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Micro-CT Inspection of Impact Damage in Carbon/Epoxy Rods

机译:微型CT检查碳/环氧棒中的冲击损伤

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Various configurations of unidirectional carbon/epoxy composite rods were impacted radially, inspected using micro-CT scanning equipment, and tested in axial compression to measure the residual strength after impact. The micro-CT data was used to calculate the peak crack area at a cross-section, and the total integrated crack volume along the entire length of the rods. This data was used to correlate the relationship between impact energy, internal damage, and residual strength. Solid cylindrical structural rods represent local members in three-dimensional composite lattice structures (e.g., based on Isogrid or IsoTruss? geometries). Unidirectional core specimens, 8 mm (5/16”) in diameter, were consolidated with various sleeve configurations and materials: i.e., sleeves differed in types (bidirectional braided or unidirectional spiral wraps), nominal sleeve coverage (full or half), and sleeve material (Nomex thread or Dunstone Hi-Shrink Tape). The unsupported length of the specimens used in this research was 50.8 mm (2”), ensuring a strength-controlled compression failure. The specimens were radially impacted with 2.5, 5.0, 7.5, 10.0, 15.0, and 20.0 J (1.9, 3.7, 5.6, 7.4, 11.1, and 14.8 ft-lbs), and compared to undamaged control specimens. After impact, the specimens were scanned using a Micro-CT Scanner at resolutions of 50 and 35 microns and subsequently tested in axial compression. The micro-CT scan images were analyzed and the peak crack area and total crack volume along the length of the specimen were measured. Similar to related research, as the impact energy increases, the residual compression-strength-afterimpact decreases. Specimens with shrink tape sleeves had the largest increase in peak crack area and overall crack volume while specimens with full spiral sleeves had the lowest increase in peak crack area and overall crack volume. A minor correlation exists between increases in peak crack area and overall crack volume and decreases in residual compression strength after impact.
机译:单向碳/环氧复合杆的各种配置径向地,使用微CT扫描设备检查,并在轴向压缩中进行测试以测量撞击后的残余强度。微型CT数据用于计算横截面处的峰裂纹区域,以及沿杆的整​​个长度的总集成裂缝体积。该数据用于与冲击能量,内部损伤和残余强度之间的关系相关联。固体圆柱形结构杆代表三维复合晶格结构中的局部构件(例如,基于Isogrid或Isotruss?几何形状)。直径为8毫米(5/16“)的单向核心样品,巩固了各种套筒配置和材料:即,套管不同类型(双向编织或单向螺旋形包装),标称套筒覆盖(全部或一半)和袖子材质(Nomex线程或邓石Hi-Arrink胶带)。本研究中使用的标本的不支持长度为50.8毫米(2英寸),确保强度控制的压缩失效。标本径向撞击2.5,5.0,7.5,10.0,15.0和20.0J(1.9,3.7,5.6,7.4,11.1和14.8FT-LBS),并与未损坏的对照样本进行比较。冲击后,使用微型CT扫描仪在50和35微米的分辨率下扫描样品,随后在轴向压缩中进行测试。分析了微CT扫描图像,并测量沿着样品长度的峰裂纹区域和总裂缝体积。与相关的研究类似,随着冲击能量的增加,残留的压缩 - 强度 - 追随减少。带收缩梭子套筒的标本在峰值裂缝区域和整体裂缝体积上的最大增加,而具有全螺旋套筒的标本具有最低峰值裂纹区域和整体裂缝体积的增加。在峰值裂缝区域和整体裂缝体积的增加之间存在轻微的相关性,并且在冲击后的残余压缩强度降低。

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