Professor Jiyuan Tu is a Professor in the Department of Mechanical and Automotive Engineering at RMIT University's School of Engineering. He specializes in computational fluid dynamics (CFD), multiphase flows, and their applications in renewable/nuclear energy, biomedical engineering, and built environment systems. His research has led to over 500 peer-reviewed articles, 9 books, and $10M+ in ARC grants. He has supervised over 50 postgraduate students and received prestigious awards such as the RMIT Research Excellence Award (2012) and Fulbright Senior Scholar Award (2008). Research interests include CFD modelling of bioaerosol transport, drug delivery systems, and thermal energy storage. He pioneered numerical models for multiphase flows, contributing to software implementations in industries. Notable works include books on CFD and multiphase flow analysis, and leadership in international conferences like COBEE 2018. He holds honorary professorships at Tsinghua University and is Editor-in-Chief of the Experimental and Computational of Multiphase Flow journal. Industry experience includes roles at ANSTO (1996-2001). Awards span fellowships from JSPS, KOSEF, and Fulbright programs. Grants include ARC Discovery, Linkage, and LIEF projects. His work ranks him among the world’s top researchers in pebble bed reactors and airborne infection studies (SciVal 2016-2025).
Mohammad Peydayesh is a Lecturer and Senior Researcher at the Department of Health Sciences and Technology , ETH Zürich. He works in the Food and Soft Material Laboratory , focusing on sustainable materials derived from food waste and agri-food byproducts. PhD in Chemical Engineering (2018, Iran University of Science and Technology) Postdoctoral Fellow at ETH Zürich under Prof. Dr. Mezzenga Senior Assistant at ETH Zürich since 2021 His research spans soft matter , self-assembly phenomena , and amyloid fibril applications in: Environmental engineering (water purification, heavy metal removal) CO2 conversion and storage Smart packaging and bioplastics development Biorefinery concepts and circular economy Nanomaterials for waste valorization Recent publications highlight trends in amyloid-based hybrid materials for: Metal recovery from e-waste and contaminated water CO2 capture and conversion Bioplastic production from agricultural waste Antiviral and detoxification applications Water desalination and purification Photonic and catalytic materials He contributes to the Laboratory of Food & Soft Materials , advancing sustainable solutions through interdisciplinary material science.
Dr. Zaheer Nasar is a Reader in Atmospheric Aerosols at Cranfield University's School of Aerospace, Transport and Manufacturing. His work focuses on real-time bioaerosol characterization, indoor/outdoor air quality dynamics, and environmental health impacts of particulate matter. He leads the NERC-funded Light-Induced Fluorescence sensor project and contributes to the BioAirNet network (NE/V002171/1) as Co-I. Research Interests Physico-chemical and biological characterization of aerosols Spatio-temporal dynamics of particulate matter (PM) and bioaerosols Quantitative microbial risk assessment (QMRA) methodologies Low-cost air quality sensor networks and machine learning calibration Urban green infrastructure effects on air pollution Policy development in Hindu Kush Himalayan air quality Recent publications emphasize machine learning-enhanced sensor calibration (2024 IEEE paper), wastewater plant bioaerosol risks (2024 Water Research), and urban air quality interventions across the UK and Lahore. He has secured over £1.6M in grants from NERC, STFC, and UKRI GCRF, with significant work on BTEX exposure in Nigeria and SARS-CoV-2 risks in wastewater facilities. Scientific Recognition Fellow of the Higher Education Academy (FHEA) Co-investigator in multiple NERC/UKRI projects Active participant in BSI bioaerosol standards committee As an advisor, he mentors five postgraduate researchers including Reece Dillon and Hathaikarn Tathong, with a strong publication record in journals like Environmental Science: Atmospheres , Risk Analysis , and BJPsych Open . His work bridges environmental science, public health, and policy implementation through interdisciplinary research.
