Environmental impact tradeoff considerations for wheat bran-based biocomposite

被引:10
作者
Safaripour, Maryam [1 ]
Hossain, Khwaja G. [2 ]
Ulven, Chad A. [3 ]
Pourhashem, Ghasideh [1 ]
机构
[1] North Dakota State Univ, Dept Coatings & Polymer Mat, Fargo, ND 58105 USA
[2] Mayville State Univ, Div Sci & Math, Fargo, ND USA
[3] North Dakota State Univ, Dept Mech Engn, Fargo, ND USA
基金
美国国家科学基金会;
关键词
Biocomposite; Wheat grain; Wheat bran fiber; Polypropylene; Sustainable products; LCA; LIFE-CYCLE ASSESSMENT; MECHANICAL-PROPERTIES; FIBERS; COMPOSITES; POLYPROPYLENE; PERFORMANCE; BEHAVIOR; LCA;
D O I
10.1016/j.scitotenv.2021.146588
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Bio-based materials are increasingly proposed as sustainable alternatives to fossil-based products. Before commercialization, however, the environmental performance of bio-based materials must be evaluated to ensure the sustainability goals are met. Biocomposites derived from natural fibers hold promises for achieving the desired sustainability while offering competitive performance. Here, we assess the sustain-ability tradeoffs of using wheat bran, a by-product of milling wheat grain, for biocomposite production. We design two systems to evaluate such decision from the perspectives of flour and biocomposite producers. Each system is compared to a business-as-usual scenario: 1) flour system uses bran at the end of grain milling for either fiber production or disposes of it as waste, and 2) biocomposite system compares producing a biocomposite with 30% bran fiber/70% polypropylene with a 100% polypropylene. Our comparative life cycle assessment shows that in flour system, using wheat bran for biocomposite production rather than wasting it, lowers the overall environmental impacts including global warming and fossil fuel depletion mainly due to bran fiber replacing polypropylene, and avoiding carbon dioxide emissions from bran degradation. In system 2, mixing bran fiber in biocomposite lowers greenhouse gas emissions (1470kgCO(2)eg/t) and fossil fuel depletion (2130 MJ surplus/t) compared to the fully petroleum-based material. We discuss several upstream (e.g. reducing the chemicals during wheat cultivation) and downstream (e.g. sodium hydroxide consumption during fiber extraction) options that can help improve the overall environmental performance of the studied systems. Our study provides decision-making information for a variety of stakeholders induding wheat producers, millers as well as composite industries. (C) 2021 The Authors. Published by Elsevier B.V.
引用
收藏
页数:11
相关论文
共 44 条
[1]  
[Anonymous], 2007, LIFE CYCLE INVENTORI
[2]  
Boland C., 2014, THESIS
[3]   Methods to Estimate On-Field Nitrogen Emissions from Crop Production as an Input to LCA Studies in the Agricultural Sector [J].
Brentrup, Frank ;
Kuesters, Juergen ;
Lammel, Joachim ;
Kuhlmann, Hermann .
INTERNATIONAL JOURNAL OF LIFE CYCLE ASSESSMENT, 2000, 5 (06) :349-357
[4]   Assessment of the effects of the Gpc-B1 allele on senescence rate, grain protein concentration and mineral content in hard red spring wheat (Triticum aestivum L.) from the Pacific Northwest Region of the USA [J].
Carter, Arron H. ;
Santra, Dipak K. ;
Kidwell, Kimberlee K. .
PLANT BREEDING, 2012, 131 (01) :62-68
[5]   Mechanical behaviour of polypropylene reinforced sugarcane bagasse fibers composites [J].
Cerqueira, E. F. ;
Baptista, C. A. R. P. ;
Mulinari, D. R. .
11TH INTERNATIONAL CONFERENCE ON THE MECHANICAL BEHAVIOR OF MATERIALS (ICM11), 2011, 10
[6]   Wood flour filled PP composites:: adhesion, deformation, failure [J].
Danyadi, Livia ;
Renner, Karoly ;
Szabo, Zoltan ;
Nagy, Gabor ;
Moczo, Janos ;
Pukanszky, Bela .
POLYMERS FOR ADVANCED TECHNOLOGIES, 2006, 17 (11-12) :967-974
[7]   Production of alcohol by simultaneous saccharification and fermentation of low-grade wheat flour [J].
das Neves, Marcos Antonio ;
Kimura, Toshinori ;
Shimizu, Naoto ;
Shiiba, Kiwamu .
BRAZILIAN ARCHIVES OF BIOLOGY AND TECHNOLOGY, 2006, 49 (03) :481-490
[8]   Life cycle assessment of flax-fibre reinforced epoxidized linseed oil composite with a flame retardant for electronic applications [J].
Deng, Yelin ;
Paraskevas, Dimos ;
Tian, Yajun ;
Van Acker, Karel ;
Dewulf, Wim ;
Duflou, Joost R. .
JOURNAL OF CLEANER PRODUCTION, 2016, 133 :427-438
[9]  
Dixon J., 2009, Wheat Facts Futur, V23, P1
[10]  
Doree C., 1947, The methods of cellulose chemistry, including methods for the investigation of substances associated with cellulose in plant tissues.