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    Please use this identifier to cite or link to this item: https://ir.lib.ncu.edu.tw/handle/987654321/104821


    Title: The influence of driving conditions on flow behavior in sheared granular flows
    Authors: 蕭述三;Liao, Chun-Chung;Hsiau, Shu-San;Yu, Wen-Jeng
    Contributors: 秘書室
    Keywords: Annular shear cell;Cross-disciplinary physics: materials science;rheology;Driving conditions;Exact sciences and technology;Granular flow;Granular materials;Granular solids;Local solid fraction;Material form;Multiphase flow;Physics;Rheology;Rotating;Shear;Slip velocity;Tangential velocity;Walls
    Date: 2012-11-01
    Issue Date: 2026-04-23 11:58:58 (UTC+8)
    Publisher: Elsevier BV;Kidlington: Elsevier Ltd
    Abstract: 摘要: ► Slip velocity is reduced with the increase of the solid fraction. ► Granular temperature is larger with the opposite driving wall direction. ► Velocity gradient is the dominant parameter to influence granular temperature. Granular materials may behave like a solid, a liquid, or a gas, depending on the processing conditions. In this study, a two-dimensional annular shear cell was used to investigate the dynamic properties of granular flow when subject to varying driving conditions. The effects of different driving conditions on granular flow were examined by taking images of the motions of granular materials with a high-speed camera. Image processing technology and a particle tracking method were employed to measure velocity, slip velocity, local solid fraction, and granular temperature. The results show a gradual decrease in the velocity profile from the shearing boundary to the stationary wall when only the inner or outer wall rotates. The tangential velocity of granular materials is greater with only a rotating outer wall than with an inner wall rotating singly at the same velocity. The results also show that slip velocity increases in conjunction with wall velocity and decreases if the solid fraction is increased. This study also examined flow behaviors caused by rotating both walls, first in the same direction, and then in opposite directions. The results indicate that granular temperatures in a system with both walls rotating in opposite directions are higher than in a system with walls rotating in the same direction.
    出版者: Kidlington: Elsevier Ltd
    出版日期: 2012-11-01
    出處: International journal of multiphase flow, 2012-11, Vol.46, p.22-31
    資源來源: Elsevier ScienceDirect Journals
    版權: 2012 Elsevier Ltd
    版權: 2015 INIST-CNRS
    識別號: ISSN: 0301-9322
    識別號: EISSN: 1879-3533
    識別號: DOI: 10.1016/j.ijmultiphaseflow.2012.06.003
    識別號: CODEN: IJMFBP
    Appears in Collections:[Office of Secretariat] journal & Dissertation

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