David LE TOUZÉ is a Professor of Fluid Mechanics and Director of the Research Laboratory in Hydrodynamics, Energetics & Atmospheric Environment (LHEEA) at Centrale Nantes. His research focuses on advanced computational methods in fluid dynamics, particularly Smoothed Particle Hydrodynamics (SPH) and its applications to ocean engineering, wave-structure interactions, and multiphase flows. Research Interests: Prof. LE TOUZÉ's work spans: Development of high-fidelity SPH algorithms for complex fluid-structure interactions Hydrodynamic modeling of offshore structures and wave energy converters Numerical wave tanks and experimental validation techniques Multi-scale coupling methodologies (SPH-FEM, SPH-FV) Free-surface flows and multiphase systems Publication Focus: His recent publications demonstrate strong emphasis on: 1) SPH methodology enhancements for industrial applications, 2) Experimental-computational synergy in marine hydrodynamics, and 3) Novel approaches to modeling fluid-elastic systems. Dominant themes include wave-structure interactions, particle method optimizations, and marine renewable energy applications. Laboratory Leadership: Directs the LHEEA laboratory, coordinating research in hydrodynamic systems, atmospheric environment studies, and marine renewable energy technologies through the MÉLUHSINE IIHNÉ research group.
Dr. Chérif Larouci is an Associate Professor and researcher at ESTACA (Higher School of Aeronautics and Space), where he has served as a teacher-researcher since 2002. Currently, he leads the Embedded Systems and Energy for Transport (S2ET) division, a position he has held since 2013. His academic career at ESTACA also included heading the Command and Systems Team from 2006 to 2013. In 2012-2013, he obtained Authorization to Supervise Research at the University of Paris-Sud 11. Dr. Larouci's educational background includes a PhD in Electrical Engineering from the National Polytechnic Institute of Grenoble (INPG) in 2002, with a thesis on "Design and optimization of static converters for power electronics; Application to sinusoidal absorption structures." Prior to that, he earned an Advanced Studies Diploma (DEA) in Electrical Engineering at INPG (1998-1999) and an Engineering Diploma from the National Polytechnic School of Algiers, specializing in Electrotechnics (1993-1998). His research focuses on power electronics, embedded systems, and energy management for transportation systems, particularly electric vehicles. Dr. Larouci's work spans multiple domains including power converter design, fault-tolerant control systems, energy management strategies, and multiphysical optimization of automotive components. His research has significant applications in electric vehicles, autonomous vehicles, more-electric aircraft, autonomous drones, and various electric transportation systems. Analysis of his recent publications reveals a strong emphasis on optimization techniques for power electronics in transportation applications. His work increasingly integrates multidisciplinary approaches, combining electrical engineering with mechanical, thermal, and control aspects. Recent trends show growing focus on sustainable transportation solutions, battery management systems, and intelligent energy management for electric mobility. His research bridges theoretical developments with practical automotive applications, often involving industry collaborations. IEEE Senior Member (elevated in March 2012) Member of the publication committee of the 3EI journal since 2004 Reviewer for numerous international journals and conferences Expert evaluator for collaborative projects (FUI, ANR, H2020, ADEME, regional projects) Dr. Larouci actively participates in research funding and collaboration through various channels. He has been involved in numerous research contracts and collaborative projects with industry partners. His leadership extends to coordinating the S2ET division, which comprises 20 teacher-researchers, 20 PhD students, and 6 technical and administrative support staff. He also contributes to strategic research directions as a member of several competitive clusters including MOVEO/Nextmove, ID4Car, and Astech. The S2ET division under Dr. Larouci's leadership serves as a comprehensive research environment focusing on embedded systems and energy solutions for transportation. The division maintains strong industry connections and participates in multiple national and European research initiatives. Current research directions emphasize electrification of transportation, autonomous vehicle systems, and sustainable mobility solutions, with particular attention to power electronics and energy management challenges.
