个人信息Personal Information
教授
博士生导师
硕士生导师
主要任职:大连理工大学白俄罗斯国立大学联合学院院长、直属党支部书记
其他任职:辽宁省极地海洋专业技术创新中心主任
性别:男
出生日期:1972-12-30
毕业院校:大连理工大学
学位:博士
所在单位:力学与航空航天学院
学科:计算力学. 固体力学. 工程力学. 船舶与海洋结构物设计制造. 岩土与环境力学
办公地点:大连理工大学主校区海宇楼(1号实验楼)607室
联系方式:0411-84708683
电子邮箱:jisy@dlut.edu.cn
Interaction between super-quadric particles and triangular elements andits application to hopper discharge
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论文类型:期刊论文
发表时间:2021-01-30
发表刊物:POWDER TECHNOLOGY
卷号:339
页面范围:534-549
ISSN号:0032-5910
关键字:Discrete element method (DEM); Super-quadric particle; Triangular element; Non-linear contact model; Hopper discharge
摘要:Super-quadric elements based on continuous function representation can be used to construct the geometric shape of irregular particles accurately. Although the contact detection of these elements has been well established, in real industrial applications, the geometric boundaries are complex and cannot be described by a specific function. A common and popular approach is to use a standard triangular finite-element surface mesh. In this work, the interaction between super-quadric particles and triangular elements is discussed in detail. Because the shapes and surface curvatures differ under the various contact patterns between super- quadricparticles, the linear contact force model cannot be used to calculate the contact force accurately; therefore, a corresponding non-linear force model is extended to super-quadric particles. In this model, the equivalent radius of curvature at a local contact point is introduced to calculate the normal contact force, and the tangential contact force is simplified based on the contact model of the spherical elements. To examine the validity of the algorithms and this model, three tests are performed. The first consists of a comparison against theoretical results for a flat wall impacted by a single cylinder-like particle with different blockiness parameters. In the second, the continuity of the contact force when a particle slides from one triangular element through the shared edge or the shared vertex to the neighboring element is tested. In addition, the three contact modes are counted in a boundary model represented by several triangular elements, and compared with the previous numerical experiments. The last tests consist of comparisons against experimental results of the arch structure of cube-like particles and the dynamic hopper discharge of ellipsoids. These studies demonstrate that the proposed method and force model are reliable and applicable for the dynamic hopper discharge of non-spherical particles. Furthermore, the effects of particle shapes, base angles, and friction coefficients on the discharge rate are discussed. The results show that the discharge rate always decreases with decreasing base angle or increasing blockiness, particle friction, or aspect ratio (from 0.5 to 1.5). Moreover, the influences of the base angle, the friction coefficient, and the blockiness on the flow rate are the primary factors, whereas the aspect ratio has a secondary effect on the flow rate. Finally, the packing fraction and the probability density functions of the normal contact force at the initial moment are analyzed to demonstrate the effect of blockiness on the macroscopic discharge rate. (C) 2018 Elsevier B.V. All rights reserved.