Low-velocity impact-resistance of aramid fiber three-dimensional woven textile-reinforced thermoplastic-epoxy composites

Author:

Liu Yajun1ORCID,Natsuki Toshiaki12,Suzuki Daisuke1,Huang Canyi3,Cui Lina3,Ni Qing-Qing4

Affiliation:

1. Faculty of Textile Science and Technology, Shinshu University, Ueda, Japan

2. Institute of Frontier Fibers, Institute for Fiber Engineering (IFES), Interdisciplinary Cluster for Cutting Edge Research (ICCER), Shinshu University, Ueda, Japan

3. College of Textiles and Apparel, Quanzhou Normal University, Quanzhou, China

4. Key Laboratory of Advanced Textile Materials and Manufacturing Technology, Ministry of Education, Zhejiang Sci-Tech University, Hangzhou, China

Abstract

The development of impact-resistant composite materials for protective applications such as helmet and body armor has attracted considerable attention. In this study, a novel aramid fiber-woven thermoplastic-epoxy composite was developed. Furthermore, three types of woven textiles, namely three-dimensional (3D) orthogonal-woven (3DOW), 3D angle-interlock woven (3DAIW), and two-dimensional plain-woven (2DPW) textiles, were used as reinforcement structures. To study the effect of the woven structure, impact energy, and damage repairment on impact-resistance performance of these composites, low-velocity drop-weight impact tests with various impact scenarios, such as single-impact, repeated-impact, as well as multiple-impact with hot-press damage repairment, were conducted. The results revealed that the woven structure exhibited an obvious effect on the composite impact-resistance performance and failure modes when subjected to specific impact scenarios. For the single-impact scenario, especially under high impact energy levels (10 and 20 J), the 3DOW structure exhibited superior impact-resistance performance as well as damage tolerance, followed by 3DAIW and 2DPW structures. Furthermore, 3DOW achieved superior impact-resistance to the other two structures for the 10-J repeated-impact scenario. The 3DAIW structure, in which debonding or delamination as well as severe resin cracks dominated, achieved superior impact-resistance to multiple impacts with damage repairment.

Funder

Guidance Project of Department of Science and Technology of Fujian Province, China

Open Competition Mechanism Project of Science and Technology Department of Quanzhou City

Fujian Provincial Department of Science and Technology for the project of Natural Science Foundation of Fujian Province, China

Japan Society for the Promotion of Science

Publisher

SAGE Publications

Subject

Condensed Matter Physics,Ceramics and Composites

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