Effect of heat-input level on microstructure and mechanical properties of SDS-FSW joints in thick AA2219

Q. Xu, H. Liu, X. Shan, Y. Liu, Y. Ding, J. Xiao, G. Li show affiliations and emails
Received 10 February 2026; Accepted 09 June 2026;
Citation: Q. Xu, H. Liu, X. Shan, Y. Liu, Y. Ding, J. Xiao, G. Li. Effect of heat-input level on microstructure and mechanical properties of SDS-FSW joints in thick AA2219. Lett. Mater., 2026, 16(3) 262-268
BibTex   https://doi.org/10.48612/letters/2026-3-262-268

Abstract

Heat-input level governs weld formation stability and the resulting microstructure–property response in simultaneous double-sided friction stir welding (SDS-FSW) of thick AA2219-T6Simultaneous double-sided friction stir welding (SDS-FSW) enables solid-state joining of thick aluminum alloys, yet joint integrity and mechanical performance remain highly sensitive to heat-input conditions. Here, thick AA2219‑T6 plates were welded under two representative heat-input levels, quantified by an empirical heat-input index (HI = 7 and 22). Multi-point thermocouples were employed to quantify thermal cycles using peak temperature and high-temperature exposure time (defined as the cumulative duration above a critical temperature threshold), and weld formation, second-phase particle redistribution, grain structure, and mechanical responses were assessed by macro-etching / optical microscopy, microhardness testing, tensile testing, and EBSD. At HI = 7, the joint showed stable formation and a compact stirred region with a higher strength–ductility balance. In contrast, HI = 22 produced pronounced flash and a void defect, together with a deeper hardness trough and degraded tensile properties. Thermal measurements showed that the higher-HI condition resulted in broader thermal cycles and longer high-temperature exposure, providing a quantitative basis for correlating heat-input level with softening and defect susceptibility. EBSD further reveals that HI = 22 yields a coarser recrystallized structure with a lower HAGB fraction (dAVE = 8.11 μm, HAGB = 61.9 %) than HI = 7 (dAVE = 5.28 μm, HAGB = 71.4 %), accompanied by more evident particle clustering / banding. These results show that the heat-input level strongly affects weld formation, microstructural characteristics, and mechanical performance in SDS-FSW of thick AA2219‑T6 plates, and provide experimental support for process optimization.

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