Ghoshna Jyoti | Reaction Kinetics, Optimization | Innovative Research Award

Innovative Research Award

Ghoshna Jyoti
Guru Ghasidas Vishwavidyalaya
Ghoshna Jyoti
Affiliation Guru Ghasidas Vishwavidyalaya
Country India
Scopus ID 55877720500
Documents 19
Citations 420
h-index 9
Subject Area Reaction Kinetics, Optimization
Event International Invention Awards
Google Scholar ZuIG-_AAAAAJ&hl

Ghoshna Jyoti is affiliated with Guru Ghasidas Vishwavidyalaya, India, and has established a recognized research profile in reaction kinetics and optimization studies. The published scholarly contributions demonstrate consistent engagement with kinetic modeling, catalytic processes, mathematical optimization, and analytical investigations relevant to chemical sciences and engineering. The available bibliometric indicators, including publication count, citation performance, and h-index, reflect sustained academic productivity and research visibility within the scientific community.[1]

Abstract

Ghoshna Jyoti has contributed to scientific investigations centered on reaction kinetics, optimization methodologies, and related analytical approaches that support advancements in chemical and engineering research. The research portfolio demonstrates interdisciplinary integration of experimental observations with mathematical modeling to improve process understanding, efficiency, and reliability. Bibliometric indicators suggest sustained scholarly visibility through peer-reviewed publications and citations. These contributions provide valuable knowledge for academic researchers while supporting technological developments in reaction engineering, catalytic studies, and optimization strategies applicable across industrial and environmental systems.[1][2]

Keywords

Reaction Kinetics, Optimization, Chemical Engineering, Catalysis, Mathematical Modeling, Process Engineering, Computational Analysis, Scientific Research, Reaction Mechanisms, Experimental Chemistry.

Introduction

Reaction kinetics and optimization remain important scientific disciplines because they provide quantitative understanding of reaction mechanisms, process efficiency, and resource utilization. Research within these fields contributes to improved industrial processes, environmental sustainability, and advanced material development. Through systematic investigation of reaction behavior and optimization techniques, researchers establish reliable scientific evidence that supports innovation across chemistry and engineering while encouraging interdisciplinary collaboration between experimental and computational sciences.[2]

Research Profile

The available research metrics indicate consistent scholarly activity supported by peer-reviewed publications and measurable citation performance. Academic work focuses on reaction kinetics, optimization techniques, and associated engineering applications that emphasize scientific rigor and methodological reliability. The research demonstrates sustained engagement with analytical investigations that contribute to expanding knowledge within chemical sciences while maintaining visibility through internationally indexed scholarly databases.[1]

Research Contributions

The scholarly contributions emphasize the integration of reaction kinetics with optimization methodologies for analyzing complex chemical systems. Research activities include evaluating reaction mechanisms, improving predictive models, enhancing process performance, and supporting evidence-based scientific decision making. These investigations strengthen theoretical understanding while offering practical relevance for industrial processing, environmental applications, and future multidisciplinary scientific research initiatives.[3]

Publications

Research publications indexed within international databases demonstrate continuing scientific productivity across reaction kinetics and optimization studies. These publications collectively contribute to the dissemination of validated methodologies, experimental findings, and computational analyses that assist researchers working in chemistry, process engineering, and interdisciplinary scientific domains. Citation performance indicates that the published work has attracted scholarly attention within the broader academic community.[1][4]

Research Impact

The research impact is reflected through citation metrics, publication visibility, and continued academic engagement within internationally recognized indexing platforms. Contributions to reaction kinetics and optimization have supported scientific discussion, encouraged methodological refinement, and provided useful references for subsequent investigations. These measurable outcomes demonstrate meaningful influence within relevant research communities while reinforcing continued scholarly development.[1]

Award Suitability

Considering the available publication record, citation performance, h-index, and sustained research activity in reaction kinetics and optimization, Ghoshna Jyoti demonstrates an academic profile aligned with recognition through the International Invention Awards. The documented scholarly achievements, research visibility, and contributions to scientific knowledge illustrate continued commitment to advancing research quality and innovation while supporting broader academic and technological progress.[1][4]

Conclusion

The scholarly profile of Ghoshna Jyoti reflects continued participation in reaction kinetics and optimization research supported by measurable bibliometric indicators and peer-reviewed scientific publications. The integration of analytical methodologies with engineering applications contributes to scientific understanding while promoting future interdisciplinary collaboration. Overall, the available evidence demonstrates a consistent academic record that supports professional recognition within the international research community.[1]

External Links

References

  1. Elsevier. (n.d.). Scopus Author Details: Ghoshna Jyoti, Author ID 55877720500. Scopus.
    https://www.scopus.com/pages/authors/55877720500
  2. International Journal of Chemical Kinetics. (2026.). Carbon-Based Catalysts Synthesized From Bio-Waste for Yielding Butyl Butyrate by Esterification Reaction: Experimental and Kinetic Study.
    https://doi.org/10.1002/kin.70067
  3. Chemical Engineering & Technology. (2019.) .Production and Isolation of n-Butyl Acrylate Using Pervaporation-Aided Esterification Reaction: Kinetics and Optimization:
    https://doi.org/10.1002/ceat.201800397
  4. International Invention Awards.(2026.) Award Information and Recognition Platform.
    https://inventionawards.org/

Sufiyan Ahmad | Engineering | Best Researcher Award

Best Researcher Award

Sufiyan Ahmad
Affiliation National Taiwan University of Science and Technology
Country Taiwan
Scopus ID 59757486700
Documents 4
Citations 9
h-index 1
Subject Area Engineering
Event International Invention Awards
ORCID 0009-0009-1922-8199

