Terminal Settling Velocity of Particle in Suspension

被引:0
作者
Shimasaki, Shin'ichi [1 ]
Ueda, Shigeru [2 ]
Saito, Noritaka [3 ]
机构
[1] Natl Inst Technol, Dept Elect Syst Engn, Kagawa Coll, 355 Chokushicho, Takamatsu, Kagawa 7618058, Japan
[2] Tohoku Univ, IMRAM, 2-1-1 Katahira Aoba Ku, Sendai, Miyagi 9808577, Japan
[3] Kyushu Univ, Dept Mat, 744 Motooka Nishi Ku, Fukuoka 8190395, Japan
关键词
particle sedimentation; falling ball method; multiphase flow; suspension; dimensionless analysis; DILUTE POLYDISPERSE SYSTEM; INTERACTING SPHERES; SPHERICAL-PARTICLES; VISCOSITY; SEDIMENTATION; MODEL;
D O I
10.2355/isijinternational.ISIJINT-2024-269
中图分类号
TF [冶金工业];
学科分类号
0806 ;
摘要
In the steelmaking process, most slags and fluxes often contain a solid phase, such as CaO. The suspension in which solid phases are suspended has higher viscosity than that of a pure matrix liquid. Therefore, it is expected that the viscosity of slag containing solid phases will increase. In this study, the terminal settling velocity of particles in a suspension has been measured. The suspensions consist of a silicone oil matrix and polyethylene beads, and the settling particles are bearing balls made of stainless steel. As a result of the higher viscosity of suspension, the terminal settling velocity of the bearing ball becomes slower than that in the pure silicone oil. It was clarified that the retardation of the terminal velocity and the increase in the drag coefficient depend only on the volume fraction of the solid phase (polyethylene beads) of the suspension, and they are independent of the size of the suspended beads and the viscosity of the matrix liquid. A correlation equation for predicting the drag coefficient of particles in a suspension was proposed.
引用
收藏
页码:2186 / 2194
页数:9
相关论文
共 23 条
[11]   Apparent Viscosity Measurement of Solid-liquid Coexisting Fluid by Falling Ball Method for Evaluation Iron Particle Sedimentation Velocity in Slag [J].
Li, Wei ;
Iwama, Takayuki ;
Yu, Huafang ;
Ueda, Shigeru ;
Saito, Noritaka ;
Inoue, Ryo .
ISIJ INTERNATIONAL, 2021, 61 (12) :2915-2922
[12]  
MILLIKEN WJ, 1989, PHYSICOCHEM HYDRODYN, V11, P341
[13]   Dynamic model of slag foaming in oxygen steelmaking converters [J].
Misra, P ;
Deo, B ;
Chhabra, RP .
ISIJ INTERNATIONAL, 1998, 38 (11) :1225-1232
[14]   THE VISCOSITY OF A CONCENTRATED SUSPENSION OF SPHERICAL PARTICLES [J].
MOONEY, M .
JOURNAL OF COLLOID SCIENCE, 1951, 6 (02) :162-170
[15]  
Nakashima K., 2009, 95 TetsutoHagane, P807, DOI [10.2355/tetsutohagane.95.807, DOI 10.2355/TETSUTOHAGANE.95.807]
[16]   New Generalized Viscosity Model for Non-Colloidal Suspensions and Emulsions [J].
Pal, Rajinder .
FLUIDS, 2020, 5 (03)
[17]   THE VISCOSITY OF SUSPENSIONS OF RIGID SPHERES [J].
ROSCOE, R .
BRITISH JOURNAL OF APPLIED PHYSICS, 1952, 3 (AUG) :267-269
[18]   Viscosity of Slag Suspensions with a Polar Liquid Matrix [J].
Saito, Noritaka ;
Hara, Daigo ;
Teruya, Seiyu ;
Nakashima, Kunihiko .
ISIJ INTERNATIONAL, 2020, 60 (12) :2807-2818
[19]   A TREATMENT OF THE VISCOSITY OF CONCENTRATED SUSPENSIONS [J].
SIMHA, R .
JOURNAL OF APPLIED PHYSICS, 1952, 23 (09) :1020-1024
[20]   VISCOSITY OF SOLUTIONS AND SUSPENSIONS .1. THEORY [J].
VAND, V .
JOURNAL OF PHYSICAL AND COLLOID CHEMISTRY, 1948, 52 (02) :277-299