Hector Gomez is a Professor of Mechanical Engineering and Courtesy Professor of Biomedical Engineering at Purdue University’s School of Mechanical Engineering. He leads the Gomez Lab, focusing on computational mechanics, multiphase systems, and biomedical applications. His research bridges engineering and medicine through advanced modeling of interface problems, including tumor growth, fluid-structure interaction, and biomechanics. Education: Ph.D. in Civil Engineering from Universidade da Coruña, Spain. He also holds a Civil Engineering degree from the same institution. His work integrates isogeometric analysis, phase-field methods, and high-performance computing. Research Interests: Modeling multiphase and multiphysics systems using phase-field methods; isogeometric methods in fluid/solid mechanics; tumor growth simulation; computational fluid-structure interaction. His lab collaborates on prostate cancer growth forecasts using MRI data and personalized biomechanical models. Key Achievements: ERC Starting Grant (2012), MIT Technology Review Innovators Under 35 (2014), Princess of Girona Scientific Award (2017), USACM Fellow (2023). His team develops open-source tools for multiphysics simulation. Grants & Funding: Includes ERC grants, USACM awards, and Purdue University faculty scholarships. Active in computational oncology, drug delivery (subcutaneous injection modeling), and soft material mechanics. Labs/Teams: Gomez Lab at Purdue, specializing in computational engineering and medicine. Collaborations with biomedical researchers and industry on personalized medicine and medical device design.
Ganesh Subbarayan is the James G. Dwyer Professor of Mechanical Engineering at Purdue University, affiliated with the School of Mechanical Engineering. His roles include leading the Institute for Advanced System Integration and Packaging (ASIP) and the Center for Heterogeneous Integration Research in Packaging (CHIRP). He holds a B.Tech. from IIT, and M.S. and Ph.D. from Cornell University. His research focuses on computational and experimental solid mechanics, particularly in fatigue, fracture, and multi-physics phase evolution. Key areas include advanced electronics packaging, solder joint reliability, and thermomechanical behavior. Techniques employed include Finite Element Analysis (FEA), Isogeometric Analysis (IGA), and machine learning for multiphysics modeling. Recent work emphasizes heterogeneous integration challenges, real-time thermal simulations, and non-destructive material characterization. His publications span 20+ years, addressing topics like solder microstructure evolution, electromigration, and thermal management in 3D packaging. Prof. Subbarayan has contributed to over 100 peer-reviewed articles and holds leadership in interdisciplinary research initiatives at Purdue. His lab, HiDAC, develops novel methods for analyzing complex material systems.
Kazuki Maeda is an Assistant Professor in the School of Aeronautics and Astronautics at Purdue University. He holds a Ph.D. from the California Institute of Technology (2018), an M.S. from Caltech (2014), and a B.S. from The University of Tokyo (2013). His research focuses on complex flow dynamics, rocket propulsion, hypersonics, and cyberphysical integration, combining physics-based modeling, high-performance computing, and machine learning. He leads the Maeda Research Group, which develops advanced frameworks for simulating and optimizing engineering systems. Key awards include the Richard Bruce Chapman Memorial Award and Stanford-CTR Postdoctoral Fellowship. Research interests emphasize propulsion systems, high-speed flows, and computational methods. Publications span bubble dynamics, reactive shock waves, and neural network applications in flow analysis. The group collaborates on heterogeneous computing frameworks for combustion and fluid dynamics simulations. Prospective students and postdocs are encouraged to apply through Purdue’s AAE programs. Awards: Richard Bruce Chapman Memorial Award, Funai Foundation Scholarship, Stanford-CTR Fellowship Labs/Teams: Maeda Research Group (Complex Flow & Cyber-physical Laboratory) Grants: Not explicitly listed, but research is supported by institutional and collaborative initiatives.