Sufiyan Ahmad
National Taiwan University of Science and Technology

SUFIYAN AHMAD is affiliated with the National Taiwan University of Science and Technology, Taiwan, where his research activities contribute to engineering through scholarly publications and interdisciplinary scientific investigations. His documented academic profile demonstrates engagement with internationally indexed research, emphasizing engineering applications, innovation, and knowledge dissemination. The available publication metrics indicate a developing research portfolio supported by recognized scholarly databases and persistent researcher identifiers.[1]

Abstract

Sufiyan Ahmad has established an emerging academic profile in engineering through research activities conducted at the National Taiwan University of Science and Technology. His scholarly publications, indexed in Scopus, demonstrate involvement in engineering research with measurable citation performance and international visibility. The combination of published studies, researcher identifiers, and institutional affiliation reflects active participation in scientific communication and knowledge development. His work contributes to engineering scholarship by supporting innovation, interdisciplinary collaboration, and technical advancement while maintaining research dissemination through recognized academic platforms and persistent scholarly documentation.[1]

Keywords

Engineering, Research, Innovation, Scopus, Scientific Publications, International Collaboration, Technology, Academic Excellence.

Introduction

Engineering research plays a significant role in advancing technology, improving industrial processes, and addressing contemporary scientific challenges. Researchers contribute to this progress through peer-reviewed publications, collaborative investigations, and the dissemination of reliable knowledge. The academic activities of Sufiyan Ahmad illustrate participation in this research environment while supporting engineering development through internationally indexed scholarly outputs.[2]

Research Profile

The research profile of Sufiyan Ahmad is characterized by engineering publications indexed within recognized scholarly databases, accompanied by persistent digital researcher identifiers including Scopus, ORCID, and Google Scholar. These resources provide transparent documentation of publication history, citation metrics, and institutional affiliation, supporting visibility and accessibility within the international academic community.[1]

Research Contributions

The published research contributions of Sufiyan Ahmad demonstrate engagement with engineering topics that promote scientific understanding and technological advancement. Through peer-reviewed publications, the research reflects analytical investigation, methodological application, and collaboration that collectively enhance knowledge dissemination while contributing to engineering literature and encouraging future academic exploration.[3]

Publications

Three peer-reviewed engineering publications indexed in Scopus demonstrate ongoing scholarly productivity and international academic visibility.[1]

Research Impact

Current citation indicators, publication records, and internationally accessible researcher profiles demonstrate measurable academic visibility. Although the publication portfolio is developing, the documented citations indicate that the research has attracted scholarly attention and contributes to continuing scientific dialogue within engineering. Such measurable outputs provide evidence of research dissemination and future growth potential.[4]

Award Suitability

The documented academic record of sufiyan ahmad aligns with the objectives of the International Invention Awards by demonstrating recognized scholarly publications, institutional research engagement, and participation in engineering innovation. The combination of indexed publications, citation performance, and internationally verifiable researcher profiles supports consideration for academic recognition based upon measurable scholarly achievements and continued research development.[4]

Conclusion

SUFIYAN AHMAD maintains an emerging engineering research profile supported by internationally indexed publications, citation records, and recognized academic identifiers. His scholarly activities reflect ongoing contributions to engineering research and scientific communication. Continued publication, collaboration, and academic engagement are expected to strengthen the overall research profile while supporting future scientific innovation and professional recognition.[1]

External Links

References

  1. Elsevier. (n.d.). Scopus Author Details:Sufiyan Ahmad, Author ID 59757486700.scopus.
    https://www.scopus.com/authid/detail.uri?authorId=59757486700
  2. ORCID. (n.d.). ORCID Record: Sufiyan Ahmad.
    https://orcid.org/0009-0009-1922-8199
  3. Computers and Geotechnics.(2026). A Fractional-Calculus Unified Framework for Manhole Shaft Uplift Analysis: Predicting Velocity and Displacement via Thermodynamic Phase-Field Theory of Liquefaction (FC-ULSM).
    https://doi.org/10.1016/j.matpr.2023.01.001
  4. Google Scholar. (n.d.). Scholar Citations: SUFIYAN AHMAD.
    https://scholar.google.com/citations?user=h_rcQVIAAAAJ&hl=zh-TW
  5. International Invention Awards. (n.d.). Official Award Website.
    https://inventionawards.org/

Shahana Guliyeva | Chemistry | Best Research Article Award

Best Research Article Award

Shahana Guliyeva
Azerbaijan Medical University, Azerbaijan

Shahana Guliyeva
Affiliation Azerbaijan Medical University
Country Azerbaijan
Google Scholar ID dalqX6oAAAAJ
Documents 10
Citations 1
h-index 1
Subject Area Chemistry
Event International Invention Awards
ORCID 0009-0006-7949-063X

The Best Research Article Award recognizes scholarly contributions that demonstrate originality, methodological rigor, and relevance to advancing scientific knowledge. Shahana Guliyeva of Azerbaijan Medical University has contributed to the field of chemistry through investigations involving maleimide-based copolymers, composite materials, polymer synthesis, and heat-resistant formulations. Her published studies explore structure–property relationships in advanced polymer systems and provide insights into materials intended for industrial and scientific applications.[1]

Abstract

This article presents an academic overview of the research activities of Shahana Guliyeva, emphasizing contributions to polymer chemistry and composite material development. Her work focuses on synthesizing novel copolymer systems, evaluating thermal and mechanical characteristics, and investigating functional properties relevant to modern material science. These studies contribute to ongoing efforts to develop durable, heat-resistant, and application-oriented polymeric materials.[2]

Keywords

Polymer Chemistry, Composite Materials, Maleimide Copolymers, Styrene Copolymerization, Heat Resistance, Material Science, Functional Polymers.

