Dr. Jie Li | Engineering |Editorial Board Member

Dr. Jie Li | Engineering |Editorial Board Member

Beijing University of Chemical Technology | China

Dr. Jie Li is an emerging and highly promising researcher in the field of power engineering, engineering thermophysics, and advanced composite materials, known for his strong technical foundations, innovative thinking, and growing academic influence. He is currently affiliated with Beijing University of Chemical Technology, where he conducts cutting-edge research on composite material lightweight structural design, multilayer heat conduction mechanisms, torsional lamination technology, and anisotropic thermal functional materials. Dr. Li focuses on establishing high-performance lightweight structural systems through multilayer thermal resistance modelling, providing scientific solutions for next-generation energy systems, aerospace materials, and high-efficiency heat-transfer structures. His research achievements include 25 published academic documents, which have collectively received 661 citations across 597 documents, reflected by an impressive h-index of 16, underscoring his expanding academic visibility and contribution to the materials and thermal sciences community. Dr. Li is the author of impactful research such as Lamination Magic for Heat Transfer: Anisotropic Functional Composites Based on Multilayer Thermal Conductivity Modeling, demonstrating his expertise in coupling theoretical modelling with experimental validation to enhance material performance. In addition to his research accomplishments, Dr. Li has received multiple academic honors, including doctoral scholarships, national graduate scholarships, and merit-based awards, recognizing his excellence, dedication, and leadership in graduate studies. He possesses strong capabilities in mechanical design, manufacturing technology, 3D modelling, finite-element analysis, and simulation software, being proficient in SolidWorks, AutoCAD, 3D-Deform, ANSYS, Origin, and integrated digital research tools. Dr. Li’s innovative approach to composite structural engineering, combined with his technical expertise and consistent research output, positions him as a rising scholar capable of making long-term contributions to high-performance materials engineering and thermophysical system design.

Profile: Orcid | Scopus

Featured Publications

Li, J. (2025). HLDP nano-assembly boosts monosultap insecticidal activity against Asian corn borers through enhanced neurotoxicity and energy depletion. Pesticide Biochemistry and Physiology.

Li, J. (2025). Naphthalimide-conjugated spiropyran: Dual-state emission and photo-responsive dynamic fluorescence color for information encryption application. Advanced Functional Materials.

Assist. Prof. Dr. Shiyu Wei | Engineering | Editorial Board Member

Assist. Prof. Dr. Shiyu Wei | Engineering | Editorial Board Member

Xinjiang University | China

Assist. Prof. Dr. Wei Shiyu is an accomplished and forward-thinking researcher in advanced manufacturing, ultrasonic vibration–assisted machining, and laser processing, recognized for his scientific rigor, engineering innovation, and growing international influence. He serves as an Assistant Professor at the College of Mechanical Engineering, Xinjiang University, where he contributes to high-level teaching, research, and postgraduate supervision. Dr. Wei earned his Doctor of Engineering degree from Northeastern University, building strong foundations in smart manufacturing, machining science, and precision engineering. His research focuses on 3D ultrasonic vibration-assisted turning, microstructure evolution in machining, surface integrity optimization, material migration mechanisms, and hybrid energy-field manufacturing, bridging theoretical modeling with experimental validation. Dr. Wei has produced impactful scholarship reflected in 10 published documents, 88 citations across 58 documents, and a steadily rising h-index of 6, underscoring the influence and relevance of his work within the advanced manufacturing research community. He serves as principal investigator and key participant on multiple competitive scientific projects, including studies on ultrasonic vibration–assisted in situ ceramic coating formation, CO₂ pipeline flow assurance systems, hydrogen extraction technologies, and composite flexible cutting under electric–thermal–mechanical coupling fields. His work demonstrates strong interdisciplinary integration across mechanical engineering, materials science, green manufacturing, and energy processing. Dr. Wei has published in international journals such as Precision Engineering, Measurement, Ultrasonics, Machining Science and Technology, and The International Journal of Advanced Manufacturing Technology, where his studies on ultrasonic vibration–assisted machining are widely recognized for advancing efficient, high-precision, and low-damage processing of difficult materials. In addition to journal contributions, he holds officially granted patents, further highlighting his applied engineering impact. Through academic leadership, innovative research, and persistent pursuit of excellence, Assist. Prof. Dr. Wei Shiyu stands out as a rapidly emerging scholar in mechanical engineering and a compelling candidate for prestigious recognitions and research awards.

Profile: Scopus

Featured Publications

Wei, S., Zou, P., Fang, L., & Duan, J. (2023). Theoretical and experimental study of 3D ultrasonic vibration-assisted turning driven by two actuators. Measurement, 0263–2241, 112865.

Wei, S., Zou, P., Fang, L., & Duan, J. (2023). Microstructure evolution of medium carbon steel during heat-assisted 3D ultrasonic vibration-assisted turning. Ultrasonics, 107129.

Wei, S., Zou, P., Zhang, J., & Duan, J. (2022). Theoretical and experimental research on 3D ultrasonic vibration-assisted turning driven by a single actuator. The International Journal of Advanced Manufacturing Technology, 121, 1173–1190.

