Yujing Yang | Climate-Responsive Architecture | Innovative Research Award

Innovative Research Award

Yujing Yang
Shanxi University

Yujing Yang
Affiliation Shanxi University
Country China
Scopus ID 55946229700
Documents 7
Citations 49
h-index 4
Subject Area Low Carbon in Engineering
Event Architecture Engineers Awards
ORCID 0000-0001-6249-4841

The Innovative Research Award recognizes researchers whose scholarly activities demonstrate meaningful contributions to scientific advancement and sustainable engineering. Yujing Yang of Shanxi University has established a research profile emphasizing low-carbon engineering principles, reflected through indexed publications, citations, and measurable academic impact.[1]

Abstract

Yujing Yang’s academic activities emphasize sustainable engineering and low-carbon technologies through peer-reviewed research. Publication metrics, citation performance, and scholarly visibility indicate an emerging contribution to environmentally responsible engineering research and innovation, supporting recognition through the Innovative Research Award.[1]

Keywords

  • Low Carbon Engineering
  • Sustainable Engineering
  • Energy Efficiency
  • Environmental Engineering
  • Innovation

Introduction

Low-carbon engineering has become an essential discipline supporting sustainable infrastructure and environmental responsibility. Yujing Yang’s research aligns with these objectives by exploring engineering approaches that encourage efficiency, reduced emissions, and practical sustainability solutions while contributing to internationally indexed scientific literature and collaborative academic progress.[1]

Research Profile

Affiliated with Shanxi University, Yujing Yang has developed a focused research portfolio in low-carbon engineering. Scopus records indicate seven indexed publications, forty-nine citations, and an h-index of four, demonstrating growing scholarly recognition within engineering and sustainability research communities.[1]

Research Contributions

Research contributions emphasize environmentally conscious engineering practices that support carbon reduction strategies and sustainable development objectives. The published studies enhance technical understanding while encouraging practical implementation of innovative engineering concepts, offering valuable perspectives for researchers, industry professionals, and policy-oriented sustainability initiatives.[2]

Publications

The research portfolio comprises seven Scopus-indexed publications addressing engineering sustainability and related scientific topics. These publications contribute to the dissemination of knowledge through peer-reviewed journals, supporting academic collaboration and expanding the visibility of research concerning environmentally responsible engineering solutions.[1][2]

Research Impact

Citation performance and publication quality demonstrate measurable scholarly influence within the research community. The available bibliometric indicators reflect increasing academic engagement, highlighting the relevance of Yujing Yang’s work in advancing sustainable engineering knowledge and supporting future investigations across interdisciplinary environmental research fields.[1]

Award Suitability

The Innovative Research Award recognizes individuals demonstrating originality, scientific quality, and positive research influence. Yujing Yang’s scholarly achievements, publication record, citation metrics, and dedication to sustainable engineering collectively represent characteristics commonly associated with recipients of international academic recognition programs.[3]

Conclusion

Yujing Yang’s developing academic profile reflects continued commitment to advancing low-carbon engineering research through scholarly publications and measurable research performance. The combination of scientific productivity, citation impact, and sustainability-focused contributions supports recognition within international engineering and research excellence award initiatives.[1][3]

References

  1. Elsevier. (n.d.). Scopus Author Details: Yujing Yang, Author ID 55946229700. Scopus.

    https://www.scopus.com/authid/detail.uri?authorId=55946229700

  2. Yang, Y., Yang, X., Shi, Y., Pululu Jordan, B., Wang, S., Cao, X., & Zhang, D. (2026). Research on the carbon emissions and costs between prefabricated and traditional cast in situ buildings based on BIM. Sustainability, 18(12), 6174.

    https://www.mdpi.com/2071-1050/18/12/6174

  3. Architecture Engineers Awards. (n.d.). International Award Programme.https://architectureengineers.com/

Sahar Ramadan | Sustainable Architecture | Research Excellence Award

Assist. Prof. Dr. Sahar Ramadan | Sustainable Architecture | Research Excellence Award

Associate Professor | Higher Technological Institute | Egypt

Assist. Prof. Dr. Sahar Ramadan is an Associate Professor of Architecture specializing in Interior Architecture, affiliated with leading higher education institutes, with expertise in interior design, lighting design, sustainability, and architectural heritage. She has held academic and leadership roles including department head, quality coordinator, and program developer, contributing to accreditation, curriculum development, and institutional quality assurance. Her research focuses on interior design studios, visual lightness, longevity and flexibility, human-centered sustainable interiors, and integrating historical architectural elements into contemporary practice, with publications in peer-reviewed and indexed journals. Her research impact includes 2 citations, an h-index of 1.

