Investigating the impact of process parameters on the thermomechanical properties of three-dimensional (3D) printed polymer-nanoclay composites

Q1 Chemical Engineering International Journal of Thermofluids Pub Date : 2025-05-01 Epub Date: 2025-03-08 DOI:10.1016/j.ijft.2025.101168
Sheymaa Alazzawi , Noor Hassan Ali , Suha K. Shihab , Muammel M. Hanon
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Abstract

The additive manufacturing of polymer-nanoclay composite systems has been of great interest in developing material systems that are lightweight, tough, and thermally stable. However, attaining maximum thermomechanical properties in three-dimensional (3D) printed composite is challenging given the complex interactions between processing parameters and material structure. This work meets the challenge by investigating the novel use of montmorillonite nanoclay in a plant-based photopolymer resin for Digital Light Processing (DLP) -based three-dimensional (3D) printing applications. The objectives of this work were to improve the thermal conductivity, tensile strength, flexural strength, and impact resistance of the composite, and optimize key processing parameters such as nanoclay concentration, printing orientation, and layer thickness using Response Surface Methodology (RSM). The results of this work indicate that a nanoclay concentration of 0.4496 wt.%, a printing orientation of 61.18°, and a thickness of 0.03 mm produce the maximum thermomechanical properties of the composite. The optimal composite exhibited excellent properties, recording a tensile strength of 48.93 MPa, a flexural strength of 63.31 MPa, a thermal conductivity of 0.3296 W/m·K, and a maximum impact energy of 0.3275 J. The results of this work mark a great milestone in the field given the great potential of using environmentally friendly, plant-based composite systems in high-performance applications such as functional prototypes, medical models, and complex industrial components. The work not only presents a strategic approach to improving 3D-printed polymer-nanoclay composite material systems but also enhances our in-depth knowledge of process-structure-property relationships in additive manufacturing processes.
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研究了工艺参数对三维打印聚合物-纳米粘土复合材料热力学性能的影响
聚合物-纳米粘土复合材料系统的增材制造在开发轻质、坚韧和热稳定的材料系统方面一直很有兴趣。然而,考虑到加工参数和材料结构之间复杂的相互作用,在三维(3D)打印复合材料中获得最大的热机械性能是具有挑战性的。这项工作通过研究蒙脱土纳米粘土在植物基光聚合物树脂中的新用途,以满足数字光处理(DLP)为基础的三维(3D)打印应用。本工作的目的是提高复合材料的导热性、拉伸强度、弯曲强度和抗冲击性,并利用响应面法(RSM)优化纳米粘土浓度、打印方向和层厚等关键工艺参数。结果表明,当纳米粘土浓度为0.4496 wt.%,印刷方向为61.18°,厚度为0.03 mm时,复合材料的热机械性能最佳。优化后的复合材料性能优异,抗拉强度为48.93 MPa,抗折强度为63.31 MPa,导热系数为0.3296 W/m·K,最大冲击能量为0.3275 j。考虑到在功能原型、医疗模型和复杂工业部件等高性能应用中使用环保、植物基复合材料系统的巨大潜力,这项工作的结果标志着该领域的一个重要里程碑。这项工作不仅提出了改进3d打印聚合物-纳米粘土复合材料系统的战略方法,而且还增强了我们对增材制造过程中工艺-结构-性能关系的深入了解。
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来源期刊
International Journal of Thermofluids
International Journal of Thermofluids Engineering-Mechanical Engineering
CiteScore
10.10
自引率
0.00%
发文量
111
审稿时长
66 days
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