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Mechanical behaviour was characterized under cyclic tensile loading.
The mechanical behaviour was appraised for different geometries, metal fastening devices and moisture content of timber.
The enhanced mechanical behaviour was attributed to the presence of EP in the composite material.
The mechanical behaviour was interpreted in the context of the textures developed in the material.
The mechanical behaviour was evaluated by means of tensile tests performed both to failure and to cycling.
In analogy with the solid composite model, the mechanical behaviour was found highly dependent on adhesion between starch and proteins.
Similar(45)
In rock mechanics, this strain-dependent switch in mechanical behaviour is referred to as C*′ and has been observed in porous limestones (e.g. Baud et al. 2000) and sandstones (e.g. Schock et al. 1973; Baud et al. 2006).
The mechanical behaviour is rate and temperature dependent.
However, it is important to note that mechanical behaviour is one of many places where the materials described here may be useful.
Mechanical behaviour is approached experimentally using tensile testing coupled to digital image acquisition.
Finally, the mechanical behaviour is modelled with a linear viscoelastic model.
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