正在加载图片...
1644 工程科学学报,第43卷,第12期 roasting -magnetic separation studies of two mineralogically (张恒,张建良,焦克新,等.铜钢复合冷却壁传热能力及热变形 different low-grade iron ores.Int J Miner Metall Mater,2020. 分析.炼铁,2018,37(1):10) 27(11):1449 [49]Zhang H,Jiao K X,Zhang J L,et al.Experimental and numerical [36]Wang P,Zhang J L,Wang G W,et al.Analysis of basic investigations of interface characteristics of copper/steel composite characteristics of Arundo donax char prepared by pyrolysis.China prepared by explosive welding.Mater Des,2018,154:140 Metal,2019,29(2):12 [50]Jiang D W,Wang Z Y,Zhang JL,et al.Predictive modelling for (王朋,张建良,王广伟,等.热解制备芦竹半焦基础性能分析 contact angle of liquid metals and oxide ceramics by comparing 中国治金,2019,29(2):12) Gaussian process regression with other machine leaming methods [37]MeKendry P.Energy production from biomass(part 1):Overview Ceram Int,https://doi.org/10.1016/j.ceramint.2021.09.146 of biomass.Bioresour Technol,2002,83(1):37 [51]Wang Z Y,Dai J H,Jiang D W,et al.Optimization of blast [38]Wang G W,Zhang JL,Chang WW,et al.Structural features and furnace charging system combining data traceability and numerical gasification reactivity of biomass chars pyrolyzed in different simulation.China Metall,2020,30(11):11 atmospheres at high temperature.Energy,2018,147:25 (王振阳,戴建华,江德文,等结合数据追溯与数值模拟的高炉 [39]Zhang J L,Lin X H,Kong D W,et al.Combustion characteristics 布料制度优化.中国治金,2020,30(11):11) and kinetic analysis of biomass char and coal blends.J Uniy Sci [52]Jiang D W,Zhang J L,Wang Z Y,et al.A prediction model of Technol Beijing,2012,34(3):348 blast furnace slag viscosity based on principal component analysis (张建良,林祥海,孔德文,等.生物质焦与煤混合燃烧特性及动 and K-nearest neighbor regression.JOM,2020,72(11):3908 力学分析.北京科技大学学报,2012,34(3):348) [53]Wang Z Y,Jiang D W,Wang X D,et al.Prediction of blast [40]Zuo H B,Wang C.Zhang J L.et al.Application status and furnace hot metal temperature based on support vector regression important technical indexes of BF hearth refractory.Iron Steel, and extreme leamning machine.Chin/Eng,2021,43(4):569 2015,50(2):1 (王振阳,江德文,王新东,等.基于支持向量回归与极限学习机 (左海滨,王聪,张建良,等,高炉炉缸耐火材料应用现状及重要 的高炉铁水温度预测.工程科学学报,2021,43(4):569) 技术指标.钢铁,2015,50(2):1) [54]Liu X Y,Liu X G,Wang W H.Application of Bayesian network [41]Jiao K X,Zhang JL.Zuo H B.et al.Composition and formation to predicting silicon content in hot metal.Iron Steel,2005,40(3): mechanism of viscous layers in blast fumace hearth.J Northeast 17 Univ (Nat Sci),2014,35(7):987 (刘学艺,刘样官,王文慧.贝叶斯网路在高炉铁水硅含量预测 (焦克新,张建良,左海滨,等.高炉炉缸黏滞层物相及形成机理 中的应用.钢铁,2005,40(3):17) 东北大学学报(自然科学版),2014,35(7):987) [55]Jezierski J,Janerka K.Selected aspects of metallurgical and [42]Zuo H B,Wang C,Zhang J L,et al.Oxidation behavior and foundry furnace dust utilization.Pol J Environ Stud,2011,20(1): kinetics of Al2O-SiC-SiOz-C composite in air.Ceram Int,2015 101 41(7):9093 [56]Liu Z J,Wang G W,Zhang J L.et al.Study on COz gasification [43]Liu Y X,Liu F J,Zhang J L,et al.Oxidation behavior of carbon reactivity and structure characteristics of carbonaceous materials composite bricks used in blast furnace hearth in steam.Bull Chin from the corex fumnace.Energy Fuels,2018,32(5):6155 Ceram Soc,.2017,36(2):519 [57]Li Y,Zhang JL,Liu Z J,et al.Reduction mechanism of iron oxide (刘彦祥,刘福军,张建良,等.高炉炉缸用碳复合砖在水蒸气条 briquettes by carbonaceous materials extracted from blast furnace 件下的氧化行为研究.