Kenaf 纤维增强复合金属层压板的落重冲击响应:化学处理和纤维成分的影响

L. F. Ng, Mohd Yazid Yahya, Chandrasekar Muthukumar, Jyotishkumar Parameswaranpillai, Hui Yi Leong, Syed Mohd Saiful Azwan Syed Hamzah
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引用次数: 0

摘要

最近,纤维-金属层压材料受到了材料科学家和工程师们的高度关注,尤其是在涉及冲击关键性应用时。与金属合金和复合材料相比,纤维-金属层压材料具有若干显著优势。这项研究旨在评估不同纤维成分的槿麻纤维增强聚丙烯金属复合材料层压板的低速响应,以顺应当前将天然纤维作为复合材料增强材料的趋势。此外,还比较了未处理和化学处理的槿麻纤维增强复合金属层压板的低速冲击响应。层压板的制造采用了热模压技术。根据 ASTM D7136 标准进行了低速冲击试验,以确定材料的峰值力、最大位移和能量吸收。结果证实,NaOH 处理和纤维含量的增加使经 NaOH 处理的槿麻基金属层压板具有更高的峰值力。对于经过 NaOH 处理的层压板,在 60 J 的冲击能量下,纤维含量为 70 wt% 的层压板的峰值力比纤维含量为 50 wt% 的层压板高出 11.20%;在 60 J 的低速冲击能量下,纤维含量为 70 wt% 的经过 NaOH 处理的层压板的峰值力比未经处理的层压板高出 2.14%。
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Drop-weight Impact Responses of Kenaf Fibre-Reinforced Composite-Metal Laminates: Effect of Chemical Treatment and Fibre Composition
Recently, fiber-metal laminates have gained high attention from material scientists and engineers, particularly when it comes to impact-critical applications. When compared to metallic alloys and composite materials, fiber-metal laminates offer several distinguishing advantages. This work intends to evaluate the low-velocity response of kenaf fiber-reinforced polypropylene metal-composite laminates with various fiber compositions, in line with the current trend of using natural fiber as possible reinforcement in composite materials. In addition, a comparison was made between the low-velocity impact response of non-treated and chemical-treated kenaf fiber-reinforced composite-metal laminates. A hot molding compression technique was employed to fabricate the laminates. Low-velocity impact tests were performed based on ASTM D7136 to determine the peak force, maximum displacement, and energy absorption of the materials. The results confirmed that NaOH treatment and increased fiber content resulted in a higher peak force of NaOH-treated kenaf-based metal laminates. For NaOH-treated laminates, the peak force of laminates with 70 wt% was found to be 11.20% higher than laminates with 50 wt% at the impact energy of 60 J. At fiber content of 70 wt%, the peak force of NaOH-treated laminates is 2.14% greater than that of untreated laminates when subjected to low-velocity impact with an energy level of 60 J. However, laminates with low fiber content and without NaOH treatment manifested higher maximum displacement and energy absorption due to the ductile behavior of such materials.
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来源期刊
Applied Science and Engineering Progress
Applied Science and Engineering Progress Engineering-Engineering (all)
CiteScore
4.70
自引率
0.00%
发文量
56
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