摘要
To investigate the low-velocity impact mechanical properties of typical layups in helicopter composite rotor blades, low-velocity impact tests were conducted on a typical hybrid layup [EW250F(0/90)/CF3052(45/ −45)3/CF3052(0/90)] laminate using a drop-weight apparatus. The low-velocity impact response curves were measured, and the damage characteristics were analyzed through dent depth, damage area, damage modes, and failure mechanisms. Quasi-static tensile tests and tension-tension fatigue tests were subsequently performed on the impacted laminates to determine their post-impact tensile residual strength, residual modulus, and fatigue limit strength. The experimental results revealed that: (1) At impact energies of 2.9 J and 3.6 J, the primary damage modes were delamination and matrix cracking. Residual deflection remained nearly negligible, with minimal variation in energy absorption capacity. However, the tensile residual strength exhibited a significant reduction, while the residual modulus showed only a slight decrease; (2) At impact energies of 7.2 J and 9.0 J, fiber breakage became the dominant damage mode. A pronounced increase in residual deflection and energy absorption capacity was observed. The tensile residual strength decreased marginally, whereas the tensile residual modulus declined substantially; (3) The primary failure modes during post-impact tension-tension fatigue were delamination and fiber breakage. The fatigue limit decreased significantly with increasing impact energy. The interfacial performance disparity between glass fiber and carbon fiber layers was identified as the primary cause of delamination damage.
| 投稿的翻译标题 | Post-impact static and fatigue properties of typical skins of helicopter composite blade |
|---|---|
| 源语言 | 繁体中文 |
| 页(从-至) | 505-518 |
| 页数 | 14 |
| 期刊 | Fuhe Cailiao Xuebao/Acta Materiae Compositae Sinica |
| 卷 | 43 |
| 期 | 1 |
| DOI | |
| 出版状态 | 已出版 - 1月 2026 |
关键词
- SEM analysis
- composite rotor blades
- laminate
- low velocity impact
- post-impact fatigue
- residual strength
指纹
探究 '复合材料桨叶典型铺层低速冲击后静力及疲劳性能试验' 的科研主题。它们共同构成独一无二的指纹。引用此
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