首页> 外文会议>International symposium on geomechanics from micro to macro >The influence of finer fraction and size-ratio on the micro-scale properties of dense bimodal materials
【24h】

The influence of finer fraction and size-ratio on the micro-scale properties of dense bimodal materials

机译:细级分和尺寸比对致密双峰材料微观尺度特性的影响

获取原文

摘要

The properties of cohesionless bimodal materials are known to be influenced by the volumetric fraction of finer particles, F_(fine), and the size ratio, x = D_(coarse)/D_(fine). Two aspects of this are: (ⅰ) an increase in X will lead to finer particles packing more efficiently between the larger particles; (ⅱ) there is a critical value of F_(fine) between 24 and 29% at which the finer particles will just fill the voids between the larger particles. Motivated by an interest in developing a comprehensive understanding of the mechanics of internal erosion of dam filters, in this paper Discrete Element Modeling (DEM) simulations are carried out on bimodal samples of spheres with x of 2, 4, 6, 8 and 10 and F_(fine) of 20, 25, 30 and 35% by volume. Each sample is isotropically compressed to a very dense state and the number of particles in the simulations ranged from 307 to 54033. The number and magnitude of contacts between particles of the same and of different sizes is considered to give an insight into how F_(fine) and x can affect the stress transfer characteristics of bimodal materials. In particular it is shown that for F_(fine) ≥ 30% fine and large particles contribute approximately equally to stress transfer, whereas for materials with F_(fine) ≤ 25%, an increase in x is shown to reduce the contribution of the finer particles significantly. These findings can be linked to earlier experimental observations considering filter stability (Skempton and Brogan, 1994), but also give insight into the sensitivity of other mechanical properties to the finer fraction and the size ratio (e.g. effect on void ratio and position of the critical state line (Rahman et al., 2008)).
机译:已知无粘性双峰材料的性能受较细颗粒的体积分数F_(细)和尺寸比x = D_(粗)/ D_(细)的影响。这有两个方面:(ⅰ)X的增加将导致更细的颗粒更有效地堆积在较大的颗粒之间; (ⅱ)有一个F_(fine)的临界值,介于24%和29%之间,在这个临界值下,较细的颗粒将填充较大颗粒之间的空隙。出于对全面了解坝过滤器内部腐蚀机理的兴趣,本文对x,2、4、6、8和10的球面双峰样本进行了离散元建模(DEM)模拟。 F_(细)为20、25、30和35%(体积)。每个样本都被各向同性压缩到非常稠密的状态,并且模拟中的粒子数量在307到54033之间。考虑相同和不同大小的粒子之间的接触数量和大小,可以深入了解F_(fine )和x会影响双峰材料的应力传递特性。特别是表明,对于F_(fine)≥30%,细小和大颗粒对应力传递的贡献大致相等,而对于F_(fine)≤25%的材料,x的增加表明减小了细粉的贡献。颗粒明显。这些发现可以与考虑过滤器稳定性的早期实验观察结果联系起来(Skempton and Brogan,1994),但也可以洞察其他机械性能对更细小部分和尺寸比的敏感性(例如,对空隙比和临界位置的影响)。州界线(Rahman et al。,2008)。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号