Dr. Joshua Brinkerhoff is an Associate Professor in Mechanical Engineering at the University of British Columbia Okanagan Campus. He serves as the Associate Director for Research & Industrial Partnerships in the School of Engineering and leads the UBC-Okanagan Computational Fluid Dynamics Laboratory. His research spans computational fluid dynamics, turbomachinery, multiphase flows, hydrogen safety, wind energy, and biofluid mechanics. He teaches courses in mechanics of materials, alternative energy systems, turbulence, computational fluid dynamics, and aircraft design. PhD, Aerospace Engineering (Carleton University, Ottawa, ON) BEng, Aerospace Engineering (Carleton University) Dr. Brinkerhoff’s research interests include: Computational Fluid Dynamics (CFD) for laminar-to-turbulent transition and instability analysis Wind energy systems and turbine aerodynamics Hydrogen storage and safety protocols for transportation Biofluid mechanics for respiratory diseases and aneurysm modeling Multiphase flows in industrial and environmental contexts His publications focus on CFD simulations for: Aerosol dispersion and mitigation in indoor environments Wind farm interactions and atmospheric gravity waves Cavitation and phase transitions in cryogenic and LNG systems Heat transfer optimization in industrial and thermal systems Instability dynamics in buoyancy-driven and swept flows Turbulent structures in fluidized beds and reactors Dr. Brinkerhoff has no listed scientific awards in the provided data but has extensive contributions to renewable energy, hydrogen safety, and medical fluid dynamics. His laboratory develops open-source tools like TOSCA for large-eddy simulations and investigates practical applications in urban air quality, dental aerosol control, and turbine wake modeling.
Guangyu Cao is a Professor at the Department of Energy and Process Engineering, Norwegian University of Science and Technology (NTNU). He holds leadership roles in multiple international organizations, including the European standards working group CEN TC156 WG18, REHVA's technical committee, and the editorial board of the Journal of Building Engineering (Impact Factor 5.318). His research focuses on indoor airflow dynamics, ventilation systems in healthcare settings, and airborne disease transmission mitigation, with a strong emphasis on surgical environments and school buildings. Education: PhD in Energy Engineering (2009), Helsinki University of Technology Senior Researcher at VTT Technical Research Center (2009-2014) Research Interests: Hospital ventilation optimization, thermal comfort in clinical settings, airborne infection control, and sustainable building environmental quality. He combines experimental studies with mathematical modeling to evaluate ventilation strategies, particularly in operating rooms and isolation wards. Projects: EU Marie Curie DTN HumanIC (2024–2027) EU H2020 iclimabuilt (2021–2025) NFR POSIred (2020-2024) Labs/Teams: Collaborates with St. Olav's Hospital on indoor environment projects and leads teams in Cold Climate HVAC and Healthy Building Europe initiatives.
Professor Lydia Bourouiba is a faculty member at the Massachusetts Institute of Technology (MIT), affiliated with the Department of Civil and Environmental Engineering and the Institute for Medical Engineering and Science (IMES). Her research focuses on the intersection of fluid dynamics and disease transmission, with a strong emphasis on biophysics, interfacial flows, turbulence, and multiphase systems. Ph.D. in Applied Mathematics from McGill University (2008) Research on fluid fragmentation, droplet/bubble dynamics, and pathogen transport Co-Founder and Associate Director of the NSF Center for Pandemic Prevention (APPEX) Her work spans fundamental and applied domains, including: Biophysics of pathogen transport in air and water Turbulent multiphase flows in respiratory events Fluid-plant interactions in agricultural disease Nonlinear dynamics in public health contexts Key article trends highlight: Biomedical fluid mechanics Climate and environment-driven disease modeling High-risk/high-reward public health innovations Interdisciplinary approaches combining physics, biology, and engineering Scientific awards include: Fellow of the American Physical Society (2021) American Institute for Medical and Biological Engineering Fellow (2022) Smith Family Foundation Odyssey Award for biomedical research Ole Madsen Mentoring Award She serves as Associate Editor for the journal FLOW and has founded conferences like the Gordon Research Conference on Fluids in Disease Transmission. Her lab (Fluids and Health Network) develops experimental and theoretical frameworks to address contamination, pandemic control, and fluid-health-environment interactions.
Mario Romero is an Associate Professor in Visualization at the Department of Computational Science and Technology (CST), KTH Royal Institute of Technology. He leads the InfraVis national research infrastructure for data visualization and is a Digital Futures Faculty member. His roles include national technical manager of InfraVis, member of the Executive Committee of Digital Futures, and Associate Director for Seminars & Workshops. Education: PhD in Computer Science (Georgia Tech, 2009), MSc in Computer Science (UIUC, 2001), and dual BSc degrees in Industrial Engineering and Construction Engineering (Universidad San Francisco de Quito, 1996). He is a Fulbright Scholar from Ecuador and holds postdoctoral experience at Uppsala University. Research focuses on Human-Computer Interaction, Visualization, and Ubiquitous Computing. Key projects include: TENT: Technology-Enhanced Neurosurgical Training VisBac: Visualizing airborne bacteria in ORs PSP: Platform for Smart People (autism support) SMART: Predictive maintenance in pharmaceuticals Homo Colossus: Energy footprint visualization Awards: Selected for IVA's 100 research2business projects (2021). Co-founded BrailleTouch (blind-friendly keyboard) and Anymaker (3D sketching app). Supervised students in C-Awards-winning projects (e.g., Yue Liu's thesis defense in 2024). Teaching: Responsible for courses like Information Visualization (DH2321) and Advanced Graphics & Interaction (DH2413). Active in organizing conferences (e.g., Eurographics 2020 Education Track Chair).
