Bulletin of the American Physical Society
APS March Meeting 2019
Volume 64, Number 2
Monday–Friday, March 4–8, 2019; Boston, Massachusetts
Session B53: Disordered Networks: From Mechanical Properties to Failure
11:15 AM–2:15 PM,
Monday, March 4, 2019
BCEC
Room: 253C
Sponsoring
Units:
GSNP GSOFT
Chair: J. M. Schwarz
Abstract: B53.00004 : A quasi-cotinuum appoach for modeling fracture in disordered networked materials: Can small world architectures save the day?
1:03 PM–1:39 PM
Presenter:
Ahmed Elbanna
(University of Illinois at Urbana-Champaign)
Authors:
Ahmed Elbanna
(University of Illinois at Urbana-Champaign)
Ahmed N Ghareeb
(University of Illinois at Urbana-Champaign)
Here, we introduce a new adaptive numerical algorithm for solving polymer networks, the building blocks in many biological and engineering systems, using an extended version of the Quasi-Continuum (QC) method. In regions of high interest, for example near defects or cracks, each polymer chain is idealized using the worm like chain model. Away from these imperfections, the network structure is computationally homogenized, using Hill-Mandell’s principle, to yield an anisotropic material tensor consistent with the underlying network structure. Dynamic adaptivity provides a seamless transition across the two models. Overall, the proposed method provides a multi-resolution capability by retaining explicit representation of small scale heterogeneities and topological features, where they matter near the crach tips, while still accurately accounting for bulk elasticity and loading. We illustrate the efficiency of the method by applying it to study the fracture of large scale polymer network problems as realized in experiments on hydrogels. We further apply the method to test the influence of network topology on its fracture resistance and demonstrate that networks with small-world architectures, balancing clustering and avergae path length, may lead to an optimium fracture toughness. We discuss the implications of our findings for the analysis and design of tough networks.
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