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In nanocomposite applications, DDSA-CNC can improve both the dispersion of the nanoparticles in the matrix material as well as the interface between them.
The influence of various parameters like the fibre and matrix material as well as the fibre architecture and angle on the specific energy absorption under quasi-static and high-rate dynamic loading was assessed.
A cohesive-zone approach is used to study the interaction between an approaching crack and a particle embedded in a matrix material as a function of the mismatch in elastic and fracture properties.
They are used as reinforcements in ceramic matrix composites, which overcome the brittleness of monolithic ceramics but also find use in other types of matrix material as their dielectric properties can be designed for particular end uses.
After Cr leaching followed by alkali washing, a carbonation treatment is proposed to stabilize the remaining Cr in the matrix material and make the subsequent recycling of the matrix material as a construction material possible.
There are two different ways to consider this size-dependency: the first approach is to include the nonlocal effect by idealizing the matrix material as a high order continuum (e.g., micropolar or strain gradient); the second is to take into account the interface effect.
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The irradiation matrix comprises a variety of fibres and matrix materials, as well as composites with 1-D, 2-D or 3-D architectures.
Special focus was given to the matrix material behaviour as well as to the interface between constituents.
Results show that the geometric configuration, the matrix material properties as well as the impact velocity have significant influence on the matching relationships.
Combination of these techniques makes it possible to independently control the amount of Ag nanoparticles in the nanocomposites, as well as properties of matrix material, such as its chemical composition or wettability.
Ceramics are used to stabilize high-level nuclear waste, but only as a matrix material, not as a wrapper.
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