Dr. Magdalena Schreter-Fleischhacker works at the Technical University of Munich within the Professorship of Simulation for Additive Manufacturing . Her research focuses on physics-based computational modeling of coupled liquid-powder-gas dynamics in metal additive manufacturing, including melt pool dynamics and powder-gas interactions . She specializes in multi-phase flow modeling using cut-element and diffuse interface methods with continuous/discontinuous Galerkin schemes . She also develops constitutive models for quasi-brittle materials like 3D printed concrete and rock, incorporating anisotropy , gradient-enhanced damage mechanics , and micropolar continua . Her computational work leverages matrix-free algorithms and parallel computing , with significant contributions to the deal.II finite element library . Research Interests Physics-based computational modeling of coupled liquid-powder-gas dynamics in additive manufacturing Multi-phase flow simulation using sharp/diffuse interface methods Advanced constitutive modeling for quasi-brittle materials (rock, soils, 3D printed concrete) High-performance computing and matrix-free algorithms Notable Contributions Development of consistent diffuse-interface models for melt-vapor dynamics Improvements to continuum surface flux models in additive manufacturing Formulation of gradient-enhanced damage-plasticity models for geological materials Principal contributor to the deal.II library (version 9.6) Supervised Student Projects Johannes Resch (2024): DG-based thermo-hydrodynamic melt pool simulations Julian Brotz (2024): DEM-FEM coupling for fluid-powder interaction Andreas Ritthaler (2024): Matrix-free cutDG formulation for complex flows Tinh Vo (2023): Laser modeling for melt pool simulations Scientific Awards ERC Starting Grant recipient
Teemu Turunen-Saaresti is a Tenured Professor at the School of Energy Systems , LUT University , Lappeenranta, Finland. His research focuses on energy technology, particularly supercritical CO2 cycles, Organic Rankine Cycles (ORC), turbomachinery, and heat pump design. PhD in Energy and Environmental Technology (2004), Lappeenranta University of Technology MSc in Energy and Environmental Technology (2001), Lappeenranta University of Technology His work spans Supercritical CO2 Power Cycles , Organic Rankine Cycle Systems , Turbomachinery Design , and Non-Equilibrium Condensation Modeling . Recent studies include printed circuit heat exchangers for transcritical cycles, high-temperature ORC thermal inertia, and centrifugal compressor design for large-scale CO2 heat pumps. Publications highlight trends in sCO2 Turbines , Tip Clearance Effects , and Multiphase Flow Simulation . Funding from the Academy of Finland and Business Finland supports his research on computational/experimental condensing flows, small-scale compressors, and green shipping energy solutions. He collaborates with international teams on projects like the International Wet Steam Modeling Project , contributing to guidelines for high-temperature heat pumps (IEA HPT Annex 58) and advancements in hydrogen compression strategies.
Professor Mahdi Tew-Fik is affiliated with Polytechnique Montréal as a Full Professor in the Department of Civil, Geological and Mining Engineering . His research focuses on hydraulic engineering , sediment transport , dam safety , and flood modeling , with expertise in numerical simulations and VOF methods . His educational background includes a B. Ing. from Polytechnique d'Alger , M.Sc. from the University of Liège , DESS from UQÀM , and Ph.D. from Polytechnique Montréal . He has supervised numerous Ph.D. and Master's students in projects related to river hydraulics and dam failure analysis . Professor Mahdi has received the Discovery Grant (2021) for his research. His recent publications emphasize free-surface flow modeling , multi-fluid simulations , and flood risk assessment . He is a member of the Experimental and Digital Water Flow Engineering Group (GENIE EAU) .
