Sabina Luisa Campanelli serves as an Associate Professor in the Department of Mechanics, Mathematics and Management at the Polytechnic University of Bari, Italy, where she conducts cutting-edge research in advanced manufacturing technologies with emphasis on laser-based additive processes. Her research specializes in Additive Manufacturing , particularly Powder Bed Fusion and Directed Energy Deposition techniques, focusing on multi-material fabrication , functionally graded materials , and in-process monitoring . She develops innovative methodologies for layer-level control of material composition and thermal management, addressing critical challenges in geometric accuracy, residual stress, and defect formation in aerospace and biomedical components. Analysis of her recent publications reveals a dominant trend toward real-time process monitoring using thermal and optical systems, with increasing focus on sustainable material utilization through recycled feedstocks. Her work bridges Materials Science , Mechanical Engineering , and Industrial Manufacturing , demonstrating strong industry applicability in high-value sectors requiring precision metal components.
Frank Markert is an Associate Professor at the Technical University of Denmark (DTU) , Department of Civil and Mechanical Engineering, specializing in Structures and Safety. His research focuses on fire safety engineering, hydrogen safety, computational fluid dynamics (CFD), and risk assessment, with applications in tunnel safety, hydrogen refuelling stations, and emergency response systems. Education: While specific degrees are not listed, his role as Associate Professor and extensive research output suggest advanced qualifications in fire safety engineering or related fields. Research Interests: Fire safety and fire dynamics in structures Hydrogen safety, especially in confined spaces like tunnels Risk assessment and quantitative risk analysis (QRA) Computational modeling of fires and explosions Emergency response and crisis management systems Research Trends: His recent publications (2023–2025) emphasize hydrogen safety in transport systems, tunnel fire mitigation, and innovative fire suppression techniques. He actively explores the risks associated with hydrogen-powered vehicles and infrastructure, including boil-off gas management and explosion mitigation strategies. Scientific Awards: No specific awards are mentioned in the provided text. Advising and Grants: Main supervisor for PhD student Liu, W. in the project "Advanced fire engineering tool for integrated analysis of structural design parameters" (2020–2024). Principal Investigator (PI) for projects like FIRE21 (Nordic Fire and Rescue Services) and HyTunnel-CS (hydrogen safety in tunnels). Participant in EU projects such as K-FORCE (Knowledge FOr REsilient society) under Erasmus+. Labs and Teams: He is affiliated with the DTU Construct research group, focusing on civil and mechanical engineering structures and safety.
Necip Altay Eren serves as an Assistant Professor in the Construction Technology Department at Gaziantep University's Islahiye Vocational School, where he has held academic positions since 2014 (Lecturer until 2022, promoted to Assistant Professor in 2022). His institutional affiliation spans multiple units within Gaziantep University, including the Technical Sciences Vocational School (2014-2022) and current appointment at Islahiye Vocational School, with administrative duties as Head of Department since 2024. His educational background includes: Doctorate (2021): Gaziantep University, Institute of Science, Civil Engineering Master's-equivalent (2009): University of Connecticut, USA Bachelor's (2002): Gaziantep University, Faculty of Engineering, Civil Engineering (English Program) Dr. Eren's research centers on advanced concrete technologies, with emphasis on geopolymer concrete systems, fiber reinforcement mechanisms, and nano-material applications. His work investigates critical performance aspects including mechanical properties under extreme conditions (acid/sulfate attack, thermal exposure), impact resistance, and structural behavior of innovative concrete composites. His methodology integrates experimental testing with computational approaches like artificial neural networks for strength prediction. Analysis of his 11 journal publications (2021-2024) reveals consistent focus on sustainable construction materials, particularly alkali-activated systems using industrial byproducts (slag), with increasing sophistication in hybrid reinforcement strategies combining steel fibers, nano-silica, and recycled materials like tire rubber. His work bridges fundamental material science with practical structural applications, predominantly targeting flat slab systems and shear-critical elements. Dr. Eren actively supervises graduate research, having completed two master's theses in 2023 on geopolymer concrete fire resistance and fiber-reinforced concrete shear strength. He secured national research funding for the project 'Investigation of the Impact Behavior of Geopolymer Concretes' (2017-2020), demonstrating capacity for independent research leadership. His teaching portfolio spans structural mechanics, concrete technology, and building materials across 57 course instances since 2013, maintaining continuous instructional engagement through 2024-2025. While no formal laboratory affiliation is specified, his project management and publication record indicate active involvement in concrete materials testing facilities. His research trajectory shows progression toward sustainable material systems with enhanced multifunctional properties, particularly for infrastructure resilience under dynamic loading conditions.
