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So the fatigue behaviour of our material strongly depends on temperature variations.
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The work aims to provide a micromechanics-based understanding of plastic deformation behaviour of the material.
The MWCNTs are the source of a radical change in the calorimetric behaviour of the material.
This affects positively the mechanical behaviour of the material, especially of version 3 (Fig. 3(c)).
The behaviour of such material is described by the theory of micropolar elasticity.
The result is therefore conservative as the post-yield behaviour of the material is not considered.
Besides, the nonlinearity can be considered as macroscopic behaviour of the material independently from damage evolution.
Method of shrinkage cracking assessment is improved when parameters influencing cracking behaviour of repair material under restrained condition are reckoned.
Importantly, mechanical behaviour of the material evolves with time due to the hydrolytic chain scission (Pan 2015).
Such enhancement allows study of the fracture behaviour of the material across its usage temperature range.
The nonlinear elastic plastic behaviour of the material has been considered.
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