Measurements of Dynamic Stress Intensity Factors for Fast Running and Arresting Cracks in Double-Cantilever-Beam Specimens
- 1 January 1977
- book chapter
- Published by ASTM International
- p. 161-176
- https://doi.org/10.1520/stp27387s
Abstract
The influence of dynamic effects on the crack arrest process is investigated. For propagating and subsequently arresting cracks, actual dynamic stress intensity factors were measured applying a shadow optical technique in combination with a Cranz Schardin high-speed camera. The experiments were performed in wedge-loaded double-cantilever-beam (DCB) specimens machined from an epoxy resin (Araldite B). In the initial phase of crack propagation the measured dynamic stress intensity factors were found smaller; in the arresting phase, however, they were larger than the corresponding static values. After arrest the dynamic stress intensity factor oscillates with decreasing amplitude around the static stress intensity factor at arrest. Crack arrest toughness values determined according to a static analysis showed a dependence on the crack velocity prior to arrest, but the dynamic crack arrest toughness yielded a single value only, indicating that this quantity represents a true material property.Keywords
This publication has 8 references indexed in Scilit:
- Analysis of fast fracture and crack arrest by finite differencesInternational Journal of Fracture, 1977
- An augmented double cantilever beam model for studying crack propagation and arrestInternational Journal of Fracture, 1973
- Dynamic stress-intensity factors for finite strip problemsInternational Journal of Fracture, 1972
- Complex stress-intensity factors at bifurcated cracksJournal of the Mechanics and Physics of Solids, 1972
- Crack arrest toughness of pressure vessel steelsNuclear Engineering and Design, 1971
- An investigation of propagating cracks by dynamic photoelasticityExperimental Mechanics, 1970
- Dynamic Fracture Toughness of A533 SteelJournal of Basic Engineering, 1969
- A comparison of static and dynamic properties of photoelastic materialsExperimental Mechanics, 1963