Hamish L. Fraser
Engineering · The Ohio State University
Publications
514
Citations
21,146
Est. group size
~5
Recurring co-author estimate
Active years
58
Publishing since 1969
Hamish L. Fraser's research focuses on the structure and properties of metallic alloys, particularly titanium alloys, high entropy alloys, and superalloys, with an emphasis on understanding how atomic-scale and microstructural features determine mechanical performance. A significant portion of this work examines materials made by additive manufacturing (3D printing of metals), including studies of strength, fatigue, corrosion, and deformation mechanisms, often using advanced electron microscopy and tomography techniques.
Publication output has been relatively steady but shows a modest decline over the past few years, dropping from a peak of around 15 papers per year in 2020 to roughly 6-8 per year in 2024-2025.
Generated by claude-sonnet-5 from public bibliographic data · Jul 20, 2026
- Achieving high strain hardening and strength in an additively manufactured titanium alloy
Nature Communications · 2025
- Phase transformation pathways in BCC-B2 superalloys
Scripta Materialia · 2025
- Fatigue and damage tolerance performance of additively-manufactured titanium alloys for structural application: A comprehensive review
Materials Science and Engineering R Reports · 2025
- Unveiling the deformation mechanisms of BCC-superalloys
Scripta Materialia · 2025
- Aqueous corrosion of additively manufactured multi principal element alloys: a critical review
npj Materials Degradation · 2025
- Unique twinning mode and extended twin boundary core structure associated with symmetry breaking in a multifunctional Ti-Nb-based alloy
Acta Materialia · 2025
- Determination of Active Deformation Mechanisms in a NbTaTiV&nbsp;<span>High Entropy Alloy</span>
SSRN Electronic Journal · 2025
- Whole-tissue imaging reveals intrastrain diversity shapes the spatial organization of <i>Pseudomonas aeruginosa</i> in a murine infection model
mSphere · 2025
- Current Progress in Aqueous Corrosion of Multi-Principal Element Alloys
Metallurgical and Materials Transactions A · 2024
- Some insights into the high temperature phase stability of the BCC + B2 microstructure in aluminum containing refractory high entropy alloys
Journal of Materials Science · 2024
- Current progress in corrosion of multi principal element alloys
arXiv (Cornell University) · 2024
- Underlying factors determining grain morphologies in high-strength titanium alloys processed by additive manufacturing
Nature Communications · 2023
- Unique Yttria Nanoparticle Strengthening in an Inconel 718 Superalloy Fabricated by Additive Manufacturing
Advanced Materials Technologies · 2023
- Role of Aluminum rejection from isothermal ω precipitates on the formation of α precipitates in the metastable β-titanium alloy Ti-10V-2Fe-3Al
Scripta Materialia · 2023
- Fine-grained Ti-Cu microstructures by solid state thermal cycling
Additive manufacturing · 2023
- Scripta Materialia×21
- Microscopy and Microanalysis×16
- Acta Materialia×15
- arXiv (Cornell University)×5
- Nature Communications×4
- Zachary Kloenne
Materials Science · The Ohio State University
- Dennis M. Dimiduk
Engineering · The Ohio State University
- David Johnson
Engineering · Purdue University West Lafayette
- G.B. Viswanathan
Engineering · The Ohio State University
- M.J. Mills
Engineering · The Ohio State University
This profile was generated automatically from public scholarly data (OpenAlex). Group size and activity levels are estimates derived from co-authorship patterns.
Last updated Jul 19, 2026.
Claim or correct this profile