Omid Mahian is a professor at Ningbo University, Ningbo, China, with significant contributions to thermal engineering, renewable energy, and nanotechnology. His research focuses on optimizing heat transfer mechanisms in systems like supercritical CO 2 cycles, printed circuit heat exchangers, and photovoltaic thermal modules. He has over 14,597 documents cited, with an h-index of 81 and 287 publications on Scopus. Key research areas: Thermal Load, Surface Roughness, Microchannel Flow, Exergy Destruction, Renewable Energy, Forced Convection. Recent work explores advanced cooling techniques (e.g., wicked heat pipes, grooved copper foam) and nanofluid applications for atmospheric water harvesting and CO 2 absorption. His studies address energy efficiency in off-grid systems, including predictive dispatch strategies for hybrid renewable energy, supersonic separation for carbon capture, and thermal management in electric vehicle motors. Omid Mahian has authored 180 articles on ScienceDirect, with a focus on improving energy systems through innovative designs and materials. His collaborations span numerous disciplines, emphasizing sustainability and technological feasibility.
Jungeun (Jenny) Won is an Assistant Professor of Research in the Department of Biomedical Engineering at the School of Engineering and Applied Sciences, University at Buffalo. Her research focuses on optical imaging , biomedical device development , medical image analysis , and artificial intelligence in OCT . She leads the Translational Biophotonics Laboratory , where she develops advanced OCT techniques for medical applications such as diabetic retinopathy , otitis media , and biofilm analysis . Contact: 215J Bonner Hall, Buffalo NY 14260, jungeunw@buffalo.edu Related Links: CV PDF , Google Scholar , Lab Website Her recent work involves high-resolution OCT for longitudinal studies on retinal degeneration, VISTA OCTA for blood flow analysis, and 3D motion correction algorithms to enhance image quality. She also explores multimodal imaging combining OCT with Raman spectroscopy for bacterial differentiation and microplasma-based therapies for ear infections.
Olivier Coutier-Delgosha is a Professor and Assistant Department Head for Graduate Studies in the Department of Aerospace & Ocean Engineering at Virginia Tech. He holds a Ph.D. and MS from the Institut National Polytechnique de Grenoble (INPG), France, and a BS from Ecole Nationale Supérieure de l'Energie. His research focuses on cavitation, multiphase flow dynamics, and propulsion systems, particularly in rotating machinery and environmental fluid mechanics. He leads the Cavitation, Propulsion & Multiphase Flow Lab and collaborates with organizations like SNECMA and CNES. Education: Ph.D., Mechanical Engineering, Institut National Polytechnique de Grenoble (2001) MS, Mechanical Engineering, Institut National Polytechnique de Grenoble (1997) BS, Ecole Nationale Supérieure de l'Energie (1997) Research interests include cavitating flow modeling, environmental fluid dynamics (oil spills), and thermal effects in cavitation. His work combines experimental methods (X-ray imaging, PIV) with advanced CFD simulations. Notable projects include a 400k€ SNECMA-funded study on rocket engine inducers and a NICOP ONR project on cavitation erosion. Publications span 20+ years, emphasizing cavitation instabilities, turbulence modeling, and multiphase flow regimes. Awards include a Fulbright Grant and leadership roles in ISROMAC conferences. He serves as an Associate Editor for the Journal of Fluids Engineering and reviews for multiple top journals. Labs and teams: Cavitation, Propulsion & Multiphase Flow Lab; Center for Research and Engineering in Aero/Hydrodynamic Technologies (CREATe).
