ABSTRACT The impact resistance of titanium‐based fiber metal laminates (Ti‐FMLs) is often limited by weak metal‐composite interfaces and non‐optimal ply sequences. To overcome these limitations, the low‐velocity impact performance of Ti‐FMLs was enhanced through synergistic interface engineering and structural optimization. Ti‐6Al‐4V sheets were modified via abrasion (A), sandblasting (S), alkaline anodization (AAn), and EDTA anodization (EAn), and combined with carbon fiber/epoxy prepreg in 0/90 and 45/−45 layups. Fracture toughness and impact tests revealed that the ASEAn treatment, by producing an optimal micro‐porous morphology, yielded the highest interface strength and impact resistance. Under various energy impacts, the laminate treated with ASEAn presents the least damage in the 0/90 laminates while the 45/−45 laminate with ASEAn treatment resisted perforation. A 3D finite element model with interface parameters defined by layup angle and surface treatment accurately captured the damage progression. The predicted results showed superior agreement with experiments (mean mismatch below 10% for maximum force and total displacement). This work conclusively identifies the synergy between high‐performance surface treatment and a 45/−45 ply sequence as the key to developing Ti‐FMLs with superior impact resistance, providing a reliable model for future design.
Tang et al. (Sun,) studied this question.
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