R. Byron Pipes is the John L. Bray Distinguished Professor of Engineering at Purdue University, with joint appointments in the Schools of Aeronautics and Astronautics, Chemical Engineering, and Materials Engineering. He specializes in composites design, manufacturing simulation, and multiscale modeling. His research focuses on the influence of manufacturing processes on composites microstructure and structural performance, particularly in additive manufacturing and discontinuous prepreg platelet composites. Dr. Pipes holds a MSE from Princeton University (1969) and a PhD from the University of Texas at Arlington (1972). He has held prominent roles, including Executive Director of the Composites Manufacturing Simulation Center and leadership in the Institute for Advanced Composites Manufacturing Innovation (IACMI). He has been recognized with prestigious awards such as National Academy of Engineering membership (1987), Royal Society of Engineering Sciences (1995), and Fellowships in ASC, ASME, and SAMPE. His work spans advanced manufacturing science, composites certification processes, and the development of the Composites Design and Manufacturing HUB (cdmHUB). Current projects include additive manufacturing of composites and the Indiana Center of Excellence under the IACMI. His research emphasizes predictive modeling of material behavior during processing, including thermal effects, fiber orientation, and structural performance.
Vikas Tomar is a Professor in the School of Aeronautics and Astronautics at Purdue University, where he has served since 2006. He holds a Ph.D. from Georgia Institute of Technology (2005), an MBA from UC Berkeley (2023), and Indian degrees from IIT Madras and NIT Kurukshetra. His research focuses on materials in extreme environments, including non-equilibrium phenomena (e.g., shock dynamics) and autonomy energy intelligence (e.g., battery management systems). He leads the Interfacial Multiphysics Lab, which has produced over 400 publications, 11 patents, and 16 PhD graduates. Key achievements include ASME Fellow status (2016), the AFoSR Young Investigator Award (2009), and multiple teaching/mentorship awards. His lab’s work spans experimental methods like Mechanical Raman Spectroscopy (patented) and computational models for battery safety and energetic materials. Education: MBA, UC Berkeley, 2023 Ph.D., Georgia Tech, 2005 M.Tech., IIT Madras, 2001 B.Tech., NIT Kurukshetra, 1998 Awards: University Faculty Scholar (2016–2021) W A Gustafson Best Teacher Award (2019–20) VAJRA Faculty Award (2019) Over 30+ patents, grants, and editorial roles in journals. Research interests include: Shock physics and nanosecond Raman spectroscopy Battery safety and AI-driven energy systems Interface mechanics in materials and biomaterials Lab contributions include pioneering work on battery thermal runaway prediction and smart management systems, as well as advanced imaging techniques for material characterization under extreme conditions.
David Kay is an Associate Professor in the Department of Computer Science at the University of Oxford, specializing in computational biology and numerical analysis. He holds a D.Phil. from Leicester University and has held academic positions at UMIST and Sussex before joining Oxford in 2007. His research focuses on developing numerical schemes for partial differential equations (PDEs), particularly in modeling cardiac and pulmonary systems. Education: B.Sc. (First Class) in Mathematics (Leicester, 1992), D.Phil. in Numerical Analysis (Leicester, 1997). Postdoctoral roles at UMIST (1996–1998) and Oxford (1999). Became University Lecturer at Sussex (1999) before moving to Oxford as a University Lecturer in Computational Biology (2007). Research Interests: Multiphysics interaction in heart/lungs, finite element methods for cardiac bidomain equations, multiscale lung models, stochastic ion channel dynamics, and numerical cell movement models. Applications include asthma pathophysiology, cardiac electrophysiology, and drug safety assessment. Key Projects: Co-developed the Chaste open-source software library for biological simulations, focusing on cancer, heart, and soft tissue modeling. Active in the AirPROM Synergy project on COPD. Grants & Funding: Supervised over 15 Ph.D. students and secured funding via EPSRC, BBSRC, and industry partnerships (e.g., Fujitsu, GE Healthcare). Current funding opportunities available for postgraduate researchers. Labs/Teams: Leads computational biology research in Oxford’s Department of Computer Science, collaborating with clinical teams to bridge mathematical modeling and biomedical applications.