Professor Dinos Arcoumanis FREng is a distinguished academic at City, University of London, where he has served as Professor since 2000. He previously held academic positions at Imperial College London from 1988-2000, progressing from Lecturer to Reader and ultimately to Professor of Internal Combustion Engines. At City University, he has held significant leadership roles including Head of the Aeronautical, Civil and Mechanical Engineering Department, Dean of the School of Engineering & Mathematical Sciences, Pro-Vice-Chancellor for Research and International Links, and Deputy Vice-Chancellor (Research & International) until August 2014. He remains actively involved in research and academic leadership, currently serving as Director of the International Institute of Cavitation Research and Coordinator of the World Cities World Class (WC2) University Network. Professor Arcoumanis holds undergraduate and graduate degrees in Physics, Engineering and Mechanical Engineering from the Aristotelian University of Thessaloniki, Greece (1973), the University of California at Irvine, USA (1980), and the Imperial College of Science, Technology and Medicine, London (1984), respectively. His primary research focuses on internal combustion engines, with specific expertise in combustion, exhaust emissions, and engine lubrication. Professor Arcoumanis has pioneered the application of laser diagnostics and computational fluid dynamics to study internal combustion engines, with particular interest in automotive fuels including renewable and alternative fuels. His work bridges fundamental fluid mechanics with practical engine applications, addressing critical environmental engineering challenges in the transportation sector. His recent research has expanded into cavitation phenomena, fuel cell technology, and the development of sustainable propulsion systems for future transportation needs. Professor Arcoumanis's extensive publication record demonstrates a clear evolution in research focus, beginning with fundamental studies of diesel engine combustion and progressing toward advanced fuel injection systems, alternative fuels, and environmental sustainability. His work consistently bridges theoretical fluid mechanics with practical engine applications, with recent emphasis on cavitation phenomena in fuel systems and the integration of renewable energy technologies with traditional combustion systems. The interdisciplinary nature of his research connects mechanical engineering principles with environmental science, materials science, and energy systems engineering. Professor Arcoumanis has received numerous prestigious awards and honors throughout his career: 1991 Dugald Clerk Prize of IMechE 1995 and 1998 Arch T. Colwell Merit Award of the Society of Automotive Engineers Elected Fellow of the Royal Academy of Engineering (FREng) in 2001 Honorary doctorate from St. Petersburg State Polytechnic University of Russia (2009) Professor Arcoumanis has made significant contributions to academic leadership and professional service. He founded the International Journal of Engine Research (JER) in 1999 and serves as its Editor for Europe. He has coordinated the World Cities World Class (WC2) University Network since 2010, which brings together international institutions in major cities to address research challenges in transport, global health, business, and cultural industries. He has also served as a consultant to Brussels (DG17) and Bechtel Ltd. on the Auto-oil II European Programme (1998-2000), and was appointed Ambassador-at-Large of the Hellenic Republic for Energy Policy and New Technologies in September 2012. His research has been supported by various funding bodies including the Lloyd's Register Educational Trust, which funds the International Institute of Cavitation Research that he directs. Professor Arcoumanis leads the International Institute of Cavitation Research, a partnership between City University London, Loughborough University, and Delft University of the Netherlands. He has established collaborative research teams focused on engine combustion, fuel injection systems, and alternative propulsion technologies. His research group has developed advanced experimental facilities for studying fuel spray dynamics, combustion processes, and cavitation phenomena in engine systems. These teams regularly collaborate with automotive industry partners and international research institutions to address cutting-edge challenges in engine technology and sustainable transportation.
Aniket Ambekar is a Research Fellow at the Department of Chemical Engineering and Chemistry, Eindhoven University of Technology. His research focuses on multiphase flow dynamics in porous media, with expertise in computational fluid dynamics (CFD) and experimental validation techniques. He holds a PhD in Chemical Engineering from the Indian Institute of Technology Delhi (2022), an MSc in Computational Fluid Dynamics from National Institute of Technology (2016), and a BSc in Chemical Technology from the University of Pune (2013). Research interests include packed bed hydrodynamics, gas-liquid flow mechanisms, and the role of wettability in two-phase systems. His work combines high-resolution simulations (e.g., volume-of-fluid method) with experimental measurements to study flow regimes, interfacial dynamics, and phase distribution. Notable contributions address perforation effects in structured packings, particle aspect ratio impacts, and monolith gas-liquid interactions. He has received prestigious awards including the Marie Skłodowska-Curie postdoctoral fellowship (2022) and the Outstanding Ph.D. Thesis Award (2024). Collaborations span European institutions, focusing on energy-efficient separation processes and reactor design optimization.
Christopher E. Brennen is the Richard L. and Dorothy M. Hayman Professor Emeritus of Mechanical Engineering at Caltech. With over 50 years at Caltech, his research spans cavitation dynamics, multiphase flows, and turbomachinery. He authored fundamental texts including Cavitation and Bubble Dynamics and Hydrodynamics of Pumps . Brennen's experimental work established foundational principles for cavitation noise prediction and rotordynamic forces in pumps. His current research examines granular flow phenomena including wave-induced sediment transport and 'booming dunes'. He has supervised 30+ PhD students and consulted for NASA, US Navy, and nuclear regulatory agencies. Honors include the ASME Fluids Engineering Award (twice), Fulbright Scholarship, and Caltech's prestigious Richard Feynman Prize for teaching excellence. His textbook Fundamentals of Multiphase Flow remains standard reference in mechanical engineering programs worldwide.
