Topological defects govern crack front motion and facet formation on broken surfaces
arXiv:1708.01881 · doi:10.1038/nmat5008
Abstract
Patterns on broken surfaces are well-known from everyday experience, but surprisingly, how and why they form are very much open questions. Well-defined facets are commonly observed1-4 along fracture surfaces which are created by slow tensile cracks. As facets appear in amorphous materials5-7, their formation does not reflect microscopic order. Fracture mechanics, however, predict that slow crack fronts should be straight, creating mirror-like surfaces8-13. In contrast, facet-forming fronts propagate simultaneously within different planes separated by steps. It is therefore unclear why steps are stable, what determines their path and how they couple to crack front dynamics. Here we show, by integrating real-time imaging of propagating crack fronts with surface measurements, that steps are topological defects of crack fronts; crack front separation into discontinuous overlapping segments provides the condition for step stability. Steps drift at a constant angle to the local front propagation direction and the increased local dissipation due to step formation couples to the long-range deformation of the surrounding crack fronts. Slow crack front dynamics are enslaved to changes in step heights and positions. These observations show how 3D topology couples to 2D fracture dynamics to provide a fundamental picture of how patterned surfaces are generated.
14 pages, 6 figures
References in corpus (5)
- Weakly Nonlinear Theory of Dynamic Fracture
- Crack Front Segmentation and Facet Coarsening in Mixed-Mode Fracture
- Magic angles and cross-hatching instability in hydrogel fracture
- Crack front dynamics: the interplay of singular geometry and crack instabilities
- Fracture surfaces of heterogeneous materials: a 2D solvable model
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- Crack tip kinematics reveal the cohesive zone structure in brittle hydrogel fracture
- How hidden 3D structure within crack fronts reveals energy balance
- Universality and stability phase-diagram of two-dimensional brittle fracture
- Crack Path Selection in Orientationally Ordered Composites
- How Material Heterogeneity Creates Rough Fractures
- Quenched disorder and instability control dynamic fracture in three dimensions
- Configurational stability of a crack propagating in a material with mode-dependent fracture energy -- Part II: Drift of fracture facets in mixed-mode I+II+III
- Size selection of crack front defects: Multiple fracture-plane interactions and intrinsic lengthscales
- Virtual Frame Technique: Ultrafast Imaging with Any Camera
- The dynamics of crack front waves in 3D material failure