Introduction

Research in advanced polymers plays an important role in addressing engineering and industrial requirements for materials with enhanced performance. Investigations into copolymer structures, thermal stability, and composite behavior remain central to the development of innovative materials. Within this context, Guliyeva’s research examines the synthesis and characterization of functional polymer systems designed to improve performance under demanding conditions.[3]

Research Profile

Affiliated with Azerbaijan Medical University, Shahana Guliyeva has developed a research portfolio centered on polymer synthesis, copolymerization reactions, and composite material technologies. Her scholarly output includes studies published in international journals addressing structural chemistry, material properties, and practical applications of polymer-based systems.[4]

Research Contributions

  • Investigation of ortho-, meta-, and para-carboxyphenylmaleimide–styrene copolymers.
  • Development and characterization of composite materials based on ABS and carboxyphenylmaleimide derivatives.
  • Evaluation of antimicrobial properties associated with copolymerized materials.
  • Research on heat- and fire-resistant compositions utilizing epoxy resin systems.

Publications

  • Synthesis and Comparative Investigation of Ortho-, Meta-, and Para-Carboxyphenylmaleimide–Styrene Copolymers (Polymers, 2026).
  • Obtaining and Studying the Properties of Composite Materials from ortho-, meta-, para-Carboxyphenylmaleimide and ABS (Molecules, 2026).
  • Synthesis of Copolymerization of Meta-Carboxphenylmaleinimide with Styrene and Study of Antimicrobial Properties (2024).
  • Heat- and Fire-Resistant Composition Based on Bisimidomalein and Epoxy Resin ED-20.

Research Impact

The research demonstrates interdisciplinary relevance by connecting synthetic chemistry with material engineering. Through the examination of copolymer structures and composite formulations, the studies contribute data that may support future developments in durable polymers, specialty coatings, and thermally resistant materials. The publication record reflects a consistent focus on scientifically measurable material performance characteristics.[5]

Award Suitability

The Best Research Article Award evaluates originality, scientific quality, and contribution to the advancement of knowledge. Guliyeva’s body of work demonstrates systematic investigation of polymeric materials, publication in peer-reviewed journals, and attention to practical material properties. These characteristics align with the objectives commonly associated with recognition of high-quality research articles within scientific communities.[6]

Conclusion

Shahana Guliyeva’s research portfolio highlights continued engagement with polymer chemistry and advanced composite materials. Her publications provide analytical and experimental perspectives on copolymer synthesis, material characterization, and thermal performance. Collectively, these contributions support her recognition within the framework of the International Invention Awards and the Best Research Article Award category.

References

  1. Elsevier. (n.d.). Author profile and publication overview for Shahana Guliyeva.
    https://scholar.google.com/citations?user=dalqX6oAAAAJ&hl=en
  2. Guliyeva, S. (2026). Synthesis and Comparative Investigation of Ortho-, Meta-, and Para-Carboxyphenylmaleimide–Styrene Copolymers. Polymers.
    https://doi.org/10.3390/polym18121507
  3. Guliyeva, S. (2026). Obtaining and Studying the Properties of Composite Materials from ortho-, meta-, para-Carboxyphenylmaleimide and ABS. Molecules.
    https://doi.org/10.3390/molecules31010190
  4. Guliyeva, S. (2024). Synthesis of Copolymerization of Meta-Carboxphenylmaleinimide with Styrene and Study of Antimicrobial Properties.
    https://doi.org/10.62972/1726-4685.2024.1.153
  5. Research article on heat- and fire-resistant polymer compositions based on epoxy resin systems and maleimide derivatives.
  6. International Invention Awards. Award program and evaluation framework.
    inventionawards.org

Leire Olazar | Chemical Engineering | Research Excellence Award

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Abderrahim Dinane | Chemical Engineering | Best Researcher Award

Prof. Dr. Abderrahim Dinane | Chemical Engineering | Best Researcher Award

Laboratory of thermodynamics and energy, Center for energy research | Morocco

Prof. Dr. Abderrahim Dinane is a distinguished Moroccan physicist and thermodynamics expert, currently serving at the Faculty of Sciences Ben M’Sik, Hassan II University, Casablanca. He holds a State Doctorate in Physical Sciences (2000) and a Ph.D. in Thermodynamics (1986) from the Faculty of Sciences, Rabat, in collaboration with the University of Marseille, France. Over his prolific academic career, he has played a pivotal role in developing Morocco’s thermodynamics and energy research ecosystem, establishing multiple laboratories including the Thermodynamics Research Laboratory at FSBM and the Laboratory on Thermodynamics of Aqueous Electrolyte Mixtures at the Faculty of Sciences, Rabat. His scientific work focuses on the thermodynamic properties of aqueous electrolyte mixtures, with applications in phosphate fertilizers, environmental systems, cloud and aerosol physics, and process engineering. Prof. Dinane has authored and co-authored more than 60 peer-reviewed articles in top-tier international journals such as Fluid Phase Equilibria, Journal of Chemical Thermodynamics, Journal of Solution Chemistry, Industrial & Engineering Chemistry Research, and Journal of Chemical and Engineering Data. He has reviewed over 100 scientific papers for major international journals and supervised more than 20 Ph.D. theses in fields spanning chemical thermodynamics, physical chemistry, materials science, and renewable energy. His innovative hygrometric method for determining thermodynamic properties of aqueous electrolytes has been widely recognized for its precision and applicability in environmental and industrial processes. As a member of the American Chemical Society (ACS), he actively contributes to international collaborations and has served as a reviewer, conference organizer, and committee member in numerous scientific events worldwide. His leadership roles include heading the Projects and Research Department at ERN and coordinating thermal engineering programs, along with significant contributions to national engineering entrance examinations and faculty recruitment. Prof. Dinane’s contributions have earned him multiple certificates of recognition from international publishers and ranking honors, notably 6th among all researchers at Hassan II University and 26th nationwide across Moroccan universities, according to the COMSTECH (OIC) 2024 ranking. With an h-index of 15 and more than 900 citations, his research continues to influence the global scientific community in thermodynamics, energy systems, and environmental applications.

