lourdes Soriano | Sostenibilidad en Materiales de Construcción | Women Researcher Award

Women Researcher Award

Lourdes Soriano
Universitat Politècnica de València, Spain
Lourdes Soriano
Affiliation Universitat Politècnica de València
Country Spain
Scopus ID 35280717300
Documents 130
Citations 3772
h-index 35
Subject Area Sostenibilidad en Materiales de Construcción
Event Research Awards and Recognitions
ORCID 0000-0002-5749-4609

Lourdes Soriano is a researcher affiliated with Universitat Politècnica de València whose scholarly work focuses on sustainable construction materials, circular economy strategies, supplementary cementitious materials, and environmentally responsible engineering solutions. Her academic contributions have advanced understanding of waste valorization, low-carbon binders, and innovative approaches to reducing the environmental footprint of construction systems. The scope and continuity of her research activity, reflected through a substantial publication record and citation impact, position her as a noteworthy candidate within the framework of the Research Awards and Recognitions program.[1]

Abstract

This article summarizes the academic profile and research achievements of Lourdes Soriano. Her work emphasizes sustainable material development, industrial by-product reuse, alkali-activated systems, and environmentally conscious construction technologies. Through interdisciplinary investigations, she has contributed to the advancement of low-emission construction practices while promoting resource efficiency and circular economy principles. Her publication record demonstrates consistent engagement with topics of global relevance within materials science and civil engineering.[2]

Keywords

Sustainable Construction Materials, Circular Economy, Cementitious Systems, Waste Valorization, Alkali-Activated Materials, Environmental Engineering, Pozzolanic Materials, Green Construction.

Introduction

The construction sector faces increasing pressure to reduce greenhouse gas emissions and improve resource utilization. Researchers such as Lourdes Soriano have explored alternative materials and innovative technologies capable of supporting sustainable development objectives. Her studies address industrial waste recycling, material performance optimization, and the integration of secondary resources into construction applications.[3]

Research Profile

According to available scholarly indicators, Soriano has authored 130 indexed publications, accumulated 3,772 citations, and achieved an h-index of 35. These metrics indicate sustained research productivity and influence within sustainable construction materials research. Her work frequently examines supplementary cementitious materials, biomass ash valorization, glass waste recycling, and innovative binder systems.[1]

Research Contributions

  • Development of sustainable cement and lime-based systems.
  • Investigation of industrial and agricultural waste as construction resources.
  • Advancement of alkali-activated materials and alternative binders.
  • Research supporting circular economy implementation in construction.

Publications

  • Volcanic Ash from Tajogaite Volcano (La Palma Island, Spain) as Pozzolanic Material in Lime and Cement Blends (2026).
  • Spent Fluid Catalytic Cracking Catalyst as a Viable Substitute for Enhancing Low-Grade Kaolinite Clays in LC3 Systems (2026).
  • Impact of Low CO2 Footprint Treatment of Biomass Ashes on Alkali-Activated Mortars (2025).
  • Valorization of Glass Fiber Waste as a Precursor in Alkali-Activated Systems (2025).

Research Impact

The research impact of Lourdes Soriano extends across materials science, environmental sustainability, and construction engineering. Her studies contribute practical knowledge for reducing waste disposal, lowering carbon emissions, and increasing the utilization of secondary resources. The citation performance associated with her publications indicates significant scholarly engagement and recognition within the international research community.[4]

Award Suitability

The Women Researcher Award recognizes individuals who have demonstrated excellence through impactful scholarship, innovation, and professional contribution. Based on publication productivity, citation influence, leadership in sustainable materials research, and commitment to environmentally responsible engineering solutions, Lourdes Soriano exhibits characteristics aligned with the objectives of this recognition program.[5]

Conclusion

Lourdes Soriano has established a substantial academic record in sustainable construction materials and circular economy research. Her contributions support the advancement of environmentally conscious engineering practices and provide valuable scientific insights for future development in sustainable infrastructure and resource-efficient construction technologies.[6]

References

  1. Elsevier. (n.d.). Scopus author details: Lourdes Soriano, Author ID 35280717300. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=35280717300
  2. Buildings. (2026). Volcanic Ash from Tajogaite Volcano as Pozzolanic Material in Lime and Cement Blends.
    https://doi.org/10.3390/buildings16122413
  3. Materials and Structures. (2026). Spent Fluid Catalytic Cracking Catalyst in LC3 Systems.
    https://doi.org/10.1617/s11527-026-03081-w
  4. Sustainability. (2025). Biomass Ashes and Alkali-Activated Mortars.
    https://doi.org/10.3390/su172210359
  5. Materials. (2025). Valorization of Glass Fiber Waste in Alkali-Activated Systems.
    https://doi.org/10.3390/ma18184260
  6. Research Awards and Recognitions. (n.d.). Award Program Information.
    awardsandrecognitions.com

