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In this paper, nano and micro scale surface treatment effects on adhesion strength improvement for CFRP/aluminum interfaces were investigated.
The experimental results showed that adhesion strength could be enhanced by applying the nano and micro scale surface morphology obtaind from surface treatment on the metallic adherend.
Experiments and numerical simulations were carried out to demonstrate that extrusion-forging process can be used to create such micro scale surface features.
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Such surfaces often consist of localised micro-scale surface features with predetermined geometries.
Wetting involves interactions at different scale levels/sizes, namely macro-scale (water drop), micro-scale (surface texture) and nano-scale (molecules).
It is concluded that the heat transfer enhancement by the heat transfer additive is more significant than that by the micro-scale surface treatment.
Micro-scale surface shape memory effects were investigated on multilayer films that were produced with alternating layers of PVAc and PU.
The results of this study show that superhydrophobic surfaces can be produced by either micro-scale surface texturing or nano-scale surface texturing, or the combination of both, after fluorinated carbon film deposition.
Further, electric field gradients such as those under a sharp electrode or in the fringe field in a capacitor can drive surface diffusion, leading to nano-scale and micro-scale surface structure growth.
In the present study, the investigation of free volume (nano scale level) and surface (micro scale level) properties of PET polymeric thin films after SHI treatment were employed by means of positron annihilation lifetime spectroscopy (PALS) and atomic force microscopy (AFM), respectively.
This article presents a review of novel laser-based techniques for the printing and micro- and nano- scale surface modification of materials for biological applications.
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