Electric Power ›› 2021, Vol. 54 ›› Issue (3): 191-196.DOI: 10.11930/j.issn.1004-9649.201907031
Previous Articles Next Articles
YAN Min, ZHANG Yang, GUO Bowen, ZHU Yue
Received:
2019-07-10
Revised:
2020-05-07
Online:
2021-03-05
Published:
2021-03-17
YAN Min, ZHANG Yang, GUO Bowen, ZHU Yue. Analysis on the Optimization of SCR Denitrification System Based on Life Cycle Cost[J]. Electric Power, 2021, 54(3): 191-196.
[1] FORZATTI P. Present status and perspective in de-NOx SCR catalysis[J]. Applied Catalysis A: General, 2001, 222(1/2): 221-236. [2] 周建新, 喻聪, 江晓明, 等. 燃煤机组SCR脱硝催化剂性能评价与寿命管理系统[J]. 中国电力, 2015, 48(4): 11-15 ZHOU Jianxin, YU Cong, JIANG Xiaoming. System for performance evaluation and lifetime management of SCR DeNOx catalysts in coal-fired power plants[J]. Electric Power, 2015, 48(4): 11-15 [3] 沈伯雄, 张浩浩, 吴撼明, 等. SCR烟气脱硝催化剂V-W-TiO2失活预测模型[J]. 热力发电, 2017, 46(9): 24-30 SHEN Boxiong, ZHANG Haohao, WU Hanming, et al. Deactiviation prediction model for flue gas denitration catalyst V-W-TiO2[J]. Thermal Power Generation, 2017, 46(9): 24-30 [4] 《电力工程造价手册》编写组. 电力工程造价手册[M]. 北京: 中国水利水电出版社, 2010. [5] 胡洋洋. 燃煤电厂超低排放改造项目全寿命周期成本管理研究[D]. 北京: 华北电力大学, 2017. HU Yangyang. Research on the life cycle cost management of ultra-low emission reconstruction project of coal fired power plant[D].Beijing: North China Electric Power University, 2017. [6] 游磊, 张雪莹, 王鹏宇, 等. 基于全生命周期成本的铜或铝芯电缆的选择方法[J]. 中国电力, 2018, 51(4): 168-174 YOU Lei, ZHANG Xueying, WANG Pengyu, et al. Selection method between copper and aluminum power cable by life cycle cost[J]. Electric Power, 2018, 51(4): 168-174 [7] 田鑫, 石永锋, 方继辉, 等. 基于全寿命周期成本理论的燃气轮机进气系统优化研究[J]. 热力发电, 2018, 47(7): 46-51 TIAN Xin, SHI Yongfeng, FANG Jihui, et al. Research on air intake system optimization of gas turbine based on life cycle cost theory[J]. Thermal Power Generation, 2018, 47(7): 46-51 [8] 陈茜, 张建华, 李晓黎, 等. 基于全寿命周期的电网工程项目成本分析[J]. 现代电力, 2011, 28(5): 80-84 CHEN Qian, ZHANG Jianhua, LI Xiaoli, et al. Research on investment of power grid project based on life cycle[J]. Modern Electric Power, 2011, 28(5): 80-84 [9] 张远, 王佳. 全寿命周期成本技术在电力行业中的应用[J]. 电源学报, 2013, 4: 26-29 ZHANG Yuan, WANG Jia. Application of life cycle cost technology in the power industry[J]. Journal of Power Supply, 2013, 4: 26-29 [10] DEBABRATAL, GOKUL A. Life cycle cost of electricity generation from biomass gasifier[J]. Journal of Energy and Power Engineering, 2013(11): 2060-2067. [11] 冯前伟, 张杨, 王丰吉, 等. 现役燃煤机组SCR烟气脱硝装置运行现状分析[J]. 中国电力, 2017, 49(4): 157-161 FENG Qianwei, ZHANG Yang, WANG Fengji, et al. Analysis on operation status of SCR facilities in active coal-fired units[J]. Electric Power, 2017, 49(4): 157-161 [12] 郦建国, 朱法华, 孙雪丽. 中国火电大气污染防治现状及挑战[J]. 