研究[J]. 环境污染与防治, 2015, 37(1):20-24, 30 WENG Weiguo, YAN Pei, WU Chengxian, et al. Experimental research on properties of inhalable particulate matters affected by wet flue gas dedulfurization system[J]. Environmental Pollution & Control, 2015, 37(1):20-24, 30 [3] 王珲, 宋蔷, 姚强. 电厂湿法脱硫系统对烟气中细颗粒物脱除作用的实验研究[J]. 中国电机工程学报, 2008, 28 (5):1-7 WANG Hui, SONG Qiang, YAO Qiang. Experimental study on removal effect of wet flue gas desulfurization system on fine particles from a coal-fired power plant[J]. Proceedings of the CSEE, 2008, 28 (5):1-7 [4] 朱杰, 许月阳, 姜岸, 等. 超低排放下不同湿法脱硫协同控制颗粒物性能测试与研究[J]. 中国电力, 2017, 50(1):168-172 ZHU Jie, XU Yueyang, JIANG An, et al. Test and study on performance of wet FGD coordinated particulate matter control for ultra-low pollutants emission[J]. Electric Power, 2017, 50(1):168-172 [5] LI Zhen, JIANG Jingkun, MA Zizhen, et al. Influence of flue gas desulfurization (FGD) installations on emission characteristics of PM2.5 from coal-fired power plants equipped with selective catalytic reduction[J]. Environmental Pollution, 2017, 230(0):655-662. [6] 莫华, 朱法华, 王圣. 火电行业大气污染物排放对PM2.5 的贡献及减排对策[J]. 中国电力, 2013, 46(8):1-6 MO Hua, ZHU Fahua, WANG Sheng. Contribution to PM2.5 of atmospheric pollutant emission from thermal power sector and emission reduction countermeasures[J]. Electric Power, 2013, 46(8):1-6 [7] 杨林军, 史雅娟, 骆律源. 燃煤烟气SCR 脱硝系统中细颗粒物排放特性综述[J]. 中国电机工程学报, 2016, 36(16):4342-4348 YANG Linjun, SHI Yajuan, LUO Lüyuan. Review of emission characteristics of fine particles during coal-fired SCR deNOx process[J]. Proceedings of the CSEE, 2016, 36(16):4342-4348 [8] 王圣, 朱法华, 王慧敏, 等. 基于实测的燃煤电厂细颗粒物排放特性分析与研究[J]. 环境科学学报, 2011, 31(3):630-635 WANG Sheng, ZHU Fahua, WANG Huimin, et al. Fine particle emission characteristics from coal-fired power plants based on field tests[J]. Acta Scientiae Circumstantiae, 2011, 31(3):630-635 [9] NIELSEN M T, LIVBJERG H, et al. Formation and emission of fine particles from two coal-fired power plants[J]. Combustion Science and Technology, 2002, 174:79-113. [10] 周科, 聂剑平, 张广才, 等. 湿法烟气脱硫燃煤锅炉烟气颗粒物的排放特性研究[J]. 热力发电, 2013, 42(8):81-85, 89 ZHOU Ke, NIE Jianping, ZHANG Guangcai, et al. Emission characteristics of particulate matter from coal-fired plant equipped with WFGD[J]. Thermal Power Generation, 2013, 42(8):81-85, 89 [11] 潘丹萍, 吴昊, 鲍静静, 等. 电厂湿法脱硫系统对烟气中细颗粒物及SO3 酸雾脱除作用研究[J]. 中国电机工程学报, 2016, 36(16):4356-4362 PAN Danping, WU Hao, BAO Jingjing, et al. Removal effect of wet flue gas desulfurization system on fine particles and SO3 acid mist from coal-fired power plants[J]. Proceedings of the CSEE, 2016, 36(16):4356-4362 [12] 魏宏鸽, 叶伟平, 柴磊, 等. 湿法脱硫系统除尘效果分析与提效措施[J]. 