TY - JOUR
T1 - Superior high-temperature mechanical properties of crack-free IN738LC superalloy additively manufactured by L-DED via novel self-adjustable baseplate optimization
AU - Ma, Liqian
AU - Chai, Haozhi
AU - Lu, Xufei
AU - Hu, Yunlong
AU - Wang, Meng
AU - Liu, Fengxian
AU - Lin, Xin
N1 - Publisher Copyright:
© 2026 The Author(s).
PY - 2026/4
Y1 - 2026/4
N2 - Ni-based superalloy IN738LC is critical for hot-section components of gas turbines and aeroengines due to its high-temperature strength and oxidation resistance, yet its laser directed energy deposition (L-DED) is limited by intrinsic cracking susceptibility. This work introduces a self-adjustable baseplate with movable tenons enabling crack-free L-DED of relatively large IN738LC single-wall builds. Thermo-mechanical simulations show that tenon motion regulates interfacial stress, converting tensile stresses into compressive ones during deposition. Concurrently, the self-adjustable baseplate promotes thermal accumulation, driving in-situ γ′ precipitation, coarsening, and refined distribution. The resulting as-built IN738LC exhibits exceptional high-temperature mechanical performance, with ultimate tensile strengths of 948 MPa at 800 °C, 628 MPa at 900 °C, and 361 MPa at 1000 °C, and corresponding elongations of 18%, 24%, and 21%. These values exceed previously reported data for conventionally processed or additively manufactured IN738LC and constitute the first reliable high-temperature tensile dataset for L-DED IN738LC. Standard post-deposition heat treatment yields a bimodal γ′ morphology with modest ductility improvement. This study provides a process-integrated stress-mitigation strategy combining adaptive mechanical constraint and thermal regulation, offering a practical approach to the direct fabrication of high-performance non-weldable Ni-based superalloys.
AB - Ni-based superalloy IN738LC is critical for hot-section components of gas turbines and aeroengines due to its high-temperature strength and oxidation resistance, yet its laser directed energy deposition (L-DED) is limited by intrinsic cracking susceptibility. This work introduces a self-adjustable baseplate with movable tenons enabling crack-free L-DED of relatively large IN738LC single-wall builds. Thermo-mechanical simulations show that tenon motion regulates interfacial stress, converting tensile stresses into compressive ones during deposition. Concurrently, the self-adjustable baseplate promotes thermal accumulation, driving in-situ γ′ precipitation, coarsening, and refined distribution. The resulting as-built IN738LC exhibits exceptional high-temperature mechanical performance, with ultimate tensile strengths of 948 MPa at 800 °C, 628 MPa at 900 °C, and 361 MPa at 1000 °C, and corresponding elongations of 18%, 24%, and 21%. These values exceed previously reported data for conventionally processed or additively manufactured IN738LC and constitute the first reliable high-temperature tensile dataset for L-DED IN738LC. Standard post-deposition heat treatment yields a bimodal γ′ morphology with modest ductility improvement. This study provides a process-integrated stress-mitigation strategy combining adaptive mechanical constraint and thermal regulation, offering a practical approach to the direct fabrication of high-performance non-weldable Ni-based superalloys.
KW - Adjustable baseplate
KW - Crack suppression
KW - High-temperature properties
KW - Laser additive manufacturing
KW - Nonweldable Ni-based superalloys
UR - https://www.scopus.com/pages/publications/105044280092
U2 - 10.1016/j.matdes.2026.115776
DO - 10.1016/j.matdes.2026.115776
M3 - 文章
AN - SCOPUS:105044280092
SN - 0264-1275
VL - 264
JO - Materials and Design
JF - Materials and Design
M1 - 115776
ER -