Profiles:Β Β ScopusΒ |Β Orcid

Featured Publications

El Fadel, W., El Hantati, S., Nour, Z., Dinane, A., Messnaoui, B., Mounir, A., Samaouali, A., & Arbaoui, A. (2025). Experimental and modeling study of the thermodynamic behavior and solubility of the NHβ‚„NO₃–D-sucrose–water ternary system at 298.15 K. Processes, 13(11), 3438.

El Fadel, W., El Hantati, S., Nour, Z., Dinane, A., Messnaoui, B., Mounir, A., Samaouali, A., & Arbaoui, A. (2025). New thermodynamic data for NHβ‚„NO₃–sucrose–water ternary system: Water activity, osmotic coefficient, activity coefficient, excess Gibbs energy, solubility and transfer Gibbs energy at 298.15 K. Preprints, 2025081914.

El Hantati, S., Nour, Z., El Fadel, W., Dinane, A., Messnaoui, B., Samaouali, A., & Arbaoui, A. (2024). Thermodynamic properties of the mixture of potassium phosphate fertilizer with KCl: Water activity, osmotic and activity coefficients, excess energy, and solubility of KHβ‚‚PO₄–KCl–Hβ‚‚O at 298.15 K. Journal of Chemical & Engineering Data, 69(11), 3956–3968.

Nour, Z., Mounir, A., El Fadel, W., El Hantati, S., Dinane, A., Samaouali, A., & Messnaoui, B. (2024). Thermodynamic properties of NaCl–HCl(aq) and HCl–NaCl–KCl(aq) at a temperature of 298.15 K. Journal of Chemical & Engineering Data, 69(7), 2810–2820.

El Hantati, S., El Fadel, W., Nour, Z., Dinane, A., Messnaoui, B., & Samaouali, A. (2023). Thermodynamic properties data of ternary system KBr–KHβ‚‚PO₄–Hβ‚‚O at 298.15 K. Journal of Chemical & Engineering Data, 68(11), 4470–4478.

El Hantati, S., Nour, Z., El Fadel, W., Samaouali, A., Dinane, A., & Messnaoui, B. (2023). Thermodynamics of Kβ‚‚HPOβ‚„/D-sucrose/water system at 298.15 K: Experiment and modeling. Journal of Chemical & Engineering Data, 68(11), 4490–4499.

El Fadel, W., El Hantati, S., Nour, Z., Dinane, A., Samaouali, A., & Messnaoui, B. (2023). Experimental determination of osmotic coefficient and salt solubility of system NHβ‚„NO₃–NHβ‚„Hβ‚‚PO₄–Hβ‚‚O and their correlation and prediction with the Pitzer–Simonson–Clegg model. Industrial & Engineering Chemistry Research, 62(44), 17023–17034.

Dinesh Babu M | Engineering | Best Researcher Award

Dr. Dinesh Babu M | Engineering | Best Researcher Award

Rajalakshmi Institute of technology | IndiaΒ 

Dr. M. Dinesh Babu, B.E., M.Tech., Ph.D., is a distinguished academic and researcher recognized among the Top 2% Scientists Worldwide in the subfield of Energy for the year 2023 by Elsevier and Stanford University. He holds a Ph.D. in Energy Systems Engineering from the College of Engineering, Anna University, Chennai, where his doctoral research focused on β€œStudies on the Effect of Internal Longitudinal Fins and Nanoparticles on the Performance of Solar Flat Plate Collectors.” He also holds an M.Tech. in Energy Systems Engineering from Vellore Institute of Technology (VIT), Vellore, and a B.E. in Mechanical Engineering from Sriram Engineering College, University of Madras, both with First Class distinction. With over 21 years of teaching and research experience, Dr. Dinesh Babu has served in reputed institutions such as Dr. M.G.R. University, Sathyabama University, R.M.K. Engineering College, Panimalar Engineering College, and currently, as a Professor at Rajalakshmi Institute of Technology, Chennai. His academic contributions encompass teaching core subjects like Heat and Mass Transfer, Thermodynamics, Thermal Engineering, Power Plant Engineering, Machine Design, Manufacturing Technology, Environmental Science, and Entrepreneurship Development. Dr. Babu has an outstanding research profile with 93 publications in Scopus, SCI, and Web of Science-indexed journals, achieving a cumulative impact factor of 302.54. His research has garnered over 3,500 citations on Google Scholar (h-index: 32, i10-index: 52), 3,177 citations on Scopus (h-index: 31), and 2,978 citations with 15,220 reads on ResearchGate. He has also published two patents and has four ongoing research papers under review. He currently supervises four Ph.D. research scholars registered under Anna University (Supervisor ID: 3120042). His research interests include renewable energy systems, solar thermal engineering, nanofluids, biofuels, combustion and emission analysis, and sustainable manufacturing. Dr. Babu has designed innovative projects such as a 50 LPD copper solar water heater with a ladder-type heat exchanger and has secured funding through initiatives like the RIT-FIT Seed Money Fund and a SERB project proposal worth β‚Ή16.1 lakhs. An active academic contributor, Dr. Babu serves as a Doctoral Committee Member at Vel Tech Rangarajan Dr. Sagunthala R&D Institute of Science and Technology, Chennai, and frequently participates as a resource person and reviewer for journals and research programs. He has completed multiple Elsevier Research Academy certifications on topics such as producing highly visible research, academia–industry collaboration, journal impact metrics, and open hardware innovation. Dr. M. Dinesh Babu’s exemplary academic dedication, prolific research output, and consistent pursuit of innovation in the field of energy systems engineering have earned him a reputation as one of India’s leading scholars in sustainable and renewable energy technologies.