                       Citation Metrics (Google Scholar)

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Featured Publications

Mahyar Fazli | Green Building and LEED Design | Best Innovation Award

Dr. Mahyar Fazli | Green Building and LEED Design | Best Innovation Award

Research Assistant | Sharif University of Technology | Iran

Mahyar Fazli is a Research Assistant in the Department of Aerospace Engineering at Sharif University of Technology, specializing in thermoacoustics, renewable energy systems, waste heat recovery, pulsating heat pipes, and advanced thermal management technologies. His professional experience includes leading simulation, analysis, and design efforts on thermoacoustic refrigeration and power-generation systems, contributing to the development of high-efficiency thermal devices, and advancing research on pulsating heat pipes, nanofluid-based solar receivers, and Organic Rankine Cycle applications. He has authored multiple high-impact publications in reputable journals, including comprehensive reviews, experimental investigations, and optimization studies that address thermoacoustic performance, exergy analysis, and innovative cooling strategies. His contributions include conceptual design of thermoacoustic integration in sustainable architecture, advancements in pulsating heat pipe geometries, and methodologies for enhancing heat-driven refrigeration systems. In addition to his research output, he has an extensive record of peer-review service for major international journals across renewable energy, thermal engineering, artificial intelligence, and fluid dynamics, reflecting his recognition as an emerging expert in the field. He actively engages in scholarly communities through editorial and review activities, professional memberships, and interdisciplinary collaborations, demonstrating a strong commitment to advancing sustainable energy technologies and improving thermal system efficiency. His research impact includes 517 citations, 8 publications, an h-index of 7.

Featured Publications

1. Ansari M., Basiri M., Fazli M., Mazaheri K., Hosseinzadeh S., Matini M.R., Innovative integration of thermoacoustic technology in architectural design for sustainable cooling: A conceptual design. Energy, 2025, 139102.

2. Mahmoudi A., Fazli M., Morad M.R., A recent review of waste heat recovery by Organic Rankine Cycle. Appl. Therm. Eng., 2018, 143, 660–675.

3. Mehrjardi S.A.A., Khademi A., Fazli M., Optimization of a thermal energy storage system enhanced with fins using generative adversarial networks method. Therm. Sci. Eng. Prog., 2024, 49, 102471.

4. Mahmoudi A., Fazli M., Morad M.R., Gholamalizadeh E., Thermo-hydraulic performance enhancement of nanofluid-based linear solar receiver tubes with forward perforated ring steps and triangular cross section: A numerical investigation. Appl. Therm. Eng., 2020, 169, 114909.

5. Fazli M., Mehrjardi S.A.A., Mahmoudi A., Khademi A., Amini M., Advancements in pulsating heat pipes: Exploring channel geometry and characteristics for enhanced thermal performance. Int. J. Thermofluids, 2024, 22, 100644.

Mahyar Fazli’s work advances next-generation thermal and energy systems by developing high-efficiency thermoacoustic, heat-transfer, and waste-heat-recovery technologies that address global sustainability challenges. His research contributes to cleaner energy futures by improving cooling systems. Through innovative modeling, design, and interdisciplinary collaboration, he drives scientific progress toward more efficient and environmentally responsible energy systems worldwide.

Lesiba George Mollo | Building Energy Efficiency | Best Researcher Award

Dr. Lesiba George Mollo | Building Energy Efficiency | Best Researcher Award

Senior Lecturer | Central University of Technology | South Africa

Dr. Lesiba George Mollo is a Senior Lecturer in the Department of Built Environment at the Central University of Technology, Free State, South Africa, specializing in construction management and construction health and safety. He holds a PhD in Construction Management from Nelson Mandela University, where his research focused on reducing human failures in construction through the Training-Within-Industry (TWI) method. He also earned an MTech in Quantity Surveying (Cum Laude), a BTech in Quantity Surveying, and a National Diploma in Building, complemented by professional certifications in project and safety management. Dr. Mollo’s professional journey spans academic leadership as Acting Head of Department, Deputy Research Dean, and Research Chair, as well as practical roles with leading construction firms managing infrastructure, housing, and public works projects. His research expertise encompasses construction safety management, wearable sensing devices, 360° video technology for behavioral monitoring, and energy-efficient building technologies. He has published over forty scholarly outputs, including peer-reviewed journal articles, book chapters, and the authored volume Training-Within-Industry Job Programs for Improved Construction Safety (Routledge). Dr. Mollo actively contributes to academic development through postgraduate supervision, conference organization, and peer reviewing for international journals. He has received recognition for academic excellence, including the MTech Best Performance Award from Nelson Mandela University, and holds memberships in the South African Council for the Project and Construction Management Professions (SACPCMP) and the Association of South African Quantity Surveyors (ASAQS). He has 35 citations, 14 publications, and an h-index of 3.

Featured Publications

1. Mollo, L. G. (2025). Evaluating the use of 360° video technology to monitor workers’ unsafe behaviour in the construction industry. In International Civil Engineering and Architecture Conference (pp. 685–693). Springer Nature Singapore.

2. Mollo, L. G., & Chomey, T. (2025). An analysis of barriers to the implementation of energy-efficient technologies in residential buildings: A quantitative approach. Buildings, 15(19), 3520.

3. Mtetwa, S. I., Mollo, L. G., & Emuze, F. (2024). Wearable sensing devices for better monitoring of health, safety, and wellbeing in construction. In Handbook of Drivers of Continuous Improvement in Construction Health, Safety, and Wellbeing (pp. 59–68). Routledge.

4. Mollo, L. G. (2024). Using wearable technologies to minimise occupational illnesses among construction workers. Proceedings of the Institution of Civil Engineers – Forensic Engineering, 177(2), 64–71.

5. Mollo, L. G., Emuze, F., & Smallwood, J. (2023). Causes of human failure on construction sites. In Training-Within-Industry Job Programs for Improved Construction Safety (pp. 13–27). Routledge.