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The robustness of virtual frameworks for prediction of the constitutive behaviour of these materials is discussed.
The degradation behaviour of these materials will be critical to any future application.
These interactions are of interest due to the liquid crystalline behaviour of these materials.
Mechanical behaviour of these materials was quantified by carrying out tensile and large-deflection bending tests.
The mechanical behaviour of these materials comes from instrumented nanoidentation tests and the geometric parameters are deduced from experimental observations.
The use of composites for deep sea applications requires a thorough understanding of the behaviour of these materials.
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However, it is encouraging to note that, as the key features of the mechanical behaviour for these materials occur at small strains, where the difference between the stress strain curve assuming volume conservation, and the observation using the line laser measurement is small.
BCS theory, which worked so well for simple, elemental superconductors, couldn't explain the behaviour of these new materials.
Comparisons with test data show that the cavitation model accurately predicts the behaviour of these complex materials.
The catalytic behaviour of these new materials are also studied and compared to the metal salt Cs2HPW12O40.
In order to gain new insight into the mechanical behaviour of these omnipresent materials, we analyse the deformation of seamless cellular bodies within the framework of finite strain elasticity and identify behaviours which are not captured under the small strain regime.
More suggestions(16)
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behaviour of these flows
behaviour of these nanostructures
behaviour of these systems
behaviour of these specimens
behaviour of these children
behaviour of these platforms
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behaviour of these women
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behaviour of these coatings
behaviour of these inflows
behaviour of these coefficients
behaviour of these controllers
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com