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高速冲击下半圆柱形珍珠母状复合壳弹道性能的数值研究

Numerical Investigation on the Ballistic Performance of Semi-Cylindrical Nacre-like Composite Shells under High-Velocity Impact.

作者信息

Yang Huiwei, Gao Dongyang, Chen Pengcheng, Lu Guoyun

机构信息

College of Civil Engineering, Taiyuan University of Technology, Taiyuan 030024, China.

Shanxi Key Laboratory of Civil Engineering Disaster Prevention and Control, Taiyuan 030024, China.

出版信息

Materials (Basel). 2023 May 12;16(10):3699. doi: 10.3390/ma16103699.

Abstract

The nacre has excellent impact resistance performance, and it is attracting attention in the field of aerospace composite research. Inspired by the layered structure from nacre, semi-cylindrical nacre-like composite shells of brittle silicon carbide ceramic (SiC) and aluminum (AA5083-H116) were established. Two types of tablet arrangements (regular hexagonal and Voronoi polygons) of the composites were designed, and the same size of ceramic and aluminum shell were established for the impact resistance analyzed numerically. In order to better compare the resistance performance of the four types of structures under different impact velocity, the following parameters were analyzed including energy variation, damage characteristic, bullet residual velocity, and semi-cylindrical shell displacement. The results show that the semi-cylindrical ceramic shells have higher rigidity and ballistic limit, but the severe vibration after impact causes penetrating cracks, and the whole structure failure occurred eventually. The nacre-like composites have higher ballistic limits than semi-cylindrical aluminum shells, and the impact of bullets only causes local failure. In the same conditions, the impact resistance of regular hexagons is better than Voronoi polygons. The research analyzes the resistance characteristic of nacre-like composites and single materials, and provides a reference for the design of nacre-like structures.

摘要

珍珠层具有优异的抗冲击性能,在航空航天复合材料研究领域备受关注。受珍珠层分层结构的启发,建立了由脆性碳化硅陶瓷(SiC)和铝(AA5083 - H116)组成的半圆柱形类珍珠层复合壳。设计了复合材料的两种片状排列方式(正六边形和Voronoi多边形),并建立了相同尺寸的陶瓷和铝壳用于数值分析抗冲击性能。为了更好地比较不同冲击速度下四种结构的抗阻性能,分析了以下参数,包括能量变化、损伤特性、子弹剩余速度和半圆柱形壳位移。结果表明,半圆柱形陶瓷壳具有较高的刚度和弹道极限,但冲击后的剧烈振动会导致穿透裂纹,最终导致整个结构失效。类珍珠层复合材料的弹道极限高于半圆柱形铝壳,子弹冲击仅导致局部失效。在相同条件下,正六边形的抗冲击性能优于Voronoi多边形。该研究分析了类珍珠层复合材料和单一材料的抗阻特性,为类珍珠层结构的设计提供了参考。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/25db/10223006/c04b713c88d5/materials-16-03699-g009.jpg

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