Profiles: Scopus | Orcid | Google Scholar

Featured Publications

Yuvarajan, D., Babu, M. D., Beem Kumar, N., & Kishore, P. A. (2018). Experimental investigation on the influence of titanium dioxide nanofluid on emission pattern of biodiesel in a diesel engine. Atmospheric Pollution Research, 9(1), 47–52.

Radhakrishnan, S., Munuswamy, D. B., Devarajan, Y., T., A., & Mahalingam, A. (2018). Effect of nanoparticle on emission and performance characteristics of a diesel engine fueled with cashew nut shell biodiesel. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects, 40, 1–10.

Sathiyamoorthi, R., Sankaranarayanan, G., Munuswamy, D. B., & Devarajan, Y. (2021). Experimental study of spray analysis for Palmarosa biodiesel‐diesel blends in a constant volume chamber. Environmental Progress & Sustainable Energy, 40(6), e13696.

Devarajan, Y., Munuswamy, D. B., & Mahalingam, A. (2018). Influence of nano-additive on performance and emission characteristics of a diesel engine running on neat neem oil biodiesel. Environmental Science and Pollution Research, 25(26), 26167–26172.

Devarajan, Y., Munuswamy, D. B., Nagappan, B., & Pandian, A. K. (2018). Performance, combustion and emission analysis of mustard oil biodiesel and octanol blends in diesel engine. Heat and Mass Transfer, 54(6), 1803–1811.

Devarajan, Y., Munuswamy, D. B., & Mahalingam, A. (2019). Investigation on behavior of diesel engine performance, emission, and combustion characteristics using nano-additive in neat biodiesel. Heat and Mass Transfer, 55(6), 1641–1650.

Pandian, A. K., Munuswamy, D. B., Radhakrishnan, S., & Devarajan, Y. (2018). Emission and performance analysis of a diesel engine burning cashew nut shell oil biodiesel mixed with hexanol. Petroleum Science, 15(1), 176–184.

Devarajan, Y., Mahalingam, A., Munuswamy, D. B., & Arunkumar, T. (2018). Combustion, performance, and emission study of a research diesel engine fueled with palm oil biodiesel and its additive. Energy & Fuels, 32(8), 8447–8452.

Kicheol Lee | Engineering | Best Researcher Award

Dr. Kicheol Lee | Engineering | Best Researcher Award

Dr. Kicheol Lee | Halla University/RISE Project Group | South Korea

Dr. Kicheol Lee is a research professor specializing in civil and structural engineering, with a strong record in foundation engineering, numerical modelling, and new technology development. His work spans artificial intelligence (machine learning, deep learning), probabilistic and statistical methods, field applications in geotechnical/tunnel/foundation engineering, and reliability-based design (LRFD). He has been recognized with multiple best paper and presentation awards from the Korea Geosynthetics Society and the Korea Geotechnical Society. His expertise in numerical simulation (particularly via ABAQUS), and integration of AI/ML with civil engineering systems, has made him a leading figure in predictive modeling, anomaly detection, and structural reliability. Dr. Lee’s contribution lies in bridging advanced computational methods with practical engineering challenges, especially in ensuring safety, resilience, and sustainability of infrastructure. Dr. Lee’s current research is deeply interdisciplinary, merging geotechnical engineering, structural health monitoring, and intelligent systems to create safer, data-driven infrastructure solutions.His ongoing work under the Gangwon RISE Project aims to transform urban safety and sustainability by employing augmented and virtual reality technologies for real-time disaster visualization and early warning.

Author’s Profile

Scopus |Β Orcid

Early Academic Pursuits

Dr. Kicheol Lee began his academic journey in Civil and Environmental Engineering at Incheon National University, where he earned his Bachelor’s degree (2015), Master’s degree (2017), and Doctorate (Ph.D., 2021). His early research concentrated on geotechnical and foundation engineering, particularly the mechanical behavior of pile groups and the evaluation of soil–structure interactions through numerical and experimental methods. His doctoral dissertation, β€œEvaluation of Resistance Factors of Pile Groups Consisting of Drilled Shafts Embedded in Sandy Ground under Axial Load through Numerical Analysis,” established his expertise in reliability-based foundation design (LRFD) and computational modeling using ABAQUS, laying the groundwork for his later innovations in smart infrastructure systems.

Professional Endeavors

Dr. Lee’s professional career seamlessly bridges academia, industry, and national research initiatives, reflecting his commitment to advancing digitally enhanced civil infrastructure technologies. He currently serves as a Research Professor at Halla University under the RISE Project Group (since September 2025), where he leads the Gangwon RISE Project focused on developing advanced safety and green city technologies through the integration of Digital Twin and 3D data. Prior to this role, he was a Principal Researcher at the Korea Institute of Structural Integrity Research (2024–2025), where he led national R&D projects centered on innovative construction technologies and safety inspection systems. From 2021 to 2024, he served as Research Director at UCI Tech Co., Ltd., managing government-funded initiatives that merged IoT and augmented reality (AR) technologies for infrastructure maintenance and smart monitoring applications. Across these roles, Dr. Lee has demonstrated a clear progression from applied geotechnical engineering toward the fusion of engineering mechanics, intelligent systems, and data science to create more resilient, sustainable, and intelligent civil infrastructure.