Pererik Andreasson is a Lecturer at the Academy of Information Technology , Halmstad University. His research focuses on 3D printing, materials science, electromagnetic compatibility testing, and wireless communication. Key contributions include optimizing 3D-printed radar lenses, advancing phase-change material characterization via femtosecond x-ray diffraction, pioneering augmented reality methods for electromagnetic field visualization, and developing substrate integrated waveguide antennas for IoT devices. 3D printing of optical components Dynamic processes in phase-change materials Augmented reality for electromagnetic testing IoT antenna design His recent work on frequency-adjustable SIW antennas (2024) and AR-based EMC visualization (2021) demonstrates cross-disciplinary innovation. While no scientific awards are documented, his 15+ publications since 2007 highlight sustained expertise in material science and wireless technologies.
Leanne Sakzewski is an Associate Professor at the Queensland Cerebral Palsy and Rehabilitation Research Centre, Faculty of Medicine, The University of Queensland. She serves as a Principal Research Fellow at the Child Health Research Centre and is affiliated with the Queensland Cerebral Palsy Rehabilitation and Research Centre. Her research is primarily focused on randomized clinical trials in cerebral palsy and childhood brain injuries, with particular emphasis on upper limb rehabilitation and motor training interventions. Dr. Sakzewski's research interests include upper limb training approaches for infants and children with unilateral cerebral palsy; intensive models of motor training to improve gross motor and manual abilities for children with bilateral cerebral palsy; participation-focused interventions to increase physically active leisure for children with cerebral palsy; and social skills group-based programs for adolescents with brain injuries. Her work demonstrates a strong commitment to evidence-based rehabilitation approaches that translate into practical clinical applications. Her recent publications show a consistent focus on intervention efficacy, with numerous randomized controlled trials examining various therapeutic approaches for children with cerebral palsy. The research spans multiple domains including motor function, social skills development, physical activity promotion, and early intervention strategies. Her collaborative work with multidisciplinary teams demonstrates the comprehensive nature of her research program. Dr. Sakzewski has received recognition for her research, including a Dean's Commendation for outstanding Research Higher Degree following completion of her PhD in 2010 from The University of Queensland. Her work has been published extensively in high-impact journals across rehabilitation science, pediatrics, and neurology. With over 100 journal articles to her name, Dr. Sakzewski has established herself as a leading researcher in pediatric rehabilitation for children with cerebral palsy. Her research bridges clinical practice and scientific investigation, with a focus on developing and testing interventions that can be readily implemented in clinical settings to improve outcomes for children with neurological conditions.
Marco Mazzarisi serves as an Assistant Professor in the Department of Mechanics, Mathematics and Management at the Polytechnic University of Bari, Italy, specializing in Manufacturing Technology and Systems (ING-IND/16 classification). Based at Via Orabona 4, 70125 Bari, he can be contacted via marco.mazzarisi@poliba.it or the departmental line +39 080 596 3522. His research centers on laser-based additive manufacturing processes, with primary expertise in Laser Metal Deposition (LMD) and Directed Energy Deposition. Key investigation areas include real-time process monitoring using coaxial infrared systems and off-axis optical techniques, defect detection (particularly subsurface voids), melt pool dynamics analysis, and sustainability assessment through exergetic analysis. His work focuses on nickel-based superalloys (Inconel 718) and stainless steels (AISI 316L), addressing critical challenges in geometric accuracy, energy consumption, and material compatibility in hybrid manufacturing. Analysis of his 2020-2025 publications reveals consistent innovation in LMD monitoring methodologies. His research demonstrates strong interdisciplinary integration between thermal physics, optical engineering, and sustainable manufacturing principles. Notable contributions include the development of off-axis monitoring frameworks, causal models for void prediction, and exergy-based sustainability metrics that bridge process quality with environmental impact assessment. Scientific awards: No awards, fellowships, or medals are documented in the provided materials. Advising and grants: No information regarding graduate student supervision, research grants, or funding sources is provided in the source text. Laboratory facilities: The text does not specify any dedicated laboratories, research teams, or collaborative groups associated with Dr. Mazzarisi's work.
