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Examination of the elastic energy as a function of domain boundary orientation shows that boundaries oriented parallel to the (110) plane of the substrate are preferred.
When cracks were favorably oriented relative to the microstructural orientation (i.e., packet orientation, grain boundary orientation), some cracks grew following prior β grain boundaries or packet boundaries.
Key variables in these models included site quality, stocking, boundary orientation, time since harvest and topographic exposure.
Instead, they remained straight or formed several facets which were inclined to the initial boundary orientation.
The grain boundaries were classified according to the three misorientation parameters and two grain boundary orientation parameters.
We demonstrate here that it is possible to increase fracture toughness of ceramic nanostructured materials of more than 150% by a dedicated grain boundary orientation design with respect to the direction of the expected crack path without loss of hardness.
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We suggest that by a dedicated design of grain boundary orientations, it is possible to synthetize novel types of hard and tough nanomaterials.
Orientation relationships (ORs), interphase boundary orientations and some boundary structures were determined and compared to those predicted by various geometric criteria.
When the rutile and M2 phases coexist, it was found that different interphase boundary orientations can be stabilized by sample size and by interfacial elastic strain.
An answer to the question of whether or not a precipitate crystal can be fully or partly coherent at one or more boundary orientations and incoherent at others is developed.
This paper reports the influence of substrates and peak current densities on: crystallographic textures; twin density, thickness, spacing and twin boundary orientations; and electrical transport and mechanical properties of Cu films fabricated by pulsed electrodeposition.
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