硅酸盐通报,2017,36(2):519) dust.Metall Mater Trans B,2019,50(5):2296 [44]Jiao K X,Fan X Y,Zhang J L,et al.Corrosion behavior of [58]Wang Y Z,Liu Z J,Zhang J L,et al.Advanced converter sludge alumina-carbon composite brick in typical blast furnace slag and utilization technologies for the recovery of valuable elements:A iron.Ceram Int,2018,44(16):19981 review.J Hazard Mater,2020,381:120902 [45]Liu Q,Cheng SS,Zhao H B,et al.Thermal deformation analysis [59]Junior J H N,Contrucci M A,D'Abreu J C.Tecnored process- of copper-steel composite staves.Chin J Eng,2016,38(1):108 high potential in using different kinds of solid fuels.Mat Res, (刘奇,程树森,赵宏博,等.铜钢复合冷却壁热变形分析.工程 2005,8(4):447 科学学报,2016,38(1):108) [60]Fisch T,Kesseler K.OxyCup shaft fumace of Thyssen Krupp [46]Deng Y,Jiao K X,Wu Q C,et al.Damage mechanism of copper Steel Strategy for economic recycling of fine grained ferrous and stave used in blast furnace.Ironmak Steelmak,2018,45(10):886 carbonaceous residues I Proceedings of Environmental Seminar. [47]Zhang H,Jiao K X,Zhang J L,et al.A new method for evaluating Beijing,2006:90 cooling capacity of blast furnace cooling stave.Ironmak Steelmak. [61]McClelland J M,Metius G E.Recycling ferrous and nonferrous 2019.46(7):671 waste streams with FASTMET.JOM,2003,55(8):30 [48]Zhang H,Zhang J L,Jiao K X,et al.Analysis on cooling capacity [62]Kikuchi S,Ito S,Kobayashi I,et al.ITmk3 process.Kobelco and thermal deformation of copper-steel composite cooling stave Technology Review,2010,29:77 ronmaking,.2018,37(1上:10 [63]Wang F,Zhang J L,Mao R,et al.Bonding mechanism androasting —magnetic  separation  studies  of  two  mineralogically different  low-grade  iron  ores. Int J Miner Metall Mater,  2020, 27(11): 1449 Wang  P,  Zhang  J  L,  Wang  G  W,  et  al.  Analysis  of  basic characteristics of Arundo donax char prepared by pyrolysis. China Metall, 2019, 29(2): 12 (王朋, 张建良, 王广伟, 等. 热解制备芦竹半焦基础性能分析. 中国冶金, 2019, 29(2):12) [36] McKendry P. Energy production from biomass (part 1): Overview of biomass. Bioresour Technol, 2002, 83(1): 37 [37] Wang G W, Zhang J L, Chang W W, et al. Structural features and gasification  reactivity  of  biomass  chars  pyrolyzed  in  different atmospheres at high temperature. Energy, 2018, 147: 25 [38] Zhang J L, Lin X H, Kong D W, et al. Combustion characteristics and  kinetic  analysis  of  biomass  char  and  coal  blends. J Univ Sci Technol Beijing, 2012, 34(3): 348 (张建良, 林祥海, 孔德文, 等. 生物质焦与煤混合燃烧特性及动 力学分析. 北京科技大学学报, 2012, 34(3):348) [39] Zuo  H  B,  Wang  C,  Zhang  J  L,  et  al.  Application  status  and important  technical  indexes  of  BF  hearth  refractory. Iron Steel, 2015, 50(2): 1 (左海滨, 王聪, 张建良, 等. 高炉炉缸耐火材料应用现状及重要 技术指标. 钢铁, 2015, 50(2):1) [40] Jiao K X, Zhang J L, Zuo H B, et al. Composition and formation mechanism  of  viscous  layers  in  blast  furnace  hearth. J Northeast Univ (Nat Sci), 2014, 35(7): 987 (焦克新, 张建良, 左海滨, 等. 高炉炉缸黏滞层物相及形成机理. 东北大学学报 (自然科学版), 2014, 35(7):987) [41] Zuo  H  B,  Wang  C,  Zhang  J  L,  et  al.  Oxidation  behavior  and kinetics of Al2O3–SiC–SiO2–C composite in air. Ceram Int, 2015, 41(7): 9093 [42] Liu Y X, Liu F J, Zhang J L, et al. Oxidation behavior of carbon composite bricks used in blast furnace hearth in steam. Bull Chin Ceram Soc, 2017, 36(2): 519 (刘彦祥, 刘福军, 张建良, 等. 高炉炉缸用碳复合砖在水蒸气条 件下的氧化行为研究. 硅酸盐通报, 2017, 36(2):519) [43] Jiao  K  X,  Fan  X  Y,  Zhang  J  L,  et  al.  Corrosion  behavior  of alumina-carbon  composite  brick  in  typical  blast  furnace  slag  and iron. Ceram Int, 2018, 44(16): 19981 [44] Liu Q, Cheng S S, Zhao H B, et al. Thermal deformation analysis of copper- steel composite staves. Chin J Eng, 2016, 38(1): 108 (刘奇, 程树森, 赵宏博, 等. 