中国电力, 2018, 51(6): 2-10 LI Jianguo, ZHU Fahua, SUN Xueli. Current status and challenges of atmospheric pollution prevention and control of thermal power plants in china[J]. Electric Power, 2018, 51(6): 2-10 [13] 张军, 姚杰, 庄柯, 等. 火电厂SCR脱硝催化剂质量现状[J]. 中国电力, 2017, 50(10): 140-143 ZHANG Jun, YAO Jie, ZHUANG Ke, et al. Current status of the SCR DeNOx catalyst quality for thermal power plants[J]. Electric Power, 2017, 50(10): 140-143 [14] 雷鉴琦. 降低燃煤机组SCR脱硝系统催化剂磨损的流场优化[J]. 中国电力, 2018, 51(7): 151-156 LEI Jianqi. Flow field optimization on the catalyst layer breakage failure of the SCR-DeNOx system for a coal-fired power plant[J]. Electric Power, 2018, 51(7): 151-156 [15] 田原润, 马剑宇. 1000 MW机组烟气脱硝系统烟道流场优化[J]. 热力发电, 2018, 47(6): 50-56 TIAN Yuanrun, MA Jianyu. Flue flow field optimization of flue gas denitration system in 1000 MW[J]. Thermal power generation, 2018, 47(6): 50-56 [16] 雷嗣远, 孔凡海, 王乐乐, 等. 燃煤电厂SCR脱硝催化剂磨损诊断及对策研究[J]. 中国电力, 2018, 51(1): 158-163 LEI Siyuan, KONG Fanhai, WANG Lele, et al. Diagnosis and countermeasures of SCR denitration catalyst abrasion in coal-fired power plants[J]. Electric Power, 2018, 51(1): 158-163 [17] 杜振, 杨立强, 晏敏, 等. SCR脱硝催化剂全过程管理模式的构建与实施[J]. 中国电力, 2016, 49(4): 12-22 DU Zhen, YANG Liqiang, YAN Min, et al. Construction and implementation of the whole process management for SCR denitration catalyst[J]. Electric Power, 2016, 49(4): 12-22 [18] 董长青, 马帅, 傅玉, 等. 火电厂SCR脱硝催化剂寿命预估研究[J]. 华北电力大学学报, 2016, 43(3): 64-68 DONG Changqing, MA Shuai, FU Yu, et al. Study on life prediction of SCR denitrification catalyst in thermal power plants[J]. Journal of North China Electric Power University, 2016, 43(3): 64-68 [19] 赵瑞, 刘毅, 廖海燕, 等. 火电厂脱硝催化剂寿命管理现状及发展趋势[J]. 洁净煤技术, 2015, 21(2): 134-138 ZHAO Rui, LIU Yi, LIAO Haiyan, et al. Status and development tendency of denitration catalyst life management in thermal power plant[J]. Clean Coal Technology, 2015, 21(2): 134-138 [20] 傅玉, 陆强, 唐诗洁, 等. SCR脱硝催化剂寿命管理研究[J]. 中国电力, 2018, 51(3): 162-169 FU Yu, LU Qiang, TANG Shijie, et al. Study on life management of the SCR Denitrification catalyst[J]. Electric Power, 2018, 51(3): 162-169 |
[1] | WANG Jinfeng, LI Jinpeng, XU Yinliang, LIU Haitao, HE Jinxiong, XU Jianyuan. Distributed Optimization for VPP and Distribution Network Operation Considering Uncertainty and Green Certificate Market [J]. Electric Power, 2025, 58(4): 21-30, 192. |
[2] | Mingbing LI, Qiang LI, Xiyang GUAN, Haoyang ZHOU, Rui LU, Yankun FENG. Market Oriented Low-Carbon Optimal Scheduling of Virtual Power Plants Considering Multiple User-Side Resources Coordination [J]. Electric Power, 2025, 58(2): 66-76. |
[3] | 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. |
