静态和动态射孔载荷作用下TPU基复合层合结构的结构性能

IF 2.3 4区 材料科学 Q3 MATERIALS SCIENCE, COMPOSITES
Muhd Azimin bin Ab Ghani, Qingyuan Wang, Zhongwei Guan
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引用次数: 0

摘要

本文研究了由热塑性聚氨酯(TPU)、玻璃纤维增强塑料(GFRP)、丁苯橡胶(SBR)和金属网材料制成的复合层合结构,并进一步研究了TPU基复合夹层层合结构的结构响应。在准静态射孔和低速冲击载荷作用下,测试了复合材料的结构响应和吸能特性。研究表明,当芯层厚度为1 ~ 4mm时,GFRP-TPU-GFRP、TPU-GFRP-TPU、GFRP-TPU-GFRP- gfrp或TPU-GFRP-TPU- gfrp - tpu层合板的峰值载荷和刚度均有所增加。此外,与GFRP芯板相比,TPU芯层压板具有优越的延展性。由于应变率效应,三层和五层TPU和GFRP复合结构在低速冲击下的能量吸收值高于准静态载荷作用下的能量吸收值。然而,以SBR和钢丝网为核心的混合层合板对不同钢丝网尺寸层合板的抗冲击穿孔性能并没有太大的提高,因为金属网在层合结构中的抗穿孔作用较小。总体而言,GFRP芯厚为4mm的TPU-GFRP-TPU-GFRP-TPU结构的峰值力最大,tfrp芯厚为4mm的GFRP-TPU-GFRP- GFRP结构的吸能最大。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Structural Behaviour of TPU Based Hybrid Laminated Structures Subjected to Static and Dynamic Perforation Loading

Structural Behaviour of TPU Based Hybrid Laminated Structures Subjected to Static and Dynamic Perforation Loading

This paper presents a study on manufacturing a range of hybrid laminated structures made of thermoplastic polyurethan (TPU), glass fibre reinforced plastic (GFRP), styrene-butadiene rubber (SBR) and metal mesh materials, and further on investigating the structural response of the TPU based composite sandwich laminated structures. These laminated structures were tested under quasi-static perforation and low velocity impact loading to determine their structural responses and energy absorption characteristics. It has been shown that three-layer and five-layer laminates with lay-ups of GFRP-TPU-GFRP or TPU-GFRP-TPU and GFRP-TPU-GFRP-TPU-GFRP or TPU-GFRP-TPU-GFRP-TPU subjected to quasi-static perforation demonstrate an increased peak load and stiffness with the core thickness from 1 to 4 mm. Also, the TPU core laminates show a superior ductility in comparison to their GFRP core counterparts. The energy absorption values of the three-layer and five-layer TPU and GFRP based laminated structures under low velocity impact are higher than those under quasi-static loading due to strain-rate effect. However, the hybrid laminates with SBR and wire mesh as a core do not give much improvement on the impact perforation resistance of the laminates with the different size of wire mesh, as metal mesh plays a less important role in the laminated structures to resist perforation. In overall, TPU-GFRP-TPU-GFRP-TPU structure with 4mm thick GFRP core demonstrates the highest peak force, and the GFRP-TPU-GFRP-TPU-GFRP structure with 4mm thick TPU core offers the highest energy absorption.

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来源期刊
Applied Composite Materials
Applied Composite Materials 工程技术-材料科学:复合
CiteScore
4.20
自引率
4.30%
发文量
81
审稿时长
1.6 months
期刊介绍: Applied Composite Materials is an international journal dedicated to the publication of original full-length papers, review articles and short communications of the highest quality that advance the development and application of engineering composite materials. Its articles identify problems that limit the performance and reliability of the composite material and composite part; and propose solutions that lead to innovation in design and the successful exploitation and commercialization of composite materials across the widest spectrum of engineering uses. The main focus is on the quantitative descriptions of material systems and processing routes. Coverage includes management of time-dependent changes in microscopic and macroscopic structure and its exploitation from the material''s conception through to its eventual obsolescence.
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