Welding of Advanced Aluminum–Lithium Alloys: Weldability, Processing Technologies, and Grain Structure Control
Abstract
1. Introduction
2. Generational Evolution and Weldability of Al-Li Alloys
3. Welding Processes for Al-Li Alloys
3.1. Laser Welding
3.2. Arc Welding
4. Microstructural Characteristics and Control Strategies in Al-Li Welds
4.1. Equiaxed Grain Zone (EQZ)

4.2. Columnar Grain Zone (CGZ)
5. Prospects and Future Work
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
| EQZ | Equiaxed grain zone |
| DLBW | Dual laser beam welding |
| TIG | Tungsten inert gas |
| PMZ | Partially melted zone |
| FZ | Fusion zone |
| CGZ | Columnar grain zone |
| VPPA | Variable polarity plasma arc |
| HAZ | Heat-affected zone |
| BM | Base metal |
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| Generation | Representative Alloy Systems | Composition | Weldability | Microstructural Characteristics | Welding Defects |
|---|---|---|---|---|---|
| 1st | Al-Mg-Li system (e.g., 1420) | High Li, Mg; minor Sc, Zr | Moderate; Mg reduces cracking, Li increases porosity | Equiaxed grains preferred | High porosity; reduced cracking |
| 2nd | Al-Cu-Li system (e.g., 2090, 1430, 1440, 8090, 1460) | 1–3 wt.% Cu; >2 wt.% Li; trace Sc | Poor; prone to solidification cracking and H porosity | Equiaxed grains preferred | Severe porosity; cracking along Cu-rich zones |
| 3rd | Advanced Al-Cu-Li-(Mg, Ag, Zn) systems (e.g., 2094, 2095, 2195, 2197, Airware™ 2196/2198, Weldalite™ 049/210) | Higher Cu/Li; trace Mg, Ag, Zn | Improved; better strength-ductility balance | Columnar grains preferred | Low porosity; crack-resistant |
| Material | Simulation Method | Model Assumptions | Application | Main Findings |
|---|---|---|---|---|
| Al-Li alloy | Computational Fluid Dynamics | Continuum medium; Gaussian heat source; laminar Newtonian flow | Simulation of weld pool flow, temperature distribution, and keyhole oscillation behavior | Melt flow–induced grain detachment promotes equiaxed grain formation [77] |
| Phase-Field Method | Multi-component dilute solution model; diffuse interface; crystallographic anisotropy | Simulation of nucleation, growth, and solute redistribution during solidification | Predicted columnar-to-equiaxed transition (CET) and solute segregation behavior [80] | |
| Finite Element Method | T-joint configuration; sequential thermomechanical coupling; double-ellipsoidal Gaussian heat source | Simulation of residual stress and deformation in specific welded structures | High compressive stress concentrated near T-joint weld toes [78] |
| Welding Process | Technique | Joint Efficiency | Porosity Control | Key Advantage | Possible Limitation |
|---|---|---|---|---|---|
| Laser welding | Heat input control [72] | 70.62–82.58% | with a porosity of 1.83–2.78% | Easily adjustable | Limited efficacy |
| Hybrid heat source [73] | - | with a porosity of 0.7–4.51% | Stable molten pool; negligible porosity | Requires specialized equipment | |
| Beam oscillation [36] | 49.04–65.91% | Observable reduction | Effective grain refinement | Requires specialized equipment | |
| Arc welding | Back gas-shielded [85] | 62.45% | Significantly reduced porosity | Easily adjustable | Limited efficacy for partial penetration |
| Pulsed current [27] | 90.09–91.58% | Observable reduction | Easily adjustable | Limited efficacy | |
| Ultrasonic vibration assistant [71] | 48.24–57.36% | Observable reduction | Effective grain refinement | Requires specialized equipment |
| Refinement Mechanism | Weld Microstructure Characteristics | Implementation Approach | Resulting Grain Size |
|---|---|---|---|
| Grain Detachment | Formation of bands of fine equiaxed grains aligned with the weld pool flow trajectory | High-speed fluid flow within the weld pool | Locally refined |
| Heterogeneous Nucleation | Formation of fine equiaxed grains, promoting the columnar-to-equiaxed transition | Filler wire containing TiC nanoparticles; Use of filler wire or base metal containing Sc or Zr | Significantly refined |
| Dendrite Fragmentation | Formation of fine equiaxed grains, promoting the columnar-to-equiaxed transition | Beam oscillation; Ultrasonic vibration assistance; Pulsed current process | Significantly refined |
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© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Li, Q.; Wang, Q.; Xu, Y.; Sun, P.; Wang, K.; Tong, X.; Wu, G.; Zhang, L.; Xu, Y.; Ding, W. Welding of Advanced Aluminum–Lithium Alloys: Weldability, Processing Technologies, and Grain Structure Control. Materials 2026, 19, 738. https://doi.org/10.3390/ma19040738
Li Q, Wang Q, Xu Y, Sun P, Wang K, Tong X, Wu G, Zhang L, Xu Y, Ding W. Welding of Advanced Aluminum–Lithium Alloys: Weldability, Processing Technologies, and Grain Structure Control. Materials. 2026; 19(4):738. https://doi.org/10.3390/ma19040738
Chicago/Turabian StyleLi, Qi, Qiman Wang, Yangyang Xu, Peng Sun, Kefan Wang, Xin Tong, Guohua Wu, Liang Zhang, Yong Xu, and Wenjiang Ding. 2026. "Welding of Advanced Aluminum–Lithium Alloys: Weldability, Processing Technologies, and Grain Structure Control" Materials 19, no. 4: 738. https://doi.org/10.3390/ma19040738
APA StyleLi, Q., Wang, Q., Xu, Y., Sun, P., Wang, K., Tong, X., Wu, G., Zhang, L., Xu, Y., & Ding, W. (2026). Welding of Advanced Aluminum–Lithium Alloys: Weldability, Processing Technologies, and Grain Structure Control. Materials, 19(4), 738. https://doi.org/10.3390/ma19040738