中国电力, 2015, 48(8):33-36 WEI Hongge, YE Weiping, CHAI Lei, et al. Analysis of dust removal effect in wet-FGD system and its efficiency-enhancement techniques[J]. Electric Power, 2015, 48(8):33-36 [13] YAN Jinpei, BAO Jingjing, YANG Linjun. The formation and removal characteristics of aerosols in ammonia-based wet flue gas desulfurization[J]. Journal of Aerosol Science, 2011, 42:604-614. [14] 颜金培, 杨林军, 鲍静静. 湿法脱硫烟气中细颗粒物的变化特性[J]. 东南大学学报(自然科学版), 2011, 41(2):387-392 YAN Jinpei, YANG Linjun, BAO Jingjing. Impact property on fine particles from coal combustion in wet flue gas desulfurization process[J]. Journal of Southeast University(Natural Science Edittion), 2011, 41(2):387-392 [15] 续鹏, 薛志钢, 杨巨生, 等. 燃煤电厂湿法脱硫对细颗粒物的脱除特性[J]. 环境科学研究, 2017, 30(5):784-791 XU Peng, XUE Zhigang, YANG Jusheng, et al. Removal characteristics of fin particles from coal-fired power plants by wet flue gas desulphurization[J]. Research of Environmental Sciences, 2017, 30(5):784-791 [16] PAN Danping, YU Ran, BAO Jingjing, et al. Emission and formation characteristics of aerosols from ammonia-based wet flue gas desulfurization[J]. Energy and Fuels, 2016, 30(1):666-673. [17] WU Hao, PAN Danping, HUANG Rongting, et al. Abatement of fine particle emission by heterogeneous vapor condensation during wet limestone-gypsum flue gas desulfurization[J]. Energy and Fuels, 2016, 30(7):6103-6109. [18] 潘丹萍. 石灰石-石膏湿法脱硫过程中细颗粒物转化机制研究[D]. 南京:东南大学, 2017. PAN Danping. Study on fine particle transfer mechanism during the limestone-gypsum desulfurization process[D]. Nanjing:Southeast University, 2015. [19] 颜金培, 杨林军, 张霞, 等. 凝结洗涤塔脱除燃煤超细颗粒实验研究[J]. 中国电机工程学报, 2008, 28(23):8-13 YAN Jinpei, YANG Linjun, ZHANG Xia, et al. Experimental study on removal of ultrafine particles from coal combustion using condensation wet scrubber[J]. Proceedings of the CSEE, 2008, 28(23):8-13 [20] 杜谦, 马春元, 董勇, 等. 循环浆液pH值对湿法烟气脱硫过程的影响[J]. 热能动力工程, 2006, 21(5):491-495 DU Qian, MA Chunyuan, DONG Yong, et al. The impact of the pH value of circulating slurry on a wet flue-gas desulfuration process[J]. Journal of Engineering for Thermal Energy and Power, 2006, 21(5):491-495 [21] 李存杰, 张军, 张涌新, 等. 基于pH 值分区控制的湿法烟气脱硫增效研究[J]. 环境科学学报, 2015, 35(12):4081-4087 LI Cunjie, ZHANG Jun, ZHANG Yongxin, et al. Removal efficiency of high sulfur dioxide in WFGD based on dual-pH value control[J]. Acta Scientiae Circumstantiae, 2015, 35(12):4081-4087 |
[1] | Hui WU, Ziwei ZOU, Fengming XIAO, Jie LIU, Chenpeng MIN, Zhuoqun XIA. Defense Method for Smart Grid GPS Spoofing Attack Based on BiLSTM and Self-attention Mechanism Generative Adversarial Network [J]. Electric Power, 2024, 57(9): 61-70. |
[2] | Li FENG, Lianmei ZHANG, Jiajia WEI, Changhong DENG, Guo LI, Jiayue YIN. Development & Thinking of Offshore Wind Power Based on Life Cycle Economic Evaluation [J]. Electric Power, 2024, 57(9): 80-93. |
[3] | Yongsheng HE, Dan LUO, Zongxiang LU. Integration of Digital Twin Model System for Ultra-high Voltage Converter Transformer Valve-Side Bushing [J]. Electric Power, 2024, 57(6): 165-173. |