David J. Brenner serves as Higgins Professor of Radiation Biophysics in Radiation Oncology and Environmental Health Sciences at Columbia University Medical Center. He directs both the century-old Center for Radiological Research and the Radiological Research Accelerator Facility (RARAF), leading interdisciplinary teams focused on radiation applications in medicine and safety. BA in Physics from Oxford University (1974) MSc in Radiation Physics from University of London (1976) MA in Physics Philosophy from Oxford University (1979) PhD in Physics from University of Surrey (1980) His research spans dual aspects of radiation: therapeutic applications in cancer treatment and risk assessment across diverse scenarios. Key initiatives include advancing carbon-ion therapy for pancreatic cancer, developing safe far-UVC light for pathogen elimination, and investigating low-dose radiation risks from medical imaging to nuclear terrorism. His team leverages RARAF's unique capabilities for mechanistic studies of radiation effects. Publications reveal dominant themes in radiation biophysics, with significant contributions to biodosimetry (RABiT platform), UV disinfection technology, and cancer risk modeling. Recent work emphasizes translational applications including medical countermeasures for radiation exposure and precision radiation oncology techniques. National Academy of Sciences Nuclear and Radiation Studies Board member National Council on Radiation Protection and Measurements member Radiation Research Society Failla Gold Medal recipient (2011) Oxford University Weldon Prize for mathematical biology (2015) Robert D. Moseley Award for Radiation Protection in Medicine Brenner leads multiple NIH-funded projects including biodosimetry development and UV disinfection research. His mentorship extends through directing Columbia's Radiological Research Accelerator Facility and training programs in radiological sciences. Current lab efforts focus on carbon-ion therapy mechanisms and 222-nm UV applications against drug-resistant pathogens, with active collaborations across oncology, microbiology, and physics disciplines.
Professor Donna Green is an internationally recognized environmental scientist at the University of New South Wales (UNSW), affiliated with the School of Biological, Earth & Environmental Sciences. She holds a PhD from the University of California, Berkeley (2004) and leads multidisciplinary research at the intersection of climate change, energy policy, and air pollution. Her work focuses on balancing improvements in indoor air quality against outdoor pollution sources such as traffic, bushfires, and industry, while addressing increasingly recognized risks from indoor air contaminants including airborne diseases. PhD, University of California, Berkeley (2004) Professor Green's research spans environmental science, climate change impacts, air pollution health effects, renewable energy policy, and environmental justice. Her work demonstrates particular expertise in the health impacts of climate change, with emphasis on vulnerable populations including Indigenous communities. She investigates the synergistic impacts of urban air pollution compounding climate emergencies, and has published extensively on environmental injustice in resource-rich Aboriginal Australia. Her research often bridges scientific findings with practical policy solutions, working collaboratively with engineers, legal practitioners, and public health experts to design evidence-based approaches to environmental challenges. The most recent publications reveal a strong focus on wildfire smoke impacts on health, indoor air quality in educational settings, climate litigation trends, and the intersection of renewable energy development with Indigenous rights. Her work shows increasing attention to the health consequences of climate change, particularly through the MJA-Lancet Countdown reports which document Australia's preparedness (or lack thereof) for climate-related health challenges. There's also a clear trend toward interdisciplinary collaboration, with publications spanning environmental science, public health, engineering, and social justice perspectives. Clean Air Society Australia & New Zealand Innovation & Excellence in Air Quality Award for CleanAir Schools program Professor Green leads the CleanAir Schools program and is currently implementing Fresh Air Innovators in 100 NSW school classrooms. She has secured significant research funding through collaborations with multiple institutions and has supervised numerous students, though specific advisees aren't listed in the provided text. Her research has informed policy discussions on air quality standards, climate adaptation strategies, and environmental justice frameworks. Professor Green directs research teams investigating indoor air quality solutions, climate-health interactions, and renewable energy policy frameworks. Her CleanAir Schools initiative represents a major practical application of her research, translating scientific findings into classroom interventions that protect children from air pollution. She collaborates extensively with engineers, public health experts, and policy practitioners to develop evidence-based solutions to environmental challenges.