Contributions and Research Focus

Dr. Lee’s interdisciplinary research bridges geotechnical engineering with artificial intelligence, probability, and information technologies to develop data-driven and intelligent systems for the monitoring, design, and maintenance of civil infrastructures. His expertise spans artificial intelligenceβ€”particularly the application of convolutional and recurrent neural networks (CNNs and RNNs) for anomaly detection, predictive modeling, and data-driven decision-making in structural health monitoringβ€”as well as foundation and tunnel engineering, focusing on advanced modeling and soil–structure interaction analysis. He is also skilled in numerical analysis using ABAQUS to simulate complex geotechnical phenomena and evaluate soil–structure responses. In addition, Dr. Lee integrates reliability and probabilistic design principles through statistical modeling, Monte Carlo simulations, and Bayesian inference within LRFD-based design frameworks. His innovative contributions extend to smart infrastructure and safety systems, including the development of AI-enabled inspection robots, reversible thermochromic materials for black-ice prevention, and UAV-based soil monitoring systems utilizing hyperspectral imaging. He has led or contributed to 11 major national R&D projects funded by various Korean ministriesβ€”including those of Education, Environment, Land, Transport, Industry, and SMEs & Startupsβ€”addressing challenges in smart cities, environmental protection, and disaster prevention, all aimed at advancing sustainable and resilient civil infrastructure.

Impact and Influence

Dr. Lee’s scholarly influence is reflected in his prolific publication record, with over 50 peer-reviewed journal papersβ€”15 indexed in SCI/SCI(E), 34 in Korean journals, and 2 in Scopus. His research has appeared in leading international journals such as Applied Sciences, Sustainability, Remote Sensing, Polymers, and Tunnelling and Underground Space Technology. His academic excellence has been recognized through several prestigious awards, including the Best Paper Presentation Awards from the Korea Geosynthetics Society and the Korea Geotechnical Society in 2020, and the Best Paper Award from the Korea Geosynthetics Society in 2019. Complementing his scholarly achievements, Dr. Lee holds 15 registered patents in the Republic of Korea, showcasing his technological innovation in civil engineering through the development of smart barriers, reversible paints for road safety, and advanced pile systems. Beyond research, he actively contributes to the professional community as an Editorial Board Member of the Korea Geosynthetics Society (2024–Present), and as Assistant Administrator of both the Low-Carbon Construction Committee and the Incheon Regional Committee of the Korean Geotechnical Society (since 2023). Through these roles, Dr. Lee fosters academic collaboration, encourages the dissemination of innovation, and advances sustainable engineering practices in the civil infrastructure domain.

Academic Cites

Dr. Lee’s work is frequently cited in research concerning geotechnical reliability, foundation engineering, and smart civil technologies. His papers on hyperspectral soil analysis and negative skin friction in piles have become valuable references in data-integrated geotechnical research. By bridging machine learning with traditional civil engineering models, his methodologies have influenced new approaches to predictive maintenance and risk-based infrastructure management in both academia and industry.

Legacy and Future Contributions

Dr. Kicheol Lee embodies a new generation of civil engineers who seamlessly integrate artificial intelligence, sustainability, and resilience into traditional infrastructure systems. His pioneering work on AI-driven monitoring, Digital Twin simulations, and smart geotechnical materials is reshaping the future of infrastructure safety and environmental protection. Looking ahead, Dr. Lee aspires to expand the application of augmented reality (AR) and digital twin technologies for real-time disaster prediction and response, develop autonomous robotic systems for structural inspection and maintenance, and contribute to global initiatives promoting smart and sustainable urban development in the face of climate change. His long-term vision is centered on building data-informed, intelligent, and resilient civil infrastructure systems that not only enhance public safety and operational efficiency but also minimize environmental impactβ€”paving the way for the realization of next-generation smart and sustainable cities.

Featured Publications

Lee, K. (2024). Verification of construction method for smart liners to prevent oil spill spread in onshore. Sustainability, 16(23), 10626. https://doi.org/10.3390/su162310626

Lee, K. (2023). Proposal of construction method of smart liner to block and detect spreading of soil contaminants by oil spill. International Journal of Environmental Research and Public Health, 20(2), 940. https://doi.org/10.3390/ijerph20020940

Lee, K. (2022). Spectrum index for estimating ground water content using hyperspectral information. Sustainability, 14(21), 14318. https://doi.org/10.3390/su142114318

Lee, K. (2022). Prediction of ground water content using hyperspectral information through laboratory test. Sustainability, 14(17), 10999. https://doi.org/10.3390/su141710999

Lee, K. (2021). Analysis of vertical earth pressure acting on box culverts through centrifuge model test. Applied Sciences, 12(1), 81. https://doi.org/10.3390/app12010081

Lee, K. (2020). Numerical analysis of the contact behavior of a polymer-based waterproof membrane for tunnel lining. Polymers, 12(11), 2704. https://doi.org/10.3390/polym12112704

Lee, K. (2020). Analysis of effects of rock physical properties changes from freeze–thaw weathering in Ny-Γ…lesund region: Part 2β€”Correlations and prediction of weathered properties. Applied Sciences, 10(10), 3392. https://doi.org/10.3390/app10103392

Lee, K. (2020). Analysis of effects of rock physical properties changes from freeze–thaw weathering in Ny-Γ…lesund region: Part 1β€”Experimental study. Applied Sciences, 10(5), 1707. https://doi.org/10.3390/app10051707

Abdul Haseeb | Engineering | Best Researcher Award

Mr. Abdul Haseeb | Engineering | Best Researcher Award

Mr. Abdul Haseeb | University of Engineering and Technology | Pakistan

Mr.Β  Abdul Haseeb is a passionate and dedicated mechanical engineering student at the University of Engineering and Technology, Mardan. He strives to combine theoretical knowledge with practical skills to design innovative mechanical systems. Being fluent in English, Urdu, and Pushto, and with basic proficiency in Russian, Abdul excels in collaborating across diverse environments. His commitment to continuous learning, teamwork, and hands-on engineering makes him a promising young talent in the field. Whether solving complex mechanical problems or experimenting with equipment, Abdul approaches every challenge with enthusiasm and a strong drive for excellence.

