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Article: Effect of coefficient of friction on arch network in shearing process under low confinement

TitleEffect of coefficient of friction on arch network in shearing process under low confinement
Authors
KeywordsArch network
Discrete-element modeling
Force chain
Friction
Particle-scale behavior
Issue Date2018
PublisherElsevier SA. The Journal's web site is located at http://www.elsevier.com/locate/powtec
Citation
Powder Technology, 2018, v. 335, p. 1-10 How to Cite?
AbstractSubsea pipelines, trenching picks and ploughing blades are examples where soil-structure interaction occurs at very low vertical effective stress. Arches are multi-particle structures encountered during the interface shearing process, the existence of which dictates the properties of the overall granular assembly. In order to understand the behavior of dense granular materials in response to shearing under low confining pressure, physical modeling together with discrete element method (DEM) modeling of granular layers has been performed. Since friction can control the behaviors of granular flow, this study focuses on the effect of μ on the arch network as a parametric study. Grains have been subjected to horizontal shearing by a triangle wedge at an enlarged scale so that observations of the shearing process and behavior of particles can be made. The model was validated against physical modeling by comparing the rearrangement of selected particles, velocity vector field and arch network. During the shearing process, the arch network changed with the formation and collapse of arches, which was quantitatively analyzed in terms of arch size distribution and duration. The micromechanical responses from the granular assembly demonstrated that when μ increased, particle rearrangement shifted from sliding to rotation, resulting in longer and more durable arches. The investigation on contact forces showed that in-arch grains withstood larger forces and had a higher probability to participate in force chain than out-of-arch grains. Taking the effect of μ into consideration, the study explores the relationship among particle rearrangement, arch network, and force chains.
Persistent Identifierhttp://hdl.handle.net/10722/259208
ISSN
2017 Impact Factor: 3.23
2015 SCImago Journal Rankings: 0.991

 

DC FieldValueLanguage
dc.contributor.authorMeng, Y-
dc.contributor.authorZhu, H-
dc.contributor.authorKwok, CY-
dc.contributor.authorKuo, M-
dc.contributor.authorJing, L-
dc.contributor.authorHuang, X-
dc.date.accessioned2018-09-03T04:03:10Z-
dc.date.available2018-09-03T04:03:10Z-
dc.date.issued2018-
dc.identifier.citationPowder Technology, 2018, v. 335, p. 1-10-
dc.identifier.issn0032-5910-
dc.identifier.urihttp://hdl.handle.net/10722/259208-
dc.description.abstractSubsea pipelines, trenching picks and ploughing blades are examples where soil-structure interaction occurs at very low vertical effective stress. Arches are multi-particle structures encountered during the interface shearing process, the existence of which dictates the properties of the overall granular assembly. In order to understand the behavior of dense granular materials in response to shearing under low confining pressure, physical modeling together with discrete element method (DEM) modeling of granular layers has been performed. Since friction can control the behaviors of granular flow, this study focuses on the effect of μ on the arch network as a parametric study. Grains have been subjected to horizontal shearing by a triangle wedge at an enlarged scale so that observations of the shearing process and behavior of particles can be made. The model was validated against physical modeling by comparing the rearrangement of selected particles, velocity vector field and arch network. During the shearing process, the arch network changed with the formation and collapse of arches, which was quantitatively analyzed in terms of arch size distribution and duration. The micromechanical responses from the granular assembly demonstrated that when μ increased, particle rearrangement shifted from sliding to rotation, resulting in longer and more durable arches. The investigation on contact forces showed that in-arch grains withstood larger forces and had a higher probability to participate in force chain than out-of-arch grains. Taking the effect of μ into consideration, the study explores the relationship among particle rearrangement, arch network, and force chains.-
dc.languageeng-
dc.publisherElsevier SA. The Journal's web site is located at http://www.elsevier.com/locate/powtec-
dc.relation.ispartofPowder Technology-
dc.subjectArch network-
dc.subjectDiscrete-element modeling-
dc.subjectForce chain-
dc.subjectFriction-
dc.subjectParticle-scale behavior-
dc.titleEffect of coefficient of friction on arch network in shearing process under low confinement-
dc.typeArticle-
dc.identifier.emailKwok, CY: fkwok8@hku.hk-
dc.identifier.authorityKwok, CY=rp01344-
dc.description.naturelink_to_subscribed_fulltext-
dc.identifier.doi10.1016/j.powtec.2018.05.002-
dc.identifier.scopuseid_2-s2.0-85046733517-
dc.identifier.hkuros289119-
dc.identifier.volume335-
dc.identifier.spage1-
dc.identifier.epage10-
dc.publisher.placeSwitzerland-

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