Optimization of mode-I fracture toughness using the Taguchi method in cellulosic fiber-Grewia Optiva reinforced biocomposites

被引:5
|
作者
Chauhan, Sonika [1 ]
Gope, Prakash Chandra [1 ,2 ]
机构
[1] GB Pant Univ Agr & Technol, Coll Technol, Mech Engn Dept, Pantnagar, India
[2] GB Pant Univ Agr & Technol, Coll Technol, Mech Engn Dept, Pantnagar 263145, Uttarakhand, India
关键词
ANOVA; cellulosic fiber; composites; fracture toughness; Taguchi method; MECHANICAL-PROPERTIES; COCONUT FIBER; BEHAVIOR; LENGTH; POLYPROPYLENE; PARAMETERS; JUTE; ORIENTATION; COMPOSITE; STRENGTH;
D O I
10.1002/app.54395
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
In this study, underutilized Himalayan natural fiber Grewia Optiva fiber of different lengths was used as reinforcement material. The Taguchi method was applied for the optimization of fiber length, fiber weight percentage, and fiber orientation for epoxy-based Grewia Optiva fiber reinforced composite. The influences of fiber weight percentage at four levels (10-35 wt%), fiber length at four levels (3-45 mm), and fiber orientation at two levels (unidirectional and random to the loading axis) on the mode I fracture toughness was investigated using L16 orthogonal arrays. It was found that the optimum conditions are 30 wt% of fiber, 45mm fiber length, and fiber orientated normal to the loading axis. The mode-I fracture toughness at optimum condition was found as 2.122 +/- 0.094 MPa root m. The tensile, flexural, and impact strength corresponding to optimum fiber, and composite processing conditions are 336.32%, 136.93%, and 308.28% higher as compared to pure epoxy. Scanning electron micrographs of the fractured surfaces indicate good bonding of fiber and matrix and show the major fracture mechanisms such as fiber pull-out and fiber-matrix debonding. The fiber breaking and matrix cracking are found as a minimum.
引用
收藏
页数:15
相关论文
共 50 条
  • [21] Size-effect method to determine mode-I fracture toughness of aluminium alloys
    Gattu, Mahendra
    Aala, Satyanarayana
    ENGINEERING FRACTURE MECHANICS, 2021, 242
  • [22] MODE-I INTERLAMINAR FRACTURE-TOUGHNESS OF COMMINGLED CARBON-FIBER PEEK COMPOSITES
    YOON, HY
    TAKAHASHI, K
    JOURNAL OF MATERIALS SCIENCE, 1993, 28 (07) : 1849 - 1855
  • [23] Mode I fracture toughness of fiber-reinforced polymer composites: A review
    Siddique, Amna
    Abid, Sharjeel
    Shafiq, Faizan
    Nawab, Yasir
    Wang, Hailou
    Shi, Baohui
    Saleemi, Sidra
    Sun, Baozhong
    JOURNAL OF INDUSTRIAL TEXTILES, 2021, 50 (08) : 1165 - 1192
  • [24] Predicting mode-I fracture toughness of rocks using soft computing and multiple regression
    Roy, Debanjan Guha
    Singh, T. N.
    Kodikara, J.
    MEASUREMENT, 2018, 126 : 231 - 241
  • [25] A sandwich three-point bend specimen for testing mode-I interlaminar fracture toughness for fiber-reinforced composite materials
    Wang, QZ
    INTERNATIONAL JOURNAL OF FRACTURE, 1997, 85 (03) : 231 - 240
  • [26] A sandwich three-point bend specimen for testing mode-I interlaminar fracture toughness for fiber-reinforced composite materials
    Qi-Zhi Wang
    International Journal of Fracture, 1997, 85 : 231 - 240
  • [27] THE MODE-I FRACTURE-RESISTANCE OF UNIDIRECTIONAL FIBER-REINFORCED ALUMINUM MATRIX COMPOSITES
    CAO, HC
    YANG, J
    EVANS, AG
    ACTA METALLURGICA ET MATERIALIA, 1992, 40 (09): : 2307 - 2313
  • [28] Study on mode-I fracture toughness of composite laminates with curved plies applied by automated fiber placement
    Liu, Chen
    Bai, Ruixiang
    Lei, Zhenkun
    Di, Jianyu
    Dong, Dili
    Gao, Tiancheng
    Jiang, Hao
    Yan, Cheng
    MATERIALS & DESIGN, 2020, 195
  • [29] A new Method for Measuring Mode-I Dynamic Fracture Toughness of Rock under Blasting Loads
    Zhu, Z. M.
    Xu, W. T.
    Feng, R. Q.
    EXPERIMENTAL TECHNIQUES, 2016, 40 (03) : 899 - 905
  • [30] A new Method for Measuring Mode-I Dynamic Fracture Toughness of Rock under Blasting Loads
    Z. M. Zhu
    W. T. Xu
    R. Q. Feng
    Experimental Techniques, 2016, 40 : 899 - 905