A Novel Nonlocal Lattice Particle Framework for Modeling of Solids

abstract: Fracture phenomena have been extensively studied in the last several decades. Continuum mechanics-based approaches, such as finite element methods and extended finite element methods, are widely used for fracture simulation. One well-known issue of these approaches is the stress singularit...

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Other Authors: Chen, Hailong (Author)
Format: Doctoral Thesis
Language:English
Published: 2015
Subjects:
Online Access:http://hdl.handle.net/2286/R.I.34782
id ndltd-asu.edu-item-34782
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spelling ndltd-asu.edu-item-347822018-06-22T03:06:26Z A Novel Nonlocal Lattice Particle Framework for Modeling of Solids abstract: Fracture phenomena have been extensively studied in the last several decades. Continuum mechanics-based approaches, such as finite element methods and extended finite element methods, are widely used for fracture simulation. One well-known issue of these approaches is the stress singularity resulted from the spatial discontinuity at the crack tip/front. The requirement of guiding criteria for various cracking behaviors, such as initiation, propagation, and branching, also poses some challenges. Comparing to the continuum based formulation, the discrete approaches, such as lattice spring method, discrete element method, and peridynamics, have certain advantages when modeling various fracture problems due to their intrinsic characteristics in modeling discontinuities. A novel, alternative, and systematic framework based on a nonlocal lattice particle model is proposed in this study. The uniqueness of the proposed model is the inclusion of both pair-wise local and multi-body nonlocal potentials in the formulation. First, the basic ideas of the proposed framework for 2D isotropic solid are presented. Derivations for triangular and square lattice structure are discussed in detail. Both mechanical deformation and fracture process are simulated and model verification and validation are performed with existing analytical solutions and experimental observations. Following this, the extension to general 3D isotropic solids based on the proposed local and nonlocal potentials is given. Three cubic lattice structures are discussed in detail. Failure predictions using the 3D simulation are compared with experimental testing results and very good agreement is observed. Next, a lattice rotation scheme is proposed to account for the material orientation in modeling anisotropic solids. The consistency and difference compared to the classical material tangent stiffness transformation method are discussed in detail. The implicit and explicit solution methods for the proposed lattice particle model are also discussed. Finally, some conclusions and discussions based on the current study are drawn at the end. Dissertation/Thesis Chen, Hailong (Author) Liu, Yongming (Advisor) Jiao, Yang (Committee member) Mignolet, Marc (Committee member) Oswald, Jay (Committee member) Solanki, Kiran (Committee member) Arizona State University (Publisher) Engineering Mechanical engineering Mechanics Anisotropic Materials Elasticity Fracture Lattice Spring Model Nonlocal Potential Polycrystalline Materials eng 237 pages Doctoral Dissertation Mechanical Engineering 2015 Doctoral Dissertation http://hdl.handle.net/2286/R.I.34782 http://rightsstatements.org/vocab/InC/1.0/ All Rights Reserved 2015
collection NDLTD
language English
format Doctoral Thesis
sources NDLTD
topic Engineering
Mechanical engineering
Mechanics
Anisotropic Materials
Elasticity
Fracture
Lattice Spring Model
Nonlocal Potential
Polycrystalline Materials
spellingShingle Engineering
Mechanical engineering
Mechanics
Anisotropic Materials
Elasticity
Fracture
Lattice Spring Model
Nonlocal Potential
Polycrystalline Materials
A Novel Nonlocal Lattice Particle Framework for Modeling of Solids
description abstract: Fracture phenomena have been extensively studied in the last several decades. Continuum mechanics-based approaches, such as finite element methods and extended finite element methods, are widely used for fracture simulation. One well-known issue of these approaches is the stress singularity resulted from the spatial discontinuity at the crack tip/front. The requirement of guiding criteria for various cracking behaviors, such as initiation, propagation, and branching, also poses some challenges. Comparing to the continuum based formulation, the discrete approaches, such as lattice spring method, discrete element method, and peridynamics, have certain advantages when modeling various fracture problems due to their intrinsic characteristics in modeling discontinuities. A novel, alternative, and systematic framework based on a nonlocal lattice particle model is proposed in this study. The uniqueness of the proposed model is the inclusion of both pair-wise local and multi-body nonlocal potentials in the formulation. First, the basic ideas of the proposed framework for 2D isotropic solid are presented. Derivations for triangular and square lattice structure are discussed in detail. Both mechanical deformation and fracture process are simulated and model verification and validation are performed with existing analytical solutions and experimental observations. Following this, the extension to general 3D isotropic solids based on the proposed local and nonlocal potentials is given. Three cubic lattice structures are discussed in detail. Failure predictions using the 3D simulation are compared with experimental testing results and very good agreement is observed. Next, a lattice rotation scheme is proposed to account for the material orientation in modeling anisotropic solids. The consistency and difference compared to the classical material tangent stiffness transformation method are discussed in detail. The implicit and explicit solution methods for the proposed lattice particle model are also discussed. Finally, some conclusions and discussions based on the current study are drawn at the end. === Dissertation/Thesis === Doctoral Dissertation Mechanical Engineering 2015
author2 Chen, Hailong (Author)
author_facet Chen, Hailong (Author)
title A Novel Nonlocal Lattice Particle Framework for Modeling of Solids
title_short A Novel Nonlocal Lattice Particle Framework for Modeling of Solids
title_full A Novel Nonlocal Lattice Particle Framework for Modeling of Solids
title_fullStr A Novel Nonlocal Lattice Particle Framework for Modeling of Solids
title_full_unstemmed A Novel Nonlocal Lattice Particle Framework for Modeling of Solids
title_sort novel nonlocal lattice particle framework for modeling of solids
publishDate 2015
url http://hdl.handle.net/2286/R.I.34782
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