Salima ait el hocine | Geotechnical Engineering | Innovative Research Award

Innovative Research Award

Salima ait el hocine
Affiliation USTHB
Country Algeria
Google Scholar JNyxxXMAAAAJ&hl
Documents 1
Subject Area Geotechnical Engineering
Event Global Civil Engineering Awards

Salima ait el hocine

USTHB

The Innovative Research Award recognizes scholarly contributions that advance scientific understanding through originality, methodological rigor, and practical relevance. Salima ait el hocine has contributed to the field of Geotechnical Engineering through academic research that supports sustainable infrastructure development and engineering knowledge. The recognition highlights the importance of evidence-based investigation, technical competence, and continued academic engagement in addressing geotechnical challenges while encouraging future interdisciplinary collaboration.[1]

Abstract

This academic recognition page presents the professional profile of Salima ait el hocine, whose research activities are associated with Geotechnical Engineering at USTHB in Algeria. The Innovative Research Award acknowledges research characterized by scientific integrity, methodological consistency, and meaningful academic contribution. The researcher’s published work reflects an interest in improving engineering knowledge through analytical investigation and practical application. Such efforts contribute to broader understanding within civil engineering while encouraging innovation, responsible resource management, and sustainable infrastructure solutions. Continued scholarly engagement and collaboration further strengthen the relevance of this research within national and international engineering communities.[1]

Keywords

Innovative Research Award, Geotechnical Engineering, Civil Engineering, USTHB, Algeria, Soil Mechanics, Infrastructure Research, Sustainable Engineering, Engineering Innovation, Academic Research.

Introduction

Geotechnical Engineering provides essential scientific foundations for the safe planning, design, and maintenance of civil infrastructure. Researchers in this discipline investigate soil behavior, ground improvement, and engineering performance under varying environmental conditions. Academic studies strengthen engineering practice by combining experimental evidence with analytical modeling and practical evaluation. Such research contributes to improved construction reliability, sustainable development, and resilient infrastructure while supporting innovation across transportation, urban development, and environmental engineering projects worldwide.[2]

Research Profile

Salima ait el hocine is affiliated with USTHB, where academic activities focus on advancing knowledge within Geotechnical Engineering. The available scholarly record demonstrates participation in research addressing engineering challenges through systematic investigation and scientific methodology. This profile reflects dedication to technical excellence, academic responsibility, and the continuous development of engineering knowledge that supports future research initiatives and practical civil engineering applications across diverse environmental conditions.[1]

Research Contributions

The research contributions associated with this academic profile emphasize analytical thinking, scientific validation, and engineering relevance. By integrating theoretical understanding with practical investigation, the work supports improvements in geotechnical knowledge and engineering decision-making. These contributions encourage sustainable infrastructure development while promoting high-quality research practices that remain valuable for academic institutions, engineering professionals, and future interdisciplinary investigations within the broader civil engineering community.[1]

Publications

The research profile currently includes one indexed scholarly publication that represents ongoing academic engagement within Geotechnical Engineering. Published research contributes to scientific communication by presenting validated findings, technical interpretation, and engineering insights suitable for further investigation. The publication record demonstrates commitment to knowledge dissemination and provides a foundation for future collaborative research, increased scholarly visibility, and continued professional development within the engineering research community.[1]

Research Impact

Research in geotechnical engineering influences infrastructure safety, environmental sustainability, and engineering reliability by providing scientific evidence for informed technical decisions. Even early-stage publication records contribute to cumulative scientific progress through knowledge sharing and scholarly discussion. Continued research activity has the potential to expand academic influence, strengthen institutional collaboration, and support innovative engineering practices that address evolving infrastructure requirements responsibly.[2]

Award Suitability

The Innovative Research Award appropriately recognizes researchers whose work demonstrates originality, scientific discipline, and academic promise. Salima ait el hocine’s scholarly activities reflect these qualities through participation in engineering research that contributes to technical understanding and professional advancement. Recognition through this award encourages continued research excellence while supporting broader engagement with the international civil engineering and scientific research community.[1]

Conclusion

The academic profile of Salima ait el hocine reflects dedication to scholarly research within Geotechnical Engineering and demonstrates commitment to scientific advancement through responsible academic practice. The Innovative Research Award acknowledges these contributions while encouraging continued excellence, interdisciplinary collaboration, and sustained participation in engineering research that benefits both academic knowledge and practical civil engineering development.[1]

