Enhancement of Mechanical Behaviour of Functionally Graded Viscoelastic Materials Parts Reinforced by Hybrids Nanoparticles

Emad Kadum Njim, Fadhel Abbas Hadi, Naeem Abdulmohsin Alhilo
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Abstract

This paper studies the mechanical behavior of functionally graded material viscoelastic (FGVE) products employed in automotive, chemical industry, and biomedical appliances. Various experimental models describe and simulate nanobeams with viscoelastic layers subjected to tensile loading, 3-point bending, tear, and impact. All specimens were prepared using the 3D printing method. Tensile, hardness, tear, impact, and bending specimens reinforced with different volume fractions (1-5)% of Al2O3, TiO2, and a hybrid of the nanomaterials Al2O3 /TiO2 were arranged via a mixing process with an extruder and then fabricated by a 3D printing machine. The experimental results of maximum bending load, midspan deflection, impact, and tear resistance were validated by finite element methods (FEM) with the assistance of commercial software (Ansys Workbench 2021 R1). Furthermore, the influence of various parameters on the mechanical performance of reinforced samples has been thoroughly investigated, for example, volume fraction index, nanoparticles content, and FG properties. Based on the findings, the most successful results were obtained by adding 1.5 % Al2O3 and 3% TiO2 hybrid nanoparticles. The experimental and numerical results were in reasonable agreement. The discrepancy did not exceed 10.25% for maximum bending load and no difference over 5% for maximum impact load, indicating that the strengthened nanoparticle specimens were properly fabricated. Also, a significant improvement in mechanical and viscoelastic properties was achieved by incorporating hybrid nanoparticles. Flexural bending load increased by about 17 % with hybrid nanoparticles, while tear resistance increased by 27.5 % and impact resistance increased by 7.5%.
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杂化纳米颗粒增强功能梯度粘弹性材料零件力学性能的研究
本文研究了用于汽车、化工、生物医药等领域的功能梯度材料粘弹性(FGVE)产品的力学行为。各种实验模型描述和模拟纳米梁的粘弹性层受到拉伸载荷,三点弯曲,撕裂和冲击。所有标本均采用3D打印方法制备。用挤出机进行混合处理,用不同体积分数(1-5)%的Al2O3、TiO2和Al2O3 /TiO2的混合物增强试样的拉伸、硬度、撕裂、冲击和弯曲性能,然后用3D打印机进行打印。在Ansys Workbench 2021 R1商用软件的辅助下,通过有限元方法验证了最大弯曲载荷、跨中挠度、冲击和抗撕裂性能的实验结果。此外,还深入研究了体积分数指数、纳米颗粒含量、FG性能等参数对增强样品力学性能的影响。在此基础上,添加1.5% Al2O3和3% TiO2杂化纳米粒子获得了最成功的结果。实验结果与数值计算结果基本一致。在最大弯曲载荷和最大冲击载荷下,两者的差异不超过10.25%和5%,说明所制备的纳米颗粒增强试样是合理的。此外,混合纳米颗粒的加入显著改善了材料的机械性能和粘弹性。混合纳米颗粒增加了约17%的弯曲载荷,抗撕裂性提高了27.5%,抗冲击性提高了7.5%。
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