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This chapter discusses the modeling of thermo-mechanical behavior of brittle material using shell elements.
However, an inherent behavior of brittle material such as glass is its low fracture toughness, which easily induces both interfacial delamination and fracture failure modes, particularly for bonds with neighboring passivation coating of silicon nitride (SiNx).
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The fracture behavior of brittle materials is strongly influenced by their underlying microstructure that needs explicit consideration for accurate prediction of fracture properties and the associated scatter.
The Francfort Marigo damage model is a variational approach to describe the behavior of brittle materials under the quasi-static loading assumption, focusing on the evolution of damaged regions under an irreversibility constraint.
The behavior and failure of brittle materials is significantly influenced by the existence of inhomogeneities such as pores and cracks.
This microstructure consists of a continuous matrix of brittle material surrounding brittle inclusions that are not bonded to it.
However, unlike the expected erosion behavior of a brittle material, an ultrafine grained binderless tungsten carbide was more erosive at low impact angle.
When the soft coefficient of stress of the uni-axial compression test is 2, it is softer than the tensile stress state and can show mechanical behavior of the brittle material in the plastic state.
Fréchette, V. D. Failure Analysis of Brittle Materials: Advances in Ceramics (American Ceramic Society, Westerville, OH, 1990).
Strength data of brittle materials show a significant scatter.
Unlike DMLS, EBM has the ability to treat brittle materials that cannot be processed by DMLS because it slowly cools, avoiding solidification cracking of brittle materials.
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