References

  1. Google Scholar. (n.d.). Scholar profile: Salima ait el hocine.
    https://scholar.google.com/citations?user=JNyxxXMAAAAJ&hl=en&oi=sra
  2. MDPI. (2026). GeoLiquefy-AI: Predicting Soil Liquefaction Potential via Deep Neural Architecture Search in Seismically Active Coastal Zones.
    https://doi.org/10.3390/land15081345

Thomas Dickmann | Geotechnical Engineering | Innovative Research Award

Innovative Research Award

Thomas Dickmann
Amberg Technologies AG
Thomas Dickmann
Affiliation Amberg Technologies AG
Country Switzerland
Scopus ID 6602296695
Documents 33
Citations 1,162
h-index 15
Subject Area Geotechnical Engineering
Event Global Civil Engineering Awards

Thomas Dickmann is recognized for his scholarly contributions to geotechnical engineering and underground surveying technologies through sustained scientific publications and industry-oriented innovation. His research demonstrates the integration of advanced monitoring techniques, precise measurement systems, and practical engineering solutions that contribute to safer infrastructure development and efficient tunnel construction. The Innovative Research Award acknowledges the significance of his academic output, research influence, and continued advancement of engineering knowledge within the international civil engineering community.[1]

Abstract

Thomas Dickmann has contributed substantially to geotechnical engineering through investigations focused on tunnel surveying, deformation monitoring, underground infrastructure, and advanced measurement technologies. His research combines engineering precision with practical field applications, supporting improved construction safety and long-term infrastructure reliability. Across thirty-three indexed publications, his work has attracted considerable academic attention, reflecting broad relevance within civil engineering disciplines. The Innovative Research Award recognizes his sustained scientific productivity, measurable research influence, and commitment to advancing engineering methodologies that bridge theoretical development with practical implementation while encouraging future innovation in geotechnical engineering and underground construction technologies worldwide.[2]

Keywords

Geotechnical Engineering, Tunnel Surveying, Underground Construction, Infrastructure Monitoring, Engineering Geodesy, Deformation Analysis, Civil Engineering, Measurement Technology, Research Innovation, Structural Monitoring.

Introduction

Geotechnical engineering requires accurate investigation, continuous monitoring, and reliable measurement methods to ensure the safety and durability of complex infrastructure projects. Thomas Dickmann’s research reflects these priorities by combining engineering science with technological innovation for underground environments. His published studies support improved decision-making throughout planning, construction, and operational phases while promoting higher standards of engineering accuracy, efficiency, and project sustainability across modern civil engineering applications.[1]

Research Profile

Affiliated with Amberg Technologies AG, Thomas Dickmann has developed an internationally recognized research profile through scholarly publications emphasizing geotechnical monitoring and engineering measurement systems. His Scopus metrics, including thirty-three publications, more than one thousand citations, and a notable h-index, demonstrate sustained academic influence and continued engagement with engineering challenges relevant to infrastructure development and underground construction technologies.[1]

Research Contributions

His research contributions emphasize precision surveying, deformation monitoring, and digital engineering technologies applied to tunnels and complex infrastructure systems. These investigations have enhanced understanding of measurement reliability, project quality assurance, and engineering safety while supporting technological improvements that benefit researchers, consultants, and construction professionals involved in large-scale geotechnical and transportation engineering projects.[2]

Publications

The publication record of Thomas Dickmann demonstrates consistent scholarly productivity in geotechnical engineering and engineering measurement science. His articles have appeared within internationally recognized academic platforms and continue to receive citations from researchers investigating underground construction, monitoring technologies, and infrastructure management. This publication history illustrates sustained scientific engagement and long-term relevance within the broader civil engineering research community.[1]

Research Impact

The measurable citation performance of Thomas Dickmann’s work indicates broad scholarly recognition and practical value across engineering disciplines. His investigations have informed subsequent research concerning underground infrastructure monitoring and precision surveying while encouraging the adoption of improved engineering practices. Such impact reflects meaningful scientific influence extending beyond individual projects into wider academic and professional communities.[1]

Award Suitability

The Innovative Research Award appropriately recognizes Thomas Dickmann for sustained scholarly excellence, influential publication metrics, and engineering innovation within geotechnical research. His achievements demonstrate a balanced combination of scientific quality, technological advancement, and professional relevance, aligning closely with the objectives of recognizing impactful research that contributes to global civil engineering knowledge and infrastructure development.[3]

Conclusion

Thomas Dickmann’s academic accomplishments illustrate the importance of integrating advanced engineering technologies with practical geotechnical applications. His sustained publication record, citation impact, and research contributions have strengthened knowledge within underground engineering and infrastructure monitoring. Recognition through the Innovative Research Award acknowledges these achievements while highlighting the continuing importance of evidence-based engineering research for future technological progress.[3]

