4.7 Article

Mechanical behavior and failure mechanism of polyurea nanocomposites under quasi-static and dynamic compressive loading

期刊

DEFENCE TECHNOLOGY
卷 17, 期 2, 页码 495-504

出版社

KEAI PUBLISHING LTD
DOI: 10.1016/j.dt.2020.02.006

关键词

Polyurea nanocomposites; Mechanical properties; Strain rate; Micro-CT; Failure

资金

  1. State Administration of Science, Technology and Industry for National Defense of China [WDZCKYXM20190503]
  2. Xi'an Modern Chemistry Institute

向作者/读者索取更多资源

Polyurea is an elastomeric material used to enhance protection ability of structures under blast and impact loading. The compressive mechanical properties of SiC/polyurea nanocomposites were studied under quasi-static and dynamic loading, showing an increase in flow stress, compressive strength, strain rate sensitivity, and strain energy with higher strain rates. Incorporating SiC into polyurea matrix enhanced mechanical characters, with fracture surfaces showing voids, crazes, micro-cracks, and cracking propagation observed in micro-CT slice images.
Polyurea is an elastomeric material that can be applied to enhance the protection ability of structures under blast and impact loading. In order to study the compressive mechanical properties of SiC/polyurea nanocomposites under quasi-static and dynamic loading, a universal testing machine and split Hopkinson pressure bar (SHPB) apparatus were used respectively. The stress-strain curves were obtained on polyurea and its composites at strain rates of 0.001-8000 s(-1). The results of the experiment suggested that increase in the strain rates led to the rise of the flow stress, compressive strength, strain rate sensitivity and strain energy. This indicates that all of the presented materials were dependent on strain rate. Moreover, these mechanical characters were enhanced by incorporating a small amount of SiC into polyurea matrix. The relation between yield stress and strain rates were established using the power law functions. Finally, in order to investigate the fracture surfaces and inside information of failed specimens, scanning electron microscopy (SEM) and micro X-ray computed tomography (micro-CT) were used respectively. Multiple voids, crazes, micro-cracks and cracking were observed in fracture surfaces. On the other hand, the cracking propagation was found in the micro-CT slice images. It is essential to understand the deformation and failure mechanisms in all the polyurea materials. (C) 2020 China Ordnance Society. Production and hosting by Elsevier B.V. on behalf of KeAi Communications Co.

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