Maryam Nasim | Structural Health Monitoring | Innovator of the Year in Civil Engineering Award

Dr. Maryam Nasim | Structural Health Monitoring | Innovator of the Year in Civil Engineering Award

Research Fellow | University of Melbourne | Australia

Dr. Maryam Nasim is a researcher at the University of Melbourne, Australia, specializing in structural engineering, thermo-mechanical analysis, and data-driven modeling techniques. She has authored 6 scholarly publications, receiving 45 citations with an h-index of 3, reflecting a growing research impact. Her work integrates finite element methods with machine learning approaches, such as XGBoost, to predict structural behavior under complex loading conditions. She actively collaborates with international researchers, contributing to interdisciplinary advancements. Her research supports the development of safer and more efficient structural systems, addressing real-world engineering challenges related to performance, reliability, and resilience under thermal and mechanical stresses.

Citation Metrics (Scopus)
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6

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3

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Featured Publications


An investigation of water-flow pressure distribution on bridge piers under flood loading

– Structure and Infrastructure Engineering, 2019 | Citations: 39

Damage estimation of a concrete pier when exposed to extreme flood and debris loading

– Journal of Marine Science and Engineering, 2022 | Citations: 10

A demonstration of a digital twin framework for structural health monitoring: Application to bridge infrastructures

– Journal of Infrastructure Intelligence and Resilience, 2025 | Citations: 3

Renyu Wang | Transportation Engineering | Research Excellence Award

Ms. Renyu Wang | Transportation Engineering | Research Excellence Award

Beijing Jiaotong University | China

Ms. Wang Renyu is a researcher at Beijing Jiaotong University, Beijing, China, specializing in electrical power systems, intelligent monitoring, and data-driven modeling for railway and traction applications. His research focuses on online adaptive evolution algorithms, multi-scale periodic update strategies, and temperature estimation models for traction transformers, addressing critical challenges in equipment safety and operational reliability. He has authored 10 scholarly publications indexed in Scopus, with 43 citations and an h-index of 4, reflecting growing academic impact. Wang has collaborated with 14 co-authors, indicating active engagement in team-based and interdisciplinary research. His recent open-access article in the International Journal of Electrical Power and Energy Systems highlights his contribution to adaptive, real-time estimation methods relevant to smart railways and modern power infrastructures. Through applied research aligned with intelligent transportation systems, his work supports predictive maintenance, energy efficiency, and the safe operation of electrified rail networks, contributing to sustainable and resilient transportation development worldwide.

Citation Metrics (Scopus)

43
30
20
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Citations

43

Documents

10

h-index

4

Citations

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Featured Publications

Gholamreza Keyvani Hafshejani | Soil-structure interaction | Best Researcher Award

Gholamreza Keyvani Hafshejani | Soil-structure interaction | Best Researcher Award

Doctoral student | Islamic Azad University | Iran

Gholamreza Keyvani Hafshejani from the Islamic Azad University, Shahrekord Branch, Iran, has focused research on the seismic response of irregular neighboring structures founded at varying embedment depths with an emphasis on soil-structure interaction. His study, published in Structures (2025), explores how differences in foundation embedment and structural irregularities affect seismic performance, a critical issue in earthquake engineering and urban structural design. The research integrates analytical and numerical simulations to assess how differential soil behavior influences dynamic responses, including displacement, inter-story drift, and base shear, under seismic excitation. Keyvani Hafshejani’s work provides valuable insights into the interaction between soil layers and structural foundations, emphasizing the importance of considering soil-structure coupling effects when designing earthquake-resistant buildings. The research outcomes serve as an important reference for engineers and researchers seeking to enhance safety and resilience in infrastructure exposed to seismic hazards. His contributions contribute to the advancement of structural engineering knowledge by offering a framework to improve design codes and develop adaptive mitigation strategies for complex urban environments. This integrated approach ensures optimized seismic performance, minimizing structural vulnerabilities while promoting sustainable urban development.

Profile: Scopus | Google Scholar
Fearuted Publications:
  • Hafshejani, G. K., Dehkordi, P. F., & Ghaderi, R. (2025). Seismic response of neighboring irregular structures seated at different embedment depths considering soil-structure interaction. Structures, 78, 109298.

  • Keyvanihafshejani, G. (2021). Shahrekord earthquake risk assessment by neuro-fuzzy way method using seismic evaluation of structures. Amirkabir Journal of Civil Engineering, 53(1), 297–312.

