Team
CFL - Calcul Intensif et Mécanique des Fluides
Biography
Franck Pigeonneau is a researcher specializing in the study of material forming processes, with particular expertise in heat transfer physics, complex fluid mechanics, and the science of glassy and polymeric materials. His work focuses in particular on the numerical modeling of multiphase flows, heat and mass transfer phenomena, as well as the optimization of industrial processes such as optical fiber manufacturing, the extrusion of filled polymers, and 3D printing via fused filament deposition. His research integrates experimental and theoretical approaches to analyze interactions between phases (solid, liquid, gas) and their impact on the final properties of materials, such as electrical conductivity, porosity, or light diffusion. A significant portion of his work also focuses on the control of nanoparticles in optical fibers, where he explores the mechanisms of nanoparticle formation, structuring, and dispersion for applications in distributed sensors and fiber lasers.
Publication(s)
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2026
Thermal and mechanical behaviors of optical silica glass fiber during the drawing process DOI : 10.1016/j.ijheatmasstransfer.2025.127609
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2025
Physical-informed deep learning prediction of solid and fluid mechanical properties of oxide glasses DOI : 10.1016/j.jnoncrysol.2025.123476
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2025
And the Little Prince said: If you please, draw me an optical fiber with nanoparticles! DOI : 10.1109/CLEO/EUROPE-EQEC65582.2025.11110184
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2025
Towards the engineering of nanoparticles in optical fibers at the micrometer scale DOI : 10.1117/12.3056549
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2024
Improved printability and electrical conductivity of carbon black polymer composite with a customized nozzle of material extrusion process DOI : 10.1016/j.addma.2023.103939
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2024
Ultrafast laser structuring of scattering optical fibers
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2024
Residence time distributions in a liquefier of material extrusion process DOI : 10.1016/j.ces.2023.119445
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2023
YbPO4 crystals in as-drawn silica-based optical fibers DOI : 10.1016/j.optmat.2023.113644
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2023
First steps of the melting of an amorphous polymer through a hot-end of a material extrusion additive manufacturing DOI : 10.1016/j.addma.2023.103435
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2023
Dynamics of rising bubble population undergoing mass transfer and coalescence in highly viscous liquid DOI : 10.1016/j.cej.2022.140920
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2023
Tuning Oxide Nanoparticles in Optical Fibers DOI : 10.1109/ICTON59386.2023.10207339
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2022
Dimensions of the deposited strand in the material extrusion process: Experimental and numerical investigations DOI : 10.1016/j.addma.2022.103107
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2022
Nanoparticles in optical fiber, issue and opportunity of light scattering [Invited] DOI : 10.1364/OME.462822
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2022
A feedback mechanism between crystals and bubbles in a RuO2-bearing melt DOI : 10.1016/j.jnoncrysol.2022.121456
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2022
Shaping nanoparticles in optical fibers through thermal engineering DOI : 10.1117/12.2620076
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2021
Toward Engineered Nanoparticle-Doped Optical Fibers for Sensor Applications DOI : 10.3389/fsens.2021.805351
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2021
Mass transfer around a rising bubble in a glass-forming liquid involving oxidation-reduction reaction: Numerical computation of the Sherwood number DOI : 10.1016/j.ces.2020.116382
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2021
Inferring bubble volume fraction in a glass melt through in situ impedance spectroscopy measurements DOI : 10.1111/ijag.15895
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2021
Thermal analysis of the fused filament fabrication printing process: Experimental and numerical investigations DOI : 10.1007/s12289-020-01591-8
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2020
Experimental and numerical investigations of an oxygen single-bubble shrinkage in a borosilicate glass-forming liquid doped with cerium oxide DOI : 10.1111/jace.17398
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2020
Experimental study of bubble formation in a glass-forming liquid doped with cerium oxide DOI : 10.1111/jace.16950
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2020
Heating and flow computations of an amorphous polymer in the liquefier of a material extrusion 3D printer DOI : 10.1016/j.addma.2019.101001
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2020
X-ray imaging of a high-temperature furnace applied to glass melting DOI : 10.1111/jace.16809
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2020
Reconsidering nanoparticles in optical fibers DOI : 10.1117/12.2548713
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2019
Discontinuous Galerkin finite element method applied to the coupled unsteady Stokes/Cahn-Hilliard equations DOI : 10.1002/fld.4720
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2019
Flow analysis of the polymer spreading during extrusion additive manufacturing DOI : 10.1016/j.addma.2019.100794
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2019
Chondrule radiative cooling in a non-uniform density environment DOI : 10.1016/j.icarus.2019.03.036
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2019
Nano-structured optical fibers made of glass-ceramics, and phase separated and metallic particle-containing glasses DOI : 10.3390/fib7120105
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2018