[4] | Ke YANG, Dong WANG, Da LI, Wangjun ZHANG, Ga XIANG, Jun LI. Network Security Risk Assessment Index System and Calculation for Virtual Power Plant [J]. Electric Power, 2024, 57(8): 130-137. |
[5] | Hai QIN, Sheng CHEN, Honglue ZHANG, Tian XIA, Qinfeng MA, Zhanyu DUAN, Wei YAN. Time-based Equivalent Method for Reactive Power Regulation Capacity of Grid-connected Photovoltaic Plant [J]. Electric Power, 2024, 57(2): 27-33. |
[6] | Zhongkai YI, Langbo HOU, Ying XU, Yongfeng WU, Zhimin LI, Junfei WU, Teng FENG, Liu HAN. Aggregation and Operation Key Technology of Virtual Power Plant with Flexible Resources in Electricity Market Environment: Review [J]. Electric Power, 2024, 57(12): 82-96. |
[7] | Jinliang ZHANG, Zeping HU. Inventory Optimization Model of Biomass Power Plant Considering Multiple Uncertainties [J]. Electric Power, 2024, 57(12): 157-168. |
[8] | Jiangfeng ZHANG, Song KE, Wenjin CHEN, Tianyu WANG, Keke ZHENG, Jun YANG. Virtual Synchronous Control Frequency Regulation Strategy for Adjustable Self-standby Rate in Photovoltaic Plants [J]. Electric Power, 2024, 57(11): 108-118. |
[9] | Tianqi SONG, Zhipeng LV, Zhenhao SONG, Yunting MA, Zhihui ZHANG, Shan ZHOU, Hao LI. Research and Thinking on the Aggregation and Dispatching Control Framework of Virtual Power Plant's Large Scale Flexible Resources [J]. Electric Power, 2024, 57(1): 2-8. |
[10] | Ying ZHOU, Xuefeng BAI, Yang WANG, Min QIU, Chong SUN, Yajie WU, Bin LI. Analysis and Evolution Trend of Temperature-Sensitive Loads for Virtual Power Plant Operation [J]. Electric Power, 2024, 57(1): 9-17. |
[11] | Rui ZHU, Yiding OU, Xiaotian LI, Xingyu LEI, Yuqing ZHOU, Poyang ZHANG, Rui OU. Evaluation of Virtual Power Plant Flexibility Resources Based on External Characteristic Equivalence [J]. Electric Power, 2024, 57(1): 30-39. |
[12] | Mengfei XIE, Gaoquan MA, Bin LIU, Zhenning PAN, Yunfeng SHANG. Virtual Power Plant Quotation Strategy Based on Information Gap Decision Theory [J]. Electric Power, 2024, 57(1): 40-50. |
[13] | Yunchen FENG, Heping JIA, Min YAN, Genzhu LI, Le LIU, Dunnan LIU. Operation Optimization Method for Virtual Power Plant Participating in Clean Heating Based on Time-of-Use Tariff of Wind Power [J]. Electric Power, 2024, 57(1): 51-60. |
[14] | Ting ZHOU, Yudong TAN, Jin SUN, Ming WEN, Jing LIAO, Yang LI, Gong LIU, Dunnan LIU. Collaborative Optimization Strategy for Virtual Power Plant Participating in Energy and Ancillary Service Market [J]. Electric Power, 2024, 57(1): 61-70. |
[15] | Shuhan ZHANG, Qian AI, Xiaolu LI, Di WANG. Improved PBFT Consensus Mechanism for Multi-virtual Power Plant Transactions [J]. Electric Power, 2024, 57(1): 71-81, 157. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||