Elastic properties evaluation of banana-hemp fiber-based hybrid composite with nano-titanium oxide filler: Analytical and Simulation Study

Q2 Materials Science Engineering Solid Mechanics Pub Date : 2023-01-01 DOI:10.5267/j.esm.2023.7.001
Tanvi Saxena, V. Chawla
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Abstract

In recent years, nano-filler-based hybrid composites have gained significant attention from the research community; The nano-filler-based hybrid composites can have potential applications in numerous sectors. Nano-fillers are bringing a leading development in material science and natural fibers-based composites. The present study considers the impact of various weight percentages of nano-titanium oxide (NTiO2) fillers (2%, 4%, and 6%) on the elastic features of novel hybridized banana-hemp fiber-reinforced epoxy composites. The proposed composite is analyzed for its elastic properties like longitudinal and transverse elastic modulus, axial Poisson's ratio, and axial shear modulus using homogenized micromechanical models, namely, Mori-Tanaka (M-T) model, Generalized self-consistent (G-SC) model and Modified Halpin-Tsai (M-HTS) model. The composite is modeled using one layer of banana fiber, one layer of NTiO2 and epoxy, and one layer of hemp fiber. All three layers of the composite are arranged in the sequence of banana fiber at 450, a layer of NTiO2 and epoxy at 00, and hemp fiber at 450. The proposed composite's vector sum deformation and strength are examined by employing the ANSYS APDL application. The results obtained in this study are compared with the experimental work mentioned in the literature. The composite reinforced with six weight% NTiO2 has the highest mechanical strength, and the modified Halpin-Tsai (M-HTS) model is the most effective in calculating the elastic features of the proposed composite. In addition to the above, the hybridization effect for the proposed composite is also estimated to analyze the tensile failure strain of banana and hemp fiber in the proposed hybrid composite structure.
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纳米氧化钛填充的香蕉-大麻纤维基复合材料弹性性能评价:分析与模拟研究
近年来,纳米填料基混杂复合材料受到了研究界的广泛关注。纳米填料基混杂复合材料在许多领域都有潜在的应用前景。纳米填料带来了材料科学和天然纤维基复合材料的领先发展。本研究考虑了不同重量百分比的纳米氧化钛(NTiO2)填充剂(2%、4%和6%)对新型杂交香蕉-大麻纤维增强环氧复合材料弹性特性的影响。采用Mori-Tanaka (M-T)模型、Generalized self-consistent (G-SC)模型和Modified Halpin-Tsai (M-HTS)模型对复合材料的纵向和横向弹性模量、轴向泊松比和轴向剪切模量等弹性性能进行了分析。该复合材料由一层香蕉纤维、一层NTiO2和环氧树脂以及一层大麻纤维组成。复合材料的所有三层按顺序排列,香蕉纤维在450,NTiO2和环氧树脂层在00,大麻纤维在450。采用ANSYS APDL软件对复合材料的变形和强度矢量和进行了分析。本研究的结果与文献中提到的实验工作进行了比较。添加6% NTiO2的复合材料具有最高的机械强度,修正的Halpin-Tsai (M-HTS)模型是计算复合材料弹性特性最有效的模型。除此之外,还对所提出的复合材料的杂交效应进行了估计,分析了所提出的混杂复合材料结构中香蕉纤维和大麻纤维的拉伸破坏应变。
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来源期刊
Engineering Solid Mechanics
Engineering Solid Mechanics Materials Science-Metals and Alloys
CiteScore
3.00
自引率
0.00%
发文量
21
期刊介绍: Engineering Solid Mechanics (ESM) is an online international journal for publishing high quality peer reviewed papers in the field of theoretical and applied solid mechanics. The primary focus is to exchange ideas about investigating behavior and properties of engineering materials (such as metals, composites, ceramics, polymers, FGMs, rocks and concretes, asphalt mixtures, bio and nano materials) and their mechanical characterization (including strength and deformation behavior, fatigue and fracture, stress measurements, etc.) through experimental, theoretical and numerical research studies. Researchers and practitioners (from deferent areas such as mechanical and manufacturing, aerospace, railway, bio-mechanics, civil and mining, materials and metallurgy, oil, gas and petroleum industries, pipeline, marine and offshore sectors) are encouraged to submit their original, unpublished contributions.
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