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Cristian Manuel Ovalle Rodas

Cristian Manuel Ovalle Rodas

Researcher Scientist

Center · CMAT

Discipline(s)
Molecular Chemistry, Polymers, Solid Mechanics
Topic(s)
Energy Efficiency, Industrial Sovereignty, Nuclear, Polymer, Super-insulator

Team

MEM - Mécanique Expérimentale et Matériaux, SIMS - Simulation des Matériaux et des Structures

Biography

Cristian Manuel Ovalle Rodas is a researcher specializing in the fields of materials mechanics, polymers, and composites, as well as in the development of advanced numerical methods for structural modeling and optimization. His work focuses on the analysis of composite material microstructures, particularly through the use of high-resolution imaging techniques and deep generative models, such as generative adversarial networks (GANs) and probabilistic diffusion models. He also explores failure mechanisms, such as void nucleation and crack propagation, by integrating physical and numerical approaches to improve the durability and mechanical performance of materials. Furthermore, his research addresses thermodynamically consistent constitutive models for materials under large deformations, proposing alternatives to traditional hypoelastoviscoplastic models, as well as methods for accelerating finite element simulations for problems involving localized plasticity. His contributions also include the study of the effects of aging and environmental conditions on the mechanical properties of elastomers and polymers, in relation to various industrial applications.

Publication(s)

Teaching

Materials for Engineers

Lecturer

The in-person component (27 hours) is structured into plenary sessions in a lecture hall (12 hours), small-group sessions (12 hours) with fewer students, and presentations of lab reports to a panel (30 minutes). It also includes a written exam (2 hours and 30 minutes). Students’ independent study (18 hours) includes (in addition to the engine disassembly and reassembly mentioned above): A self-assessment multiple-choice quiz (30 min) on prerequisites. This self-assessment is conducted prior to the first class to identify students’ strengths and weaknesses and then focus on certain aspects during face-to-face instruction. An assignment on phase diagrams (2 hours) An assignment on material aging (2 hours) Laboratory work at the CMAT (6 hours): 13 lab sessions are conducted in groups of 4 to 5 students, supervised by the Center’s engineers and technicians as well as doctoral students, since most lab topics are related to current thesis projects. A 20-minute oral presentation for each lab is given at the end of the day in two parallel sessions. Students therefore complete one of the lab sessions and participate in or attend half of the presentations at the end of the day. Two similar days are organized to accommodate the entire class. Final exam review (5 hours)

Fluid Mechanics (PI MECAERO)

Lecturer

Mechanics of Materials and Structures (PI MECAERO)

Lecturer

Project (PI MECAERO)

Lecturer

Experimental Mechanics

Guest Lecturer

The course has two main objectives. Drawing on examples from industry, the course first aims to help students understand the challenges involved in a mechanical testing campaign and to equip them with the tools needed to design experimental plans for the mechanical characterization of materials. With this in mind, the course will begin with a description of standardized tests to highlight their limitations, followed by a presentation of original or “non-standard” tests that are as well-instrumented as possible. To this end, part of the course will be devoted to the study of non-contact thermomechanical measurement techniques (infrared thermography and digital image correlation). In a second phase, the focus will be on establishing the link between continuum mechanics, thermomechanical behavior equations, and experimental characterization. The concepts of stress and strain analysis will be reviewed to understand the methods for optimizing behavior and damage mechanisms, which we aim to identify through the tests. The in-person component (29 hours) is structured into plenary sessions (12 hours), mini-projects (in pairs or groups of three) (15 hours), and project presentations before a panel (30 minutes). Students’ independent work (6 hours) includes: Understanding the mini-project, literature review, scientific analysis and interpretation of the results obtained, writing a summary, and preparing an oral presentation

PhD supervision

  • 2026 Slow cracking mechanisms and mechanics in aged HDPE base and welded materials HERNANDEZ HAFFNER Brian
  • 2025 The impact of aging on the seismic behavior of glass fiber-reinforced polycarbonate components MARSAUDON Coralie
  • 2025 Industrial recycling of end-of-life fiber-reinforced composite parts JOSHI Atharva
  • 2025 Characterization of the variability of recycled composites and their constituents CHANDRAN Lekhana
  • 2024 Aging and durability of hydrogen pressure vessels and pipelines made of polymer or composite materials JAVEY Quentin
  • 2024 Multi-physics problems in elastoplasticity using heterogeneous local fields PAMBOU IMOGO Darcy
  • 2023 Mechanisms and mechanical modeling of the behavior and high-speed failure of three-layer polymer material systems. LEFAY Gaultier
  • 2022 Deep learning approaches for the analysis and optimization of fiberglass-reinforced polymer matrix composites BASSO DELLA MEA Guilherme
  • 2021 Multi-scale organization of a piezoelectric PVDF/clay nanocomposite obtained by additive manufacturing. Impact of the electric field and evolution during deformation. PONS Nelly
  • 2021 Influence of synthesis and aging on the mechanical properties of fluorosilicones LOGEAIS Clémence
  • 2021 A multi-scale probabilistic methodology to predict the fatigue life of porous alloys from tomographic images PALCHOUDHARY Abhishek
  • 2021 Study of the aging and long-term durability of HDPE piping. LAOT Robin
  • 2020 Conductivity of Contact Interfaces: A Multi-Scale Study BEGUIN Paul
  • 2019 Automatic regularization method for finite element simulation of large deformation plasticity ABATOUR Mohamed
  • 2019 Numerical modeling of the thermal insulation coating of subsea oil pipelines HOURDOU Théophile
  • 2019 Experimental and numerical modeling of the fatigue behavior and durability of Ultra-High-Molecular-Weight Polyethylene (UHMWPE) at cryogenic temperature ODOU Nathan
  • 2019 The effect of stress heterogeneity on the self-heating of reinforced polymers/elastomers WAN Lili
  • 2017 Ductile-to-brittle transition of plasticized PVC at different impact rates: understanding mechanisms and modeling BERTAUX Clément
  • 2016 Characterization and modeling of uniaxial/multiaxial cyclic fatigue behavior of short-fiber composites: Thermoplastics (PA66) reinforced with glass fibers LU Fang