Amity Institute of Applied Sciences, Amity University Uttar Pradesh, Sec-125, Noida, India.
Amity Institute of Applied Sciences, Amity University Uttar Pradesh, Sec-125, Noida, India.
J Mech Behav Biomed Mater. 2023 Feb;138:105582. doi: 10.1016/j.jmbbm.2022.105582. Epub 2022 Nov 18.
Ankle-foot orthotics need ideal specification of being light-weight, high strength, tough, stiff, and durable. Reinforced polypropylene (PP) composites with enhanced mechanical properties are the most favorable materials being used in this field, but still, it is challenging to achieve balanced blend of strength and toughness in the composites. The present study thus aims to achieve the challenging task of simultaneous improvement in stiffness and toughness in reinforced PP composites exploring the synergistic reinforcement effect of glass fibers (GFs) and nano silica (SiO2) as multiscale fillers and ethylene propylene diene monomer (EPDM) as impact modifier. EPDM is used as toughness modifier, addressing the brittle behavior, but at the cost of the strength of the polymer. Combined use of micro and nanofillers as reinforcement in toughened polypropylene provides a potential approach to balance the strength while maintaining the toughness. GFs could offer high strength and nanofillers offer ductile fracture to the material. PP, PP/GF, PP/EPDM/GF composites and PP/EPDM/GF/SiO2 nanocomposites are fabricated through melt blending technique and are characterized through SEM, mechanical evaluation, nanoindentation and dynamic mechanical analysis. Mechanical properties are evaluated in accordance with ASTM standards. PP/EPDM/GF/SiO2 nanocomposites exhibits remarkable enhancement in Tensile strength, tensile modulus, impact strength and percent elongation at break by 49 MPa (55% increase over PP), 2450 MPa (145% increase), 145 J/m (13% increase) and 156% (160% increase) respectively. The exceptional improvement in reduced modulus and hardness reveals good interfacial properties. Loss factor decrement reveals elastic behavior of nanocomposites suitable for thermoforming of nanocomposites for orthotic device fabrication.
踝足矫形器需要理想的轻量、高强度、坚韧、刚性和耐用性。增强型聚丙烯 (PP) 复合材料具有增强的机械性能,是该领域最受欢迎的材料,但在复合材料中实现强度和韧性的平衡仍然具有挑战性。因此,本研究旨在通过探索玻璃纤维 (GF) 和纳米二氧化硅 (SiO2) 作为多尺度填料和三元乙丙橡胶 (EPDM) 作为冲击改性剂的协同增强效果,实现增强型 PP 复合材料的刚度和韧性同时提高这一具有挑战性的任务。EPDM 用作增韧剂,解决了脆性行为,但代价是聚合物的强度。微纳米填料的组合使用作为增韧聚丙烯的增强剂提供了一种平衡强度同时保持韧性的潜在方法。GF 可以提供高强度,纳米填料可以使材料发生延性断裂。通过熔融共混技术制备了 PP、PP/GF、PP/EPDM/GF 复合材料和 PP/EPDM/GF/SiO2 纳米复合材料,并通过 SEM、力学评估、纳米压痕和动态力学分析进行了表征。机械性能根据 ASTM 标准进行评估。PP/EPDM/GF/SiO2 纳米复合材料的拉伸强度、拉伸模量、冲击强度和断裂伸长率分别提高了 49 MPa(比 PP 提高了 55%)、2450 MPa(提高了 145%)、145 J/m(提高了 13%)和 156%(提高了 160%)。降低模量和硬度的显著提高表明了良好的界面性能。损耗因子的降低表明纳米复合材料具有弹性行为,适合用于热成型制造矫形设备。