Marina Freire-Gormaly is an Assistant Professor in the Mechanical Engineering Department at York University's Lassonde School of Engineering. Her research focuses on renewable energy-powered water treatment systems, machine learning for smart design, advanced manufacturing, and sustainable engineering solutions for remote communities. She holds a PhD and M.A.Sc. from the University of Toronto, specializing in carbon capture and storage technologies. She has worked on nuclear energy projects at Ontario Power Generation and contributed to World Bank sustainability assessments. She currently chairs the Canadian Society of Mechanical Engineers' Student and Young Professional Affairs committee. Education: PhD in Mechanical Engineering, University of Toronto M.A.Sc. in Mechanical Engineering, University of Toronto Research Interests: She pioneers solar-powered reverse osmosis systems, energy recovery mechanisms, and IoT-driven smart systems. Her lab explores nanotechnology applications in environmental sustainability, including carbon capture and aquatic remediation. She integrates machine learning for optimizing energy-water nexus challenges in off-grid regions. Key Contributions: Developed models for membrane fouling in desalination systems, advanced pore network characterization for geologic CO2 storage, and designed automated renewable energy systems. Her work bridges engineering innovation with global sustainability goals. Grants & Collaborations: Engages with industries like Honda Canada and Trane Canada on sustainability initiatives. Supervises graduate students in emerging areas like nanobubble technology and direct air capture systems. Lab Activities: The Freire-Gormaly Lab focuses on clean energy-water systems, with current projects involving nano-technology for space applications (Canadian Space Agency collaboration) and life cycle assessments of carbon storage technologies.
Lidia Morawska is a Distinguished Professor and Australian Laureate Fellow at Queensland University of Technology (QUT), leading the International Laboratory for Air Quality and Health (ILAQH), a WHO Collaborating Centre. She specializes in air quality science and its health impacts, particularly particulate matter research. Her roles include Director of ILAQH, Co-Director of the Australia-China Centre for Air Quality Science and Management, and Adjunct Professorships at Jinan University and the University of Surrey. Education: PhD (Physics) and MSc from Jagiellonian University, Kraków, Poland. Early career included research in Canada and Poland before joining QUT in 1991, where she was promoted to Professor in 2003. Established the Environmental Aerosol Laboratory (now ILAQH) in 1992. Research interests focus on aerosol science, air pollution, and policy guidance for WHO guidelines since 1990. Awards include the 2023 L'Oréal-UNESCO International Award, 2022 AAAR Susanne V. Herring Award, and 2021 TIME100 recognition. She is a Fellow of the Australian Academy of Science and Queensland Academy of Arts and Sciences. Grants and projects include leadership of the ARC Training Centre for Advanced Building Systems Against Airborne Infection Transmission (THRIVE). Collaborates globally on clean air initiatives and indoor/outdoor exposure risks. Active in policy advising, including co-chairing WHO guideline development.
Mohsen Malekinejad is an Associate Professor at the University of California, San Francisco (UCSF) School of Medicine and serves as the director of the Center for Resilient Societies and Technology (CREST) . He is a core member of the RESILIENT network at the University of California system, focusing on pandemic intelligence and community resilience. His career spans 20 years of public health experience with expertise in evidence-based medicine, systematic reviews, and translating research into policy. Education: DrPH (UC Berkeley, 2008), MPH (UC Davis, 2003), MD (Tehran Azad University, 1999), Postdoctoral Studies (UCSF, 2009) Dr. Malekinejad's research addresses health disparities among marginalized populations globally, focusing on substance use disorders, HIV/HCV, and pandemic response strategies . His work includes methodological innovations for sampling hard-to-reach groups (e.g., homeless populations, drug users) and economic evaluations of public health interventions . Recent publications highlight systematic reviews on topics like COVID-19 exposure notification systems, TB testing cascades, and HIV risk behaviors . His methodological strengths include respondent-driven sampling, meta-analysis, and health equity frameworks. He has led major projects funded by NIH, CDC, and WHO, including the California Department of Public Health's COVID-19 Exposure Notification system implementation. Dr. Malekinejad also maintains an active role in graduate-level public health education and collaborates across disciplines to strengthen translational research.