Prof Youguang Guo is a Professor of Electrical Machines and Drives at the School of Electrical and Data Engineering, University of Technology Sydney (UTS). He holds a PhD from UTS (2004) and has been affiliated with UTS since 2008, progressing from Research Fellow to his current role. His primary research areas include advanced electrical machine design, electromagnetic materials characterization, and motor drive optimization. He has authored over 600 refereed papers and led numerous funded projects, including grants on electric vehicle motors and high-efficiency drives. Education: B.E. (1985), M.E. (1988) from Huazhong University of Science and Technology, and PhD (2004) from UTS. Prior roles include teaching and research at HUST (China) and UTS’s Centre for Electrical Machines and Power Electronics. Research focuses on high-power-density motors, magnetic materials under rotational fields, and data-driven methods. Recent articles emphasize wind turbine power curve modeling, space target de-tumbling, and thermal analysis using transfer learning. His work integrates machine learning and optimization for energy systems. Awards include the ASEMD2023 Distinctive Research Contribution Award. He supervises PhD/Master’s students in topics like flywheel energy storage and PMSM efficiency. Active in editorial roles for IEEE Transactions, Energies, and conference proceedings. Collaborative projects include development of low-rare-earth motors and sovereign propulsion systems. His labs focus on electromagnetic design and advanced materials testing.
Philippe Geubelle is the Bliss Professor and Executive Associate Dean in the Grainger College of Engineering at the University of Illinois at Urbana-Champaign (UIUC). He holds affiliate roles in Mechanical Science and Engineering (MSE) and Theoretical and Applied Mechanics (TAM). His academic journey includes a Ph.D. in Aeronautics from the California Institute of Technology (1993), an M.S. from the same institution (1989), and a B.S. in Mechanical Engineering from the Catholic University of Louvain (1988). Geubelle's research focuses on advanced materials and manufacturing, particularly computational design of self-healing materials, fracture mechanics, and frontal polymerization. He pioneered energy-efficient manufacturing techniques for thermoset composites and developed models for microvascular materials. His work integrates computational mechanics, high-performance computing, and experimental validation. Key areas of expertise include: computational material design, multi-scale modeling, aeroelasticity, and failure analysis of composite systems. His research has led to innovations in morphogenic composites, patterned crystalline domains, and additive manufacturing via frontal polymerization. Geubelle has authored over 300 publications and holds patents in self-healing composites and shock-boundary layer interaction control. He has received numerous awards, including the Bliss Professorship (2011), ASME Fellow (2009), and NSF CAREER Award (1998). He leads interdisciplinary initiatives at UIUC, including roles in budget reform, faculty governance, and engineering education. His service spans national committees, professional societies (ASME), and space grant programs.
April Novak is an Assistant Professor at the University of Illinois at Urbana-Champaign (UIUC) in the Department of Nuclear, Plasma, and Radiological Engineering. She holds a joint appointment at the National Center for Supercomputing Applications (NCSA). Her research focuses on multiphysics modeling, thermal-hydraulics, and advanced reactor design, particularly using the MOOSE computational framework. She earned her PhD in Nuclear Engineering from UC Berkeley (2020) and a BS from UIUC (2015). Dr. Novak’s work emphasizes porous media modeling for pebble bed reactors (PBRs), conjugate heat transfer, and Monte Carlo transport methods. She has validated models against experiments like SANA and contributed to tools like Pronghorn and Cardinal. Her research integrates high-performance computing (HPC) for reactor simulations, with recent projects on lead-cooled fast reactors and sodium fast reactor bypass flows. Recipient of the R&D 100 Award (2023) and the Innovations in Nuclear Technology Award (2018), her teaching accolades include the Students' Award for Excellence in Undergraduate Teaching (2024). She advises on multiphysics coupling between neutronics and thermal-hydraulics and collaborates on the Virtual Test Bed (VTB) for advanced reactor models.
