Experimental and numerical study of the effect of silica filler on the tensile strength of a 3D-printed particulate nanocomposite

IF 1 4区 工程技术 Q4 MECHANICS
Muhammad Asif , Maziar Ramezani , Kamran Ahmed Khan , Muhammad Ali Khan , Kean Chin Aw
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引用次数: 0

Abstract

Polymers are commonly found to have low mechanical properties, e.g., low stiffness and low strength. To improve the mechanical properties of polymers, various types of fillers have been added. These fillers can be either micro- or nano-sized; however; nano-sized fillers are found to be more efficient in improving the mechanical properties than micro-sized fillers. In this research, we have analysed the mechanical behaviour of silica reinforced nanocomposites printed by using a new 5-axis photopolymer extrusion 3D printing technique. The printer has 3 translational axes and 2 rotational axes, which enables it to print free-standing objects. Since this is a new technique and in order to characterise the mechanical properties of the nanocomposites manufactured using this new technique, we carried out experimental and numerical analyses. We added a nano-sized silica filler to enhance the properties of a 3D printed photopolymer. Different concentrations of the filler were added and their effects on mechanical properties were studied by conducting uniaxial tensile tests. We observed an improvement in mechanical properties following the addition of the nano-sized filler. In order to observe the tensile strength, dog-bone samples using a new photopolymer extrusion printing technique were prepared. A viscoelastic model was developed and stress relaxation tests were conducted on the photopolymer in order to calibrate the viscoelastic parameters. The developed computational model of nano reinforced polymer composite takes into account the nanostructure and the dispersion of the nanoparticles. Hyper and viscoelastic phenomena was considered to validate and analyse the stress–strain relationship in the cases of filler concentrations of 8%, 9%, and 10%. In order to represent the nanostructure, a 3D representative volume element (RVE) was utilized and subsequent simulations were run in the commercial finite element package ABAQUS. The results acquired in this study could lead to a better understanding of the mechanical characteristics of the nanoparticle reinforced composite, manufactured using a new photopolymer extrusion 5-axis 3D printing technique.

二氧化硅填料对3d打印颗粒纳米复合材料抗拉强度影响的实验与数值研究
聚合物通常具有低机械性能,例如,低刚度和低强度。为了提高聚合物的力学性能,加入了各种类型的填料。这些填料可以是微型或纳米级的;然而;纳米级填料比微级填料更能有效地改善材料的力学性能。在这项研究中,我们分析了使用一种新的五轴光聚合物挤出3D打印技术打印的二氧化硅增强纳米复合材料的力学行为。该打印机有3个平移轴和2个旋转轴,这使得它能够打印独立的物体。由于这是一种新技术,为了表征使用这种新技术制造的纳米复合材料的机械性能,我们进行了实验和数值分析。我们添加了纳米级二氧化硅填料来增强3D打印光聚合物的性能。通过单轴拉伸试验,研究了不同浓度的填料对材料力学性能的影响。我们观察到加入纳米级填料后,机械性能有所改善。为了观察狗骨的拉伸强度,采用一种新的光聚合物挤出打印技术制备了狗骨样品。建立了粘弹性模型,并对其进行了应力松弛试验,以标定其粘弹性参数。建立的纳米增强聚合物复合材料的计算模型考虑了纳米结构和纳米颗粒的分散。考虑超弹性和粘弹性现象,验证并分析了填料浓度为8%、9%和10%时的应力-应变关系。为了表征纳米结构,采用三维代表性体积单元(RVE),并在商用有限元软件ABAQUS中进行仿真。这项研究的结果可以让我们更好地理解纳米颗粒增强复合材料的力学特性,这种复合材料是用一种新的光聚合物挤出5轴3D打印技术制造的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Comptes Rendus Mecanique
Comptes Rendus Mecanique 物理-力学
CiteScore
1.40
自引率
0.00%
发文量
0
审稿时长
12 months
期刊介绍: The Comptes rendus - Mécanique cover all fields of the discipline: Logic, Combinatorics, Number Theory, Group Theory, Mathematical Analysis, (Partial) Differential Equations, Geometry, Topology, Dynamical systems, Mathematical Physics, Mathematical Problems in Mechanics, Signal Theory, Mathematical Economics, … The journal publishes original and high-quality research articles. These can be in either in English or in French, with an abstract in both languages. An abridged version of the main text in the second language may also be included.
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