Mechanical, thermal and fatigue behaviour of surface-treated novel Caryota urens fibre–reinforced epoxy composite

被引:0
|
作者
V. R. Arun Prakash
J. Francis Xavier
G. Ramesh
T. Maridurai
K. Siva Kumar
R. Blessing Sam Raj
机构
[1] J.N.N Institute of Engineering,Department of Mechanical Engineering
[2] VIT Bhopal University,School of Mechanical Engineering
[3] MEA Engineering College,Department of Mechanical Engineering
[4] Saveetha School of Engineering,Department of Mechanical Engineering
[5] SIMATS,undefined
来源
关键词
Biocomposite; Natural fibre; Surface treatment; TGA; Mechanical; Fatigue;
D O I
暂无
中图分类号
学科分类号
摘要
Epoxy biocomposites were prepared using acid-, base- and silane-treated novel Caryota urens natural fibres (CUFs). The primary aim of this research is to reveal a better surface treatment method to achieve improved mechanical, thermal and fatigue properties of Caryota fibre epoxy composite system. The composites were prepared using hand layup method and post cured at 120 °C for 48 h. The tensile, flexural and impact results show that the silane surface–treated Caryota urens fibre–reinforced epoxy composite possesses improved mechanical properties than the base- and acid-treated Caryota urens fibres in the epoxy composite. Similarly, the inter-laminar shear strength (ILSS) of silane-treated Caryota urens–reinforced epoxy composite gives the highest value of 28 MPa. The TGA shows a large mass loss for both acid- and base-treated Caryota urens epoxy composites whereas the silane-treated Caryota urens in epoxy composite retains the thermal stability. The fatigue behaviour of silane surface–modified Caryota urens epoxy composite shows the highest fatigue life cycle of 18,315 for 25% of maximum tensile stress. The SEM micrographs show improved adhesion for silane-treated CUF than those treated with acid and base. This Caryota urens fibre–reinforced epoxy composite could be used in automobile body parts, domestic appliances, defence products and lightweight mini-aircrafts.
引用
收藏
页码:5451 / 5461
页数:10
相关论文
共 50 条
  • [1] Mechanical, thermal and fatigue behaviour of surface-treated novelCaryota urensfibre-reinforced epoxy composite
    Prakash, V. R. Arun
    Xavier, J. Francis
    Ramesh, G.
    Maridurai, T.
    Kumar, K. Siva
    Raj, R. Blessing Sam
    BIOMASS CONVERSION AND BIOREFINERY, 2022, 12 (12) : 5451 - 5461
  • [2] Glass/Caryota urens hybridized fibre-reinforced nanoclay/SiC toughened epoxy hybrid composite: mechanical, drop load impact, hydrophobicity and fatigue behaviour
    Raju, P.
    Raja, K.
    Lingadurai, K.
    Maridurai, T.
    Prasanna, S. C.
    BIOMASS CONVERSION AND BIOREFINERY, 2023, 13 (02) : 1143 - 1152
  • [3] Glass/Caryota urens hybridized fibre-reinforced nanoclay/SiC toughened epoxy hybrid composite: mechanical, drop load impact, hydrophobicity and fatigue behaviour
    P. Raju
    K. Raja
    K. Lingadurai
    T. Maridurai
    S. C. Prasanna
    Biomass Conversion and Biorefinery, 2023, 13 : 1143 - 1152
  • [4] Mechanical, tribology, dielectric, thermal conductivity, and water absorption behaviour of Caryota urens woven fibre-reinforced coconut husk biochar toughened wood-plastic composite
    Prabhu, P.
    Jayabalakrishnan, D.
    Balaji, V
    Bhaskar, K.
    Maridurai, T.
    Prakash, V. R. Arun
    BIOMASS CONVERSION AND BIOREFINERY, 2024, 14 (01) : 109 - 116
  • [5] Mechanical, tribology, dielectric, thermal conductivity, and water absorption behaviour of Caryota urens woven fibre-reinforced coconut husk biochar toughened wood-plastic composite
    P. Prabhu
    D. Jayabalakrishnan
    V. Balaji
    K. Bhaskar
    T. Maridurai
    V. R. Arun Prakash
    Biomass Conversion and Biorefinery, 2024, 14 : 109 - 116
  • [6] Mechanical, dielectric, and hydrophobicity behavior of coconut shell biochar toughened Caryota urens natural fiber reinforced epoxy composite
    Jayabalakrishnan, D.
    Prabhu, P.
    Iqbal, Mohamed S.
    Mugendiran, V
    Ravi, S.
    Prakash, Arun V. R.
    POLYMER COMPOSITES, 2022, 43 (01) : 493 - 502
  • [7] Improved mechanical properties of epoxy composites reinforced with surface-treated UHMWPE fibers
    Li, Weiwei
    Huang, Momo
    Ma, Renliang
    POLYMERS FOR ADVANCED TECHNOLOGIES, 2018, 29 (04) : 1287 - 1293
  • [8] The Mechanical Properties of Treated and Untreated Kenaf Fibre Reinforced Epoxy Composite
    Abu Bakar, M. A.
    Ahmad, S.
    Kuntjoro, W.
    JOURNAL OF BIOBASED MATERIALS AND BIOENERGY, 2010, 4 (02) : 159 - 163
  • [9] Mechanical, thermal and dynamic mechanical analysis of jute fibre reinforced epoxy composite
    Gupta, M. K.
    Srivastava, R. K.
    INDIAN JOURNAL OF FIBRE & TEXTILE RESEARCH, 2017, 42 (01) : 64 - 71
  • [10] Thermo-Mechanical and Wear Behaviour of Surface-Treated Pineapple Woven Fibre and Nano-Silica Dispersed Mahua Oil Toughened Epoxy Composite
    Dinesh, T.
    Kadirvel, A.
    Hariharan, P.
    SILICON, 2020, 12 (12) : 2911 - 2920