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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
非均匀颗粒材料的类固-液相变行为及本构方程
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发表时间:2022-10-09
发表刊物:力学学报
所属单位:运载工程与力学学部
期号:2
页面范围:223-237
ISSN号:0459-1879
摘要:Granular materials can be regarded neither as solid media, nor as liquid media, but behave as solid or liquid media under some conditions, and even there is a quasi-solid-liquid phase transition. Granular materials can be modeled with a plastic constitutive model or the kinetic theory of molecular dynamics in the quasi-static or fast flow state respectively. However, in the quasi-solid-liquid phase transition, how to build the constitutive model is still an open problem. To develop an effective constitutive model for granular materials in the phase transition, the basic dynamic characteristics of granular materials should be determined. A simple shear flow of granular materials is simulated with a 3D discrete element model (DEM) in various concentrations and shear rates, and the phase transition between fast flow and quasi-static flow is obtained. Since the granular materials are normally of various sizes under natural conditions, the particles of granular flow are modeled in a multi-size state. Based on the simulated results, it is found that the macro-stress is independent of shear rate in the solid phase, and is a linear function of the square of the shear rate in the liquid phase. In the quasi-solid-liquid phase transition, the macro-stress shows a complex correlation with the shear rate. Based on the simulated variables of macro-stress, contact time number, coordination number, and particle number of clusters, etc., the basic characteristics of granular materials in the phase transition are analyzed. The effective friction coefficient, net contact time number and coordination number at some medium concentrations can be treated as the phase transition point. Adopting various friction and restitution coefficients, the granular systems still have apparent quasi-solid-liquid phase transition, but their transition points are different. Based on the dynamic behaviors of granular materials in different phases, especially from the relationship between macro-stress and shear rate, an exponential constitutive model for multi-size granular materials is developed, and some parameters are determined based on the simulation data. With the physical experimental results measured in a shear cell, the form of this constitutive model, i.e. the relationship between macro-stress and shear rate in different flow states, is validated.
备注:新增回溯数据