Richard Braatz is the Edwin R. Gilliland Professor of Chemical Engineering at the Massachusetts Institute of Technology (MIT), part of the School of Engineering. His research focuses on control systems design, multi-scale simulation, and advanced manufacturing systems, particularly in biopharmaceuticals and energy storage. He has made significant contributions to battery technology, mRNA production, and process optimization. Education includes a Ph.D. from Caltech (1993), M.S. from Caltech (1991), and B.S. from Oregon State University (1988). He has authored over 300 publications and holds numerous honors, including membership in the National Academy of Engineering and multiple industry awards for innovation and education. Research interests span control systems, data analytics, and machine learning applied to chemical and biological manufacturing. His lab develops models for viral vector production, battery degradation, and continuous pharmaceutical processes. Collaborations include work on mRNA lipid nanoparticle formulations and fast-charging protocols for lithium-ion batteries.
Raúl A. Radovitzky is the Jerome C. Hunsaker Professor in Aeronautics and Astronautics at MIT, and Associate Director of the MIT Institute for Soldier Nanotechnologies. He holds a Civil Engineer degree from the University of Buenos Aires (1991), an S.M. from Brown University (1995), and a Ph.D. from Caltech (1998). His research focuses on computational solid mechanics, fluid-structure interaction, hypersonic vehicle thermal protection systems, multiscale modeling, and high-performance computing. Key research areas include computational mechanics of materials under extreme conditions, multiscale modeling, and parallel computing. He leads the Hypersonics Research Lab and is affiliated with the Institute for Soldier Nanotechnologies and the Center for Computational Science and Engineering. Notable awards include the MIT AIAA Teaching Award (2021, 2016), Arthur C. Smith Award (2021), and Alan J. Lazarus Advising Award (2018). His work spans theoretical and applied mechanics, with applications in aerospace engineering, materials science, and biomedical safety. He has pioneered numerical methods for fracture mechanics and peridynamics, contributing to advancements in computational modeling of complex systems.
Victor Calo is the John Curtin Distinguished Professor at Curtin University's School of Elec Eng, Comp and Math Sci (EECMS) within the Faculty of Science and Engineering. He holds the CSIRO Professorial Chair in Computational Geoscience and leads the Centre for Optimisation and Decision Science. His work focuses on advancing high-performance computing (HPC) tools for geomechanics, fluid dynamics, and multiphysics modeling in resource extraction industries. Calo earned a Civil Engineering degree from the University of Buenos Aires, followed by a Master’s in Geomechanics and Ph.D. in Civil and Environmental Engineering from Stanford University. Research Interests : Geomechanics, fluid dynamics, flow in porous media, phase separation, HPC, multiphysics modeling, block copolymer self-assembly, and numerical methods for engineering systems. His research emphasizes developing open-source software to democratize advanced computational techniques. Key Achievements : Highly Cited Researcher (2013), 170+ peer-reviewed publications, 2 patents, and over 18 invited talks/keynotes in 2 years. His work bridges computational methods with geoscience applications, including reservoir simulation and material science. Grants & Collaborations : CSIRO Chair endowment, collaborations with KAUST (e.g., Center for Numerical Porous Media), and partnerships in multiphase flow modeling. Active in organizing mini-symposia at international conferences. Labs/Teams : Leads the Computational Geoscience group at Curtin, focusing on HPC-driven solutions for resource extraction challenges and materials science problems.
Colin Denniston is a Professor in the Department of Physics & Astronomy at Western University. His research focuses on multiscale modeling of soft matter systems, including complex fluids, liquid crystals, colloidal suspensions, and polymer dynamics. He specializes in developing novel numerical methods for simulating micro/nano-fluidic systems and studying material properties during curing processes. Key research areas include: Molecular dynamics simulations of polymerization reactions Hydrodynamic interactions in confined flows Photonic band gap engineering using colloidal crystals Interfacial dynamics in coupled lattice-Boltzmann and molecular dynamics frameworks His work bridges theoretical physics, computational modeling, and materials engineering. Notable contributions include advancements in LAMMPS integration for fluid simulations and studies on defect-bonded colloidal structures in cholesteric phases. The Denniston Group actively explores applications in advanced composites and nanotechnology. Professional activities include leading the Denniston Group at Western University and collaborating on projects involving fiber-reinforced polymers for aerospace/automotive industries. He accepts graduate student applications year-round.