Evaluation of the Interface Strength in the Abaca-Fiber-Reinforced Bio-Polyethylene Composites

被引:5
作者
Seculi, Faust [1 ]
Espinach, Francesc X. [1 ]
Julian, Fernando [1 ]
Delgado-Aguilar, Marc [1 ]
Mutje, Pere [1 ]
Tarres, Quim [1 ]
机构
[1] Univ Girona, LEPAMAP PRODIS Res Grp, Girona 17003, Spain
关键词
biocomposites; BioPE; abaca fibers; interface strength; intrinsic tensile strength; micromechanics; LIFE-CYCLE ASSESSMENT; MECHANICAL-PROPERTIES; SEMICHEMICAL FIBERS; TENSILE PROPERTIES; CHALLENGES; SELECTION;
D O I
10.3390/polym15122686
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Bio-based polymers, with any of their constituents based on nonrenewable sources, can answer the demands of society and regulations regarding minimizing the environmental impact. The more similar such biocomposites are to oil-based composites, the easier the transition, especially for companies that do not like the uncertainty. A BioPE matrix, with a structure similar to that of a high-density polyethylene (HDPE), was used to obtain abaca-fiber-reinforced composites. The tensile properties of these composites are displayed and compared with commercial glass-fiber-reinforced HDPE. Since the strength of the interface between the reinforcements and the matrix is responsible for the exploitation of the strengthening abilities of the reinforcements, several micromechanical models were used to obtain an estimation of the strength of the interface and the intrinsic tensile strength of the reinforcements. Biocomposites require the use of a coupling agent to strengthen their interface, and once an 8 wt.% of such coupling agent was added to the composites, these materials returned tensile properties in line with commercial glass-fiber-reinforced HDPE composites.
引用
收藏
页数:19
相关论文
共 73 条
[1]   Approaching a Zero-Waste Strategy in Rapeseed (Brassica napus) Exploitation: Sustainably Approaching Bio-Based Polyethylene Composites [J].
Aguado, Roberto ;
Xavier Espinach, Francesc ;
Vilaseca, Fabiola ;
Tarres, Quim ;
Mutje, Pere ;
Delgado-Aguilar, Marc .
SUSTAINABILITY, 2022, 14 (13)
[2]   MATERIALS SELECTION IN MECHANICAL DESIGN [J].
ASHBY, MF ;
CEBON, D .
JOURNAL DE PHYSIQUE IV, 1993, 3 (C7) :1-9
[3]   The effects of alkali-silane treatment on the tensile and flexural properties of short fibre non-woven kenaf reinforced polypropylene composites [J].
Asumani, O. M. L. ;
Reid, R. G. ;
Paskaramoorthy, R. .
COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING, 2012, 43 (09) :1431-1440
[4]  
Avérous L, 2001, STARCH-STARKE, V53, P368, DOI 10.1002/1521-379X(200108)53:8<368::AID-STAR368>3.0.CO
[5]  
2-W
[6]   Processing and characterization of high environmental efficiency composites based on PLA and hazelnut shell flour (HSF) with biobased plasticizers derived from epoxidized linseed oil (ELO) [J].
Balart, J. F. ;
Fombuena, V. ;
Fenollar, O. ;
Boronat, T. ;
Sanchez-Nacher, L. .
COMPOSITES PART B-ENGINEERING, 2016, 86 :168-177
[7]   Additive manufacturing of natural fiber reinforced polymer composites: Processing and prospects [J].
Balla, Vamsi Krishna ;
Kate, Kunal H. ;
Satyavolu, Jagannadh ;
Singh, Paramjot ;
Tadimeti, Jogi Ganesh Dattatreya .
COMPOSITES PART B-ENGINEERING, 2019, 174
[8]   Bio-Polyethylene Composites Based on Sugar Cane and Curaua Fiber: An Experimental Study [J].
Barbalho, Gustavo Henrique de Almeida ;
Nascimento, Jose Jefferson da Silva ;
da Silva, Lucineide Balbino ;
Gomez, Ricardo Soares ;
de Farias, Daniel Oliveira ;
Diniz, Diego David Silva ;
Santos, Rosilda Sousa ;
de Figueiredo, Maria Jose ;
de Lima, Antonio Gilson Barbosa .
POLYMERS, 2023, 15 (06)
[9]  
Bayer R.J., 2013, THESIS U GIRONA GIRO
[10]   Biobased Polyethylene Hybrid Composites with Natural Fiber: Mechanical, Thermal Properties, and Micromechanics [J].
Bazan, Patrycja ;
Nosal, Przemyslaw ;
Kozub, Barbara ;
Kuciel, Stanislaw .
MATERIALS, 2020, 13 (13) :1-16