Impact of changes in the syngas-biochar mix and plant size on the economics and environmental performance of distributed biomass gasification systems

Camarero Lema, Sofía Inés

Supervisor(es): Alfaro, Jose - Vaishnav, Parth

Resumen:

Agriculture and forestry residues are potential sources of sustainable energy that do not compete with food or demand land use changes. Small-scale biomass gasification could be used to generate decentralized renewable electricity where these biomass stocks are locally available, while co-producing biochar to sequester carbon. This study evaluated how the scale and the syngas-biochar trade-offs impact the economics and decarbonization potential of a gasification system. A small-scale downdraft gasifier fed with logging residues in Michigan was used as case study. A Life Cycle Assessment (LCA) approach was used to formulate Economic Benefit (EB) and Carbon Abatement (CA) objective functions that formed a Multi Criteria Decision Analysis (MCDA) problem. Feasible product mix and scale configurations were mapped, and a pareto frontier was identified. EB is maximized when the electricity generation and the scale are maximized, at expense of emitting 1.683 kg CO2eq/kWh. Conversely, CA is maximized to 0.348 kg CO2eq abated per kWh for the highest biochar production and the smallest scale. Results were found to be sensitive to external factors: EB optimum shifted to maximize biochar when the carbon price was increased from 5 $/ton CO2eq to match the social cost of carbon (50 $/ton CO2eq) and 2030 projections (100 $/ton CO2eq), CA increased 112.0% when grid electricity emissions were increased from 0.48 kg CO2eq/kWh (Michigan’s) to 0.87 kg CO2eq/kWh (West Virignia’s), and EB reached 0.147 $/kWh when a high electricity price of 33 ¢/kWh (Hawaii’s) is considered instead of Michigan’s 13 ¢/kWh. For different stakeholders and contexts, the maximization of positive impacts can require different technology configurations. The developed LCA-MCDA combined methodology provides an example of a framework that could inform decision-making in the deployment of biomass gasification to reconcile economic and climate change mitigation objectives.