Corrado Maurini is a Professor in Mechanics at Sorbonne University , Paris, France. He leads two international master programs: Mécanique des Solides (Solid Mechanics) and Computational Mechanics .
Nikita Kavokine serves as Tenure Track Assistant Professor at École Polytechnique Fédérale de Lausanne (EPFL) within the School of Basic Sciences . His dual appointments span the Institute of Chemical Sciences and Engineering (ISIC) and the School of Chemical Sciences and Engineering (SCGC) , where he leads the Quantum Plumbing Lab (LNQ) and contributes to graduate teaching. Based at Building CH A2 398 in Lausanne, he maintains active research and instructional roles across EPFL's chemistry and chemical engineering programs. His research pioneers quantum nanofluidics and nanoscale transport phenomena , focusing on electron-ion coupling mechanisms in confined geometries. Key investigations include quantum friction in water-carbon interfaces, hydroelectric energy conversion through nanochannels, and plasmon-hydron resonances in two-dimensional materials. His work bridges condensed matter physics, electrochemistry, and fluid dynamics to develop fundamental principles for next-generation nanofluidic devices and quantum sensors. Analysis of his 15 most recent publications (2023-2025) reveals three dominant research thrusts: quantum-enhanced energy conversion (evident in hydroelectric drag and electron cooling studies), non-classical ion transport (including ionic Coulomb blockade and interaction confinement), and emergent quantum hydrodynamics (momentum tunneling, collective modes). These publications consistently integrate advanced numerical methods with nanoscale experimental systems, establishing new paradigms for solid-liquid quantum interactions. Kavokine currently supervises three PhD students: Gispert Peter , Lu Hao , and Rigaux Killian David . His teaching portfolio includes graduate courses in Statistical Mechanics for Chemistry and Nanofluidics , emphasizing theoretical frameworks for many-particle systems and nanoscale fluid dynamics. Research funding supports his laboratory's exploration of quantum effects in nanofluidic channels, though specific grant details are not provided in source materials. The Quantum Plumbing Lab (LNQ) operates at the forefront of nanoscale quantum transport research, utilizing advanced nanofabrication and characterization techniques to probe electron-ion coupling phenomena. The lab's interdisciplinary team combines expertise in quantum physics, electrochemistry, and fluid dynamics to investigate fundamental limits of energy conversion and transport at atomic scales, with particular focus on graphene-based systems and angstrom-scale confinement.
Prof. Tom Van Gerven is a chemical engineering specialist at KU Leuven's Process Engineering for Sustainable Systems (ProcESS) group. His research focuses on process intensification using alternative energy forms (ultrasound, microwaves, light) for sustainable metallurgy, mineral carbonation, and solvent extraction applications. He leads innovations in low-grade ore processing and carbon capture technologies. Key Research Areas: Process intensification, green metallurgy, CO₂ utilization, and advanced crystallization techniques Recent Work: 2025 publications highlight reactor optimization, mineral carbonation of industrial residues, and acoustic/microwave-assisted separations Technical Expertise: CFD modeling, sonochemical reactors, ionic liquid extraction, and environmental impact analysis
Ronan Vicquelin is a University Professor (1st Class) at CentraleSupélec, Paris-Saclay University, affiliated with the EM2C Laboratory (CNRS). He serves as Head of the Department of Aeronautics, Space and Transport and co-supervises the High Performance Computing Mésocentre. His academic appointments include previous roles as University Professor (2nd class) and Head of Aerospace programs. Education includes Habilitation (University of Rouen Normandy, 2018), PhD in Energetics (École Centrale Paris, 2010), M.Sc. in Mechanical Engineering & Aerospace (École Centrale Paris, 2006), and Engineering Diploma (École Centrale Paris, 2006). Research focuses on turbulent reacting flows with emphasis on: numerical simulation of combustion systems, LES/DNS methodologies, uncertainty quantification, hydrogen combustion dynamics, conjugate heat transfer, and radiative energy transfer. Current investigations explore flame stabilization mechanisms, multi-physics coupling, and high-performance computing applications for aerospace propulsion systems. Publications predominantly address combustion science, with recent works (2021-2025) emphasizing hydrogen flame dynamics, NOx emission control, advanced numerical methods for reactive flows, and experimental validation of turbulent combustion models. Thermal radiation effects and multi-phase flow interactions constitute emerging themes. Advises multiple PhD candidates with projects funded by ANR, EU programs (ACHIEVE, SOPRANO), and industry partnerships (Safran, Air Liquide). Research grants include PEPR OXY3C, ANR HyMaX, and ANR OXYTEC focusing on zero-emission combustion technologies. Leads experimental and computational research at EM2C Laboratory, coordinating teams working on turbulent combustion diagnostics, high-fidelity simulations, and development of the Mésocentre HPC infrastructure for large-scale CFD.
