Review of Scientific Instruments · 2015 · 13 citations · 31 references
EngineeringMechanical EngineeringMechanical CharacterizationStrain Measurement TechniqueCreep BehaviorCeramic Matrix CompositeStressstrain AnalysisCeramic TechnologyMaterials ScienceHigh SensitivityMechanical BehaviorStrain LocalizationSolid MechanicsMicrostructureRoom TemperatureHigh Temperature MaterialsMechanical PropertiesMaterials CharacterizationApplied PhysicsThin FilmsMechanics Of MaterialsCarbideHigh Strain Rate
A novel high-temperature micro-tensile setup allows the characterization of the elastic and plastic as well as creep behavior of free-standing thin films at temperatures of up to 1000 °C. Correspondingly, a new layout for free-standing thin film tensile test structures has been developed, enabling accurate self-alignment upon loading. Furthermore, a differential optical strain measurement technique as well as optimizations of the optical path has been implemented, providing a strain resolution of well below 1 × 10(-4) at 1000 °C. Two different polycrystalline SiC free-standing thin films have been investigated in tension to acquire stress-strain data and corresponding Young's modulus at up to 1000 °C. The high sensitivity of the strain measurement technique makes it also possible to identify creep strains in the high-temperature regime.
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Determination of displacements using an improved digital correlation method
MA Sutton, WJ Wolters, WH Peters et al. · Image and Vision Computing · 1983 · 1.8K citations
Silicon carbide MEMS for harsh environments
Mehran Mehregany, Christian A. Zorman, N. Rajan et al. · Proceedings of the IEEE · 1998 · 457 citations
Materials Science, Materials Engineering, Electrical Engineering +15