Associate Professor Kevin Laws is a materials scientist specializing in bulk metallic glasses and amorphous alloys at the School of Materials Science & Engineering, University of New South Wales (UNSW). His research focuses on the design, discovery, and development of magnesium- and aluminum-based metallic glasses for structural and functional applications, with expertise in die-casting, strip casting, and post-production processing of bulk metallic glasses. Professor Laws has held significant positions including Project Manager at the ARC Centre of Excellence for Design in Light Metals since 2009 and Postdoctoral Fellowship at UNSW since 2008. His research contributions are extensive, with over 30 refereed journal publications and approximately $100k in research funding since 2008. His work extends to international collaborations, having served as a Visiting Scientist at both the Swiss Federal Institute of Technology (ETH) in Zürich and the United States Air Force Research Laboratories. His primary research interests include bulk metallic glasses, amorphous alloys, magnesium and aluminum alloy development, composite materials, and advanced processing techniques. Professor Laws has made significant contributions to understanding the thermal and mechanical properties of metallic glasses, with applications spanning from structural components to functional devices. His recent work shows progression into high-entropy alloys, tungsten boride structures, and advanced characterization techniques while maintaining his core focus on metallic glasses. Professor Laws' publication record demonstrates a strong trajectory of research excellence, with consistent output of high-impact papers in leading materials science journals. His work shows increasing sophistication in both experimental techniques and computational modeling approaches, reflecting the evolving nature of materials science research. ARC Centre of Excellence Postdoctoral Research Fellowship (2007-) Invited Research Position at Swiss Federal Institute of Technology (2010) Invited Research Position at US Air Force Research Laboratory (2011) Member of Institute of Engineers, Australia (2003-) Member of Society of Automotive Engineers-International (2001-) Professor Laws has co-supervised 10 honors and 6 PhD students in the past 4 years, demonstrating his commitment to education and mentorship. He serves as course coordinator for Welding and Joining Processes and contributes as a guest lecturer for polymer engineering and demonstrator for foundry casting, rolling, and mechanical testing. His teaching responsibilities complement his research activities, creating a synergistic relationship between education and discovery. His research is conducted within the School of Materials Science & Engineering at UNSW, where he collaborates with colleagues on projects related to advanced materials development and characterization. The school provides state-of-the-art facilities for materials processing and characterization, enabling Professor Laws to pursue his research on metallic glasses and related materials.
Kevin Curran is a Professor of Cyber Security at Ulster University, serving as Executive Co-Director of the Legal Innovation Centre and group leader for the Cybersecurity & Web technologies Research Group. He joined the School of Computing and Intelligent Systems in 1999 and has established himself as a leading expert in cyber security with over 800 published works. His academic home is within the School of Computing, Engineering and Intelligent Systems at Ulster University's Magee Campus in Derry~Londonderry. Professor Curran's research interests span multiple domains within cyber security, with particular expertise in location positioning within indoor environments, Internet security, and the intersection of legal technology with cybersecurity. His recent work demonstrates a strategic expansion into AI-driven security solutions, blockchain applications, and IoT security frameworks. His research shows a clear evolution from foundational networking research to contemporary applications addressing legal technology challenges and emerging security threats in connected environments. His scholarly output reveals significant trends toward interdisciplinary research, particularly at the intersection of cyber security and legal technology. Recent publications focus on applying machine learning and AI techniques to legal document classification, blockchain security for autonomous vehicles, and generative AI applications in cyber defense. His work consistently addresses practical security challenges while maintaining strong theoretical foundations. Engineering and Technology Board Visiting Lectureship for Exceptional Engineers IEEE Technical Expert for Internet/Security matters since 2008 Member of the EPSRC Peer Review College Recipient of various patents in security technologies Founding Editor in Chief of the International Journal of Ambient Computing and Intelligence Professor Curran has successfully secured and managed numerous UK and European Framework projects and Technology Transfer Schemes throughout his career. He serves as Co-Investigator on several major research projects including the Baker McKenzie Research Project (2017-2026), LFR: Legal Futures Research (2016-2026), and the Ulster Centre for Legal Innovation (2016-2026). His research group actively collaborates with industry partners and legal professionals to address real-world cybersecurity challenges. The Cybersecurity & Web technologies Research Group under his leadership focuses on practical security solutions while maintaining strong theoretical foundations. As Executive Co-Director of the Legal Innovation Centre, Professor Curran bridges the gap between legal practice and technological innovation, particularly in the realm of cybersecurity applications for legal services. His team works on developing secure platforms for legal document processing, blockchain applications for contract management, and AI-driven tools for legal professionals while maintaining rigorous security standards.
