H. Jeevan Rao, S. Singh, Narender Singh, P. Janaki Ramulu, Thiago F. Santos, Caroliny M. Santos, P. Senthamaraikannan, Indran Suyambulingam, Femiana Gapsari, Rudianto Raharjo, Sanjay Mavinkere Rangappa, Suchart Siengchin
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引用次数: 0
摘要
目前的研究重点是探索(CA)纤维、香蕉纤维(BF)和环氧树脂复合材料作为石油基产品和合成纤维的可持续替代品的潜力。目的是在减少对传统材料依赖的同时,提高这些复合材料的界面粘合力和整体性能。本研究调查了 CA 纤维、BF(均经过化学处理)和环氧树脂与聚乳酸(PLA)涂层之间的粘合情况。具体来说,它研究了聚乳酸涂层如何影响所制造复合材料的机械性能,包括拉伸强度、弯曲强度、抗冲击性和吸水性。复合材料试样的机械特性分析是按照 ASTM 标准进行的。与未经处理的试样相比,经过聚乳酸涂层和 NaOH 处理的试样明显提高了抗拉强度(20.56%)和抗弯强度(16.7%),并显著降低了吸水能力(47.6%)。这些发现凸显了使用经过处理的天然纤维和聚乳酸涂层来制造更可持续的高性能复合材料的前景。
Enhancing mechanical performance and water resistance of Careya-Banana fiber epoxy hybrid composites through PLA coating and alkali treatment
The ongoing research focuses on exploring the potential of (CA) fiber, banana fiber (BF), and epoxy composites as sustainable alternatives to petroleum-based products and synthetic fibers. The aim is to enhance the interfacial bonding and overall performance of these composites while reducing reliance on traditional materials. The study investigates the adhesion between CA fiber, BF (both chemically treated), and epoxy with polylactic acid (PLA) coating. Specifically, it examined how the PLA coating affects the mechanical properties, including tensile strength, flexural strength, impact resistance, and water absorption behavior, of the fabricated composites. Mechanical characterizations of the composite specimens are conducted following ASTM standards. The PLA-coated and NaOH-treated specimens significantly improved their tensile strength (20.56%) and flexural strength (16.7%), and significantly reduced their water absorption capacity (by 47.6%) compared to the untreated ones. These findings highlight the promise of using treated natural fibers and PLA coatings to create more sustainable and high-performance composite materials.