Development of Hybrid Aluminum/ Carbon Fiber/ Pineapple Leaf Fiber Laminates Using Vacuum Assisted Resin Transfer Molding (VARTM) For Automotive Applications

被引:4
|
作者
Xiao, Hanyue [1 ,2 ]
Sultan, Mohamed Thariq Hameed [1 ,3 ,4 ]
Shahar, Farah Syazwani [1 ]
Nayak, Suhas Yeshwant [5 ]
Yidris, Noorfaizal [1 ]
Shah, Ain Umaira Md [1 ]
机构
[1] Univ Putra Malaysia, Fac Engn, Dept Aerosp Engn, Upm Serdang 43400, Selangor Darul, Malaysia
[2] Chongqing Coll Elect Engn, Chongqing 401331, Peoples R China
[3] Univ Putra Malaysia, Inst Trop Forestry & Forest Prod INTROP, Lab Biocomposite Technol, Upm Serdang 43400, Selangor Darul, Malaysia
[4] MIGHT Partnership Hub, Aerosp Malaysia Innovat Ctr 944751 A, Prime Ministers Dept, Cyberjaya 63000, Selangor Darul, Malaysia
[5] Manipal Acad Higher Educ, Manipal Inst Technol, Dept Mech & Ind Engn, Manipal 576104, Karnataka, India
关键词
Pineapple leaf fiber; Fiber metal laminates; VARTM; Mechanical properties; Thermal properties; Water absorption; TENSILE PROPERTIES; GLASS; COMPOSITES;
D O I
10.1007/s10443-023-10183-z
中图分类号
TB33 [复合材料];
学科分类号
摘要
The hybridization of natural and synthetic fibers is an alternate method to balance the performance and environmental friendliness of fiber metal laminates (FMLs). This research aims to fabricate hybrid aluminum (A)/ carbon fiber (C)/ pineapple leaf fiber (P) reinforced epoxy FMLs with different stacking sequences by the vacuum-assisted resin transfer molding (VARTM) technique. The fabricated hybrid FMLs were subjected to tensile, flexural, thermogravimetric analysis (TGA), and water absorption tests. The tensile and flexural strength of hybrid A1 (ACPCA) surpassed those of non-hybrid AP (APPPA) by 252.77% and 165.08%, respectively. The thermal test shows that the hybrid FMLs A1 with higher CF content leads to better thermal stability than A2 (APCPA). In addition, from the water absorption test, the AP and A2 FMLs, with PALF as outer layers of core materials, absorbed moisture exceeding 6% after 10 weeks, compared to AC (ACCCA) and A1 with CF as outer layers of core materials, which only reached up to 2.88% and 4.22%, respectively. From this study, it is worth pointing out that the hybrid A1 showed comparable performance to non-hybrid AC. Thus, the appropriate hybridization of synthetic and natural fibers can broaden the scope of the practical application of FMLs with improved environmental friendliness in the automotive industry.
引用
收藏
页码:561 / 581
页数:21
相关论文
共 50 条
  • [41] Manufacturing carbon nanofibers toughened polyester/glass fiber composites using vacuum assisted resin transfer molding for enhancing the mode-I delamination resistance
    Sadeghian, Ramin
    Gangireddy, Sudhir
    Minaie, Bob
    Hsiao, Kuang-Ting
    COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING, 2006, 37 (10) : 1787 - 1795
  • [42] Vibration monitoring for aircraft wing model using fiber Bragg grating array packaged by vacuum-assisted resin transfer molding
    Zhang, Wen
    Liu, Xiaolong
    He, Wei
    Dong, Mingli
    Zhu, Lianqing
    OPTICAL ENGINEERING, 2017, 56 (09)
  • [43] Study on structural design and analysis of flax natural fiber composite tank manufactured by vacuum assisted resin transfer molding
    Kong, Changduk
    Park, Hyunbum
    Lee, Joungwhan
    MATERIALS LETTERS, 2014, 130 : 21 - 25
  • [44] High performance hybrid reinforcement of nitrile rubber using short pineapple leaf fiber and carbon black
    Prukkaewkanjana, Kontapond
    Thanawan, Sombat
    Amornsakchai, Taweechai
    POLYMER TESTING, 2015, 45 : 76 - 82
  • [45] Mechanical recycling of carbon fiber composites: Development of hybrid composites of epoxy resin, carbon fiber, and carbon nanotubes for functional electromagnetic applications
    dos Santos, Maikon Stefano
    dos Anjos, Erick Gabriel Ribeiro
    Montagna, Larissa Stieven
    Passador, Fabio Roberto
    POLYMER ENGINEERING AND SCIENCE, 2025,
  • [46] Effect of fine particle incorporation into matrix on mechanical properties of plain woven carbon fiber reinforced plastics fabricated with vacuum assisted resin transfer molding
    Kobayashi, Satoshi
    Kitagawa, Jun
    COMPOSITES PART B-ENGINEERING, 2016, 85 : 31 - 40
  • [47] Integrated vacuum assisted resin infusion and resin transfer molding technique for manufacturing of nano-filled glass fiber reinforced epoxy composite
    Agwa, M. A.
    Youssef, Sherif M.
    Ali-Eldin, Soliman S.
    Megahed, M.
    JOURNAL OF INDUSTRIAL TEXTILES, 2022, 51 (3_SUPPL) : 5113S - 5144S
  • [48] Improved tensile properties of laminates by hot-press tackifying using vacuum-assisted resin transfer molding and autoclave
    Wang, Changchun
    Bai, Guanghui
    Yue, Guangquan
    Li, Hongfu
    Zhang, Boming
    JOURNAL OF REINFORCED PLASTICS AND COMPOSITES, 2016, 35 (23) : 1712 - 1721
  • [49] DESIGN OF A CARBON FIBER BICYCLE STEM USING A NOVEL INTERNAL BLADDER RESIN TRANSFER MOLDING TECHNIQUE
    Thouin, Maxime
    Ghiasi, Hossein
    Lessard, Larry
    ADVANCED COMPOSITES LETTERS, 2010, 19 (01) : 51 - 60
  • [50] An ultrasound-assisted resin transfer molding to improve the impregnation and dual-scale flow for carbon fiber reinforced resin composites
    Xu, Xinxin
    Wei, Kai
    Mei, Ming
    Li, Maojun
    Yang, Xujing
    COMPOSITES SCIENCE AND TECHNOLOGY, 2024, 255