铜钢复合冷却壁热变形分析. 工程 科学学报, 2016, 38(1):108) [45] Deng Y, Jiao K X, Wu Q C, et al. Damage mechanism of copper stave used in blast furnace. Ironmak Steelmak, 2018, 45(10): 886 [46] Zhang H, Jiao K X, Zhang J L, et al. A new method for evaluating cooling capacity of blast furnace cooling stave. Ironmak Steelmak, 2019, 46(7): 671 [47] Zhang H, Zhang J L, Jiao K X, et al. Analysis on cooling capacity and thermal deformation of copper-steel composite cooling stave. Ironmaking, 2018, 37(1): 10 [48] (张恒, 张建良, 焦克新, 等. 铜钢复合冷却壁传热能力及热变形 分析. 炼铁, 2018, 37(1):10) Zhang H, Jiao K X, Zhang J L, et al. Experimental and numerical investigations of interface characteristics of copper/steel composite prepared by explosive welding. Mater Des, 2018, 154: 140 [49] Jiang D W, Wang Z Y, Zhang J L, et al. Predictive modelling for contact  angle  of  liquid  metals  and  oxide  ceramics  by  comparing Gaussian process regression with other machine learning methods. Ceram Int, https://doi.org/10.1016/j.ceramint.2021.09.146 [50] Wang  Z  Y,  Dai  J  H,  Jiang  D  W,  et  al.  Optimization  of  blast furnace charging system combining data traceability and numerical simulation. China Metall, 2020, 30(11): 11 (王振阳, 戴建华, 江德文, 等. 结合数据追溯与数值模拟的高炉 布料制度优化. 中国冶金, 2020, 30(11):11) [51] Jiang  D  W,  Zhang  J  L,  Wang  Z  Y,  et  al.  A  prediction  model  of blast furnace slag viscosity based on principal component analysis and K-nearest neighbor regression. JOM, 2020, 72(11): 3908 [52] Wang  Z  Y,  Jiang  D  W,  Wang  X  D,  et  al.  Prediction  of  blast furnace hot metal temperature based on support vector regression and extreme learning machine. Chin J Eng, 2021, 43(4): 569 (王振阳, 江德文, 王新东, 等. 基于支持向量回归与极限学习机 的高炉铁水温度预测. 工程科学学报, 2021, 43(4):569) [53] Liu X Y, Liu X G, Wang W H. Application of Bayesian network to predicting silicon content in hot metal. Iron Steel, 2005, 40(3): 17 (刘学艺, 刘祥官, 王文慧. 贝叶斯网络在高炉铁水硅含量预测 中的应用. 钢铁, 2005, 40(3):17) [54] Jezierski  J,  Janerka  K.  Selected  aspects  of  metallurgical  and foundry furnace dust utilization. Pol J Environ Stud, 2011, 20(1): 101 [55] Liu Z J, Wang G W, Zhang J L, et al. Study on CO2 gasification reactivity  and  structure  characteristics  of  carbonaceous  materials from the corex furnace. Energy Fuels, 2018, 32(5): 6155 [56] Li Y, Zhang J L, Liu Z J, et al. Reduction mechanism of iron oxide briquettes by carbonaceous materials extracted from blast furnace dust. Metall Mater Trans B, 2019, 50(5): 2296 [57] Wang Y Z, Liu Z J, Zhang J L, et al. Advanced converter sludge utilization  technologies  for  the  recovery  of  valuable  elements:  A review. J Hazard Mater, 2020, 381: 120902 [58] Júnior  J  H  N,  Contrucci  M  A,  D'Abreu  J  C.  Tecnored  process  - high  potential  in  using  different  kinds  of  solid  fuels. Mat Res, 2005, 8(4): 447 [59] Fisch  T,  Kesseler  K.  OxyCup  shaft  furnace  of  Thyssen  Krupp Steel Strategy for economic recycling of fine grained ferrous and carbonaceous  residues  // Proceedings of Environmental Seminar. Beijing, 2006: 90 [60] McClelland  J  M,  Metius  G  E.  Recycling  ferrous  and  nonferrous waste streams with FASTMET. JOM, 2003, 55(8): 30 [61] Kikuchi  S,  Ito  S,  Kobayashi  I,  et  al.  ITmk3  process. Kobelco Technology Review, 2010, 29: 77 [62] [63] Wang  F,  Zhang  J  L,  Mao  R,  et  al.  Bonding  mechanism  and · 1644 · 工程科学学报,第 43 卷,第 12 期
<<向上翻页向下翻页>>
©2008-现在 cucdc.com 高等教育资讯网 版权所有