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The influence of different mullite precursors on the densification behavior and the microstructure of mullite Mo composites has been studied.
A thorough rheological investigation is performed, including the characterization of the steady state flow behavior and the microstructure at rest.
In the case of 20 °Cbehavior and the microstructure changed with addition of the alloy elements.
Furthermore, the present model is based on a rigorous homogenization method which is capable of predicting both the constitutive behavior and the microstructure evolution of porous materials.
Thermal behavior and the microstructure of the sheared samples were studied by Differential Scanning Calorimetry, DSC, and Wide-Angle X-ray Diffraction, WAXD.
The effect of a strain rate varying from ∼10−3 to ∼10−5 s−1 at a strain amplitude ranging from ±0.2%to±0.6%6% on the low cycle fatigue (LCF) behavior and the microstructure of a 10%Cr-2Cr-2%W-0.7%W-0.7%Mo-3Mo-3%ith 0.008 wt.% B and 0.003 wt.% N additions was studied at a temperature of 650 °C.
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The current model is beneficial to understand the effect of recrystallization behavior and control the microstructure evolution during hot rod rolling process.
This paper takes a closer look at the characteristics of the laser irradiation effect of Sb/SnO2 bi-layer films on the optical and electrical behavior and the interface microstructure of Sb/SnO2 by high resolution transmission electron microscopy (HR-TEM).
In this work we examined the effect of dew point on the surface selective oxidation behavior and the subsurface microstructure of TRIP-aided steel mainly by XPS and FE-SEM.
The thermoelastic transformation behavior and the arising microstructures were characterized by means of differential scanning calorimetry (DSC) and transmission electron microscopy (TEM).
It is then of crucial importance to be able to predict the mechanical behavior during forging and the microstructure evolution during and after the dynamic recrystallization.
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