Prof. Song Fei | Geosynthetics | Best Researcher Award

Prof. Song Fei | Geosynthetics | Best Researcher Award

Prof. Song Fei | Geosynthetics – Professor at Chang’an University, China

Professor Fei Song is a leading expert in geotechnical engineering with a specialization in geocell-reinforced soil structures. His research has significantly advanced the understanding of reinforced retaining walls and slopes, making substantial contributions to both theory and practice in civil infrastructure. Known for his interdisciplinary approach and application-oriented innovations, Professor Song has become a key figure in the field, driving forward engineering practices through a combination of modeling, experimentation, and field implementation.

Profile:

Scopus

Education:

Professor Song earned his doctoral degree in geotechnical engineering, focusing on the mechanical behavior of reinforced soils and soil-structure interaction. His academic training provided a strong foundation in soil mechanics, structural analysis, and numerical simulation. This background has been instrumental in developing sophisticated models and practical methodologies for geocell-reinforced systems used in highways and other critical infrastructure projects.

Experience:

Currently serving as a professor at the School of Highway, Chang’an University, Professor Song has led numerous national and provincial research projects. His work spans from theoretical developments to real-world implementation, including consultancy roles in major highway expansions in Guangdong Province. With hands-on experience in engineering applications, he brings a practical dimension to academic research, ensuring that his findings directly benefit infrastructure design and construction.

Research Interests:

Professor Song’s core research interests include reinforced slopes and retaining walls, the mechanical behavior of geocell-reinforced soil under static and dynamic conditions, the development of innovative geosynthetic materials, and advanced geotechnical centrifuge model tests. His investigations often combine experimental analysis with finite element modeling to optimize the performance and safety of soil-structure systems. His current focus includes developing nonlinear models and improving design methods for geosynthetic-reinforced earth structures.

Awards:

While formal award recognitions are still emerging, Professor Song’s academic career has been marked by prestigious research grants from the National Natural Science Foundation of China and other key institutions. His patented innovations and practical engineering solutions highlight his outstanding contributions to the geotechnical engineering community, making him a strong contender for the Best Researcher Award.

Publications:

Professor Song has published extensively in top-tier, peer-reviewed journals. Notable works include:

📘 “Development and application of a nonlinear stress dilatancy model for geocell-reinforced soil via the FEM” – Geotextiles and Geomembranes, 2025. This paper has drawn attention for its advanced modeling approach and has been cited in new FEM-based studies.

🧱 “Evaluation of required stiffness and strength of cellular geosynthetics” – Geosynthetics International, 2022. A key reference for material design in reinforced soil systems.

📐 “Analyzing the deformation and failure of geosynthetic-encased granular soil in the triaxial stress condition” – Geotextiles and Geomembranes, 2020. Used widely for analyzing soil behavior under compression.

🏗️ “Centrifuge tests of geocell-reinforced retaining walls at limit equilibrium” – Journal of Geotechnical and Geoenvironmental Engineering, ASCE, 2018. Frequently cited in validation studies of soil-structure interaction.

🧪 “Numerical analysis of geocell-reinforced retaining wall failure modes” – Geotextiles and Geomembranes, 2018. Influential in developing safety standards for retaining structures.

🏞️ “Stability analysis of geocell-reinforced retaining walls” – Geosynthetics International, 2017. This article laid the foundation for several current slope stabilization methods.

📊 “Three-dimensional numerical modelling of geocell-reinforced soils and its practical application” – Geomechanics and Engineering, 2019. Widely referenced in infrastructure project simulations.

Conclusion:

In conclusion, Professor Fei Song exemplifies the ideal candidate for the Best Researcher Award. With groundbreaking research, innovative patents, impactful consultancy, and influential publications, his contributions address critical challenges in geotechnical engineering. His work bridges the gap between academic research and practical application, enhancing the design, safety, and efficiency of infrastructure systems. As a scholar, inventor, and mentor, he continues to shape the future of soil reinforcement technologies, positioning himself as a valuable asset to the academic and engineering communitie