Best Paper Award
| Wenjie Feng | |
|---|---|
| Affiliation | Shijiazhuang Tiedao University |
| Country | China |
| Scopus ID | 12752270200 |
| Documents | 216 |
| Citations | 3,303 |
| h-index | 30 |
| Subject Area | Engineering |
| Event | International Research Excellence and Best Paper Awards |
Wenjie Feng
Wenjie Feng of Shijiazhuang Tiedao University, China is recognized with the Best Paper Award for research excellence in the field of Engineering. The recognized research, titled “Subcritical growth of penny-shaped fatigue cracks in a superconducting cylinder induced by the axial periodic motion of a permanent magnet”, investigates the subcritical growth behavior of penny-shaped fatigue cracks in a superconducting cylinder under the influence of axial periodic motion generated by a permanent magnet.
Abstract
This article recognizes Wenjie Feng with the Best Paper Award for research excellence in Engineering. The recognized paper, “Subcritical growth of penny-shaped fatigue cracks in a superconducting cylinder induced by the axial periodic motion of a permanent magnet”, focuses on the behavior of penny-shaped fatigue cracks in a superconducting cylinder subjected to axial periodic motion induced by a permanent magnet. The research addresses fatigue crack growth and the interaction between mechanical crack behavior and externally induced periodic motion.
Keywords
Best Paper Award, Wenjie Feng, Engineering, Shijiazhuang Tiedao University, Fatigue Crack Growth, Penny-Shaped Cracks, Superconducting Cylinder, Permanent Magnet, Axial Periodic Motion, Crack Propagation, Fracture Mechanics, Fatigue Mechanics, Structural Integrity, Superconducting Systems, Mechanical Engineering.
Introduction
The recognized research examines the subcritical growth of penny-shaped fatigue cracks in a superconducting cylinder under the influence of axial periodic motion of a permanent magnet. Fatigue crack propagation is an important engineering consideration because progressive crack growth can influence the durability, reliability, and structural integrity of engineered components.
The research combines concepts associated with fatigue crack growth, fracture mechanics, superconducting structures, and periodic mechanical excitation. By considering crack behavior under a specific cyclic motion environment, the work provides a focused engineering perspective on the mechanisms associated with subcritical fatigue crack development.
Research Profile
Wenjie Feng is affiliated with Shijiazhuang Tiedao University in China and is associated with the subject area of Engineering. The provided academic information records 216 documents, 3,303 citations, and an h-index of 30. These bibliometric indicators provide context for the researcher’s indexed scholarly record.
The researcher is identified by the supplied Scopus Author ID 12752270200. The Scopus profile provides a persistent author identifier for distinguishing the researcher’s scholarly record and supporting the discoverability of associated publications.
Research Contributions
The recognized paper contributes to engineering research by examining the subcritical propagation of penny-shaped fatigue cracks within a superconducting cylinder. Its focus on crack growth under axial periodic motion provides a specific framework for considering fatigue behavior in a mechanically dynamic environment.
The study is relevant to broader engineering discussions involving fatigue durability, crack propagation, fracture mechanics, structural reliability, and superconducting mechanical systems. Understanding subcritical crack growth can support the assessment of component behavior before catastrophic failure occurs.
Publications
The principal publication associated with this recognition is “Subcritical growth of penny-shaped fatigue cracks in a superconducting cylinder induced by the axial periodic motion of a permanent magnet.” The supplied information identifies this paper as the research basis for the Best Paper Award recognition in Engineering.
The provided academic profile records 216 documents for the researcher. The supplied information does not include the journal name, publication year, volume, issue, page range, or DOI for the recognized paper; consequently, no unverified bibliographic details have been added.
Research Impact
The provided academic information records 3,303 citations across 216 documents, together with an h-index of 30. These indicators provide evidence of a substantial indexed scholarly record and significant citation activity associated with the researcher’s publications.
The focus on subcritical fatigue crack growth is particularly relevant to engineering reliability because the characterization of progressive crack development can help researchers understand the conditions associated with damage accumulation and long-term component performance.
Award Suitability
The Best Paper Award recognizes research demonstrating academic quality, relevance, originality, and meaningful contribution to its respective discipline. The recognized work by Wenjie Feng aligns with these objectives through its focused investigation of fatigue crack growth in a superconducting cylinder subjected to axial periodic motion induced by a permanent magnet.
The researcher’s supplied scholarly profile, consisting of 216 documents, 3,303 citations, and an h-index of 30, further provides quantitative context for the recognition and demonstrates an established indexed research record.
Conclusion
Wenjie Feng is recognized with the Best Paper Award for research addressing subcritical fatigue crack growth in a superconducting cylinder under axial periodic motion induced by a permanent magnet. The recognized publication, “Subcritical growth of penny-shaped fatigue cracks in a superconducting cylinder induced by the axial periodic motion of a permanent magnet,” presents a focused engineering investigation of fatigue crack behavior.
With 216 documents, 3,303 citations, and an h-index of 30 according to the provided academic information, the researcher has a substantial indexed scholarly record. The Best Paper Award recognition highlights the significance of the selected research within engineering mechanics, fatigue analysis, fracture behavior, and superconducting structural systems.
External Links
References
- Wenjie Feng – Scopus Author Profile. Scopus Author ID 12752270200.
https://www.scopus.com/authid/detail.uri?authorId=12752270200
- Best Paper Awards. Best Paper Awards website and award information.
https://bestpaperawards.com/