References

  1. Elsevier. (n.d.). Scopus author details: Thomas Dickmann, Author ID 6602296695. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=6602296695
  2. Wiley Online Library. (2021). Towards the integration of smart techniques for tunnel seismic applications.
    https://doi.org/10.1002/geot.202100046
  3. Global Civil Engineering Awards. (2026). Innovative Research Award recognition information.
    https://civilengineeringawards.com/

Frank Ikechukwu Aneke | Geoenvironmental Engineering | Best Researcher Award

Dr Frank Ikechukwu Aneke | Geoenvironmental Engineering | Best Researcher Award

Senior Lecturer at University of KwaZulu Natal, South Africa

Dr. Frank Aneke is a distinguished geotechnical and geoenvironmental engineer with extensive expertise in soil mechanics, ground improvement, and sustainable construction materials. He holds a Doctor of Engineering (DEng) in Geotechnical & Geoenvironmental Engineering and has contributed significantly to academia and industry. Currently, he serves as a Senior Lecturer at the University of KwaZulu-Natal, South Africa, where he mentors students and leads groundbreaking research. Dr. Aneke is a member of prestigious organizations like the American Society of Civil Engineers (ASCE) and the International Society for Soil Mechanics and Geotechnical Engineering. His work focuses on solving geotechnical challenges using innovative methods, including artificial intelligence and sustainable materials.

Professional Profile

Google Scholar

Orcid

Education πŸŽ“

Dr. Frank Aneke earned his Bachelor of Science in Civil Engineering from Enugu State University of Science and Technology, Nigeria, in 2004. He pursued a Master of Science in Geotechnical Engineering at the University of Johannesburg, South Africa, graduating in 2016. In 2019, he completed his Doctor of Engineering (DEng) in Geotechnical & Geoenvironmental Engineering at the Central University of Technology, Bloemfontein, South Africa. His academic journey reflects a strong foundation in geotechnical engineering, with a focus on soil mechanics, pavement design, and sustainable construction materials.

Experience πŸ’Ό

Dr. Aneke has over 15 years of experience in geotechnical and structural engineering. He has worked as a Structural and Geotechnical Design Engineer at Badip Engineering Consultants and Project Design Consultant, where he led projects like the design of UBA Banking complexes and water-retaining structures. Currently, he is a Senior Lecturer at the University of KwaZulu-Natal, mentoring postgraduate students and conducting research. His prior roles include Postdoctoral Research Fellow at the University of Johannesburg and Site Engineer at MotherCat Construction, where he managed large-scale infrastructure projects, including road construction and airport development.

Awards and Honors πŸ†

Dr. Aneke has received numerous accolades, including the JW Nelson Productivity Funding (2020-2022) and the National Research Foundation (NRF) Thuthuka Grant (2023). He was awarded the NRF Knowledge, Interchange, and Collaboration Programme (KIC) Grant in 2021 and 2022. His research output has been recognized with Research Output Generated Funds (RIG) in 2021 and 2022. Dr. Aneke is also a leading founding member of the Geomechanics, Geotechnics, and Geomaterials Research Group, showcasing his commitment to advancing geotechnical engineering.

Research Focus πŸ”

Dr. Aneke’s research focuses on soil-structure interaction, soil reinforcement, and the application of artificial intelligence in geotechnical engineering. He explores sustainable construction materials, including the use of industrial waste in building materials. His work also addresses geohazards, pavement geotechnics, and the stabilization of expansive soils. Dr. Aneke is particularly interested in the development of green materials and the optimization of soil properties for infrastructure projects, contributing to environmental sustainability and innovative engineering solutions.

Publication Top Notes πŸ“š

  1. “Green-efficient masonry bricks produced from scrap plastic waste and foundry sand”
  2. “Strength and Durability Performance of Masonry Bricks Produced with Crushed Glass and Melted PET Plastics”
  3. “Adsorption of Heavy Metals from Contaminated Water using Leachate Modular Tower”
  4. “Resilient modulus and microstructure of unsaturated expansive subgrade stabilized with activated fly ash”
  5. “Swelling stress effects on shear strength resistance of subgrades”
  6. “Pre-compression and capillarity effect of treated expansive subgrade subjected to compressive and tensile loadings”
  7. “Durability Assessment and Microstructure of High-Strength Performance Bricks Produced from PET Waste and Foundry Sand”
  8. “Predicting Nanobinder-Improved Unsaturated Soil Consistency Limits Using Genetic Programming and Artificial Neural Networks”
  9. “AI (ANN, GP, and EPR)-based predictive models of bulk density, linear-volumetric shrinkage & desiccation cracking of HSDA-treated black cotton soil for sustainable subgrade”
  10. “Assessing the extent of pavement deterioration caused by subgrade volumetric movement through moisture infiltration”