Eugenio Brusa is Full Professor of Mechanical and Aerospace Engineering at the Polytechnic University of Turin (Politecnico di Torino), where he also serves as Director of the Doctoral School (2018-2024) and Scientific Advisor for the strategic partnership with Danieli & C. Officine Meccaniche. Since obtaining his PhD in 1997, he has held academic roles in both Turin and the University of Udine, progressing from researcher to Associate Professor (2002) and then Full Professor (2013). Education PhD, Polytechnic University of Turin (1997) Degree in Aeronautical Engineering (Laurea), Polytechnic University of Turin (year not specified) Research Interests Professor Brusa’s expertise lies at the intersection of mechanical design , mechatronics , and systems engineering . His work encompasses: Structural mechatronics and smart materials, including MEMS-scale systems Rotor dynamics and bearing systems for aerospace, steel, and automotive applications Life-cycle assessment (LCA) and circular design methodologies Model-Based Systems Engineering (MBSE) for sustainable industrial products Digital-twin-driven design and predictive maintenance Recent Publications at a Glance Over the past five years Professor Brusa has co-authored more than 20 peer-reviewed articles and conference papers. The research trajectory shows a clear emphasis on sustainable aviation (fuel-cell aircraft thermal management), energy harvesting (piezoelectric and vibration-based systems), digital twins for ice-prediction and rotor monitoring, and circular-economy-oriented design through LCA integration. These works collectively advance greener industrial products and smarter mechatronic systems. Scientific Awards & Distinctions Premio Nazionale “A. Capocaccia” (1999) – awarded by AIAS (Italian Association for Stress Analysis) Member/Associate Editor, journals Energies (2020-2024) and Proceedings of the IMechE Part C (2020-2022) Scientific-committee roles in INCOSE Italy, ASME Italy Section (President 2014-2015), UNITE! European Alliance, ESCP Business School, and several IEEE/ECCOMAS conferences Doctoral Advising & Research Funding Currently supervising seven PhD candidates in Mechanical Engineering and Materials for Sustainability. Since 2018, as Director of the Doctoral School, he oversaw more than 200 doctoral students across disciplines. Active research contracts include: EU and regional projects on predictive maintenance (PRIME 2021-2022) Industrial contracts with Danieli & C. (2025-2028) on scrap-metal crushing & shearing machinery Ongoing partnerships on oil-film bearings for rolling mills, fatigue-life assessment of hydraulic-turbine shafts, and additive-manufacturing quality control Laboratories & Teams Founder or co-founder of four research laboratories: Mechatronics Laboratory (1993) Testing and Characterization of Rotating Systems Laboratory (1997) Industrial Systems Engineering & Design (ISED) Laboratory (2020) – current leader Ubiquitous and Pervasive Technologies Laboratory, University of Udine (2005)
Stefana Parascho serves as Tenure Track Assistant Professor at the Swiss Federal Institute of Technology in Lausanne (EPFL) within the School of Architecture, Civil and Environmental Engineering (ENAC), specifically in the Institute of Architecture (IA). She leads the Laboratory for Creative Computation (CRCL) and concurrently heads the Diversity Office at ENAC, demonstrating dual commitments to technological innovation and institutional equity. Her research pioneers intersections of digital fabrication, robotics, and sustainable architecture, with particular focus on transforming construction waste into valuable resources. Through computational design and robotic assembly, she develops novel methodologies for upcycling concrete rubble and timber into structurally sound building components, directly addressing circular economy challenges in construction. Her work bridges theoretical frameworks with physical prototyping, emphasizing human-robot collaboration and material reintegration. Analysis of her recent publications reveals a cohesive trajectory toward waste valorization through digital processes, with concrete rubble masonry and timber reuse forming the core technical pillars. These investigations consistently integrate robotic fabrication, structural validation, and circular design principles across 15+ publications since 2023, establishing new paradigms for resource-efficient construction. As an academic advisor, she supervises four PhD candidates (Grangeot Maxence, Skevaki Eleni Maria, Vallat Gabriel Rémi, Wang Jingwen) while contributing to architectural education through courses like "Digital design and making: A critical introduction" that merge technical skill development with theoretical critique. Her leadership extends to the ENAC Teaching Committee and institutional diversity initiatives, reflecting comprehensive engagement with academic community development. Her operational base at CRCL (https://crcl.epfl.ch) provides the technical infrastructure for robotic experimentation, while her Diversity Office role (https://www.epfl.ch/schools/enac/about/diversity-office/) demonstrates parallel commitment to inclusive academic environments. This dual focus positions her at the forefront of both technological innovation and cultural transformation within architectural academia.
