Matthieu Le Saux

ORCID: 0000-0003-4290-3171
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About
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Research Areas
  • Nuclear Materials and Properties
  • Nuclear reactor physics and engineering
  • Fusion materials and technologies
  • Mechanical Behavior of Composites
  • Nuclear materials and radiation effects
  • Nuclear and radioactivity studies
  • Powder Metallurgy Techniques and Materials
  • Nuclear Engineering Thermal-Hydraulics
  • High-Velocity Impact and Material Behavior
  • Thermodynamic and Structural Properties of Metals and Alloys
  • High-Temperature Coating Behaviors
  • Radioactive element chemistry and processing
  • Structural Behavior of Reinforced Concrete
  • Metal and Thin Film Mechanics
  • Metallurgy and Material Forming
  • Advanced materials and composites
  • Advancements in Solid Oxide Fuel Cells
  • Material Properties and Applications
  • High Temperature Alloys and Creep
  • Elasticity and Material Modeling
  • Intermetallics and Advanced Alloy Properties
  • Metallurgy and Material Science
  • Fiber-reinforced polymer composites
  • Enhanced Oil Recovery Techniques
  • Engineering Applied Research

Institut de Recherche Dupuy de Lôme
2019-2024

École nationale supérieure de techniques avancées Bretagne
2020-2024

Centre National de la Recherche Scientifique
2008-2024

Université de Bretagne Occidentale
2019-2023

Centre Hospitalier de Bretagne Sud
2023

École Nationale Supérieure de Techniques Avancées
2023

Université Paris-Saclay
2017-2021

Commissariat à l'Énergie Atomique et aux Énergies Alternatives
2012-2021

CEA Paris-Saclay
2008-2021

Direction des énergies
2008-2019

Abstract Few works investigate the fatigue of short fiber reinforced thermoplastics under cyclic compression. Furthermore, heat buildup approach to quickly predict lifetime these materials has not yet been investigated for compression–compression loadings. This paper first describes an experimental protocol perform well‐controlled compression tests without anti‐buckling device that may induced bias. The uniaxiality global loading is checked during test based on kinematic and thermoelastic...

10.1111/ffe.14003 article EN Fatigue & Fracture of Engineering Materials & Structures 2023-03-22

This paper presents protocols developed to quantitatively characterize the cellular microstructure of microcellular polyurethane foams, from scanning electron microscopy (2D) and X-ray micro-computed tomography (2D 3D) data. The objectives are provide, for both techniques: (i) a detailed description analysis steps based on open source Python algorithms; (ii) method automatic, robust objective detection cells limit user’s biases; (iii) statistical fraction, size, shape spatial distribution...

10.1177/0021955x231215773 article EN Journal of Cellular Plastics 2023-11-01
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