Professor Stuart Bruce Dalziel is a Professor of Fluid Mechanics at the Department of Applied Mathematics and Theoretical Physics (DAMTP), University of Cambridge, where he has held academic roles since 2001. He leads the GK Batchelor Laboratory, a world-leading facility for experimental fluid dynamics. His research focuses on geophysical, environmental, and industrial fluid mechanics, employing theoretical, numerical, and experimental methods. Key areas include internal gravity waves, granular flows, turbulence, and building ventilation. Recent projects involve buoyant plumes, reactive flows, and applications like decontamination and hydrogen gas pipeline management. He is actively involved in supervising PhD students and has earmarked funding for projects on skipping stone dynamics and hydrogen gas purging in pipelines. Education and Career: Professor of Fluid Mechanics (2016–present) Reader in Fluid Mechanics (2012–2016) University Senior Lecturer (2001–2012) Director of the GK Batchelor Laboratory (1997–present) Research Interests: Dalziel’s work bridges experimental, numerical, and theoretical approaches to address challenges in fluid mechanics. Recent projects include studying stratified turbulence, Rayleigh-Taylor instabilities, and fluid dynamics in rotating systems. His applied research extends to environmental engineering, such as improving building ventilation systems and mitigating airborne disease transmission. Advising and Grants: He mentors PhD students from diverse backgrounds (mathematics, engineering, physics) and oversees funded projects combining experimental and computational methods. Current opportunities focus on novel fluid dynamics problems with practical applications. Labs and Facilities: The GK Batchelor Laboratory, under his leadership, develops advanced diagnostics and software for fluid dynamics research, widely adopted in the scientific community.
Tina Comes is a Full Professor in Decision-Making & Digitalisation at the University of Maastricht, Netherlands. She holds a part-time position (0.2 FTE) and has previously held academic roles at TU Delft (Associate Professor in Decision-Making for Resilience, 2017), University of Agder (Full Professor in ICT, 2015-2017), and Visiting Professor at Lamsade, Université Dauphine, Paris (2014). Her research focuses on Crisis Informatics , Decision Theory , Disaster Management , Humanitarian Logistics , and Resilience . Her work spans building simulation , ventilation systems , and energy-efficient design , with grants totaling €9.6 million since 2012. Key projects include Resilient Systems (NL Ministry of Defense, 2020-2026), H2020 HERoS (2020-2023), and Climate Resilient Urban Infrastructure (Amsterdam, 2020-2022). She has supervised 6 PhD students at TU Delft (2017-2022), 3 Postdocs/PhDs at University of Agder (2013-2020), and 1 PhD at Université Toulouse (2014-2018). Her scientific awards include: 2020 José Maria Sarriegi Award by the Spanish Red Cross 2019 Emerald Literati Award 2016 Delft Technology Fellowship (acceptance rate 2012 Best Paper Award at ISCRAM Conference
Dr. Congrong He is a Senior Research Fellow at the School of Earth & Atmospheric Sciences, Faculty of Science, Queensland University of Technology (QUT), Australia. He has been affiliated with the International Laboratory for Air Quality and Health (ILAQH) at QUT since 1999, contributing over three decades of research in atmospheric and environmental sciences. BSc in Atmospheric Physics, Nanjing University, China (1982) MSc in Environmental Sciences, Murdoch University, Australia (1999) PhD in Aerosol Sciences, Queensland University of Technology, Australia (2005) His research focuses on atmospheric environment, air quality, aerosol science, particle emissions, indoor air, VOCs, and the building environment . He has extensive experience in monitoring and analyzing airborne particles, their formation, health impacts, and environmental behavior. His work bridges environmental science, public health, and engineering, particularly in urban and indoor settings. The recent publications (2019–2025) highlight a strong trend in aerosol dynamics, bioaerosols, indoor air quality, and pollution control . Key themes include the behavior of printer emissions, secondary organic aerosol formation in urban-forest interfaces, the impact of prescribed burning on light-absorbing carbon, and the use of UV-C for pathogen inactivation. His collaborative work with leading researchers like Morawska and Ristovski underscores his integration into high-impact environmental health research. Dr. He has not received any explicitly mentioned scientific awards in the provided text. He has been actively involved in research grants and collaborative projects, particularly within ILAQH, focusing on air quality monitoring, health impacts of aerosols, and emission sources. While no formal students are listed, his work supports broader research teams and projects. He is based at QUT and continues to contribute to critical environmental and public health research.