Dr. Clotaire Michel serves as a Lecturer in Risk Assessment and Risk Management at ZHAW School of Engineering, where he also holds roles as Deputy Programme Director for MAS/DAS/CAS Integrated Risk Management (IRM), Module Manager for Risk Management (Bachelor), and Coordinator for the CAS Risk Assessment program. His academic work spans Technology Assessment in the Master Circular Economy Management program and MSE module coordination. His educational background includes a PhD in Earth Sciences from Université Grenoble Alpes (2004-2007), an Ingénieur Civil des Mines (Engineering Geology) from Ecole Nationale Supérieure des Mines de Nancy (2001-2004), and a Master in Earth Sciences from Université Grenoble Alpes (2003-2004). Continuing education includes CAS Earthquake Engineering (HSLU, 2023) and Habilitation à diriger les recherches (Université Grenoble Alpes, 2017). Michel's research focuses on interdisciplinary risk management, integrating seismic risk assessment, technology evaluation, and climate resilience. His work bridges engineering geology with practical safety applications, particularly in structural safety, fire protection systems, and earthquake engineering. Current projects address circular economy risk frameworks and regulatory compliance in European safety standards. His 15 most recent publications (2020-2025) reveal evolving expertise from traditional seismic site characterization toward broader risk domains including climate adaptation and fire safety. Key trends include methodological advances in ambient vibration analysis for structural monitoring and practical applications of risk assessment frameworks in European regulatory contexts. Professional networks include Verein Risiko und Sicherheit, Netzwerk Risikomanagement, Institut pour la maîtrise des risques (ImdR), Association Française du génie ParaSismique (AFPS), and Schweizer Gesellschaft für Erdbebeningenieurwesen und Baudynamik (SGEB). His industry role as Project Manager/Section Leader at Risk&Safety AG complements his academic work in hazard and risk analysis. As Deputy Programme Director for IRM, Michel oversees curriculum development and program coordination for professional risk management education. His research group within ZHAW's Technology Assessment focus conducts field studies on structural safety systems and develops risk assessment protocols adopted by Swiss safety agencies.
Gene Zak serves as Associate Professor in the Department of Mechanical and Materials Engineering within Queen's University's Faculty of Engineering and Applied Science. His research centers on advanced laser manufacturing processes, with specialization in polymer joining and ceramics machining. Current facilities include the Laser Ceramic Processing Laboratory and Rapid Laminated Tooling Laboratory. Dr. Zak's research focuses on laser transmission welding of thermoplastics , examining light-material interactions, thermal dynamics, and weld integrity. Key areas include optical property characterization of polymers (glass fiber effects, crystallinity, carbon black), process parameter optimization (scan paths, intensity distribution), and defect analysis (read-through, degradation). His work extends to laser ceramics machining for precision applications and historical contributions in robotic systems. Analysis of his 15 most recent publications (2011-2022) reveals consistent advancement in computational modeling of laser-polymer interactions, with increasing emphasis on multi-physics simulations and defect prediction. The research trajectory shows evolution from experimental parameter studies toward sophisticated thermal-optical modeling for industrial process control. Dr. Zak directs the Laser Ceramic Processing Laboratory housing a three-source system (UV 7-W, Nd:YAG 100W, CO2 250W lasers) with 6-axis motion control, operational 2004-2015. His Rapid Laminated Tooling Laboratory supports layered manufacturing research, including embedded sensor development and composite fabrication techniques.