Faustyn Recha | Civil Engineering | Academic Achievement in Civil Engineering Award

Dr. Faustyn Recha | Civil Engineering | Academic Achievement in Civil Engineering Award

Assistant professor at Academy of Silesia, Poland.

Dr. Faustyn Recha, PhD, C.Eng, is a passionate civil engineering researcher and practitioner from Poland 🇵🇱. With expertise in reinforced concrete durability and structural mechanics 🏗️, he merges academic rigor with practical design. He earned his PhD in Civil Engineering and Transport in 2021, focusing on modeling reinforcement corrosion 🧪. Currently, he serves as an Assistant Professor at the Academy of Silesia, where he teaches and conducts innovative research 👨‍🏫. Dr. Recha is the author of over 200 technical designs and multiple scientific publications 📚. He collaborates internationally with institutions in Germany, Slovakia, China, and the USA 🌍. In addition to research, he is involved in structural inspections, prefabrication innovations, and has developed a patented balcony slab connection system 🔧. His career is a blend of science, teaching, and hands-on engineering — continuously pushing boundaries in civil infrastructure 💡.

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Suitability for Academic Achievement in Civil Engineering Award – Dr. Faustyn Recha

Dr. Faustyn Recha exemplifies what this award represents — exceptional academic performance, original research, and meaningful impact on civil engineering education and practice. He demonstrates consistent scholarly excellence, leadership in academic settings, and contributions that merge scientific advancement with industry relevance. From high-level research to real-world design, his career highlights a dedication to elevating civil engineering standards.

Education 

Dr. Faustyn Recha began his academic journey by graduating with distinction from high school in Psary in 2010 🎓. He earned his B.Eng. (2014) and M.Sc. (2015) in Civil Engineering from the Częstochowa University of Technology 🏫, specializing in Building and Engineering Structures 🏗️. Passionate about deeper inquiry, he pursued a PhD at the Silesian University of Technology, completing it in 2021 🧠. His doctoral thesis focused on modeling the degradation of reinforced concrete due to reinforcement corrosion, combining thermomechanical theory and experimental verification 🔬📐. This solid educational foundation underpins his academic and engineering expertise.

Professional Development 

Dr. Recha’s professional journey began in 2015 in a reinforced concrete design studio 🏢. Alongside his doctoral studies from 2016, he gained hands-on experience in design offices and achieved full construction qualifications in 2018 🔧📐. Since 2021, he has served as an Assistant Professor at the Academy of Silesia, teaching subjects such as concrete structures, mechanics, and corrosion science 👨‍🏫. He has also coordinated the Civil Engineering discipline at the academy since 2022 🏛️. Internationally active, Dr. Recha completed scientific internships in Germany 🇩🇪 and Slovakia 🇸🇰, and maintains collaborations with researchers in China and the USA 🌐. His dual role as an academic and practicing engineer bridges research with real-world construction applications. As a designer, he has authored over 200 construction designs, assessments, and structural analyses 🧱🧮. His contributions reflect a dynamic blend of research, education, and professional engineering excellence 💼📊.

Research Focus Area 

Dr. Faustyn Recha’s research primarily focuses on the durability and degradation of reinforced concrete structures under corrosion effects 🏗️⚙️. His work centers around modeling corrosion-induced damage in reinforced concrete elements, with an emphasis on thermomechanical and electrochemical processes 🔬🧪. He has developed advanced numerical models to predict crack propagation and structural degradation using parameters like corrosion current density and volumetric strain tensors 💡📊. Dr. Recha’s studies also include non-invasive diagnostic methods, aiming to estimate corrosion current based on deflection – a significant step in preventive infrastructure maintenance 🛠️. His research is deeply relevant to sustainable construction, extending the life of concrete structures and reducing repair costs 🔍♻️. With collaborations across Europe and Asia 🌍, he bridges scientific theory with structural safety and real-world application, ensuring his research contributes meaningfully to the field of civil engineering infrastructure and materials science 🧱🌐.

Research Skills 

Dr. Recha brings an impressive array of research skills to the civil engineering domain 📘🧪. He excels in numerical modeling, particularly Finite Element Method (FEM) simulations for analyzing stress, deflection, and crack propagation in reinforced concrete elements 💻🔍. He is skilled in experimental verification, having conducted advanced lab testing to correlate corrosion levels with structural behavior ⚗️📏. His work in thermo-mechanical coupling and electrochemical modeling reflects high proficiency in cross-disciplinary research 🔄🧠. Dr. Recha is also proficient in probabilistic simulation methods such as Monte Carlo analysis for assessing model sensitivity under uncertainty 🎲📈. In addition to technical modeling, he demonstrates strong analytical writing, technical reporting, and journal publication skills 📝📚. His ability to integrate theoretical models with real-world applications — including construction diagnostics and structural design — makes him a rare blend of researcher and practitioner ⚙️🏗️. He also actively contributes to academic peer review and interdisciplinary collaborations 🤝🌍.

