EXPERIMENTAL AND DISCRETE ELEMENT SIMULATION STUDIES OF BELL-LESS CHARGING OF BLAST FURNACE

........................................................................................................................ii Sammanfattning..........................................................................................................iv List of Publications .....................................................................................................ix Contribution by the Author ........................................................................................x

[1]  Shinroku Matsuzaki,et al.  Effect of chute angle on charging behavior of sintered ore particles at bell-less type charging system of blast furnace by discrete element method , 2009 .

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[3]  Cao Weihua Study and Application of Burden Distribution Model for Bell-less BF , 2006 .

[4]  Shinroku Matsuzaki,et al.  Estimation of Stack Profile of Burden at Peripheral Zone of Blast Furnace Top , 2003 .

[5]  Ko Yamamoto,et al.  Modeling of Solid Particle Flow in Blast Furnace Considering Actual Operation by Large-scale Discrete Element Method , 2007 .

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[7]  Morimasa Ichida,et al.  Influence of Inner Wall Profile on Descending and Melting Behavior of Burden in Blast Furnace , 1991 .

[8]  Shinroku Matsuzaki,et al.  DEVELOPMENT OF A MATHEMATICAL MODEL TO ESTIMATE BURDEN DISTRIBUTION IN BELL-LESS TYPE CHARGING FOR BLAST FURNACE. , 1987 .

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[11]  An Jian Soft-sensing Method of Gas Flow Distribution of Blast Furnace Burden Surface Based on Multi-level Hierarchical Fusion Algorithm , 2011 .

[12]  Cao Weihua Design and Application of Burden Distribution Model in Bell-Less Blast Furnace , 2007 .

[13]  Tatsuro Ariyama,et al.  Recent Progress and Future Perspective on Mathematical Modeling of Blast Furnace , 2010 .

[14]  F. Maio,et al.  Comparison of contact-force models for the simulation of collisions in DEM-based granular flow codes , 2004 .

[15]  Tatsuro Ariyama,et al.  Sensitivity Analysis of Physical Parameters in Discrete Element Method Compared with Blast Furnace Cold Model Experiments , 2010 .

[16]  Kazuya Kunitomo,et al.  Radial Distribution of Burden Descent Velocity near Burden Surface in Blast Furnace , 1996 .

[17]  Aibing Yu,et al.  A static approach towards coke collapse modelling in blast furnace , 2009 .

[18]  V. R Radhakrishnan,et al.  Mathematical model for predictive control of the bell-less top charging system of a blast furnace , 2001 .

[19]  Chenguang Bai,et al.  Theoretical calculation and validation of burden trajectory in bell-less top blast furnace , 2009 .

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[21]  Masaaki Naito,et al.  Development of Ironmaking Technology , 2006 .

[22]  Francesco Paolo Di Maio,et al.  Comparison of heat transfer models in DEM-CFD simulations of fluidized beds with an immersed probe , 2009 .

[23]  Tatsuro Ariyama,et al.  Influence of Gas Flow on Burden Distribution in Blast Furnace , 1980 .

[24]  Yasuo Yoshida,et al.  The Principle of Blast Furnace Operational Technology and Centralized Gas Flow by Center Coke Charging , 2005 .

[25]  M. Sommerfeld,et al.  Multiphase Flows with Droplets and Particles , 2011 .

[26]  Henrik Saxén,et al.  Analysis of rapid flow of particles down and from an inclined chute using small scale experiments and discrete element simulation , 2011 .

[27]  Jy Zhang,et al.  Application of the Discrete Approach to the Simulation of Size Segregation in Granular Chute Flow , 2004 .

[28]  Yutaka Tsuji,et al.  Lagrangian numerical simulation of plug flow of cohesionless particles in a horizontal pipe , 1992 .

[29]  Shiro Watakabe,et al.  Development of high ratio coke mixed charging technique to the blast furnace , 2006 .

[30]  Aibing Yu,et al.  Simulated and measured flow of granules in a bladed mixer—a detailed comparison , 2001 .

[31]  F. Pettersson,et al.  Evolutionary Neural Network Modeling of Blast Furnace Burden Distribution , 2003 .

[32]  H. P. Zhu,et al.  Discrete particle simulation of gas-solid flow in a blast furnace , 2008, Comput. Chem. Eng..

[33]  Shengfu Zhang,et al.  Effect of burden material size on blast furnace stockline profile of bell-less blast furnace , 2009 .

[34]  HENRIK SAXE´N,et al.  MODEL FOR BURDEN DISTRIBUTION TRACKING IN THE BLAST FURNACE , 2004 .

[35]  F. Saito,et al.  Numerical Simulation Model for Granulation Kinetics of Iron Ores , 2005 .

[36]  Wang Ping MEASUREMENT AND ANALYSIS OF BURDEN FLOW TRAJECTORY AND WIDTH IN BELL-LESS TOP WITH TWO CONCENTRIC VERTICAL HOPPERS , 2003 .

[37]  Tatsuro Ariyama,et al.  DEM-CFD Model Considering Softening Behavior of Ore Particles in Cohesive Zone and Gas Flow Analysis at Low Coke Rate in Blast Furnace , 2012 .

[38]  Shinroku Matsuzaki,et al.  Validation of Particle Size Segregation of Sintered Ore during Flowing through Laboratory-scale Chute by Discrete Element Method , 2008 .

[39]  Henrik Saxén,et al.  Experimental and DEM study of segregation of ternary size particles in a blast furnace top bunker model , 2010 .

[40]  Tatsuro Ariyama,et al.  Optimization of Physical Parameters of Discrete Element Method for Blast Furnace and Its Application to the Analysis on Solid Motion around Raceway , 2009 .

[41]  Aibing Yu,et al.  Experimental and numerical investigations of gouge formation related to blast furnace burden distribution , 2009 .

[42]  F. Pettersson,et al.  Modeling of the Blast Furnace Burden Distribution by Evolving Neural Networks , 2003 .