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Education

Mr. Abdul is currently pursuing a degree in Mechanical Engineering at the University of Engineering and Technology, Mardan, where he has developed expertise in CAD design and engineering principles. Prior to this, he completed his FSc at Government Post Graduate College, Mardan, where he strengthened his leadership skills as a class representative. His academic foundation began at Army Public School and College, where he actively participated in debates, science fairs, and community-building activities. These experiences have shaped his analytical thinking, problem-solving abilities, and passion for mechanical innovation.

Experience

Although in the early stages of his professional journey, Abdul has built a strong technical foundation through academic projects and personal initiatives. His experience includes working with CAD tools such as SolidWorks and AutoCAD, performing engineering analysis in areas like statics, dynamics, and thermodynamics, and applying programming skills in C language. His growing expertise in simulations and research equips him to handle academic and industry-related challenges effectively. Through consistent learning and practice, Abdul continues to strengthen his practical knowledge and technical confidence, preparing for future engineering opportunities.

Research Interest

Mr. Abdul’s research interests are centered on mechanical systems design, CAD modeling and simulation, and the creation of sustainable and efficient mechanical solutions. He is intrigued by integrating engineering design with computational tools and programming to solve real-world challenges. His curiosity extends to automation and robotics, where he aims to explore advanced simulation and optimization techniques. Abdul aspires to contribute to innovative research that bridges traditional mechanical engineering principles with modern digital advancements, driving progress in the field.

Awards

Mr. Abdul has been recognized for his academic excellence, leadership, and extracurricular engagement throughout his education. At the university, his performance in CAD earned high distinction. In college, he served as a class representative, demonstrating leadership and organizational skills. During his school years, he actively participated in debates, speeches, and science exhibitions, gaining recognition for his innovative thinking and teamwork. These achievements reflect his adaptability, determination, and commitment to continuous personal and academic growth.

PublicationΒ 

Title: Drone Frame Optimization via Simulation and 3D Printing
Authors: Faris Kateb, Abdul Haseeb, Syed Misbah-Un-Noor, Bandar M. Alghamdi, Fazal Qudus Khan, Bilal Khan, Abdul Baseer, Masood Iqbal Marwat, Sadeeq Jan
Journal: Computers – MDPI

Conclusion

Mr. Abdul Haseeb represents the qualities of a dedicated learner and emerging mechanical engineer. With a strong academic foundation, practical technical skills, and a vision for innovative solutions, he is well-prepared to make meaningful contributions to the field. His adaptability, collaborative approach, and passion for continuous growth position him as a future leader in mechanical engineering. As he progresses in his academic and professional journey, Abdul remains committed to using his skills to create impactful engineering solutions that benefit both industry and society.

Assist. Prof. Dr. H A Yousefi | Ammonia Combustion | Best Researcher Award

Assist. Prof. Dr. H A Yousefi | Ammonia Combustion | Best Researcher Award

Kookmin University, South Korea.

Dr. Hossein Ali Yousefi Rizi is an accomplished researcher and academic with over 15 years of experience in mechanical system engineering, occupational and environmental safety, and industrial hygiene. He has contributed significantly to combustion technologies, renewable energy systems, and workplace safety measures. Currently, he is a researcher at Kookmin University in South Korea, with previous academic roles at Hansung University and Isfahan University of Medical Sciences. His work spans teaching, research, reviewing, and editorial responsibilities in prestigious journals.

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πŸŽ“ Education

Dr. H. A. Yousefi earned his Ph.D. in Mechanical System Engineering from Kookmin University, South Korea, in 2024. His doctoral research focused on the stability and safety analysis of pure ammonia flameless combustion for hydrogen production, contributing to advancements in clean energy technologies. He previously obtained his M.Sc. in Occupational Health Engineering from Tarbiat Modares University, Tehran, Iran, in 1996, where he investigated the evaluation of electromagnetic fields at extremely low frequencies (ELF) and their health effects on high-voltage substation workers. His academic journey began with a B.Sc. in Physics from Isfahan University, Iran, in 1991, providing him with a strong foundation in physical sciences and engineering principles.

πŸ› Experience

Dr. H. A. Yousefi is a researcher at the Department of Mechanical Engineering, New Energy Lab, Kookmin University (2022-2025), where he focuses on advancing sustainable energy solutions. He has extensive academic experience, having served as an Assistant Professor at the Department of Mechanical System Engineering, Hansung University, and previously at the Department of Occupational Safety and Health Engineering, Isfahan University of Medical Sciences (1997-2021). His contributions to scientific research extend beyond teaching, as he has also been a Guest Editor for the Journal of Energies, Switzerland (2022-2024), and a Reviewer for both the Iranian Journal of Public Health (2022-2024) and the Medical Journal of the Islamic Republic of Iran (MJIRI) (2020-2024).

