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碳纳米管和石墨烯纳米颗粒增强环氧混合体系纳米力学性能的测试、实验设计与数值分析

Testing, Experimental Design, and Numerical Analysis of Nanomechanical Properties in Epoxy Hybrid Systems Reinforced with Carbon Nanotubes and Graphene Nanoparticles.

作者信息

Spinelli Giovanni, Guarini Rosella, Batakliev Todor, Guadagno Liberata, Raimondo Marialuigia

机构信息

Faculty of Transport Sciences and Technologies, University of Study "Giustino Fortunato", Via Raffaele Delcogliano 12, 82100 Benevento, Italy.

Open Laboratory on Experimental Micro and Nano Mechanics, Institute of Mechanics, Bulgarian Academy of Sciences, Acad. G. Bonchev Str., Block 4, 1113 Sofia, Bulgaria.

出版信息

Polymers (Basel). 2024 Dec 5;16(23):3420. doi: 10.3390/polym16233420.

DOI:10.3390/polym16233420
PMID:39684166
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11644506/
Abstract

Hybrid nanocomposites incorporating multiple fillers are gaining significant attention due to their ability to enhance material performance, offering superior properties compared to traditional monophase systems. This study investigates hybrid epoxy-based nanocomposites reinforced with multi-walled carbon nanotubes (MWCNTs) and graphene nanosheets (GNs), introduced at two different weight concentrations of the mixed filler, i.e., 0.1 wt% and 0.5 wt% which are, respectively, below and above the Electrical Percolation Threshold (EPT) for the two binary polymer composites that solely include one of the two nanofillers, with varying MWCNTs:GNs ratios. Mechanical properties, such as contact depth, hardness, and reduced modulus, were experimentally assessed via nanoindentation, while morphological analysis supported the mechanical results. A Design of Experiments (DoE) approach was utilized to evaluate the influence of filler concentrations on the composite's mechanical performance, and Response Surface Methodology (RSM) was applied to derive a mathematical model correlating the filler ratios with key mechanical properties. The best and worst-performing formulations, based on hardness and contact depth results, were further investigated through detailed numerical simulations using a multiphysics software. After validation considering experimental data, the simulations provided additional insights into the mechanical behavior of the hybrid composites. This work aims to contribute to the knowledge base on hybrid composites and promote the use of computational modeling techniques for optimizing the design and mechanical performance of advanced materials.

摘要

包含多种填料的混合纳米复合材料因其能够提升材料性能而备受关注,与传统单相体系相比具有更优异的性能。本研究考察了用多壁碳纳米管(MWCNTs)和石墨烯纳米片(GNs)增强的环氧基混合纳米复合材料,这两种纳米填料以两种不同的重量浓度引入,即0.1 wt%和0.5 wt%,分别低于和高于仅包含两种纳米填料之一的两种二元聚合物复合材料的电渗流阈值(EPT),且MWCNTs与GNs的比例不同。通过纳米压痕实验评估了诸如接触深度、硬度和折合模量等力学性能,同时形态分析支持了力学结果。采用实验设计(DoE)方法评估填料浓度对复合材料力学性能的影响,并应用响应面方法(RSM)推导将填料比例与关键力学性能相关联的数学模型。基于硬度和接触深度结果,通过使用多物理场软件进行详细的数值模拟,进一步研究了性能最佳和最差的配方。在考虑实验数据进行验证后,模拟为混合复合材料的力学行为提供了更多见解。这项工作旨在为混合复合材料的知识库做出贡献,并推动使用计算建模技术来优化先进材料的设计和力学性能。

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Nanoindentation Response of Structural Self-Healing Epoxy Resin: A Hybrid Experimental-Simulation Approach.结构自修复环氧树脂的纳米压痕响应:一种实验-模拟混合方法。
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