Screen bowl centrifuge: a high-efficiency particle size separator

被引:0
|
作者
M. K. Mohanty
B. Zhang
N. Khanna
A. Palit
B. Dube
机构
[1] Southern Illinois University at Carbondale,Department of Mining and Mineral Resources Engineering
来源
关键词
Coal; Size classification; Parametric study; Screen bowl centrifuge;
D O I
暂无
中图分类号
学科分类号
摘要
Over the years, screen bowl centrifuges have been widely used for dew atering fine coal in coal preparation plants in the United States and elsewhere. Its popularity is attributed to its relatively low cost, its high capacity of providing low moisture content product and its relative ease of operation and maintenance. It is generally recognized in the engineering and scientific communities that screen bowl centrifuges provide some degree of particle size separation while dew atering fine coal in a common application. However, the extent of differential partitioning of coarse and fine particles achievable by a screen bowl centrifuge has not been systematically studied in the past. The present investigation was aimed at conducting a parametric study using a statistically designed experimental program to better understand and optimize the size classification performance of a screen bowl centrifuge. A continuously operating screen bowl centrifuge having a bowl diameter of 0.5 m was used for this study at the Illinois Coal Development Park. Three key operating parameters, i.e., feed flow rate, feed solid content and pool depth, were varied to conduct a total of 17 experiments using a three-level factorial test matrix. Sonic of the best size separation performances achieved in this study may be described as having an imperfection value of 0.13 at an effective separation size (d50c) of 38 µm and an imperfection value of 0.27 at an effective separation size (d50c) of 2.8 µm. Due to an effective separation of ultrafine high ash materials, the ash content of the screen bowl feed was reduced from 22.3% to a minimum of 8.84% with a combustible recovery of 84.1% and an ash rejection of 71.6%. A higher combustible recovery of 92.1% was achieved at a product ash content of 12.5% with a d50c of 2.8 µm and imperfection of 0.27.
引用
收藏
页码:61 / 67
页数:6
相关论文
共 50 条
  • [41] Evaluation of the effect of media velocity on filter efficiency and most penetrating particle size of nuclear grade high-efficiency particulate air filters
    Alderman, Steven L.
    Parsons, Michael S.
    Hogancamp, Kristina U.
    Waggoner, Charles A.
    JOURNAL OF OCCUPATIONAL AND ENVIRONMENTAL HYGIENE, 2008, 5 (11) : 713 - 720
  • [42] HIGH-EFFICIENCY SMALL-SIZE PLANAR HYPERBOLICAL LENSES
    HAMMES, PCA
    KRIJNEN, GJM
    DRIESSEN, A
    SMIT, MK
    ELECTRONICS LETTERS, 1990, 26 (14) : 1064 - 1066
  • [43] High-efficiency PCS power amp cuts package size
    Schweber, B
    EDN, 1997, 42 (19) : 20 - 20
  • [44] High-efficiency flat-screen pixel uses tiny telescopic optics
    不详
    LASER FOCUS WORLD, 2008, 44 (09): : 13 - 13
  • [45] HIGH-EFFICIENCY PHAGE PLAQUE SCREEN FOR GENETIC DISECTION OF PROTEIN LIGAND INTERACTIONS
    TSUI, P
    SWEET, RW
    ROSENBERG, M
    FASEB JOURNAL, 1991, 5 (04): : A471 - A471
  • [46] Research on high-efficiency rotating screen printing control system of ceramic tile
    Cao, L. G.
    Pan, H. P.
    Zhang, L.
    Feng, H.
    ADVANCES IN ENGINEERING MATERIALS AND APPLIED MECHANICS, 2016, : 267 - 271
  • [47] HIGH-EFFICIENCY PROJECTION FOR A 35MM CURVED-SCREEN THEATER
    BERGGREN, GM
    TOWNSEND, RW
    JOURNAL OF THE SOCIETY OF MOTION PICTURE TELEVISION ENGINEERS, 1968, 77 (7P1): : 721 - &
  • [48] Optimization and experimental validation of a high-efficiency oil–water cyclone separator for well testing conditions
    Zhimin Li
    Journal of Engineering and Applied Science, 2025, 72 (1):
  • [49] Design of a novel high-efficiency water separator for proton exchange membrane fuel cell system
    Ma, Tiancai
    Yang, Yanbo
    Lin, Weikang
    Yang, Yuehua
    Jia, Wenya
    Zhang, Jiaming
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2019, 44 (11) : 5462 - 5469
  • [50] High-Efficiency Separator Capacity-Compensation Strategy Applied to Sodium-Ion Batteries
    Mao, Yue
    Zhou, Chaoyi
    Gong, Haochen
    Zhang, Shaojie
    Wang, Xiaoyi
    Liu, Xinyi
    Xiang, Qianxin
    Sun, Jie
    SMALL, 2023, 19 (46)