Wei, S., Zou, P., Duan, J., & Usman, M. M. (2022). Study on surface roughness model of 3D ultrasonic vibration-assisted turning driven by a single actuator. The International Journal of Advanced Manufacturing Technology, 123, 4413–4426.

Zhi-Qiang Tao | Mechanical Engineering| Best Researcher Award

Dr .Zhi-Qiang Tao | Mechanical Engineering| Best Researcher Award

Research Contributions:
  • With over 20 peer-reviewed technical papers published in international journals and conference proceedings, Dr. Tao has significantly contributed to the understanding and advancement of his specialized research areas. His publications reflect the breadth of his knowledge and dedication to his field.
 Dr . Zhi-Qiang Tao, Zhejiang Ocean University, China

Profile

Scopus

🎓Early Academic Pursuits

  • Zhi-Qiang Tao received his Ph.D. in Mechanical Engineering from Beijing University of Technology in 2018. During his doctoral studies, Tao focused on mechanical dynamics and fatigue-related phenomena, laying the foundation for his future research in fatigue mechanisms, particularly in multiaxial and very high cycle fatigue.

💼Professional Endeavors

  • After completing his Ph.D., Zhi-Qiang Tao became a Research Assistant at the Robotics College of Beijing Union University. Here, he collaborated with colleagues on cutting-edge research in robotics and mechanical engineering, contributing significantly to the development of fatigue analysis tools and technologies. His role also involved mentoring students and assisting in various research projects.

🔬 CONTRIBUTIONS AND RESEARCH FOCUS

  • Zhi-Qiang Tao has focused extensively on:
    • Mechanical Dynamics
    • Multiaxial Fatigue
    • Very High Cycle Fatigue (VHCF)

    His research investigates how materials respond under extreme conditions over extended periods, helping industries understand material durability and mechanical resilience. His work has applications across sectors such as automotive, aerospace, and robotics, providing critical insights into the longevity and safety of components.

🏆IMPACT AND INFLUENCE

  • Tao’s research on very high cycle fatigue is of particular importance, as it addresses the need for understanding how materials behave under more than one million cycles of loading. His work helps improve the design of mechanical systems to avoid failures, thus enhancing safety and reliability in critical infrastructures. With over 20 peer-reviewed technical papers published in international journals and conference proceedings, his work has been widely cited and recognized. His contributions serve as a foundation for ongoing studies in fatigue failure mechanisms.

🏅ACADEMIC CITES

  • Zhi-Qiang Tao has received numerous citations in the fields of mechanical dynamics and fatigue studies, underscoring his impact on the academic community. His contributions have been referenced in studies related to material resilience, fatigue life prediction, and failure analysis, emphasizing his role in advancing the understanding of fatigue phenomena in engineering materials.

🔮LEGACY AND FUTURE CONTRIBUTIONS

  • Zhi-Qiang Tao’s legacy in the field of mechanical engineering is one of persistence and innovation. His future contributions are expected to continue influencing how industries approach material fatigue and structural design. As fatigue becomes an increasingly crucial aspect of robotic systems, Tao’s work will play a pivotal role in ensuring mechanical components can withstand extreme conditions and prolonged use. Through his research, he has not only contributed to academia but also provided valuable insights for industry applications that focus on extending the life cycle of mechanical components, enhancing both safety and performance.

📰PUBLICATIONS

  • A new probabilistic control volume scheme to interpret specimen size effect on fatigue life of additively manufactured titanium alloys
    Authors: Tao, Z.-Q., Wang, Z., Pan, X., Qian, G., Hong, Y.
    Journal: International Journal of Fatigue, 2024, 183, 108262
  •  Surface roughness prediction and roughness reliability evaluation of CNC milling based on surface topography simulation
    Authors: Zhang, Z., Lv, X., Qi, B., Zhang, M., Tao, Z.
    Journal: Eksploatacja i Niezawodnosc, 2024, 26(2), 183558
  •  Life prediction method based on damage mechanism for titanium alloy TC4 under multiaxial thermo-mechanical fatigue loading
    Authors: Li, D.-H., Shang, D.-G., Mao, Z.-Y., Cong, L.-H., Tao, Z.-Q.
    Journal: Engineering Fracture Mechanics, 2023, 282, 109206
  • Multiaxial fatigue life estimation based on weight-averaged maximum damage plane under variable amplitude loading
    Authors: Tao, Z.-Q., Qian, G., Li, X., Zhang, Z.-L., Li, D.-H.
    Journal: Journal of Materials Research and Technology, 2023, 23, pp. 2557–2575
  •  Multiaxial fatigue life prediction by equivalent energy-based critical plane damage parameter under variable amplitude loading
    Authors: Tao, Z.-Q., Qian, G., Sun, J., Zhang, Z.-L., Hong, Y.
    Journal: Fatigue and Fracture of Engineering Materials and Structures, 2022, 45(12), pp. 3640–3657