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纳米粘土基生物聚合物复合材料力学性能的预测

Prediction of Mechanical Properties of Nano-Clay-Based Biopolymeric Composites.

作者信息

Voicu Rodica Cristina, Gologanu Mihai, Tibeica Catalin, Santiago-Calvo Mercedes, Asensio María, Cañibano Esteban, Nedelcu Oana, Sandu Titus

机构信息

National Institute for Research and Development in Microtechnologies-IMT Bucharest, 126A, Erou Iancu Nicolae Street, 077190 Voluntari, Ilfov, Romania.

Foundation for Research and Development in Transport and Energy-FUNDACIÓN CIDAUT, Parque Tecnológico de Boecillo, 47051 Boecillo, Spain.

出版信息

Nanomaterials (Basel). 2024 Aug 28;14(17):1403. doi: 10.3390/nano14171403.

Abstract

An understanding of the mechanical behavior of polymeric materials is crucial for making advancements in the applications and efficiency of nanocomposites, and encompasses their service life, load resistance, and overall reliability. The present study focused on the prediction of the mechanical behavior of biopolymeric nanocomposites with nano-clays as the nanoadditives, using a new modeling and simulation method based on Comsol Multiphysics software 6.1. This modeling considered the complex case of flake-shaped nano-clay additives that could form aggregates along the polymeric matrix, varying the nanoadditive thickness, and consequently affecting the resulting mechanical properties of the polymeric nanocomposite. The polymeric matrix investigated was biopolyamide 11 (BIOPA11). Several BIOPA11 samples reinforced with three different contents of nano-clays (0, 3, and 10 wt%), and with three different nano-clay dispersion grades (employing three different extrusion screw configurations) were obtained by the compounding extrusion process. The mechanical behavior of these samples was studied by the experimental tensile test. The experimental results indicate an enhancement of Young's modulus as the nano-clay content was increased from 0 to 10 wt% for the same dispersion grades. In addition, the Young's modulus value increased when the dispersion rate of the nano-clays was improved, showing the highest increase of around 93% for the nanocomposite with 10 wt% nano-clay. A comparison of the modeled mechanical properties and the experimental measurements values was performed to validate the modeling results. The simulated results fit well with the experimental values of Young's modulus.

摘要

了解聚合物材料的力学行为对于推动纳米复合材料的应用和提高其效率至关重要,这包括它们的使用寿命、抗负载能力和整体可靠性。本研究聚焦于以纳米粘土作为纳米添加剂的生物聚合物纳米复合材料力学行为的预测,采用基于Comsol Multiphysics软件6.1的新型建模与仿真方法。该建模考虑了片状纳米粘土添加剂的复杂情况,这些添加剂可能会在聚合物基体中形成聚集体,改变纳米添加剂的厚度,从而影响聚合物纳米复合材料的最终力学性能。所研究的聚合物基体是生物聚酰胺11(BIOPA11)。通过复合挤出工艺获得了几种用三种不同含量(0、3和10 wt%)的纳米粘土增强、且具有三种不同纳米粘土分散等级(采用三种不同的挤出螺杆配置)的BIOPA11样品。通过实验拉伸试验研究了这些样品的力学行为。实验结果表明,对于相同的分散等级,随着纳米粘土含量从0 wt%增加到10 wt%,杨氏模量有所提高。此外,当纳米粘土的分散率提高时,杨氏模量值增加,对于含10 wt%纳米粘土的纳米复合材料,杨氏模量的增幅最高,约为93%。对模拟的力学性能和实验测量值进行了比较,以验证建模结果。模拟结果与杨氏模量的实验值吻合良好。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9c57/11397168/fcfd844c1b0f/nanomaterials-14-01403-g001.jpg

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