Conclusion 🌟

Dr. Frank Aneke is a leading figure in geotechnical and geoenvironmental engineering, with a career marked by academic excellence, innovative research, and impactful industry contributions. His work in sustainable construction materials, soil stabilization, and AI applications in geotechnics has set new benchmarks in the field. Through his teaching, mentorship, and research, Dr. Aneke continues to inspire the next generation of engineers while addressing critical global challenges in infrastructure and environmental sustainability.

Mahasakti Mahamaya | Geoenvironmental Engineering | Best Researcher Award

Dr Mahasakti Mahamaya | Geoenvironmental Engineering | Best Researcher Award

Assistant Professor, OP Jindal University,Raigarh,Chhattishgarh,India

Dr. Mahasakti Mahamaya is a distinguished faculty member at OP Jindal University, specializing in geotechnical engineering, sustainable structures, and mining. With a strong emphasis on environmental sustainability, her work integrates innovative approaches in soil stabilization, waste management, and the use of industrial by-products. Dr. Mahamaya has authored several influential publications on geotechnical materials, biopolymers, and eco-friendly construction materials. Her research aims to optimize geotechnical properties while minimizing environmental impact. She collaborates extensively with experts in the field and contributes actively to advancing the geotechnical engineering domain through research, publications, and industry partnerships. πŸŒπŸ› οΈπŸ”¬

Profile

Google Scholar

Scopus

Strengths for the Award

  1. Innovative and Impactful Research:
    Dr. Mahasakti Mahamaya’s work focuses on critical issues such as sustainable construction, soil stabilization, and waste utilization, all of which are highly relevant to contemporary environmental challenges. Her publications, especially in journals like the Journal of Cleaner Production and the International Journal of Geosynthetics and Ground Engineering, demonstrate a strong commitment to addressing both environmental sustainability and practical engineering applications. πŸŒβ™»οΈ
  2. Interdisciplinary Collaboration:
    Dr. Mahamaya has collaborated with multiple experts in various fields such as geotechnics, mining, and environmental engineering, producing high-impact research with multiple citations. Her work on biopolymers, fly ash, and ferrochrome slag for soil stabilization and sustainable material design positions her as a thought leader in geoenvironmental engineering. πŸ€πŸ”¬
  3. Cited Works and Recognition:
    Several of her publications, such as those on artificial intelligence techniques for predicting soil strength and the use of alkali-activated materials, have been widely cited. This indicates not only the quality but also the global relevance of her research. Her citation count demonstrates recognition from the international scientific community. πŸŒπŸ“ˆ
  4. Commitment to Sustainability:
    Dr. Mahasakti’s consistent focus on sustainable construction materials and her work on mining waste and biopolymer stabilization aligns well with global trends toward sustainability in civil engineering. Her emphasis on eco-friendly solutions to minimize environmental pollution in construction is a major strength. πŸŒ±πŸ—οΈ

Areas for Improvement

  1. Broader Dissemination in Popular Science:
    While Dr. Mahamaya has numerous publications in reputable academic journals, her research could reach a broader audience by focusing more on outreach and public science communication. Publishing in high-impact journals like Nature Sustainability or engaging in industry-oriented platforms could further expand her influence. πŸŒπŸ“£
  2. Cross-Disciplinary Integration:
    Although Dr. Mahasakti has made notable contributions within geotechnical engineering, her work might benefit from even more cross-disciplinary collaboration, particularly with sociologists or policy experts to better align her research with sustainable policy-making and community-level impact. Such collaboration could further enhance the real-world applicability of her research. πŸ’¬πŸ”„
  3. Focus on Emerging Technologies:
    Given the growing importance of AI and machine learning in material prediction, Dr. Mahasakti could expand her work to integrate advanced computational methods with experimental studies, allowing for more data-driven insights into soil stabilization and material characterization. πŸ“ŠπŸ€–

Education

Dr. Mahasakti Mahamaya holds a PhD in Geotechnical Engineering, focusing on sustainable material development and geotechnical stability. She also completed a Master’s in Civil Engineering, specializing in geotechnics. Over the years, she has participated in numerous national and international conferences to stay updated on the latest research trends and innovations. Her academic training has been complemented by research on stabilization techniques for expansive soils and industrial waste utilization in construction. πŸ“šπŸŽ“πŸŒ

