One-dimensional motion of interstitial clusters in iron-based binary alloys observed using a high-voltage electron microscope

Systematic experiments on one-dimensional (1D) motion of interstitial clusters in iron-based binary alloys were performed by in situ observation with a high-voltage electron microscope to investigate the effects of atomic size factor of solutes on 1D motion. The respective solute elements and their...

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Published inJournal of nuclear materials Vol. 433; no. 1-3; pp. 180 - 187
Main Authors Hamaoka, Takumi, Satoh, Yuhki, Matsui, Hideki
Format Journal Article
LanguageEnglish
Published Amsterdam Elsevier B.V 01.02.2013
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Abstract Systematic experiments on one-dimensional (1D) motion of interstitial clusters in iron-based binary alloys were performed by in situ observation with a high-voltage electron microscope to investigate the effects of atomic size factor of solutes on 1D motion. The respective solute elements and their atomic volume size factors were copper (+17.53%), germanium (+16.48%), and silicon (−7.88%). The solute element concentrations were 52–9100appm. 1D motion frequency and distance were measured under electron irradiation at room temperature. Addition of copper or silicon of approximately 50appm reduced the 1D motion frequency and distance. Silicon decreased the 1D motion frequency more strongly than copper. The 1D motion frequency and distance were reduced further with increasing solute concentration, but after several 100appm, they became insensitive to it. Results for the dilute alloys were examined assuming a model by which individual solute atoms trap interstitial clusters and suppress their 1D motion.
AbstractList Systematic experiments on one-dimensional (1D) motion of interstitial clusters in iron-based binary alloys were performed by in situ observation with a high-voltage electron microscope to investigate the effects of atomic size factor of solutes on 1D motion. The respective solute elements and their atomic volume size factors were copper (+17.53%), germanium (+16.48%), and silicon (−7.88%). The solute element concentrations were 52–9100appm. 1D motion frequency and distance were measured under electron irradiation at room temperature. Addition of copper or silicon of approximately 50appm reduced the 1D motion frequency and distance. Silicon decreased the 1D motion frequency more strongly than copper. The 1D motion frequency and distance were reduced further with increasing solute concentration, but after several 100appm, they became insensitive to it. Results for the dilute alloys were examined assuming a model by which individual solute atoms trap interstitial clusters and suppress their 1D motion.
Systematic experiments on one-dimensional (1D) motion of interstitial clusters in iron-based binary alloys were performed by in situ observation with a high-voltage electron microscope to investigate the effects of atomic size factor of solutes on 1D motion. The respective solute elements and their atomic volume size factors were copper (+17.53%), germanium (+16.48%), and silicon (-7.88%). The solute element concentrations were 52-9100 appm. 1D motion frequency and distance were measured under electron irradiation at room temperature. Addition of copper or silicon of approximately 50 appm reduced the 1D motion frequency and distance. Silicon decreased the 1D motion frequency more strongly than copper. The 1D motion frequency and distance were reduced further with increasing solute concentration, but after several 100 appm, they became insensitive to it. Results for the dilute alloys were examined assuming a model by which individual solute atoms trap interstitial clusters and suppress their 1D motion.
Author Matsui, Hideki
Hamaoka, Takumi
Satoh, Yuhki
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  surname: Matsui
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Issue 1-3
Keywords Electron microscope
Concentration effect
Silicon
Interstitial cluster
Copper
Iron alloy
Nuclear reactor
Language English
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Snippet Systematic experiments on one-dimensional (1D) motion of interstitial clusters in iron-based binary alloys were performed by in situ observation with a...
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SubjectTerms Applied sciences
Binary alloys
Clusters
Controled nuclear fusion plants
Copper
Electron microscopes
ELECTRON MICROSCOPY
Energy
Energy. Thermal use of fuels
Exact sciences and technology
Ferrous alloys
Fission nuclear power plants
Fuels
Installations for energy generation and conversion: thermal and electrical energy
INTERSTITIALS
IRON ALLOYS (50 TO 99 FE)
MATHEMATICAL ANALYSIS
Mathematical models
Nuclear fuels
Silicon
VOLTAGE
Title One-dimensional motion of interstitial clusters in iron-based binary alloys observed using a high-voltage electron microscope
URI https://dx.doi.org/10.1016/j.jnucmat.2012.09.007
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