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Difficulties associated with remediation of in-service damage include challenges over detection and removal of damaged material as well as the selection and qualification of appropriate methodologies for repair.
Water jet technology is widely used for surface cleaning, removal of damaged material layers, preparation of surfaces, and in many other applications.
To investigate the properties of this thin layer of damaged material in single crystal nickel, we employed two complementary techniques: pillar compression and nanoindentation.
In this work a new NDT approach is presented, based on the monitoring of the nonlinear elastic material behaviour of damaged material.
Unlike previous methods, the method presented here is capable of correctly accounting for bearing and bypass stresses, in the presence of damaged material properties, as well as the load re-distribution that occurs after bearing failure at one or more holes.
According to the conservation of energy, the complementary energy of damaged material is equal to that of the elastic material, as long as the stress is converted into an equivalent stress or the elasticity modulus is equal to an equivalent elastic modulus when the material is damaged.
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The results show that the surface materials have the advantage that the underwater superoleophobicity is still preserved after the surfaces are scratched by knife or sandpaper and even completely destroyed because of the hydrophilic property of damaged materials in water.
Both organic and inorganic consolidating products have been traditionally used in order to recover the mechanical properties of damaged materials of built heritage.
The primary objective is to increase understanding of the transition from intact to damaged material to aid in modeling efforts for armor design applications.
If the displacement exceeds a critical value, the cohesive force decreases, which accounts for the decay of strength of the damaged material (i.e. voids or microcracks appear ahead of the crack tip).
If the displacement exceeds a critical value, the cohesive force decreases, which accounts for the loss of strength of the damaged material (i.e. voids or micro-cracks appear in front of the crack tip).
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