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Characterizations are important aspect to understand the performance of materials under service conditions.
Degrading effects occurring in such materials under service – such as matrix fibre detaching (debonding), fibre breaking, matrix cracking – must be taken into account in the safety assessments.
Our goal was to derive a predictive model capability that takes into account various type of structural materials, under service loads and environment.
As these materials are degraded by their exposure to high temperatures, irradiation and a corrosive environment, it is necessary to address the issue of long term degradation of materials under service exposure in advanced plants.
The reliability of these installations can be guaranteed by thorough knowledge of the behavior of materials under service conditions, which, for nuclear reactors, correspond to lifetimes of several tens of years.
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The performance of an elastomeric vibro-acoustic isolation system is governed by the dynamic properties of the material under service temperature and frequency conditions.
This paper also discusses the challenges involved in using the existing materials under both service and off-normal conditions.
CMCs are used as thermostructural materials under severe service conditions, for example, high temperatures under load and in corrosive atmospheres, such as combustion gases.
Although the service checks are generally conservative based on limiting stresses in the structure at service loads the adoption of higher strength materials suggests potential problems under service conditions.
Ratchetting deformation has significant implications on material damage and fatigue life of components under service loading conditions.
Off-road ultra-large tires experience different modes of heat-related fatigue failure in operation due to inherent material defects that grow into visible cracks under service loads.
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