Experimental characterization of cohesive laws for mode-II interlaminar fracture in geometrically scaled composites using through-thickness deformation analysis
Han-Gyu Kim, Ryan Howe, Richard Wiebe, S. Michael Spottswood, Patrick J. O'Hara, and Marco Salviato

TL;DR
This study develops an experimental framework using digital image correlation to characterize cohesive laws for mode-II interlaminar fracture in scaled composites, revealing size effects and validating a single cohesive law model.
Contribution
The paper introduces a novel experimental method combining DIC and size effect laws to characterize cohesive laws across different specimen sizes.
Findings
Size effect observed in separation values at fracture loads.
A single cohesive law can approximate global fracture behavior.
Partial cohesive zone development captured at fracture loads.
Abstract
This work proposes an experimental framework to characterize a cohesive law for mode-II interlaminar fracture and demonstrates its implementation. For a size effect study, geometrically scaled end-notched flexure specimens were tested using microscopic and macroscopic digital image correlation (DIC) systems. The fracture energy was characterized using a compliance calibration method and Ba\v{z}ant's type-II size effect law for comparison. In the proposed experimental framework, the DIC data were post-processed using three steps: coordinate transformation, curve fitting, and through-thickness deformation analysis. Different magnitudes of separation values were measured from different sizes at fracture loads, implying size effect and partial development of cohesive laws. Modeling and simulations were intended to validate the proposed method and demonstrate the utilization of the…
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Taxonomy
TopicsOptical measurement and interference techniques · Mechanical Behavior of Composites · Ultrasonics and Acoustic Wave Propagation
