On using mesh-based and mesh-free methods in problems defined by Eringen’s non-local integral model: issues and remedies
With the recent success of nonlocal theories in modeling of engineering problems involving small intrinsic length scales, such as modeling of crack propagation, this paper addresses issues pertaining to cost-ineffectiveness of Eringen’s integral model. The cost effectiveness of the computation may b...
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| Published in | Meccanica (Milan) Vol. 54; no. 11-12; pp. 1801 - 1822 |
|---|---|
| Main Authors | , |
| Format | Journal Article |
| Language | English |
| Published |
Dordrecht
Springer Netherlands
01.09.2019
Springer Nature B.V |
| Subjects | |
| Online Access | Get full text |
| ISSN | 0025-6455 1572-9648 |
| DOI | 10.1007/s11012-019-01048-6 |
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| Abstract | With the recent success of nonlocal theories in modeling of engineering problems involving small intrinsic length scales, such as modeling of crack propagation, this paper addresses issues pertaining to cost-ineffectiveness of Eringen’s integral model. The cost effectiveness of the computation may be considered as a twofold issue; one pertaining to the non-local model and another pertaining to the numerical tool. First of all, we shall show that during the solution of problems with Eringen’s non-local integral model, there is no need to consider the integral model for the whole computational domain. In fact, the problems may be solved by just using the integral model close to the boundaries, i.e. a boundary layer effect, or around the points with singularities. In this paper we propose a partitioning strategy to remarkably reduce the computational cost. This may be considered as a gateway for solving some types of two-scale problems, e.g. those with macro/micro and nano scales, in which the small scale effects are localized just at parts of the domain. To demonstrate the efficiency of the numerical tools, we examine the performance of the finite element method (FEM), the element free Galerkin method (EFG) and the finite point method (FPM). This paves the way for using mesh-free methods in the solution of problems with non-local integral models. Examples with smooth and non-smooth solutions are considered for examining the efficiency of the methods. It will be shown that, by considering the boundary layer effect, the FEM and FPM will be efficient enough for being used in problems defined by Eringen’s non-local integral model. |
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| AbstractList | With the recent success of nonlocal theories in modeling of engineering problems involving small intrinsic length scales, such as modeling of crack propagation, this paper addresses issues pertaining to cost-ineffectiveness of Eringen’s integral model. The cost effectiveness of the computation may be considered as a twofold issue; one pertaining to the non-local model and another pertaining to the numerical tool. First of all, we shall show that during the solution of problems with Eringen’s non-local integral model, there is no need to consider the integral model for the whole computational domain. In fact, the problems may be solved by just using the integral model close to the boundaries, i.e. a boundary layer effect, or around the points with singularities. In this paper we propose a partitioning strategy to remarkably reduce the computational cost. This may be considered as a gateway for solving some types of two-scale problems, e.g. those with macro/micro and nano scales, in which the small scale effects are localized just at parts of the domain. To demonstrate the efficiency of the numerical tools, we examine the performance of the finite element method (FEM), the element free Galerkin method (EFG) and the finite point method (FPM). This paves the way for using mesh-free methods in the solution of problems with non-local integral models. Examples with smooth and non-smooth solutions are considered for examining the efficiency of the methods. It will be shown that, by considering the boundary layer effect, the FEM and FPM will be efficient enough for being used in problems defined by Eringen’s non-local integral model. With the recent success of nonlocal theories in modeling of engineering problems involving small intrinsic length scales, such as modeling of crack propagation, this paper addresses issues pertaining to cost-ineffectiveness of Eringen’s integral model. The cost effectiveness of the computation may be considered as a twofold issue; one pertaining to the non-local model and another pertaining to the numerical tool. First of all, we shall show that during the solution of problems with Eringen’s non-local integral model, there is no need to consider the integral model for the whole computational domain. In fact, the problems may be solved by just using the integral model close to the boundaries, i.e. a boundary layer effect, or around the points with singularities. In this paper we propose a partitioning strategy to remarkably reduce the computational cost. This may be considered as a gateway for solving some types of two-scale problems, e.g. those with macro/micro and nano scales, in which the small scale effects are localized just at parts of the domain. To demonstrate the efficiency of the numerical tools, we examine the performance of the finite element method (FEM), the element free Galerkin method (EFG) and the finite point method (FPM). This paves the way for using mesh-free methods in the solution of problems with non-local integral models. Examples with smooth and non-smooth solutions are considered for examining the efficiency of the methods. It will be shown that, by considering the boundary layer effect, the FEM and FPM will be efficient enough for being used in problems defined by Eringen’s non-local integral model. |
| Author | Boroomand, Bijan Abdollahi, Reza |
| Author_xml | – sequence: 1 givenname: Reza orcidid: 0000-0003-3533-0555 surname: Abdollahi fullname: Abdollahi, Reza email: reza.abdollahi@cv.iut.ac.ir organization: Department of Civil Engineering, Isfahan University of Technology – sequence: 2 givenname: Bijan surname: Boroomand fullname: Boroomand, Bijan organization: Department of Civil Engineering, Isfahan University of Technology |
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| CitedBy_id | crossref_primary_10_1016_j_commatsci_2021_110429 crossref_primary_10_1007_s11012_019_01091_3 crossref_primary_10_1177_10812865211031278 crossref_primary_10_1007_s11012_020_01183_5 crossref_primary_10_1080_15376494_2021_1955314 crossref_primary_10_1016_j_compstruct_2020_113003 crossref_primary_10_1016_j_mechmat_2020_103587 crossref_primary_10_18698_1812_3368_2023_4_4_17 |
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| Keywords | Finite element method Crack modeling Element free Galerkin method Non-local elasticity Finite point method Eringen’s integral Boundary layer |
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| SubjectTerms | Automotive Engineering Boundary layers Civil Engineering Classical Mechanics Computer networks Cost effectiveness Crack propagation Finite element method Galerkin method Gateways (computers) Integrals Mathematical models Mechanical Engineering Meshless methods Methods Physics Physics and Astronomy Singularities |
| Title | On using mesh-based and mesh-free methods in problems defined by Eringen’s non-local integral model: issues and remedies |
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