首页> 外文OA文献 >Interplay between the inclusions of different sizes and their proximity to the wall boundaries on the nature of their stress distribution within the inclusions inside particulate packing
【2h】

Interplay between the inclusions of different sizes and their proximity to the wall boundaries on the nature of their stress distribution within the inclusions inside particulate packing

机译:不同尺寸的夹杂物之间的相互作用以及它们与壁面边界的接近性,它们在颗粒填料内的夹杂物内的应力分布的性质

代理获取
本网站仅为用户提供外文OA文献查询和代理获取服务,本网站没有原文。下单后我们将采用程序或人工为您竭诚获取高质量的原文,但由于OA文献来源多样且变更频繁,仍可能出现获取不到、文献不完整或与标题不符等情况,如果获取不到我们将提供退款服务。请知悉。

摘要

Micromechanical responses of granular materials are complex to understand when their behaviour is viewed in a single grain-scale. Experimental sensing of stresses within a grain-scale inside three dimensional particulate packing is still difficult to perform. In this work, photo stress analysis tomography (PSAT) is used to sense the fundamental nature of the stress experienced by different sizes of optically-sensitive inclusions inside granular packing (quasi-three dimensional) under an external axial-compression loading. The distribution of the maximum shear stress and the direction of the major principal stress experienced by the inclusions are analysed to understand the interplay between the size of the inclusions and their proximity to the wall boundary. The outcomes of this study provide a new understanding on the dual nature of stress transmission experienced by the inclusions, as a result of the combined size and wall effects. Relatively large inclusions experience dominantly shear stress close to the wall boundaries while this nature tends towards hydrostatic away from the wall boundaries. Smaller size inclusions could experience shear at both close to and away from wall boundaries of the granular assembly. Computer simulations using three-dimensional discrete element method (DEM) are also performed to compare the qualitative nature of stress experienced by inclusions inside particulate media. Qualitatively, the simulation results also agree with the experimental outcomes, that an increase in the relative size of the inclusion decreases its ability to experience shear. Using DEM simulations, the fabric structure of the inclusions is examined in depth under mechanical loading. An increase in the size of the inclusions tends to decrease the fabric anisotropy of the contacts and in particular the strong contacts, surrounding them. Hence the microscale origin of the weak mobilisation of shear in the large inclusions could be attributed to their relatively weak fabric anisotropy of the strong contacts surrounding them. These findings help to advance our understanding of the micromechanics of particulate systems, due to their size and proximity to wall boundaries: different sizes of the particles could sustain different nature of stresses within single-particle scale depending on their proximity to the wall boundaries.
机译:当以单个晶粒度观察颗粒材料的行为时,要了解它们的微机械响应非常复杂。三维颗粒填充物内部的晶粒度内的应力的实验检测仍然难以执行。在这项工作中,使用光应力分析层析成像(PSAT)来检测外部轴向压缩载荷下颗粒填料(准三维)内部不同尺寸的光敏夹杂物所承受的应力的基本性质。分析夹杂物的最大剪切应力分布和主要主应力的方向,以了解夹杂物的大小与其与壁边界的接近程度之间的相互作用。由于结合了尺寸和壁效应,本研究的结果对夹杂物所经历的应力传递的双重性质提供了新的理解。相对较大的夹杂物主要在靠近壁边界处经历剪切应力,而这种性质倾向于远离壁边界而具有静水压力。较小尺寸的夹杂物在接近和远离颗粒状组件的壁边界时都会受到剪切作用。还进行了使用三维离散元方法(DEM)的计算机模拟,以比较颗粒介质内部夹杂物所经历的应力的定性性质。定性地,模拟结果也与实验结果一致,即夹杂物相对尺寸的增加会降低其承受剪切的能力。使用DEM模拟,在机械载荷下深入检查包裹体的织物结构。夹杂物尺寸的增加趋向于减小接触件,尤其是围绕它们的强接触件的织物各向异性。因此,大夹杂物中剪切运动弱的微观起源是由于它们周围强接触的相对较弱的织物各向异性。这些发现由于它们的大小和与壁边界的接近性而有助于增进我们对微粒系统的微力学的理解:不同大小的颗粒可以根据其与壁边界的接近性而承受单粒子尺度内应力的不同性质。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
代理获取

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