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Electrochemical reaction for a CrMoV rotor steel in 2,4-dinitrobenzoic acid solutions has been investigated to explain a characteristic correlation between the open circuit potential and the embrittlement level of the steel.
Genetic variants were investigated to explain a part of the large interindividual variability and it was demonstrated that the rs2244613 intronic SNP to the esterase gene CES1 was associated with a decreased trough concentrations and a decreased risk of bleeding [ 15].
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Fracture behavior is investigated to explain the toughening mechanisms.
Two reaction models were investigated to explain these experimental results.
Solidification process and thermodynamic analysis were investigated to explain the formation mechanism of their microstructures.
Detailed deformation and damage mechanisms have been investigated to explain the observed differences in scratch performance of the model systems.
The enzymatic activity and expression pattern of proteins were then investigated to explain the genistein effect on malaria-induced splenomegaly.
The morphology and the supermolecular structure of PHB films were investigated to explain differences in the kinetics of enzymatic degradation.
The mechanism of the nucleation and growth was investigated to explain the specific characteristics of PPy films.
The relationship between the porosity and nanostructure is investigated to explain this unusual phenomenon.
The structure, morphology, and kinetics of the electrochemical process were systematically investigated to explain the performance of the proposed rare-earth perovskite-type composition.
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