Ahmed Fouly | Robotics & Autonomous Systems | Innovative Research Award

Innovative Research Award

Ahmed Fouly
King Saud University

Ahmed Fouly
Affiliation King Saud University
Country Saudi Arabia
Scopus ID 59573587400
Documents 4
Citations 43
h-index 3
Subject Area Robotics & Autonomous Systems
Event World Electrical Engineering Awards
Google Scholar kFtpe9wAAAAJ&hl

Ahmed Fouly, affiliated with King Saud University in Saudi Arabia, has developed a multidisciplinary research profile spanning mechatronics, robotics, autonomous systems, tactile sensing, materials engineering, tribology, and computational design. His academic work connects robotic system development with mechanical engineering, sensing technologies, optimization, and advanced materials. His research interests and scholarly activities demonstrate an engineering-oriented approach to developing intelligent systems and solving practical problems involving robotic mechanisms, sensing, material behavior, and computational analysis.[1]

Abstract

Ahmed Fouly’s research encompasses mechatronics, robotics, autonomous systems, tactile sensing, advanced materials, tribology, and computational engineering. His scholarly activities address robotic path planning, climbing-robot development, micro-tactile sensing, composite materials, topology optimization, and computational approaches to engineering-property prediction. These research areas combine mechanical design, sensing, modelling, optimization, and intelligent computational methods to address practical engineering challenges. His academic specialization in mechatronics and robotics engineering provides a multidisciplinary foundation for developing and evaluating robotic and intelligent mechanical systems. His research profile therefore reflects continued engagement with emerging engineering technologies and interdisciplinary approaches relevant to modern robotics and electrical engineering applications.[1][2]

Keywords

Mechatronics, Robotics, Autonomous Systems, Robotic Path Planning, Climbing Robots, Tactile Sensors, Mechanical Design, Topology Optimization, Composite Materials, Tribology, Artificial Intelligence, Microfabrication, Engineering Materials, Intelligent Mechanical Systems

Introduction

Modern robotics increasingly integrates mechanical engineering, sensing, control, materials science, optimization, and computational intelligence. Research in these areas supports the development of autonomous machines capable of operating efficiently in complex environments while responding to physical and operational constraints. Ahmed Fouly’s academic profile reflects this interdisciplinary direction through research involving robotic mechanisms, tactile sensing, path planning, composite structures, tribological behavior, and computational engineering. His work connects fundamental engineering analysis with application-oriented development of robotic and intelligent mechanical systems.[1]

Research Profile

Ahmed Fouly maintains a research profile centered on mechatronics and robotics engineering with complementary interests in materials, tribology, sensing, actuators, finite-element analysis, and topology optimization. His research activities demonstrate the integration of mechanical modelling and experimental investigation with computational techniques. The combination of robotics, sensing, advanced materials, and optimization enables investigations into both robotic-system performance and the engineering properties of materials used in intelligent mechanical applications.[1]

Research Contributions

Fouly’s research contributions include investigations into tactile sensing, robotic path planning, climbing-robot structures, composite materials, and topology optimization. His work on tactile sensors examines approaches for measuring mechanical characteristics through microscale sensing, while his robotics studies address path refinement and robotic mobility. Research involving composite structures and topology optimization further explores methods for improving robotic-system design through appropriate material selection, structural configuration, and computational analysis.[3][4]

Publications

The available publication record associated with Ahmed Fouly includes research addressing robotic path planning, tactile sensing, climbing robots, composite materials, and tribological-property prediction. His publications demonstrate an interdisciplinary research strategy in which mechanical engineering principles are combined with robotics, sensing, computational modelling, and advanced materials. The documented work includes studies of obstacle-guided path refinement for robotic manipulators, micro-tactile sensing, and energy-efficient climbing-robot configurations based on composite structures.[1][4][5]

Research Impact

The research impact of Ahmed Fouly can be considered through its relevance to robotic sensing, autonomous mobility, intelligent mechanical design, and engineering materials. Tactile sensing research can contribute to systems requiring contact and stiffness information, while robotic path-planning studies address navigation and motion-generation challenges. Research into climbing robots and composite structures also considers structural efficiency and energy-conscious robotic design, providing potential applications in specialized robotic platforms and automated inspection environments.[3][5]

Award Suitability

The Innovative Research Award is intended to recognize research demonstrating originality, technical development, and meaningful scientific contribution. Ahmed Fouly’s multidisciplinary research profile aligns with these objectives through its combination of robotics, mechatronics, sensing, advanced materials, computational modelling, and optimization. His documented research addresses practical engineering problems involving robotic mobility, tactile measurement, structural design, and material performance, providing a relevant basis for recognition within contemporary engineering research and innovation.[1][5]

Conclusion

Ahmed Fouly’s academic profile demonstrates interdisciplinary research across mechatronics, robotics, autonomous systems, tactile sensing, materials engineering, tribology, and computational design. His research connects mechanical analysis with robotic applications and emerging computational approaches, including path planning, structural optimization, sensing, and material-property prediction. The breadth of these activities and their relevance to intelligent engineering systems provide a coherent foundation for recognition through the Innovative Research Award in the field of contemporary engineering and robotics.

