Size-dependent mechanical behaviors of 3D woven composite under high strain-rate compression loads

IF 5 2区 材料科学 Q1 MATERIALS SCIENCE, CHARACTERIZATION & TESTING
Yang Bai , Haitao Wei , Jiahui Gu , Zhenqiang Zhao , Chao Zhang
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Abstract

Dynamic characterization of textile composites is confronted with great challenges due to its large unit-cell size and the inherent limitations in specimen size for the Hopkinson bar-based test system. The small specimen size will inevitably introduce variations in effective mechanical response and failure mechanism, and bring about additional problems in determining the realistic dynamic properties of the material. This work experimentally investigated the dynamic compression behavior of three-dimensional angle interlock woven composite (3DWC) using the split Hopkinson pressure bar (SHPB). Specimens with different sizes were designed to explore the size dependency, strain-rate dependency and orientation dependency for the compressive behavior of the 3DWC. A high-speed camera and an optical microscope were introduced to elaborate on the damage progressing process and fracture morphology under different loading conditions. With an increase in strain rate, the measured strength of warp-direction specimens increased by approximately 7.6%, 4.8%, and 2.6% for three different sizes of specimens, accompanied by more severe intra-tow damage. Different-sized dynamic specimens exhibited comparable failure processes but modest variations in measured properties. When the number of unit cells in a specimen increased from two to three and four, the strength was observed to rise by around 14.9% and 21.9% respectively. In comparison to the warp-direction specimen, the weft-direction specimens exhibited substantially higher strength and failure strain, as well as distinct dominant failure modes of yarns. This work provides valuable insights into the determination of dynamic properties for 3D woven composites, and the designing and interpretation of dynamic test methods.

三维编织复合材料在高应变率压缩载荷下的尺寸依赖性力学行为
纺织复合材料的动态特性由于其较大的单胞尺寸和Hopkinson杆测试系统固有的试样尺寸限制而面临着很大的挑战。较小的试样尺寸不可避免地会引入有效力学响应和破坏机制的变化,并在确定材料的实际动态特性时带来额外的问题。采用分离式霍普金森压杆(SHPB)实验研究了三维角度互锁编织复合材料(3DWC)的动态压缩性能。设计了不同尺寸的试样,探讨了尺寸依赖性、应变速率依赖性和取向依赖性对3DWC压缩行为的影响。采用高速摄像机和光学显微镜对不同加载条件下的损伤进展过程和断口形貌进行了详细研究。随着应变速率的增加,三种不同尺寸试件的翘曲方向强度分别提高了7.6%、4.8%和2.6%,且束内损伤更为严重。不同尺寸的动态试样表现出相似的破坏过程,但在测量性能上变化不大。当样品中的单位细胞数从2个增加到3个和4个时,强度分别上升约14.9%和21.9%。与经向试样相比,纬向试样的强度和破坏应变显著提高,且纱线的主要破坏模式明显。这项工作为三维编织复合材料动态性能的确定以及动态测试方法的设计和解释提供了有价值的见解。
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来源期刊
Polymer Testing
Polymer Testing 工程技术-材料科学:表征与测试
CiteScore
10.70
自引率
5.90%
发文量
328
审稿时长
44 days
期刊介绍: Polymer Testing focuses on the testing, analysis and characterization of polymer materials, including both synthetic and natural or biobased polymers. Novel testing methods and the testing of novel polymeric materials in bulk, solution and dispersion is covered. In addition, we welcome the submission of the testing of polymeric materials for a wide range of applications and industrial products as well as nanoscale characterization. The scope includes but is not limited to the following main topics: Novel testing methods and Chemical analysis • mechanical, thermal, electrical, chemical, imaging, spectroscopy, scattering and rheology Physical properties and behaviour of novel polymer systems • nanoscale properties, morphology, transport properties Degradation and recycling of polymeric materials when combined with novel testing or characterization methods • degradation, biodegradation, ageing and fire retardancy Modelling and Simulation work will be only considered when it is linked to new or previously published experimental results.
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