Awards & Honors

Dr. Faustyn Recha’s dedication to civil engineering has earned him multiple honors and recognitions 🏆. He received a prestigious Rector’s Scholarship from the Silesian University of Technology for academic excellence 🎓🌟. In 2020, he was awarded second place in the poster session for young scientists at the 66th Conference of the Polish Academy of Sciences 🖼️🥈. His achievements also include top placements in the “Modern Engineer” competition organized by the Silesian Chamber of Construction Engineers, securing 4th and 7th places in 2018 and 2019 respectively 🏗️🎯. His growing reputation as a researcher and educator has led to international internship invitations and reviewer roles in scientific journals 📄🌍. In addition, his patent-pending innovation for prefabricated slab connections underlines his contribution to practical engineering and technological advancement ⚙️📑. These awards reflect his consistent pursuit of excellence in both academic and industrial domains.

Publication Top Notes

1. A Cracking Model for Reinforced Concrete Cover Taking Account of the Accumulation of Corrosion Products in the ITZ Layer, and Including Computational and Experimental Verification
  • Authors: T. Krykowski, T. Jaśniok, F. Recha, M. Karolak

  • Journal: Materials, 13(23), Article 5375

  • Year: 2020

  • Citations: 16

  • Summary:
    This paper presents a comprehensive model for simulating the cracking of reinforced concrete (RC) covers, with special attention to the interfacial transition zone (ITZ) between the steel and concrete. It accounts for the accumulation of corrosion products, which induces expansive stresses leading to cracking. Both computational simulations and experimental results are provided, confirming the model’s effectiveness in predicting crack initiation and propagation due to rebar corrosion.

2. The Simulation of Corrosion Degradation of Concrete Specimen in Stationary Heat and Moisture Conditions
  • Authors: F. Recha, T. Jaśniok, T. Krykowski

  • Journal: Architecture, Civil Engineering, Environment, 10(4)

  • Year: 2018

  • Citations: 6

  • Summary:
    This study uses numerical simulations to analyze the degradation of concrete due to corrosion under constant thermal and moisture conditions. The results show how environmental stability influences the rate of corrosion and crack formation. The simulation helps in understanding the long-term performance of RC structures exposed to consistent environmental stressors.

3. Estimation Method of Corrosion Current Density of RC Elements
  • Author: F. Recha

  • Journal: Open Engineering, 13(1), Article 20220430

  • Year: 2023

  • Citations: 4

  • Summary:
    The paper introduces a new method to estimate corrosion current density in RC elements. The method is based on measurable physical parameters and provides a practical tool for engineers to assess corrosion levels without invasive testing. It contributes to better monitoring and prediction of RC degradation.

4.Numerical simulation of the load-bearing capacity decrease of reinforced concrete structure due to reinforcement corrosion
  • Authors: F. Recha, T.J. Krykowski, T. Jaśniok

  • Conference: 15th Int. Conf. on New Trends in Statics and Dynamics of Buildings

  • Year: 2017

  • Citations: 4

  • Summary:
    This conference paper details a numerical study of how reinforcement corrosion reduces the load-bearing capacity of RC structures over time. The simulation includes the progressive loss of cross-section and bond strength, providing insight into long-term structural performance and failure risks due to corrosion.

5.Principles for conducting periodic technical inspections of buildings in terms of safety and use
  • Authors: F. Recha, P. Nagel

  • Journal: BUILDER, 295(2), pp. 12–14

  • Year: 2022

  • Citations: 3

  • Summary:
    A practical article outlining procedures and legal requirements for routine inspections of buildings. It emphasizes safety, usability, and the early detection of degradation phenomena such as corrosion. The paper serves as a guideline for engineers and inspectors to ensure compliance and structural integrity.

6. Application of Interval Analysis to Assess Concrete Cover Degradation in Accelerated Corrosion Tests
  • Authors: F. Recha, K. Yurkova, T. Krykowski

  • Journal: Materials

  • Year: 2023

  • Citations: 2

  • Summary:
    This research explores the use of interval analysis to model and evaluate the degradation of concrete covers during accelerated corrosion testing. The interval approach allows for uncertainty in material properties and measurement data, offering a more robust assessment tool for interpreting test results in corrosion studies.