Thermoconvective instabilities of a non-uniform Joule-heated liquid enclosed in a rectangular cavity DOI : 10.1017/jfm.2018.168
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2018
Spatial distribution of nucleated bubbles in molten glasses undergoing coalescence and growth DOI : 10.1111/jace.15361
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2016
Drainage in a rising foam DOI : 10.1039/c5sm01886b
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2016
A Hybrid High-order method for the Cahn-Hilliard problem in mixed form DOI : 10.1137/15M1041055
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2016
Low-Reynolds-number rising of a bubble near a free surface at vanishing Bond number DOI : 10.1063/1.4953467
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2016
Numerical investigation of generalized Graetz problem in circular tube with a mass transfer coupling between the solid and the liquid DOI : 10.1016/j.ijheatmasstransfer.2016.01.040
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2016
Coupled modelling of redox reactions and glass melt fining processes
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2015
Slow viscous gravity-driven interaction between a bubble and a free surface with unequal surface tensions DOI : 10.1063/1.4918532
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2014
Mass-transfer enhancement by a reversible chemical reaction across the interface of a bubble rising under stokes flow DOI : 10.1002/aic.14520
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2014
From steady to unsteady horizontal gradient-driven convection at high Prandtl number DOI : 10.1016/j.ijheatmasstransfer.2013.12.002
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2013
The impact of iron content in oxidation front in soda-lime silicate glasses: An experimental and comparative study DOI : 10.1016/j.jnoncrysol.2013.09.003
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2013
Film drainage of viscous liquid on top of bare bubble: Influence of the Bond number DOI : 10.1063/1.4792310
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2013
Intermittent flow in yield-stress fluids slows down chaotic mixing DOI : 10.1103/PhysRevE.88.023024
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2012
Practical laws for natural convection of viscous fluids heated from above in a shallow cavity DOI : 10.1016/j.ijheatmasstransfer.2011.09.042
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2012
Stability of vertical films of molten glass due to evaporation DOI : 10.1016/j.colsurfa.2012.04.014
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2011
Low-Reynolds-number gravity-driven migration and deformation of bubbles near a free surface DOI : 10.1063/1.3629815
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2011
Mechanism of mass transfer between a bubble initially composed of oxygen and molten glass DOI : 10.1016/j.ijheatmasstransfer.2010.11.049
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2010
Shrinkage of an oxygen bubble rising in a molten glass DOI : 10.1016/j.ces.2010.02.003
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2009
Mass transfer of a rising bubble in molten glass with instantaneous oxidation-reduction reaction DOI : 10.1016/j.ces.2009.03.045
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2009
A systemic approach for glass manufacturing process modeling DOI : 10.1016/j.cep.2009.06.001
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2007
Coupled modelling of redox reactions and glass melt fining processes
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2004
Test-case no 23: Relative trajectories and collision of two drops in a simple shear flow(PA) DOI : 10.1615/MultScienTechn.v16.i1-3.220
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2004
Kinematic regimes of convection at high Prandtl number in a shallow cavity; [Régimes cinématiques de la convection à haut nombre de Prandtl dans une cavité allongée] DOI : 10.1016/j.crme.2004.06.003
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2004
Test-case no 16: Impact of a drop on a thin film of the same liquid (PE, PA) DOI : 10.1615/MultScienTechn.v16.i1-3.170
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2002
Collision of drops with inertia effects in strongly sheared linear flow fields DOI : 10.1017/S002211200100742X
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1998
Collision and size evolution of drops in homogeneous isotropic turbulence DOI : 10.1016/S0021-8502(98)90822-9
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1995
Freezing of a subcooled liquid droplet DOI : 10.1006/jcis.1995.1010
Teaching
General Engineering Professions (MIG)
A MIG is a personalized, project-based learning program that brings together a group of 12 or 14 students, guided by the School’s faculty members, to explore a complex problem in its various dimensions—including, of course, scientific and technical aspects, but also cross-disciplinary aspects (socioeconomics, management, law, the environment, etc., depending on the field being studied). Ten different topics are offered. They all reflect current research themes being developed by the School’s centers and industry. The challenges students will tackle through these 10 projects address major issues facing the industry of the future and society: From Energy Resource Transformation to Management, Data Science and Innovative Applications, Raw Material Extraction and Environmental Impact, Design and Materials for Aerospace and Automotive, and Medical and Hospital Care Engineering Each MIG topic is addressed through complementary and interrelated activities during an intensive three-week period: - company visits, lectures, and classes - a period of experimentation and/or modeling at a research center or in a company, in the form of mini-projects carried out in small groups. In addition, each group of students collectively summarizes their work in the form of a written report and an oral presentation before a panel of industry professionals. This presentation will allow you to better understand all aspects of the topic and to deepen your teamwork skills.
