Pretražite po imenu i prezimenu autora, mentora, urednika, prevoditelja

Napredna pretraga

Pregled bibliografske jedinice broj: 765479

Multiscale Computational Approach Using Strain Gradient Formulation at Microlevel


Lesičar, Tomislav; Sorić, Jurica; Tonković, Zdenko
Multiscale Computational Approach Using Strain Gradient Formulation at Microlevel // 4th International Conference on Material Modeling : abstracts
Berkeley, CA, 2015. str. 55-55 (predavanje, međunarodna recenzija, sažetak, znanstveni)


CROSBI ID: 765479 Za ispravke kontaktirajte CROSBI podršku putem web obrasca

Naslov
Multiscale Computational Approach Using Strain Gradient Formulation at Microlevel

Autori
Lesičar, Tomislav ; Sorić, Jurica ; Tonković, Zdenko

Vrsta, podvrsta i kategorija rada
Sažeci sa skupova, sažetak, znanstveni

Izvornik
4th International Conference on Material Modeling : abstracts / - Berkeley, CA, 2015, 55-55

Skup
International Conference on Material Modeling (4 ; 2015)

Mjesto i datum
Berkeley (CA), Sjedinjene Američke Države, 27.05.2015. - 29.05.2015

Vrsta sudjelovanja
Predavanje

Vrsta recenzije
Međunarodna recenzija

Ključne riječi
Multiscale computational approach; C1 second-order computational homogenization; C1 continuity finite element
(Multiscale computational approach; second-order computational homogenization; large strain formulation; C1 continuity finite element)

Sažetak
A more realistic description of the deformation responses of heterogeneous materials demands more accurate modeling at both macroscopic and microscopic scales. The size, shape, spatial distribution, volume fraction and the properties of the constituents making up the microstructure have a significant impact on the material behavior observed at the macroscale. Strain localization phenomena and material softening as results of extreme loading conditions, may significantly decrease structural load-carrying capacity. Therefore, in order to assess structural integrity and reliability as well as to predict structural lifetime, an analysis on the microlevel is unavoidable. Multiscale techniques employing several homogenization schemes have been proposed. The two-scale second-order homogenization approach has mostly been used, which requires C1 continuity in the discretization at macrolevel. The standard C0 continuity has been hold at microlevel, where the solution of the boundary value problem of the representative volume element (RVE) has been performed. However, this C1 - C0 transition has some shortcomings. The microlevel second-order gradient cannot be related to the macrolevel as volume average, and a modified second-order stress is extracted from the Hill-Mandel energy condition, which bring some inconsistences in the formulations and disturb accuracy. Furthermore, the localization and the material softening cannot be modeled at microlevel without loss of ellipticity of governing field equations. The present contribution is concerned with a multiscale second-order computational homogenization algorithm employing C1 continuity at both macro- and microlevels under assumptions of small strains and linear elastic material behavior. Discretization is performed by means of the C1 continuity finite element developed using strain gradient theory. A new scale transition methodology is derived in which the volume average of the macrolevel variables prescribed at the microlevel is explicitly satisfied. The Hill Mandel condition yields the true state variables. The macroscopic consistent constitutive matrices are computed from the RVE global stiffness matrix using the standard procedures. The implemented strain gradient theory enables the modeling of damage response at the microstructural level, which is connected with strain localization and softening. The algorithms derived are implemented into FE software ABAQUS via user subroutines. The robustness and accuracy of the proposed homogenization approach is demonstrated by numerical examples.

Izvorni jezik
Engleski

Znanstvena područja
Strojarstvo



POVEZANOST RADA


Projekti:
HRZZ-IP-2013-11-2516 - Višeskalno numeričko modeliranje deformiranja materijala od makro do nanorazine (MNumMacroNano) (Sorić, Jurica, HRZZ - 2013-11) ( CroRIS)

Ustanove:
Fakultet strojarstva i brodogradnje, Zagreb

Profili:

Avatar Url Tomislav Lesičar (autor)

Avatar Url Jurica Sorić (autor)

Avatar Url Zdenko Tonković (autor)

Poveznice na cjeloviti tekst rada:

Pristup cjelovitom tekstu rada

Citiraj ovu publikaciju:

Lesičar, Tomislav; Sorić, Jurica; Tonković, Zdenko
Multiscale Computational Approach Using Strain Gradient Formulation at Microlevel // 4th International Conference on Material Modeling : abstracts
Berkeley, CA, 2015. str. 55-55 (predavanje, međunarodna recenzija, sažetak, znanstveni)
Lesičar, T., Sorić, J. & Tonković, Z. (2015) Multiscale Computational Approach Using Strain Gradient Formulation at Microlevel. U: 4th International Conference on Material Modeling : abstracts.
@article{article, author = {Lesi\v{c}ar, Tomislav and Sori\'{c}, Jurica and Tonkovi\'{c}, Zdenko}, year = {2015}, pages = {55-55}, keywords = {Multiscale computational approach, C1 second-order computational homogenization, C1 continuity finite element}, title = {Multiscale Computational Approach Using Strain Gradient Formulation at Microlevel}, keyword = {Multiscale computational approach, C1 second-order computational homogenization, C1 continuity finite element}, publisherplace = {Berkeley (CA), Sjedinjene Ameri\v{c}ke Dr\v{z}ave} }
@article{article, author = {Lesi\v{c}ar, Tomislav and Sori\'{c}, Jurica and Tonkovi\'{c}, Zdenko}, year = {2015}, pages = {55-55}, keywords = {Multiscale computational approach, second-order computational homogenization, large strain formulation, C1 continuity finite element}, title = {Multiscale Computational Approach Using Strain Gradient Formulation at Microlevel}, keyword = {Multiscale computational approach, second-order computational homogenization, large strain formulation, C1 continuity finite element}, publisherplace = {Berkeley (CA), Sjedinjene Ameri\v{c}ke Dr\v{z}ave} }




Contrast
Increase Font
Decrease Font
Dyslexic Font