References

  1. Elsevier. (n.d.). Scopus author details: Ahmed Fouly, Author ID 59573587400. Scopus.
    https://www.scopus.com/pages/authors/59573587400
  2. Google Scholar. (n.d.). Ahmed Fouly Citation Profile. Google Scholar.
    https://scholar.google.com/citations?user=kFtpe9wAAAAJ&hl=en
  3. Ahmed Fouly. Design and Modeling of Micro Tactile Sensor with Three Contact Tips for Self-Compensation of Contact Error in Soft Tissue Elasticity Measurement.
    https://doi.org/10.1002/tee.22175
  4. A Fouly, AMR FathEl-Bab, MNA Nasr, AA Abouelsoud. (2017). Modeling and experimental testing of three-tip configuration tactile sensor for compensating the error due to soft tissue surface irregularities during stiffness detection.
    https://doi.org/10.1016/j.measurement.2016.11.032
  5. Abouhussein, O., & Fouly Mohamed, A. (2025). Energy-efficient propeller-driven climbing robot design based on glass-fiber reinforced polymer. Polimery, 70(7–8), 455–467.
    https://doi.org/10.14314/polimery.2025.7.3

Genliang Xiong | Robotics & Autonomous Systems | Innovative Research Award

Innovative Research Award

Genliang Xiong
Shanghai University of Engineering Science

Genliang Xiong
Affiliation Shanghai University of Engineering Science
Country China
Scopus ID 34769433000
Documents 41
Citations 193
h-index 8
Subject Area Robotics & Autonomous Systems
Event World Electrical Engineering Awards
ORCID 0000-0002-1303-6980

The Innovative Research Award recognizes sustained scholarly contributions that advance scientific knowledge through original research, methodological development, and technological innovation. Genliang Xiong has established a research profile in robotics and autonomous systems through publications addressing intelligent robotic control, mechatronic engineering, and industrial automation. His academic record demonstrates continued engagement with engineering research, interdisciplinary collaboration, and dissemination through peer-reviewed publications indexed by recognized international databases. These achievements provide an evidence-based foundation for professional recognition within the World Electrical Engineering Awards.[1][2]

Abstract

Genliang Xiong has contributed to research in robotics and autonomous systems through investigations involving intelligent manufacturing, robotic control technologies, mechatronic integration, and automation engineering. His publication portfolio reflects continued participation in internationally indexed scholarly communication while supporting technological development relevant to industrial applications. Citation performance, publication output, and interdisciplinary collaboration collectively indicate measurable academic influence. The Innovative Research Award acknowledges these sustained contributions, recognizing research quality, scientific rigor, and practical engineering relevance while encouraging continued advancement in robotics, electrical engineering, and autonomous technologies that address evolving industrial and societal challenges through responsible scientific innovation.[1][4]

Keywords

Robotics, Autonomous Systems, Intelligent Manufacturing, Industrial Automation, Mechatronics, Electrical Engineering, Robotic Control, Engineering Research, Automation Technology, Smart Robotics.

Introduction

Modern robotics research integrates mechanical engineering, electronics, intelligent algorithms, sensing technologies, and automation to improve industrial efficiency and operational reliability. Researchers working in this interdisciplinary field contribute by developing innovative methods that strengthen robotic performance while supporting broader technological advancement. Such work provides valuable foundations for scientific progress and engineering practice across manufacturing and autonomous applications.[3]

Research Profile

Genliang Xiong’s research activities emphasize robotics, autonomous systems, intelligent control, and mechatronic engineering. His scholarly profile demonstrates consistent publication within internationally indexed journals while contributing to technological understanding of robotic applications. Documented citation metrics and research visibility indicate continuing academic engagement and recognition within engineering research communities.[1]

Research Contributions

Research contributions include studies supporting robotic intelligence, industrial automation, and integrated engineering systems capable of improving operational precision and efficiency. These investigations combine theoretical understanding with practical implementation, helping expand engineering knowledge while encouraging technological innovation applicable to manufacturing environments and automated industrial processes.[2][4]

Publications

The documented publication record includes forty-one indexed scholarly documents spanning robotics, intelligent systems, automation engineering, and related technological disciplines. These publications demonstrate continued dissemination of research outcomes through recognized academic channels while supporting collaboration, peer evaluation, and broader accessibility within the international engineering research community.[1]

Research Impact

Research influence is reflected through citation activity, scholarly visibility, and continued engagement with topics relevant to robotics and autonomous technologies. Citation metrics complement qualitative evidence of academic contribution by demonstrating that published work has informed subsequent investigations while supporting knowledge development across engineering disciplines and industrial innovation.[1][5]

Award Suitability

The Innovative Research Award appropriately recognizes sustained scholarly productivity, measurable research impact, and meaningful scientific contributions within robotics and autonomous systems. Available academic indicators demonstrate a balanced combination of publication performance, citation activity, and engineering relevance, supporting professional recognition while encouraging continued advancement in electrical engineering and automation research.[1][2]

Conclusion

Genliang Xiong’s scholarly profile reflects continued participation in robotics and autonomous systems research through internationally indexed publications, measurable citation performance, and engineering-oriented investigations. Recognition through the Innovative Research Award acknowledges these documented academic achievements while emphasizing the continuing importance of responsible research, technological innovation, and scientific collaboration within contemporary electrical engineering and robotics.[1]

External Links

References

  1. Elsevier. (n.d.). Scopus author details: Genliang Xiong, Author ID 34769433000. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=34769433000
  2. ORCID. (n.d.). ORCID record: Genliang Xiong.
    https://orcid.org/0000-0002-1303-6980
  3. Robotics and Autonomous Systems. (2026). A review of dual-arm robot manipulation technology: Current status, challenges, and future development directions.
    https://doi.org/10.1016/j.robot.2026.105485
  4. Journal of Robotics. (2020). Cascaded Control of Flexible-Joint Robots Based on Sliding-Mode Estimator Approach.
    https://doi.org/10.1155/2020/8861847
  5. World Electrical Engineering Awards. (2026). Award information and evaluation framework.
    https://electricalaward.com/