Subhradeep Chatterjee is an Associate Professor at the Department of Materials Science and Metallurgical Engineering at Indian Institute of Technology Hyderabad . He holds a PhD in Materials Engineering from IISc Bangalore and has previously worked at Larsen & Toubro Ltd. R&D and the Zernike Institute for Advanced Materials in the Netherlands. His research focuses on phase transformations, microstructural evolution in metallic alloys, and computational modelling of welding/additive manufacturing processes. Education : PhD (IISc Bangalore), ME (Metallurgy, IISc Bangalore), BE (Metallurgical Engineering, R.E. College Durgapur) His research interests span phase transformations during materials processing, microstructural characterization using electron microscopy and X-ray diffraction , and computational models like phase-field and finite element methods . Recent work includes phase separation in thin films, welding of superalloys, and additive manufacturing of high entropy alloys (HEAs). Collaborations involve colleagues at IIT Hyderabad (Prof. Rajesh, Suryakumar) and Dr. Dheepa Srinivasan from Pratt & Whitney. Key publication trends include studies on spinodal decomposition in Ag-Cu thin films, welding process optimization for superalloys, and microstructure-property correlations in HEAs and metallic nanoparticles. His group integrates experimental and computational approaches to link thermodynamics, kinetics, and material performance. Current and past students include Athira K.S. (PhD on superalloy welding), Vivek Chaitanya Peddiraju (Ag-Cu thin films), Pankaj Bandaru (phase-field models for nanoparticles), and Upender Sunkari (HEAs with niobium alloying). MTech scholars like Lakhvinder Khairwal (Haynes 282 welding) and Indu Kolapalli (AM of XH67 superalloy) have also contributed to his research program.
Professor Aydin Nassehi is Head of the School of Electrical, Electronic and Mechanical Engineering at the University of Bristol, UK. He holds the academic rank of Professor of Production Systems and actively contributes to research in smart manufacturing, agent-based modeling, and digital twins. Research interests include AI integration in manufacturing, generative design, and systems optimization. He has collaborated extensively with Dr. Ben Hicks on projects like ProtoTwinning and Designing the Future , focusing on digital twin applications and transdisciplinary engineering. His scholarly output spans over 150 publications, with recent work emphasizing explainable AI, sustainability in food supply chains, and biomedical manufacturing innovations. Publications demonstrate expertise in machine learning, digital twin cost modeling, and additive manufacturing optimization. His projects have received funding from EPSRC and other academic institutions. Current research explores Industry 5.0 challenges, balancing automation with human-centric approaches, and advancing interoperability in cloud manufacturing environments.
Devid Maniglio is an Associate Professor at the Department of Industrial Engineering, University of Trento. His research focuses on bioengineering, biomaterials, and tissue engineering, with a particular emphasis on bioprinting, surface modification, and functional materials. He has contributed to advancements in silk fibroin and hydrogel-based systems for medical applications. Research Interests Bioengineering for personalized medicine Biomaterials and surface engineering 3D bioprinting and tissue regeneration Molecular imprinting and biosensors Drug delivery and cell encapsulation Teaching Diagnostic and therapeutic technologies for personalized medicine Engineered materials for precision medicine Fundamentals of biomedical technologies Functional surfaces laboratory Labs & Collaborations Devid Maniglio is affiliated with the Functional Surfaces Laboratory at the University of Trento, collaborating with researchers such as Stefano Rossi and Flavio Deflorian. His work integrates interdisciplinary approaches in biomedical engineering and sustainable medical technologies.