Experience

Dr. Mahasakti Mahamaya has over a decade of experience in academia and industry, contributing significantly to geotechnical research and sustainable infrastructure development. She has worked on various projects involving the stabilization of soils and industrial by-products, including fly ash, red mud, and mining waste, for geotechnical applications. In addition to her academic work, she has been part of several interdisciplinary research initiatives aimed at environmental remediation and resource optimization. Dr. Mahasakti is also a sought-after consultant for sustainable construction practices. πŸ› οΈπŸŒ±πŸ’‘

Awards and Honors

Dr. Mahasakti Mahamaya has received numerous accolades for her pioneering research in geotechnical engineering and sustainability. Her work has been widely cited, earning her recognition in international journals. She has also been honored with research grants and fellowships for her contributions to the field. Her excellence in research and innovation has earned her awards at international conferences, and she has been recognized for advancing eco-friendly construction technologies and sustainable geotechnical practices. πŸ…πŸ†πŸŒ

Research Focus

Dr. Mahasakti Mahamaya’s research focuses on geotechnical sustainability, soil stabilization, and industrial waste utilization in construction. She is particularly interested in using biopolymers, geopolymers, and fly ash as alternative materials for soil and waste stabilization. Her work aims to mitigate environmental pollution by developing low-cost, effective, and eco-friendly materials for infrastructure. She also investigates the engineering properties of materials derived from mining and industrial by-products, emphasizing their role in sustainable construction. πŸŒ±πŸ”¬πŸ§ͺ

Publications

  1. Prediction of maximum dry density and unconfined compressive strength of cement stabilised soil using artificial intelligence techniques – International Journal of Geosynthetics and Ground Engineering (2016)
  2. Stabilization of an expansive soil using alkali activated fly ash based geopolymer – Advances in Characterization and Analysis of Expansive Soils and Rocks (2018)
  3. Interaction of biopolymer with dispersive geomaterial and its characterization: An eco-friendly approach for erosion control – Journal of Cleaner Production (2021)
  4. Coal mine overburden soft shale as a controlled low strength material – International Journal of Mining, Reclamation and Environment (2020)
  5. Characterization of ferrochrome slag as a controlled low-strength structural fill material – International Journal of Geotechnical Engineering (2020)
  6. Characterization of mine overburden and fly ash as a stabilized pavement material – Particulate Science and Technology (2017)
  7. Stabilization of pond ash using biopolymer – Procedia Earth and Planetary Science (2015)
  8. Stabilization of dispersive soil using biopolymer – Contemporary Issues in Geoenvironmental Engineering (2018)
  9. Multi-objective feature selection (MOFS) algorithms for prediction of liquefaction susceptibility of soil based on in situ test methods – Natural Hazards (2020)
  10. Engineering properties of cementless alkali activated CLSM using ferrochrome slag – Journal of Materials in Civil Engineering (2023)
  11. Prediction of UCS and CBR values of cement stabilised mine overburden and fly ash mixture – Procedia Earth and Planetary Science (2015)
  12. Estimation of thermal migration around buried coolant ducts with engineered backfill material – Procedia Earth and Planetary Science (2015)
  13. Development and characterization of sustainable geomaterial using mining and industrial wastes – (2018)
  14. Liquefaction susceptibility of soil using multi objective feature selection – Earthquake Geotechnical Engineering for Protection and Development (2019)
  15. Characterization of ferrochrome slag as a controlled low strength material – Transportation Research Board 97th Annual Meeting (2018)
  16. Characterization and design of coal-reject as a Highway Pavement Material – Indian Highways (2016)
  17. Development and characterization of alkali activated controlled low strength material using mining waste – Construction and Building Materials (2024)
  18. Effect of Biopolymer on Water Retention Property of Red Mud – International Conference on Trends and Recent Advances in Civil Engineering (2022) πŸŒπŸ› οΈπŸ“˜

Conclusion

Dr. Mahasakti Mahamaya is highly deserving of the Best Researcher Award due to her innovative research in sustainable construction, waste management, and environmentally friendly geotechnical practices. Her strong academic background, consistent publication record, and increasing international recognition make her a leader in her field. While there is room for growth in terms of broader dissemination of her work and interdisciplinary collaborations, her contributions to sustainable infrastructure and materials are both cutting-edge and highly impactful.