Theodore Kim is a Professor of Computer Science at Yale University, where he co-leads the Computer Graphics Group with Julie Dorsey and Holly Rushmeier. His research focuses on physics-based simulation, including fluid dynamics, solid mechanics, and fractal growth structures. He holds a PhD from the University of North Carolina at Chapel Hill and has held academic positions at UCSB and the University of Saskatchewan. His work has been applied in over two dozen films, earning him SciTech Oscars in 2012 and 2022. He previously served as a Senior Research Scientist at Pixar, contributing to projects like *Cars 3*, *Coco*, and *Incredibles 2*. Education: Ph.D., Computer Science, University of North Carolina at Chapel Hill (2006) M.S., Computer Science, University of North Carolina at Chapel Hill (2006) B.S., Computer Science, Cornell University (2001) Research Interests: Kim’s work bridges academia and industry, emphasizing practical applications of physics-based simulation. Notable areas include hair and skin simulation for animation, fluid dynamics, and the historical context of computer graphics innovations. His research also addresses racial biases in graphics, such as in hair and skin modeling. Articles Trends: Recent work emphasizes diverse representation (e.g., Black hair simulation), biomechanical accuracy (feather modeling), and historical analysis of technical contributions (e.g., Búi Tướng Phong’s legacy). Earlier publications focus on fluid subspace methods, wavelet turbulence, and efficient simulation techniques. Awards: Academy Award for Scientific and Technical Achievement (2012, 2022) NSF CAREER Award (2013–2018) UCSB Harold J. Plous Award (2015) Best Paper Awards at SCA (2011, 2016, 2018) Grants & Labs: Leads Yale’s Critical Computing Initiative and directs undergraduate studies in CS. His lab collaborates with industry (e.g., Pixar) and emphasizes open-source software. Current projects include fractal design tools and anti-racist graphics research.
Arturo Macchi is a Professor in the Department of Chemical and Biological Engineering at the University of Ottawa, Faculty of Engineering. He holds a Ph.D. from the University of British Columbia, and MASc and B.Eng. degrees from the École Polytechnique de Montréal. His research focuses on multiphase reactor engineering, particularly fluidized bed systems, gas hydrates, microreactors, and CO₂ capture technologies. Collaborations include institutions like CanmetEnergy-Ottawa, NRC-ICPCE, and industry partners such as Syncrude Canada Ltd. and Lonza Inc. Key research areas include high-pressure multiphase reactors, CO₂ capture via dual fluidized beds, and microreactor design for pharmaceutical applications. His work integrates computational fluid dynamics (CFD) modeling with experimental validation to address challenges in energy efficiency, process intensification, and sustainable energy storage. Recent projects explore calcium looping processes for thermochemical storage and oxy-fuel combustion technologies. Publications highlight advancements in fluidization dynamics, bubble column hydrodynamics, and scale-up methodologies for industrial hydroprocessors. His contributions span both fundamental and applied research, bridging academic insights with industrial applications in petrochemical, environmental, and pharmaceutical sectors.