Influence of the insertion of shape memory wires in composite materials on impact response

IF 4.4 3区 工程技术 Q1 ENGINEERING, CIVIL
Diego Morais Junqueira, Guilherme Ferreira Gomes, Márcio Eduardo Silveira, Antonio Carlos Ancelotti Jr.
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Abstract

In recent decades, the quest for high-performance materials—those that combine low weight with high mechanical strength—has intensified. A promising solution involves composites reinforced with fiber and a polymeric matrix. However, these composite materials often exhibit deficiencies in crashworthiness. To address this issue, we investigated the incorporation of shape memory alloys, specifically nickel–titanium (NiTi), into the laminate structure. This study aimed to develop an equation, using a design of experiments approach, capable of predicting the energy absorption capacity of fiberglass and epoxy resin matrix composites upon impact, with integrated NiTi wires. Additionally, we proposed a model through numerical simulation using the finite element method to correlate with experimental analyses, thereby establishing a reliable model for future research. We selected the appropriate NiTi alloy (martensitic or superelastic) for the impact specimens through a full factorial design and dynamic mechanical analysis. After choosing the statistically superior superelastic wire, we manufactured test specimens using vacuum assisted resin transfer molding. These specimens, designed with three variables (diameter, spacing, and position in the laminate), followed a fractional factorial design. The drop-weight impact tests, conducted according to the ASTM D7136 standard, demonstrated increased energy absorption when NiTi wire was included in the composite. A non-linear numerical simulation (dynamic analysis) was performed, and its results—showing an excellent correlation with experimental data (above 95%)—validated the model.

Abstract Image

在复合材料中插入形状记忆线对冲击响应的影响
近几十年来,人们对高性能材料--兼具低重量和高机械强度的材料--的追求日益强烈。一种很有前途的解决方案是使用纤维和聚合物基体增强复合材料。然而,这些复合材料在耐撞性方面往往存在缺陷。为了解决这个问题,我们研究了在层压结构中加入形状记忆合金(特别是镍钛(NiTi))的方法。本研究旨在利用实验设计方法建立一个方程式,该方程式能够预测玻璃纤维和环氧树脂基复合材料在撞击时的能量吸收能力,其中集成了镍钛丝。此外,我们还通过使用有限元法进行数值模拟,提出了一个与实验分析相关的模型,从而为今后的研究建立了一个可靠的模型。我们通过全因子设计和动态机械分析,为冲击试样选择了合适的镍钛合金(马氏体或超弹性)。在选择了统计上更优越的超弹性线材后,我们使用真空辅助树脂传递模塑法制造了试样。这些试样由三个变量(直径、间距和在层压板中的位置)组成,采用分数因子设计。根据 ASTM D7136 标准进行的落重冲击试验表明,复合材料中加入镍钛丝后,能量吸收能力增强。此外,还进行了非线性数值模拟(动态分析),结果显示与实验数据的相关性极高(超过 95%),验证了该模型。
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来源期刊
Archives of Civil and Mechanical Engineering
Archives of Civil and Mechanical Engineering 工程技术-材料科学:综合
CiteScore
6.80
自引率
9.10%
发文量
201
审稿时长
4 months
期刊介绍: Archives of Civil and Mechanical Engineering (ACME) publishes both theoretical and experimental original research articles which explore or exploit new ideas and techniques in three main areas: structural engineering, mechanics of materials and materials science. The aim of the journal is to advance science related to structural engineering focusing on structures, machines and mechanical systems. The journal also promotes advancement in the area of mechanics of materials, by publishing most recent findings in elasticity, plasticity, rheology, fatigue and fracture mechanics. The third area the journal is concentrating on is materials science, with emphasis on metals, composites, etc., their structures and properties as well as methods of evaluation. In addition to research papers, the Editorial Board welcomes state-of-the-art reviews on specialized topics. All such articles have to be sent to the Editor-in-Chief before submission for pre-submission review process. Only articles approved by the Editor-in-Chief in pre-submission process can be submitted to the journal for further processing. Approval in pre-submission stage doesn''t guarantee acceptance for publication as all papers are subject to a regular referee procedure.
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