Biomass feedstock transport using fuel cell and battery electric trucks improves lifecycle metrics of biofuel sustainability and economy

Journal of Cleaner Production - Tập 279 - Trang 123593 - 2021
Nawa Raj Baral1,2, Zachary D. Asher3, David Trinko4, Evan Sproul5, Carlos Quiroz-Arita6, Jason C. Quinn5, Thomas H. Bradley4
1Joint BioEnergy Institute, Lawrence Berkeley National Laboratory, Berkeley, CA, 94720, United States
2Biological Systems and Engineering Division, Lawrence Berkeley National Laboratory, Berkeley, CA, 94720, United States
3Western Michigan University, Mechanical and Aerospace Engineering Department, 1903 W. Michigan Ave, Kalamazoo, MI, 49008, United States
4Colorado State University, Department of Systems Engineering, Fort Collins, CO, 80523-1377, United States
5Colorado State University, Department of Mechanical Engineering, Campus Delivery 1374, Fort Collins, CO, 80523-1374, United States
6Sandia National Laboratories, 7011 East Ave, Livermore, CA, 94550, United States

Tài liệu tham khảo

Aden, 2002

2019

Bai, 2010

Baral, 2017, Uncertainties in corn stover feedstock supply logistics cost and life-cycle greenhouse gas emissions for butanol production, Appl. Energy, 208, 1343, 10.1016/j.apenergy.2017.09.020

Baral, 2018, Probabilistic lifecycle assessment of butanol production from corn stover using different pretreatment methods, Environ. Sci. Technol., 52, 14528, 10.1021/acs.est.8b05176

Baral, 2019, Techno-economic analysis and life-cycle greenhouse gas mitigation cost of five routes to bio-jet fuel blendstocks, Energy Environ. Sci., 12, 807, 10.1039/C8EE03266A

Baral, 2019, Supply and value chain analysis of mixed biomass feedstock supply system for lignocellulosic sugar production, Biofuels, Bioprod. Biorefining., 13, 635, 10.1002/bbb.1975

Barnes, 2003

2020, Monthly LCFS credit transfer activity report

2015

Clark

Davis, 2016

2016

2018

Ebadian, 2011, A new simulation model for multi-agricultural biomass logistics system in bioenergy production, Biosyst. Eng., 110, 280, 10.1016/j.biosystemseng.2011.08.008

Ebbott, 1999, Tire temperature and rolling resistance prediction with finite element analysis, Tire Sci. Technol., 27, 2, 10.2346/1.2135974

Ecoinvent, 2017

Edelstein, 2019

2018

2020

2011

2019

2019

Gautam, 2002, Development and initial use of a heavy-duty diesel truck test schedule for emissions characterization, SAE Trans., 10.4271/2002-01-1753

Gautam, 2002

Grappe, 1999, Influence of tyre pressure and vertical load on coefficient of rolling resistance and simulated cycling performance, Ergonomics, 42, 1361, 10.1080/001401399185009

Greene, 2005

2017

Hess

Huijbregts, 2017, ReCiPe2016: a harmonised life cycle impact assessment method at midpoint and endpoint level, Int. J. Life Cycle Assess., 22, 138, 10.1007/s11367-016-1246-y

Humbird, 2011

2016

2017

2014

Karbowski, 2010

Kast, 2017, Clean commercial transportation: medium and heavy duty fuel cell electric trucks, Int. J. Hydrogen Energy, 42, 4508, 10.1016/j.ijhydene.2016.12.129

Kim, 2012

Kim, 2013, Validating Volt PHEV model with dynamometer test data using Autonomie, SAE Int. J. Passeng. Cars-Mechanical Syst., 6, 985, 10.4271/2013-01-1458

Lin, 2016, Biomass feedstock preprocessing and long-distance transportation logistics, Gcb Bioenergy, 8, 160, 10.1111/gcbb.12241

Marcinkoski, 2016, Driving an industry: medium and heavy duty fuel cell electric truck component sizing, World Electr. Veh. J., 8, 78, 10.3390/wevj8010078

Morey, 2010, A corn stover supply logistics system, Appl. Eng. Agric., 26, 455, 10.13031/2013.29946

Moultak, 2017

Neupane, 2017, Life-cycle greenhouse gas and water intensity of cellulosic biofuel production using cholinium lysinate ionic liquid pretreatment, ACS Sustain. Chem. Eng., 5, 10176, 10.1021/acssuschemeng.7b02116

Ni, 2019, Assessing availability and greenhouse gas emissions of lignocellulosic biomass feedstock supply–case study for a catchment in England, Biofuels. Bioprod. Biorefin., 13, 568, 10.1002/bbb.1966

2012

2012

2016

2009

Pugazhendhi, 2019, Biobutanol as a promising liquid fuel for the future-recent updates and perspectives, Fuel, 253, 637, 10.1016/j.fuel.2019.04.139

Roni, 2018, Optimal blending management of biomass resources used for biochemical conversion, Biofuels, Bioprod. Biorefining., 12, 624, 10.1002/bbb.1877

Rousseau, 2011

Rousseau, 2006

2014

Sahoo, 2016, GIS-based biomass assessment and supply logistics system for a sustainable biorefinery: a case study with cotton stalks in the Southeastern US, Appl. Energy, 182, 260, 10.1016/j.apenergy.2016.08.114

Schaltz, 2009, Influence of battery/ultracapacitor energy-storage sizing on battery lifetime in a fuel cell hybrid electric vehicle, IEEE Trans. Veh. Technol., 58, 3882, 10.1109/TVT.2009.2027909

Sheehan, 2003, Energy and environmental aspects of using corn stover for fuel ethanol, J. Ind. Econ., 7, 117, 10.1162/108819803323059433

Shibata, 2020, Selective evaporation of a butanol/water droplet by microwave irradiation, a step toward economizing biobutanol production, Biofuel Res. J., 7, 1109, 10.18331/BRJ2020.7.1.3

Sokhansanj, 2008

Sokhansanj, 2010, Techno-economic analysis of using corn stover to supply heat and power to a corn ethanol plant–Part 1: cost of feedstock supply logistics, Biomass Bioenergy, 34, 75, 10.1016/j.biombioe.2009.10.001

Spatari, 2005, Life cycle assessment of switchgrass-and corn stover-derived ethanol-fueled automobiles, Environ. Sci. Technol., 39, 9750, 10.1021/es048293+

Sripad, 2018, Quantifying the economic case for electric semi-trucks, ACS Energy Lett, 4, 149, 10.1021/acsenergylett.8b02146

Tesla

Toyota

Wang, 2017, Impact of the biorefinery size on the logistics of corn stover supply–A scenario analysis, Appl. Energy, 198, 360, 10.1016/j.apenergy.2017.03.056

White

Who, 2016

Yang, 2017, Beyond the conventional “life cycle” assessment, Biofuel Res. J., 4, 10.18331/BRJ2017.4.3.2

Yang, 2011, Sustainable recovery of nickel from spent hydrogenation catalyst: economics, emissions and wastes assessment, J. Clean. Prod., 19, 365, 10.1016/j.jclepro.2010.11.007