Additively Manufacturable High‐Strength Aluminum Alloys with Coarsening‐Resistant Microstructures Achieved via Rapid Solidification

S S. Mohadeseh Taheri‐Mousavi (Department of Mechanical Engineering Massachusetts Institute of Technology 77 Massachusetts Avenue Cambridge MA 02139 USA) M Michael Xu (Department of Materials Science and Engineering, Massachusetts Institute of Technology) F Florian Hengsbach (Department of Mechanical Engineering Paderborn University Mersinweg 9 33100 Paderborn Germany) C Clay Houser (Department of Materials Science and Engineering Massachusetts Institute of Technology 77 Massachusetts Avenue Cambridge MA 02139 USA) Z Zhaoxuan Ge (Department of Materials Science and Engineering Carnegie Mellon University 5000 Forbes Avenue Pittsburgh PA 15213 USA) B Benjamin Glaser S Shaolou Wei M Mirko Schaper (Department of Mechanical Engineering Paderborn University Mersinweg 9 33100 Paderborn Germany) J James M. LeBeau G Greg B. Olson (Department of Materials Science and Engineering Massachusetts Institute of Technology 77 Massachusetts Avenue Cambridge MA 02139 USA) A A. John Hart (Department of Mechanical Engineering Massachusetts Institute of Technology 77 Massachusetts Avenue Cambridge MA 02139 USA)

Abstract

Abstract Additively manufactured aluminum (Al) alloys with high strength have broad industrial applications. Strength promotion necessitates a high‐volume fraction of small, closely spaced precipitates to effectively impede dislocation motion. Here, it is shown that for certain compositions in the Al‐Er‐Zr‐Y‐Yb‐Ni alloy class, L1 2 ‐Al 3 M phases, the primary strength contributor, can initially precipitate as submicron‐scale (≈100 nm) metastable ternary phases under the rapid solidification of powder bed additive manufacturing; yet the subsequent coarsening‐resistant L1 2 ‐Al 3 M phases that precipitate during heat treatment remain at the nanometer scale, imparting high strength. A candidate alloy is designed using hybrid calculation of phase diagrams (CALPHAD)‐based integrated computational materials engineering (ICME) and Bayesian optimization algorithms. Powder is manufactured for this alloy and is additively manufactured into crack‐free macroscale specimens with a strength that is five‐fold that of the equivalent cast alloy and comparable to wrought Al 7075. After aging at 400 °C for 8 h, the room‐temperature tensile strength reaches 395 MPa, which is 50% stronger than the best‐known benchmark printable Al alloy. This integrated computational‐experimental workflow shows the considerable potential to exploit rapid solidification in additive manufacturing to design alloys with commercially deployable properties.

Article Details

Volume / Issue Vol. 38, Issue 4
Published January 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (11)

S

S. Mohadeseh Taheri‐Mousavi

Department of Mechanical Engineering Massachusetts Institute of Technology 77 Massachusetts Avenue Cambridge MA 02139 USA

M

Michael Xu

Department of Materials Science and Engineering, Massachusetts Institute of Technology

F

Florian Hengsbach

Department of Mechanical Engineering Paderborn University Mersinweg 9 33100 Paderborn Germany

C

Clay Houser

Department of Materials Science and Engineering Massachusetts Institute of Technology 77 Massachusetts Avenue Cambridge MA 02139 USA

Z

Zhaoxuan Ge

Department of Materials Science and Engineering Carnegie Mellon University 5000 Forbes Avenue Pittsburgh PA 15213 USA

B

Benjamin Glaser

S

Shaolou Wei

M

Mirko Schaper

Department of Mechanical Engineering Paderborn University Mersinweg 9 33100 Paderborn Germany

J

James M. LeBeau

G

Greg B. Olson

Department of Materials Science and Engineering Massachusetts Institute of Technology 77 Massachusetts Avenue Cambridge MA 02139 USA

A

A. John Hart

Department of Mechanical Engineering Massachusetts Institute of Technology 77 Massachusetts Avenue Cambridge MA 02139 USA