Ex-ante life cycle assessment of polyethylenefuranoate (PEF) from bio-based monomers synthesized via a novel electrochemical process

被引:12
作者
Zuiderveen, Emma A. R. [1 ]
Ansovini, Davide [2 ]
Gruter, Gert-Jan M. [2 ,3 ]
Shen, Li [4 ]
机构
[1] Radboud Univ Nijmegen, Inst Water & Wetland Res, Dept Environm Sci, POB 9010, NL-6500 GL Nijmegen, Netherlands
[2] Avantium, Zekeringstr 29, NL-1014 BV Amsterdam, Netherlands
[3] Univ Amsterdam, Vant Hoff Inst Mol Sci, POB 94720, NL-1090 GS Amsterdam, Netherlands
[4] Univ Utrecht, Copernicus Inst Sustainable Dev, Heidelberglaan 8, NL-3584 CS Utrecht, Netherlands
来源
CLEANER ENVIRONMENTAL SYSTEMS | 2021年 / 2卷
基金
欧盟地平线“2020”;
关键词
PEF; FDCA; MEG; Bio-based polymers; Ex-ante LCA; Early-stage assessment; Decarbonization; Bio-based chemicals; Bio-economy; Electrification of the chemical industry; Lignocellulosic biomass; Second generation feedstock; First generation feedstock; GREENHOUSE-GAS ASSESSMENT; IMPACT ASSESSMENT; EARLY-STAGE; ENERGY; SCALE; FRAMEWORK; TECHNOLOGIES; EMISSIONS; CHEMICALS; PLASTICS;
D O I
10.1016/j.cesys.2021.100036
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
An ex-ante Life Cycle Assessment was conducted to assess the cradle-to-factory gate environmental impact of polyethylenefuranoate (PEF). The two monomers used to synthesize a 100% bio-based PEF, namely 2,5- furan dicarboxylic acid (2,5-FDCA) and mono ethylene glycol (MEG), are synthesized simultaneously from a novel electrochemical reactor using bio-based raw materials. The technology is currently at a low Technological Readiness Level (TRL 2-3), and was scaled up to a theoretical TRL4 using process design. The purposes of this study are two folds: 1) to identify the significant environmental issues at an early development stage and 2) to gain insights into and experience of ex-ante assessment for a low-TRL bio-based innovation. The electrochemical technology investigated offers the opportunity of electrification of the chemical sector in the future. Ex-ante LCA was applied based on recently suggested TRL-frameworks. Primary data from the foreground system, covering the electrochemical reactor and the downstream purification processes, were obtained from lab-scale experiments and conceptual design. Five environmental indicators were assessed: namely, climate change, non-renewable energy use (NREU), acidification, eutrophication and land use. The results show that the electricity demand from the electrochemical reactor is the most important contributor of the environmental impacts, yet downstream processes contribute significantly as well. Future scenarios show that a carbon neutral electricity in 2050 could help to significantly reduce the climate change impact (by up to 60%). As a proof-of-concept, the assessed electrochemical reactor shows its important potential of the electrification of the chemical sector for monomer and polymer production, provided that a zero emission electricity in the future can be achieved.
引用
收藏
页数:14
相关论文
共 63 条
[1]  
Aeschelmann F., 2015, Industrial Biotechnology, V11, P154
[2]  
[Anonymous], 2007, Ecoinvent Report no. 1, DOI DOI 10.1016/j.lwt.2007.05.013
[3]  
[Anonymous], 2018, EMCDDA EUROPOL 2017, P1, DOI 10.2777/478385
[4]  
[Anonymous], 2016, EU REFERENCE SCENARI, DOI DOI 10.2833/001137
[5]  
[Anonymous], 2021, Plastics-The facts 2021: An analysis of European plastics production, demand, and waste data
[6]  
[Anonymous], 2011, SPECIFICATION ASSESS
[7]  
Broekema R, 2017, AGRIFOOTPRINT 4 0 2
[8]   Environmental assessment of bio-based chemicals in early-stage development: a review of methods and indicators [J].
Broeren, Martijn L. M. ;
Zijp, Michiel C. ;
Waaijers-van der Loop, Susanne L. ;
Heugens, Evelyn H. W. ;
Posthuma, Leo ;
Worrell, Ernst ;
Shen, Li .
BIOFUELS BIOPRODUCTS & BIOREFINING-BIOFPR, 2017, 11 (04) :701-718
[9]   Specifying Technology Readiness Levels for the Chemical Industry [J].
Buchner, Georg A. ;
Stepputat, Kai J. ;
Zimmermann, Arno W. ;
Schomaecker, Reinhard .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2019, 58 (17) :6957-6969
[10]   Chain Mobility, Thermal, and Mechanical Properties of Poly(ethylene furanoate) Compared to Poly(ethylene terephthalate) [J].
Burgess, Steven K. ;
Leisen, Johannes E. ;
Kraftschik, Brian E. ;
Mubarak, Christopher R. ;
Kriegel, Robert M. ;
Koros, William J. .
MACROMOLECULES, 2014, 47 (04) :1383-1391