Citation: | LUO Yun-fei, LONG Hong-ming, ZHAO Li-ming, ZHOU Jiang-hong, YU Zheng-wei, WANG Yi-fan. Numerical simulation and optimization of the flow in the sintering flue gas circulating hot air hood[J]. Chinese Journal of Engineering, 2022, 44(11): 1852-1859. doi: 10.13374/j.issn2095-9389.2021.01.21.002 |
[1] |
邢奕, 張文伯, 蘇偉, 等. 中國鋼鐵行業超低排放之路. 工程科學學報, 2021, 43(1):1
Xing Y, Zhang W B, Su W, et al. Research of ultra-low emission technologies of the iron and steel industry in China. Chin J Eng, 2021, 43(1): 1
|
[2] |
賀克斌. 打贏藍天保衛戰需要加快鋼鐵行業超低排放改造. 中國環境報, 2019-05-06
He K B. Winning the defense of the blue sky needs to acceleratethe ultra-low emission transformation of the steel industry. China Environ News, 2019-05-06
|
[3] |
李新創. 新時代鋼鐵工業高質量發展之路. 鋼鐵, 2019, 54(1):1 doi: 10.13228/j.boyuan.issn0449-749x.20180264
Li X C. Road map to high-quality development of iron and steel industry in new age. Iron Steel, 2019, 54(1): 1 doi: 10.13228/j.boyuan.issn0449-749x.20180264
|
[4] |
周繼程, 張春霞, 酈秀萍, 等. 中國高爐工序能耗現狀及節能技術的回顧與展望. 鋼鐵研究學報, 2010, 22(9):1 doi: 10.13228/j.boyuan.issn1001-0963.2010.09.011
Zhou J C, Zhang C X, Li X P, et al. Status of energy consumption and review and prospect of energy saving technologies of blast furnace procedure in China. J Iron Steel Res, 2010, 22(9): 1 doi: 10.13228/j.boyuan.issn1001-0963.2010.09.011
|
[5] |
郜學. 中國燒結行業的發展現狀和趨勢分析. 鋼鐵, 2008, 43(1):85 doi: 10.3321/j.issn:0449-749X.2008.01.021
Gao X. Development situation and trend analysis of sintering industry in China. Iron Steel, 2008, 43(1): 85 doi: 10.3321/j.issn:0449-749X.2008.01.021
|
[6] |
閆伯駿, 邢奕, 路培, 等. 鋼鐵行業燒結煙氣多污染物協同凈化技術研究進展. 工程科學學報, 2018, 40(7):767
Yan B J, Xing Y, Lu P, et al. A critical review on the research progress of multi-pollutant collaborative control technologies of sintering flue gas in the iron and steel industry. Chin J Eng, 2018, 40(7): 767
|
[7] |
闕志剛, 吳勝利, 艾仙斌. 基于優化粗粒級固體燃料賦存形態的鐵礦燒結過程NOx減排. 工程科學學報, 2020, 42(2):163
Que Z G, Wu S L, Ai X B. To reduce NOx emission based on optimizing the existing states of coarse coke breeze during iron ore sintering process. Chin J Eng, 2020, 42(2): 163
|
[8] |
夏建芳, 余媛君, 王瀟杰, 等. 基于?效率目標的環冷機余熱回收系統操作參數優化. 鋼鐵研究學報, 2019, 31(7):637 doi: 10.13228/j.boyuan.issn1001-0963.20180311
Xia J F, Yu Y J, Wang X J, et al. Research on operation parameters optimization of sinter cooler waste heat recovery system based on exergy efficiency optimization. J Iron Steel Res, 2019, 31(7): 637 doi: 10.13228/j.boyuan.issn1001-0963.20180311
|
[9] |
Wang G, Wen Z, Lou G F, et al. Mathematical modeling of and parametric studies on flue gas recirculation iron ore sintering. Appl Therm Eng, 2016, 102: 648 doi: 10.1016/j.applthermaleng.2016.04.018
|
[10] |
龍紅明, 張向陽, 李家新, 等. 鐵礦燒結過程SO2的排放特性及過程脫硫的可行性研究. 過程工程學報, 2015, 15(2):230
Long H M, Zhang X Y, Li J X, et al. Study on emission characteristics of SO2 and feasibility of desulfurization in iron ore sintering process. Chin J Process Eng, 2015, 15(2): 230
|
[11] |
郄俊懋, 張春霞, 王海風, 等. 燒結煙氣典型污染物排放形勢及減排技術分析. 燒結球團, 2016, 41(6):59 doi: 10.13403/j.sjqt.2016.06.078
Qie J M, Zhang C X, Wang H F, et al. Analysis of emission situation and emission reduction technology of typical sintering flue gas pollutants. Sinter Pelletizing, 2016, 41(6): 59 doi: 10.13403/j.sjqt.2016.06.078
|
[12] |
劉傳鵬, 楊東偉, 惠建明, 等. 燒結余熱梯級利用及脫硫脫硝一站式解決方案. 鋼鐵研究學報, 2016, 28(10):50 doi: 10.13228/j.boyuan.issn1001-0963.20150364
