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And thus, the influence of the thin epoxy film on mechanical properties of substrates should be investigated.
The paper is focused on development of response and fatigue models of thin epoxy polymer overlay materials.
We studied a model composite material consisting of a thin epoxy plate (matrix) reinforced with stiff circular disks (inclusions) and subjected to a uniaxial tension.
Moreover, the thin epoxy adhesive joints between the carbon-fiber face sheets and aluminum substrates were reinforced by adding short aramid fibers.
For results to be comparable the same critical fracture energy G c = 0.125 N/mm and peak stress t max = 10 N/mm2 have been taken as material parameters for the interface, which are representative of a thin epoxy adhesive film (≃ 0.2 mm thick) bonded on an aluminum substrate.
A circular Pt microelectrode (⊘ 80 μ) was mounted flush with the Pt disk electrode (⊘ 10 cm) and insulated from it by a very thin epoxy ring gap (breadth ∼ 10 μ).
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In this study, MWCNTs were used as a filler for epoxy thin film composites, where the thin film was fabricated using the spin coating method.
The surface of the platinum wire is coated with a thin electrical insulation epoxy to prevent short circuiting.
Thin sections and epoxy mounts of selected samples were also prepared for petrographic studies and electron probe microanalysis (EPMA).
Optically transparent, conductive, and mechanically flexible epoxy thin films are produced in the present study.
In particular, the role of the thin layer of epoxy is studied and is shown to have a strong influence on the dispersion.
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