Materials for Engineers
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 work (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)
Glass and Ceramics
Solid materials are traditionally divided into three classes: “polymers,” “metals,” and “glasses and ceramics.” This course provides an introduction to this third class of materials, which lies at the heart of current and future technological developments. The course is divided into two equal parts: the first focuses on glasses, and the second on ceramics. Glasses The course will begin with a general overview of oxide-based glasses, which make up the majority of everyday glasses. The origins of glass will be discussed, and an overview of its essential properties will be provided. To conclude this introductory section, data on glass production and current decarbonization challenges will be presented. The course continues with an in-depth examination of the glass transition and the viscosity of glasses. The concept of relaxation time will be introduced. The structural relaxation of glasses will be discussed by introducing the concept of fictitious temperature. The configuration entropy of glasses will be presented within the framework of Adam-Gibbs theory. This provides insight into the laws governing the viscosity of glasses. Glass manufacturing will be discussed by presenting the various components used to make industrial glass. The chemistry of the glass-forming mixture (raw materials) will be presented. After examining the energy required to melt glass, industrial processes will be presented. The stages the molten glass undergoes during melting will be discussed. Finally, depending on the time remaining, forming processes will be covered. A more technical section of the course provides a foundation in heat transfer by radiation, thermal convection in furnaces, and aspects of redox reactions and bubble dynamics in glass-forming liquids. This section will be assigned to students for independent reading. Ceramics First, a general definition of ceramics will be presented, emphasizing the characteristic properties of this family of materials, from the atomic scale to the macroscopic scale. The distinction between technical ceramics and traditional ceramics will then be clarified. In this context, the main ceramic manufacturing processes—including the shaping and sintering stages—will be detailed. Next, two specific categories of ceramics will be explored in greater depth: ceramic-matrix composites, both oxide and non-oxide, which will highlight specific mechanical properties; refractory products, particularly those used in the glass industry, which will provide an opportunity to address issues related to resistance to corrosion and very high temperatures. Finally, future challenges related to these various industrial sectors will be discussed, taking into account technological, environmental, and economic developments.
PhD supervision
- 2025 Digital twins and deep learning for optimized and decarbonized design of industrial glass furnaces AYOUN Yassine
- 2025 Study of the kinetics of femtosecond laser-induced phase separation in nanoparticle-doped optical fibers SAHNOUNE Imane
- 2025 Digital twins and Deep Learning for optimized and decarbonized design of industrial glass furnaces STENTA Marion
- 2024 Deep reinforcement learning for innovative design and development of digital twins of packaging molds ZAAYTER Tony
- 2021 Modeling of chemical reaction kinetics, heat transfer, and residual stresses in high optical index ophthalmic lenses. TABORE Alan
- 2019 Thermo-mechanical study of the solidification of electrofused refractory products based on alumina, zirconia, and silica HOUDARD Tiphaine
- 2018 Thermomechanical analysis of the additive manufacturing process by fused polymer filament deposition: Experimental and numerical study. XU David
- 2017 Oxygen bubble formation mechanisms in a molten glass bath in the context of nuclear waste vitrification DE PAULA PEREIRA Luiz
