On low-velocity impact behavior of flexible and stiff composites for better energy absorption

IF 1.8 4区 工程技术 Q3 ENGINEERING, MECHANICAL Journal of The Brazilian Society of Mechanical Sciences and Engineering Pub Date : 2024-07-29 DOI:10.1007/s40430-024-05103-6
Vishwas Mahesh
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Abstract

This research investigates the low-velocity impact behavior of two distinct jute-based composite configurations: flexible composites comprising jute fibers embedded in a rubber matrix and stiff composites consisting of jute fibers embedded in an epoxy matrix. The primary objective is to evaluate their respective energy absorption capabilities under controlled impact loading conditions, with implications for enhancing impact resistance across diverse industrial domains. Mechanisms governing damage in these composite systems are thoroughly examined. Using a specialized testing apparatus, drop weight impact experiments were performed to evaluate the composites’ low-velocity impact response, with an emphasis on how much energy is absorbed and the related damage techniques. Flexible composite with jute/rubber/jute/rubber/jute (JRJRJ) absorbs 15.5% more energy compared to stiff epoxy-based composite with 10 layers of jute (JE10). Jute/rubber/jute (JRJ) exhibits energy absorption of 70.24% more, compared stiff epoxy-based composite with 7 layers of jute (JE7), and jute/rubber/rubber/jute (JRRJ) exhibits 53.44% more energy compared to stiff epoxy-based composite with 9 layers of jute (JE9). The findings indicate that flexible composites, benefiting from the elastomeric properties of the rubber matrix, exhibit superior energy absorption capabilities compared to their stiff counterparts. The inherent flexibility of the rubber matrix facilitates greater deformation upon impact, leading to prolonged impact duration and improved energy dissipation. In contrast, stiff composites demonstrate higher initial stiffness but limited energy absorption capacity due to their inherent rigidity. Detailed damage analysis sheds light on the distinct failure mechanisms within the composite structures. While compliant composites predominantly experience matrix tearing upon failure, stiff composites exhibit matrix cracking, suggesting a more catastrophic failure mode. This suggests that there is a lower risk of a catastrophic breakdown with the suggested compliant materials, rendering them particularly suitable for low-velocity impact applications where controlled energy absorption and damage mitigation are critical considerations.

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关于柔性和刚性复合材料的低速冲击行为,以更好地吸收能量
本研究调查了两种不同的黄麻基复合材料配置的低速冲击行为:由嵌入橡胶基体的黄麻纤维组成的柔性复合材料和由嵌入环氧树脂基体的黄麻纤维组成的刚性复合材料。主要目的是评估它们在受控冲击加载条件下各自的能量吸收能力,从而提高不同工业领域的抗冲击能力。对这些复合材料系统的损伤机理进行了深入研究。使用专门的测试仪器,进行了落重冲击实验,以评估复合材料的低速冲击响应,重点是吸收能量的多少以及相关的损伤技术。使用黄麻/橡胶/黄麻/橡胶/黄麻的柔性复合材料(JRJRJ)比使用 10 层黄麻的刚性环氧基复合材料(JE10)多吸收 15.5% 的能量。黄麻/橡胶/黄麻(JRJ)与含有 7 层黄麻的刚性环氧基复合材料(JE7)相比,能量吸收率高出 70.24%;黄麻/橡胶/橡胶/黄麻(JRRJ)与含有 9 层黄麻的刚性环氧基复合材料(JE9)相比,能量吸收率高出 53.44%。研究结果表明,得益于橡胶基体的弹性特性,柔性复合材料的能量吸收能力优于刚性复合材料。橡胶基体固有的柔韧性有利于在受到冲击时产生更大的变形,从而延长冲击持续时间并改善能量耗散。相比之下,硬质复合材料的初始刚度更高,但由于其固有的刚性,能量吸收能力有限。详细的损伤分析揭示了复合材料结构内部不同的失效机制。顺从型复合材料在失效时主要会出现基体撕裂,而刚性复合材料则会出现基体开裂,这表明其失效模式更具灾难性。这表明,所建议的顺应性材料发生灾难性破坏的风险较低,因此特别适用于低速撞击应用,在这种应用中,控制能量吸收和减轻破坏是关键的考虑因素。
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来源期刊
CiteScore
3.60
自引率
13.60%
发文量
536
审稿时长
4.8 months
期刊介绍: The Journal of the Brazilian Society of Mechanical Sciences and Engineering publishes manuscripts on research, development and design related to science and technology in Mechanical Engineering. It is an interdisciplinary journal with interfaces to other branches of Engineering, as well as with Physics and Applied Mathematics. The Journal accepts manuscripts in four different formats: Full Length Articles, Review Articles, Book Reviews and Letters to the Editor. Interfaces with other branches of engineering, along with physics, applied mathematics and more Presents manuscripts on research, development and design related to science and technology in mechanical engineering.
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