Level-Set Topology Optimization for Ductile and Brittle Fracture Resistance Using the Phase-Field Method
Nima Noii, Hassan Ali Jahangiry, Haim Waisman

TL;DR
This paper develops a phase-field and level-set based topology optimization framework to design ductile and brittle fracture-resistant structures, balancing mass reduction and structural integrity through innovative formulations and numerical methods.
Contribution
It introduces a novel phase-field topology optimization method incorporating fracture resistance, with two formulations and a level-set approach for clear boundary evolution.
Findings
Effective optimization of structures for fracture resistance.
Demonstrated approach through 3D numerical examples.
Enhanced understanding of fracture behavior in optimized designs.
Abstract
This work presents a rigorous mathematical formulation for topology optimization of a macrostructure undergoing ductile failure. The prediction of ductile solid materials which exhibit dominant plastic deformation is an intriguingly challenging task and plays an extremely important role in various engineering applications. Here, we rely on the phase-field approach to fracture which is a widely adopted framework for modeling and computing the fracture failure phenomena in solids. The first objective is to optimize the topology of the structure in order to minimize its mass, while accounting for structural damage. To do so, the topological phase transition function (between solid and void phases) is introduced, thus resulting in an extension of all the governing equations. Our second objective is to additionally enhance the fracture resistance of the structure. Accordingly, two different…
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Taxonomy
TopicsTopology Optimization in Engineering · Metaheuristic Optimization Algorithms Research · Advanced Mathematical Modeling in Engineering
