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The material under stress was exposed to various simulated automobile service conditions to test its creep-rupture properties.
Therefore a two-phase material under stress is predicted to change its bulk chemistry as it deforms, by exchange with its surroundings.
The model reflects the amount of hydrogen in the material under stress and the intensity of hydrogen-induced softening in the material.
Predicting precisely where a crack will develop in a material under stress and exactly when catastrophic fracture of the component will occur is one the oldest unsolved mysteries in the design and building of large-scale engineering structures.
Simulations of indentations in the presence of a stacking fault tetrahedron show the highest reduction in the pop-in load for the (1 1 1) orientation, while experimentally the effect of orientation is dependent on the size of the indenter used, and hence the volume of material under stress.
In contrast, if the material under stress has a larger region of elastic behavior but only a smaller region of ductile behavior, the rock is considered brittle.
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The chapter reviews the background material, symbols, and terminology related to materials under stress.
Mechanical elements may produce significant contamination of ultrahigh vacuum due to emission of gases from materials under stress and rubbing.
To investigate the high-frequency properties of different ferrite materials under stress, a reflection/transmission cell had been designed.
The chapter focuses on the deformation and failure of materials under stress, but emphasizes upon brittle fracture and fatigue including ductile fracture and certain tribological failure modes such as fretting fatigue.
Still, modeling the behavior of materials under stress remained mired in what Cruse calls "make it, shake it, and break it".
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