Mechanics of binary crushable granular assembly through discrete element method

The mechanical response of a granular system is not only influenced by the bulk material properties but also on various factors due to it’s discrete nature. The factors like topology, packing fraction, friction between particles, particle size distribution etc. influence the behavior of granular sys...

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Main Authors: Raghuram Karthik Desu, Yixiang Gan, Marc Kamlah, Ratna Kumar Annabattula
Format: Article
Language:English
Published: Elsevier 2016-12-01
Series:Nuclear Materials and Energy
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2352179115300685
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spelling doaj-beece18d011e4aaa8a727dfd323e353c2020-11-24T23:03:38ZengElsevierNuclear Materials and Energy2352-17912016-12-019C23724110.1016/j.nme.2016.03.002Mechanics of binary crushable granular assembly through discrete element methodRaghuram Karthik Desu0Yixiang Gan1Marc Kamlah2Ratna Kumar Annabattula3Department of Mechanical Engineering, Indian Institute of Technology Madras, Chennai 600036, IndiaSchool of Civil Engineering, The University of Sydney, Sydney 2006, NSW, AustraliaInstitute for Applied Materials (IAM-WBM), Karlsruhe Institute of Technology (KIT), Eggenstein-Leopoldshafen D-76344, GermanyDepartment of Mechanical Engineering, Indian Institute of Technology Madras, Chennai 600036, IndiaThe mechanical response of a granular system is not only influenced by the bulk material properties but also on various factors due to it’s discrete nature. The factors like topology, packing fraction, friction between particles, particle size distribution etc. influence the behavior of granular systems. For a reliable design of such systems like fusion breeder units comprising of pebble beds, it is essential to understand the various factors influencing the response of the system. Mechanical response of a binary assembly consisting of crushable spherical pebbles is studied using Discrete Element Method (DEM) which is based on particle–particle interactions. The influence of above mentioned factors on the macroscopic stress–strain response is investigated using an in-house DEM code. Furthermore, the effect of these factors on the damage in the assembly is investigated. This present investigation helps in understanding the macroscopic response and damage in terms of microscopic factors paving way to develop a unified prediction tool for a binary crushable granular assembly.http://www.sciencedirect.com/science/article/pii/S2352179115300685Crushable pebble assemblyBinary pebble assemblyDiscrete element methodNuclear fusionBreeder materials
collection DOAJ
language English
format Article
sources DOAJ
author Raghuram Karthik Desu
Yixiang Gan
Marc Kamlah
Ratna Kumar Annabattula
spellingShingle Raghuram Karthik Desu
Yixiang Gan
Marc Kamlah
Ratna Kumar Annabattula
Mechanics of binary crushable granular assembly through discrete element method
Nuclear Materials and Energy
Crushable pebble assembly
Binary pebble assembly
Discrete element method
Nuclear fusion
Breeder materials
author_facet Raghuram Karthik Desu
Yixiang Gan
Marc Kamlah
Ratna Kumar Annabattula
author_sort Raghuram Karthik Desu
title Mechanics of binary crushable granular assembly through discrete element method
title_short Mechanics of binary crushable granular assembly through discrete element method
title_full Mechanics of binary crushable granular assembly through discrete element method
title_fullStr Mechanics of binary crushable granular assembly through discrete element method
title_full_unstemmed Mechanics of binary crushable granular assembly through discrete element method
title_sort mechanics of binary crushable granular assembly through discrete element method
publisher Elsevier
series Nuclear Materials and Energy
issn 2352-1791
publishDate 2016-12-01
description The mechanical response of a granular system is not only influenced by the bulk material properties but also on various factors due to it’s discrete nature. The factors like topology, packing fraction, friction between particles, particle size distribution etc. influence the behavior of granular systems. For a reliable design of such systems like fusion breeder units comprising of pebble beds, it is essential to understand the various factors influencing the response of the system. Mechanical response of a binary assembly consisting of crushable spherical pebbles is studied using Discrete Element Method (DEM) which is based on particle–particle interactions. The influence of above mentioned factors on the macroscopic stress–strain response is investigated using an in-house DEM code. Furthermore, the effect of these factors on the damage in the assembly is investigated. This present investigation helps in understanding the macroscopic response and damage in terms of microscopic factors paving way to develop a unified prediction tool for a binary crushable granular assembly.
topic Crushable pebble assembly
Binary pebble assembly
Discrete element method
Nuclear fusion
Breeder materials
url http://www.sciencedirect.com/science/article/pii/S2352179115300685
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