Liu C P, Yang D W, Hui J M, et al. One-stop solution of cascade utilization of waste heat recovery, desulfurization and denitrification in the sintering system. J Iron Steel Res, 2016, 28(10): 50 doi: 10.13228/j.boyuan.issn1001-0963.20150364
|
[13] |
丁毅, 史德明. 鋼鐵企業余熱資源高效利用. 鋼鐵, 2011, 46(10):88 doi: 10.13228/j.boyuan.issn0449-749x.2011.10.020
Ding Y, Shi D M. High-efficiency utilization of waste heat at fully integrated steel plant. Iron Steel, 2011, 46(10): 88 doi: 10.13228/j.boyuan.issn0449-749x.2011.10.020
|
[14] |
孫用軍, 董輝, 馮軍勝, 等. 燒結?冷卻?余熱回收系統熱力學分析. 鋼鐵研究學報, 2015, 27(1):16
Sun Y J, Dong H, Feng J S, et al. Thermodynamic analysis of waste heat recovery for sinter?cooling system. J Iron Steel Res, 2015, 27(1): 16
|
[15] |
王兆才, 周志安, 胡兵, 等. 燒結煙氣循環風氧平衡模型. 鋼鐵, 2015, 50(12):53 doi: 10.13228/j.boyuan.issn0449-749x.20150418
Wang Z C, Zhou Z A, Hu B, et al. Wind-oxygen balance model of flue gas circulation in sintering. Iron Steel, 2015, 50(12): 53 doi: 10.13228/j.boyuan.issn0449-749x.20150418
|
[16] |
任偉, 高璟, 徐文青, 等. 基于Fluent的燒結煙氣循環系統設備?煙氣分配器數值模擬. 中北大學學報(自然科學版), 2021, 42(1):56
Ren W, Gao J, Xu W Q, et al. Numerical simulation of sintering flue gas circulation system equipment?flue gas distributor based on fluent. J North Univ China (Nat Sci Ed)
|
[17] |
龍紅明, 王毅璠, 伍英, 等. 面向污染物減排的燒結煙氣循環研究與應用進展. 鞍鋼技術, 2020(1):9
Long H M, Wang Y F, Wu Y, et al. Study on sintering flue gas for recycling of pollutants aimed at emission reduction and progress of applications. Angang Technol, 2020(1): 9
|
[18] |
Qian L X, Wang Y F, Liu M L, et al. Performance evaluation of urea injection on the emission reduction of dioxins and furans in a commercial municipal solid waste incinerator. Process Saf Environ Prot, 2021, 146: 577 doi: 10.1016/j.psep.2020.11.048
|
[19] |
章裕東, 龍紅明, 伍英, 等. 熱廢氣循環條件下的燒結過程反應解析. 燒結球團, 2020, 45(5):63
Zhang Y D, Long H M, Wu Y, et al. Analysis on reaction in sintering process under hot exhaust gas circulation. Sinter Pelletizing, 2020, 45(5): 63
|
[20] |
龍紅明, 李家新, 王平, 等. 尿素對減少鐵礦燒結過程二惡英排放的作用機理. 過程工程學報, 2010, 10(5):944
Long H M, Li J X, Wang P, et al. Reaction mechanism of emission reduction of dioxin by addition of urea in iron ore sintering process. Chin J Process Eng, 2010, 10(5): 944
|
[21] |
Ahn H, Choi S, Cho B. Process simulation of iron ore sintering bed with flue gas recirculation. Ironmak Steelmak, 2013, 40(2): 120 doi: 10.1179/1743281212Y.0000000071
|
[22] |
Ahn H, Choi S, Cho B. Process simulation of iron ore sintering bed with flue gas recirculation. Ironmak Steelmak, 2013, 40(2): 128 doi: 10.1179/1743281212Y.0000000072
|
[23] |
張小輝, 張家元, 田萬一, 等. 煙氣循環燒結的數值仿真. 中南大學學報(自然科學版), 2014, 45(4):1312
Zhang X H, Zhang J Y, Tian W Y, et al. Numerical simulation of flue gas circulation sintering. J Central South Univ (Sci Technol)
|
[24] |
Fan X H, Yu Z Y, Gan M, et al. Influence of O2 content in circulating flue gas on iron ore sintering. J Iron Steel Res Int, 2013, 20(6): 1 doi: 10.1016/S1006-706X(13)60103-X
|
[25] |
Fan X H, Yu Z Y, Gan M, et al. Combustion behavior and influence mechanism of CO on iron ore sintering with flue gas recirculation. J Central South Univ, 2014, 21(6): 2391 doi: 10.1007/s11771-014-2192-0
|
[26] |
楊正偉, 王兆才, 溫榮耀, 等. 燒結煙氣循環系統仿真模擬研究. 燒結球團, 2018, 43(3):63
Yang Z W, Wang Z C, Wen R Y, et al. Simulation research of sintering flue gas recirculation system. Sinter Pelletizing, 2018, 43(3): 63
|
[27] |
許源, 毛瑞, 王飛, 等. 燒結煙氣循環系統數值模擬. 鋼鐵研究學報, 2020, 32(7):675
Xu Y, Mao R, Wang F, et al. Numerical simulation of sintering flue gas circulation system. J Iron Steel Res, 2020, 32(7): 675
|