[4] | Yunlong WANG, Lu HAN, Shulin LUO, Tao WU. Load Scheduling Optimization of Home Electric Heating Integrated Energy System with Electric Vehicle [J]. Electric Power, 2024, 57(5): 39-49. |
[5] | Shengcun ZHOU, Yi LUO, Xuancheng YI, Yaning WU, Ding LI, Yi XIONG. Transient Stability Assessment of Graph Attention Networks Considering Data Missing [J]. Electric Power, 2024, 57(5): 157-167. |
[6] | Lei YANG, Lianming HUN, Guoqiang ZU, Shujun LI, Xinda LI, Junlong GUO, Yutao ZHANG. Development Status and Standardization of Electric Vehicle Charging Robots [J]. Electric Power, 2024, 57(4): 89-99. |
[7] | Yanmiao HE, Yin HUANG, Xianglian YAN, Zhibing LI. Standardization Research on SF6 Mixed Gas and Eco-Friendly Alternative Gas Equipment [J]. Electric Power, 2024, 57(3): 95-102. |
[8] | Junjie KANG, Chunyang ZHAO, Guopeng ZHOU, Liang ZHAO. A Layout Evaluation Method for Source-Network-Load-Storage and Multi-energy Complementary Projects Based on Entropy Weight and Delphi Method [J]. Electric Power, 2024, 57(12): 120-131. |
[9] | Xinghua HUANG, Han WU, Shichuan CHEN, Yuanliang FAN, Gonglin ZHANG. An Optimization Method for Energy Storage Configuration of Isolated Island Microgrid Considering New Energy Output [J]. Electric Power, 2024, 57(12): 132-138. |
[10] | Zongchao YU, Ming WEN, Xianghua LI, Xintao XIE, Hongming YANG. Effective Development and Management Strategy for Distributed Smart Grids Based on Collective Intelligence [J]. Electric Power, 2024, 57(10): 57-68. |
[11] | REN Dawei, HOU Jinming, XIAO Jinyu, JIN Chen, WU Jiawei. Research on Development Potential and Path of New Energy Storage Supporting Carbon Peak and Carbon Neutrality [J]. Electric Power, 2023, 56(8): 17-25. |
[12] | ZHAO Yue, YAN Gangui, WANG Zhenyang, REN Shuang, WANG Dazhong, GUO Jianyu. Analysis of Sub-synchronous Torsional Vibration of Wind-Thermal Bundling Transmission System via LCC-HVDC [J]. Electric Power, 2023, 56(6): 18-30. |
[13] | WANG Jingbing, ZHANG Fan, CHENG Zhaolu, WANG Jiaxing, ZHOU Xuguang, QI Pengshuai, WEI Yanhui, LI Guochang. Effect and Mechanism of Salt Spray on Electrical Insulation Properties of Silicone Rubber for Cable Accessories [J]. Electric Power, 2023, 56(6): 82-89,100. |
[14] | ZHANG Jie, WANG Hengfeng, LIU Shengchun, WANG Huabiao, WANG Canghai, RAN Yao, WANG Xianmin, MA Yongfei, YAN Wei. Algorithm for Dynamic Reactive Power Optimization of Regional Power Grid Based on Interior Point Method and Neighborhood Search Decoupling Dynamic Programming Method [J]. Electric Power, 2023, 56(2): 59-67. |
[15] | Guoguang ZHENG. Problem Identification and Key Measures to Support the Achievement of Carbon Peak and Carbon Neutrality [J]. Electric Power, 2023, 56(11): 1-8. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||