Conclusion

Dr. Faustyn Recha is an ideal recipient of the Academic Achievement in Civil Engineering Award. His blend of rigorous research, innovative thinking, and educational leadership defines him as a transformative figure in modern civil engineering academia. With a PhD that breaks new ground, significant teaching responsibilities, and global collaboration, Dr. Recha not only achieves academic excellence — he inspires it in others. Recognizing his work would honor a career committed to advancing civil engineering knowledge, resilience, and practice.

Weijie Li – Civil Structural Health Monitoring – Best Researcher Award

Weijie Li - Civil Structural Health Monitoring - Best Researcher Award

Dalian University of Technology - China

AUTHOR PROFILE

ORCID
GOOGLE SCHOLAR

WEIJIE LI: LEADING RESEARCHER IN SMART MATERIALS AND STRUCTURAL HEALTH MONITORING 🌐

EDUCATION AND EARLY CAREER 🎓

Dr. Weijie Li earned his Ph.D. in Mechanical Engineering from the University of Houston, USA, graduating in 2017. His academic journey has been marked by a focus on innovative technologies and their applications in civil engineering, particularly in the realms of structural health monitoring and smart materials. Prior to his doctoral studies, he pursued his undergraduate and master's degrees at Dalian University of Technology, China, setting a solid foundation in infrastructure engineering.

PROFESSIONAL EXPERIENCE AND CURRENT ROLE 🏢

Currently serving as an Associate Professor in the School of Civil Engineering at Dalian University of Technology, Dr. Li has been instrumental in advancing research in smart materials and structural health monitoring. Previously, he held a prestigious postdoctoral researcher position at Harbin Institute of Technology Shenzhen Graduate School, contributing significantly to the field from 2018 to 2021.

RESEARCH FOCUS AND CONTRIBUTIONS 🛠️

Dr. Li's research is acclaimed for its pioneering contributions to the development and application of fiber optic sensors, piezoelectric sensors, and electromechanical impedance techniques in monitoring structural integrity. His work includes breakthroughs such as the development of spherical smart aggregates for concrete crack repair monitoring and innovative methods for strain measurement using smartphone-based technologies.

PUBLICATIONS AND ACADEMIC IMPACT 📚

With over 73 publications in esteemed journals like Smart Materials and Structures, Sensors, and Structural Health Monitoring, Dr. Li's research has garnered significant citations and recognition in the academic community. His contributions extend to multiple disciplines, including civil engineering, materials science, and sensor technology, reflecting his interdisciplinary approach and commitment to advancing knowledge in his field.

AWARDS AND RECOGNITIONS 🏆

Dr. Li's expertise and dedication have been recognized through numerous awards and accolades within the academic and research communities. His work has been pivotal in enhancing the understanding and application of smart materials in civil infrastructure, paving the way for safer and more resilient structural designs.

PROFESSIONAL NETWORK AND ENGAGEMENT 🌟

Dr. Weijie Li maintains an active presence in the academic community through memberships in professional societies and collaborations with international research institutions. His leadership in research projects and mentorship of students underscores his commitment to fostering the next generation of scholars and innovators in civil engineering and smart materials.

FUTURE DIRECTIONS AND INNOVATIONS 🚀

Moving forward, Dr. Li continues to explore new frontiers in smart materials and structural health monitoring, aiming to integrate cutting-edge technologies into practical applications that enhance the safety and efficiency of civil infrastructure worldwide. His visionary research promises to shape the future of structural engineering, addressing global challenges through innovative solutions.

NOTABLE PUBLICATION

Authors: Weijie Li, Changhang Xu, Siu Chun Michael Ho, Bo Wang, Gangbing Song
Publication date: 2017/3/22
Journal: Sensors
Publisher: Multidisciplinary Digital Publishing Institute.
Authors: Guangping Li, Mingzhang Luo, Jinping Huang, Weijie Li
Publication date: 2023/3/1
Journal: Mechanical Systems and Signal Processing
Publisher: Academic Press.
Authors: Weijie Li, Tiejun Liu, Huangbin Xiang
Publication date: 2021/9
Journal: Journal of Intelligent Material Systems and Structures
Publisher: SAGE Publications
Authors: Weijie Li, Jianjun Wang, Tiejun Liu, Mingzhang Luo
Publication date: 2020/1/27
Journal: Smart Materials and Structures
Publisher: IOP Publishing