Multiscale fatigue crack initiation in hierarchical additively manufactured alloys

L Luc N. Capaldi (Mechanical Engineering and Applied Mechanics, University of Pennsylvania) J Jamie Ford (Singh Center for Nanotechnology, University of Pennsylvania) S Sage Fulco (Mechanical Engineering and Applied Mechanics, University of Pennsylvania) R Rajeev K. Rai (Materials Science and Engineering, University of Pennsylvania) W Wuxian Yang (Aerospace and Mechanical Engineering, University of Southern California) S Stephen Ching (Bioengineering, University of Pennsylvania) E Eric A. Stach (Department of Materials Science and Engineering, University of Pennsylvania, 3231 Walnut Street, Philadelphia, Pennsylvania 19104, United States) K Kevin T. Turner (Mechanical Engineering and Applied Mechanics, University of Pennsylvania) W Wen Chen (Department of Immunology, St. Jude Children’s Research Hospital) O Ottman A. Tertuliano (Department of Mechanical Engineering and Applied Mechanics)

Abstract

Bioinspired hierarchical microstructures offer a route toward engineered fatigue resistance in additively manufactured alloys. However, it remains unclear how discrete structural constituents independently govern damage accumulation, particularly during the critical fatigue initiation regime where short cracks strongly interact with local microstructure. Here, we investigate multiscale fatigue initiation in a dual-phase, nanolamellar AlCoCrFeNi 2.1 high-entropy alloy. By comparing microscale specimens that isolate the nanolamellar structure against macroscale specimens containing the full melt-pool architecture, we identify size-dependent fatigue initiation mechanisms. We find that failure is dictated by nanolamellar interfaces at the microscale, whereas mesoscale melt pool boundaries serve to initiate fatigue at the macroscale. This mechanistic shift is accompanied by a transition from macroscale quasi-brittle failure to microscale plasticity-driven crack extension. Our results provide a physical framework for understanding how structural hierarchy governs the transition from discrete microstructural deformation to continuum fatigue fracture behavior, informing the design of damage-tolerant, additively manufactured alloys.

Article Details

Volume / Issue Vol. 123, Issue 20
Published May 19, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (10)

L

Luc N. Capaldi

Mechanical Engineering and Applied Mechanics, University of Pennsylvania

J

Jamie Ford

Singh Center for Nanotechnology, University of Pennsylvania

S

Sage Fulco

Mechanical Engineering and Applied Mechanics, University of Pennsylvania

R

Rajeev K. Rai

Materials Science and Engineering, University of Pennsylvania

W

Wuxian Yang

Aerospace and Mechanical Engineering, University of Southern California

S

Stephen Ching

Bioengineering, University of Pennsylvania

E

Eric A. Stach

Department of Materials Science and Engineering, University of Pennsylvania, 3231 Walnut Street, Philadelphia, Pennsylvania 19104, United States

K

Kevin T. Turner

Mechanical Engineering and Applied Mechanics, University of Pennsylvania

W

Wen Chen

Department of Immunology, St. Jude Children’s Research Hospital

O

Ottman A. Tertuliano

Department of Mechanical Engineering and Applied Mechanics