πŸ”¬ Research Interests

Combustion Technologies: Ammonia combustion, NOx reduction, flameless combustion

Renewable Energy Systems: Hydrogen production, ammonia cracking, energy efficiency

Occupational & Environmental Health: Industrial ventilation, risk management, toxicology

Thermal Systems: Heat transfer, cooling systems, thermal stress control

Electromagnetic Safety: Health risks in high-voltage substations

πŸ† Awards & Honors

Academic Excellence Award, Kookmin University (2024)

Academic Excellence Award, Isfahan University of Medical Sciences (2012)

Outstanding Researcher Medal, Isfahan Foundation for Elites (2011)

Outstanding Researcher Medal, Foundation for Elites (2008)

Special Scholarship, Ministry of Health, Medical Education (1992)

πŸ“š Notable Publications

Energy Research:

Development of Ammonia Combustion Technology for NOx Reduction – Energies (2025)

Green Hydrogen Production Technologies from Ammonia Cracking – Energies (2022)

Contributors: Yousefi H. A., Donghoon Shin

Occupational Health:

Evaluation of Occupational Noise Levels in the Ear Canal of Exposed Workers – International Journal of Preventive Medicine (2022)

Contributors: Asady, H.; Fuente, A.; Pourabdian, S.; Rizi, H. A. Y.; Forouharmajd, F.

Nanotechnology & Medicine:

Polymeric Nanoparticles in Cancer Chemotherapy: A Narrative Review – Iranian Journal of Public Health (2022)

Contributors: Yousefi Rizi, H. A.; Shin, D. H.; Rizi, S. Y.

 

 

 

 

Dr. Hassan Ahmed Ibrahim Mohammed | Chemical Engineering | Best Researcher Award

Dr. Hassan Ahmed Ibrahim Mohammed | Chemical Engineering | Best Researcher Award

Qingdao Institute of Bioenergy and Bioprocess Technology, Chinese Academy of Sciences, China.

Dr. Hassan Ahmed is a postdoctoral researcher at the Qingdao Institute of Bioenergy and Bioprocess Technology, affiliated with the Chinese Academy of Sciences (CAS). With a strong academic background in chemical engineering, he specializes in polymer chemistry, asymmetric catalysis, and biodegradable materials. His expertise spans both industrial and academic settings, where he has successfully led and collaborated on numerous research projects. Dr. Ahmed is proficient in advanced analytical techniques, including NMR, HPLC, GPC, DSC, and MS, and is dedicated to developing sustainable materials for biomedical and industrial applications.

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Education πŸŽ“

Dr. Hassan Ahmed earned his Ph.D. in Chemical Engineering from the University of Chinese Academy of Sciences (UCAS), China (2021-2024), a globally recognized institution ranked #62 in QS World Rankings 2024 and #1 in the Nature Index 2020 for research excellence. Prior to this, he completed his M.Sc. in Chemical Engineering at Tianjin University, China (2019-2021), which is ranked #28 globally for chemical engineering in 2024. His academic journey began with a B.Sc. in Chemical Engineering from Kordofan University, Sudan (2011-2016), where he specialized in agriculture, environmental sciences, and engineering. This strong educational foundation has equipped him with extensive expertise in polymer chemistry, catalysis, and sustainable materials.

Experience πŸ†

Dr. Hassan Ahmed is currently a Postdoctoral Researcher at the Qingdao Institute of Bioenergy and Bioprocess Technology, CAS, China (2024-Present), where he mentors graduate students and leads cutting-edge projects on biodegradable polymers and stereoregular polymer synthesis for biomedical applications. Prior to this, he pursued his Ph.D. (2021-2024) at the same institute under UCAS, specializing in organic chemistry, polymer synthesis, and asymmetric catalysis design, while gaining expertise in advanced analytical techniques such as NMR, MALDI-TOF, DSC, XRD, and TGA.

Before his academic research career, Dr. Ahmed worked in the industrial sector as a Process Engineer at Al Assad for Billet Manufacturing, Sudan (2018-2019), where he managed steel production, quality control, and furnace operations. He also served as a Shift Engineer at Al Assad’s Limestone Plant (2018), supervising production teams and optimizing equipment performance. His combined experience in research and industry allows him to bridge scientific innovation with practical applications in chemical engineering and materials science.

Research Interests πŸ”¬

βœ… Carbon Functional Materials – Development of biodegradable polymers with high stereoregularity.
βœ… Asymmetric Catalysis – Design of highly selective catalysts for polymerization.
βœ… Biomedical Polymers – Synthesis of drug-delivery materials with optimized properties.
βœ… Sustainable Chemistry – Green catalytic polymerization techniques for industrial use.

Awards & Grants πŸ…

πŸ† ANSO Scholarship (2021-2024) – Young Talented Fellowship, CAS, China
πŸ† Chinese Government Scholarship (2019-2021) – M.Sc. in Chemical Engineering, Tianjin University

Selected Publications πŸ“š

Exploring Ligand Substituent Effects on Stereoselective Polymerization of Racemic Lactide Using Aluminium Salen-Type Complexes

πŸ“– Polymer Chemistry, Vol. 14 (18), 2174-2180 (2023)
πŸ‘₯ Authors: Z. Peng, H. Ahmed, G. Xu, X. Guo, R. Yang, H. Sun, Q. Wang
πŸ“Œ Cited by: 7

Fabrication of Amphiphilic Janus Silica Nanospheres for Pickering Emulsions

πŸ“– Chemistry Letters, Vol. 50 (6), 1293-1295 (2021)
πŸ‘₯ Authors: Y. Wei, C. Zhao, Y. Jiang, X. Yin, F. Xin, H.A. Ibrahim, O. Habimana, J. Wang
πŸ“Œ Cited by: 1

Exploring the Catalytic Efficiency of Lithium Bis(trimethylsilyl)amide (LiHMDS) in Lactide Polymerization

πŸ“– Polymers, Vol. 17 (3), 429 (2025)
πŸ‘₯ Authors: A. Kiran, A.C. Kingsley, H. Ahmed

Catalyst-Improved Stereoselectivity and Regioselectivity Control to Access Completely Alternating Poly(lactic‐co‐glycolic acid) with Enhanced Properties

πŸ“– Angewandte Chemie, (2025), e202417075
πŸ‘₯ Authors: X. Guo, H. Ahmed, G. Xu, Q. Wang