Detalles Bibliográficos
2022
Agencia Nacional de Investigación e Innovación
Comisión Fulbright Uruguay
Biomass gasification
Life cycle assessment
Decarbonization
Biochar
Bioenergy
Ingeniería y Tecnología
Ingeniería del Medio Ambiente
Ingeniería Química
Ciencias Naturales y Exactas
Ciencias de la Tierra y relacionadas con el Medio Ambiente
Ciencias Medioambientales
Ingeniería del Petróleo, Energía y Combustibles
Inglés
Agencia Nacional de Investigación e Innovación
REDI
https://hdl.handle.net/20.500.12381/640
Acceso abierto
Reconocimiento-NoComercial-SinObraDerivada 4.0 Internacional. (CC BY-NC-ND)
_version_ 1814959262099570688
author Camarero Lema, Sofía Inés
author_facet Camarero Lema, Sofía Inés
author_role author
bitstream.checksum.fl_str_mv 3c9d86d36485746409b4281a0893d729
136b63d5c6acc58bb3d51f7d1f0ee51a
bitstream.checksumAlgorithm.fl_str_mv MD5
MD5
bitstream.url.fl_str_mv https://redi.anii.org.uy/jspui/bitstream/20.500.12381/640/2/license.txt
https://redi.anii.org.uy/jspui/bitstream/20.500.12381/640/1/Camarero_Sofia_Thesis.pdf
collection REDI
dc.creator.advisor.none.fl_str_mv Alfaro, Jose
Vaishnav, Parth
dc.creator.none.fl_str_mv Camarero Lema, Sofía Inés
dc.date.accessioned.none.fl_str_mv 2022-10-03T13:51:07Z
dc.date.available.none.fl_str_mv 2022-10-03T13:51:07Z
dc.date.issued.none.fl_str_mv 2022-04
dc.description.abstract.none.fl_txt_mv Agriculture and forestry residues are potential sources of sustainable energy that do not compete with food or demand land use changes. Small-scale biomass gasification could be used to generate decentralized renewable electricity where these biomass stocks are locally available, while co-producing biochar to sequester carbon. This study evaluated how the scale and the syngas-biochar trade-offs impact the economics and decarbonization potential of a gasification system. A small-scale downdraft gasifier fed with logging residues in Michigan was used as case study. A Life Cycle Assessment (LCA) approach was used to formulate Economic Benefit (EB) and Carbon Abatement (CA) objective functions that formed a Multi Criteria Decision Analysis (MCDA) problem. Feasible product mix and scale configurations were mapped, and a pareto frontier was identified. EB is maximized when the electricity generation and the scale are maximized, at expense of emitting 1.683 kg CO2eq/kWh. Conversely, CA is maximized to 0.348 kg CO2eq abated per kWh for the highest biochar production and the smallest scale. Results were found to be sensitive to external factors: EB optimum shifted to maximize biochar when the carbon price was increased from 5 $/ton CO2eq to match the social cost of carbon (50 $/ton CO2eq) and 2030 projections (100 $/ton CO2eq), CA increased 112.0% when grid electricity emissions were increased from 0.48 kg CO2eq/kWh (Michigan’s) to 0.87 kg CO2eq/kWh (West Virignia’s), and EB reached 0.147 $/kWh when a high electricity price of 33 ¢/kWh (Hawaii’s) is considered instead of Michigan’s 13 ¢/kWh. For different stakeholders and contexts, the maximization of positive impacts can require different technology configurations. The developed LCA-MCDA combined methodology provides an example of a framework that could inform decision-making in the deployment of biomass gasification to reconcile economic and climate change mitigation objectives.
dc.description.sponsorship.none.fl_txt_mv Agencia Nacional de Investigación e Innovación
Comisión Fulbright Uruguay
dc.identifier.anii.es.fl_str_mv POS_FUL_2020_1_1009051
dc.identifier.uri.none.fl_str_mv https://hdl.handle.net/20.500.12381/640
dc.language.iso.none.fl_str_mv eng
dc.publisher.es.fl_str_mv University of Michigan
dc.rights.es.fl_str_mv Acceso abierto
dc.rights.license.none.fl_str_mv Reconocimiento-NoComercial-SinObraDerivada 4.0 Internacional. (CC BY-NC-ND)
dc.rights.none.fl_str_mv info:eu-repo/semantics/openAccess
dc.source.none.fl_str_mv reponame:REDI
instname:Agencia Nacional de Investigación e Innovación
instacron:Agencia Nacional de Investigación e Innovación
dc.subject.anii.none.fl_str_mv Ingeniería y Tecnología
Ingeniería del Medio Ambiente
Ingeniería Química
Ciencias Naturales y Exactas
Ciencias de la Tierra y relacionadas con el Medio Ambiente
Ciencias Medioambientales
Ingeniería del Petróleo, Energía y Combustibles
dc.subject.es.fl_str_mv Biomass gasification
Life cycle assessment
Decarbonization
Biochar
Bioenergy
dc.title.none.fl_str_mv Impact of changes in the syngas-biochar mix and plant size on the economics and environmental performance of distributed biomass gasification systems
dc.type.es.fl_str_mv Tesis de maestría
dc.type.none.fl_str_mv info:eu-repo/semantics/masterThesis
dc.type.version.es.fl_str_mv Aceptado
dc.type.version.none.fl_str_mv info:eu-repo/semantics/acceptedVersion
description Agriculture and forestry residues are potential sources of sustainable energy that do not compete with food or demand land use changes. Small-scale biomass gasification could be used to generate decentralized renewable electricity where these biomass stocks are locally available, while co-producing biochar to sequester carbon. This study evaluated how the scale and the syngas-biochar trade-offs impact the economics and decarbonization potential of a gasification system. A small-scale downdraft gasifier fed with logging residues in Michigan was used as case study. A Life Cycle Assessment (LCA) approach was used to formulate Economic Benefit (EB) and Carbon Abatement (CA) objective functions that formed a Multi Criteria Decision Analysis (MCDA) problem. Feasible product mix and scale configurations were mapped, and a pareto frontier was identified. EB is maximized when the electricity generation and the scale are maximized, at expense of emitting 1.683 kg CO2eq/kWh. Conversely, CA is maximized to 0.348 kg CO2eq abated per kWh for the highest biochar production and the smallest scale. Results were found to be sensitive to external factors: EB optimum shifted to maximize biochar when the carbon price was increased from 5 $/ton CO2eq to match the social cost of carbon (50 $/ton CO2eq) and 2030 projections (100 $/ton CO2eq), CA increased 112.0% when grid electricity emissions were increased from 0.48 kg CO2eq/kWh (Michigan’s) to 0.87 kg CO2eq/kWh (West Virignia’s), and EB reached 0.147 $/kWh when a high electricity price of 33 ¢/kWh (Hawaii’s) is considered instead of Michigan’s 13 ¢/kWh. For different stakeholders and contexts, the maximization of positive impacts can require different technology configurations. The developed LCA-MCDA combined methodology provides an example of a framework that could inform decision-making in the deployment of biomass gasification to reconcile economic and climate change mitigation objectives.
eu_rights_str_mv openAccess
format masterThesis
id REDI_1212cade2050520534b8d0f19328d588
identifier_str_mv POS_FUL_2020_1_1009051
instacron_str Agencia Nacional de Investigación e Innovación
institution Agencia Nacional de Investigación e Innovación
instname_str Agencia Nacional de Investigación e Innovación
language eng
network_acronym_str REDI
network_name_str REDI
oai_identifier_str oai:redi.anii.org.uy:20.500.12381/640
publishDate 2022
reponame_str REDI
repository.mail.fl_str_mv jmaldini@anii.org.uy
repository.name.fl_str_mv REDI - Agencia Nacional de Investigación e Innovación
repository_id_str 9421
rights_invalid_str_mv Reconocimiento-NoComercial-SinObraDerivada 4.0 Internacional. (CC BY-NC-ND)
Acceso abierto
spelling Reconocimiento-NoComercial-SinObraDerivada 4.0 Internacional. (CC BY-NC-ND)Acceso abiertoinfo:eu-repo/semantics/openAccess2022-10-03T13:51:07Z2022-10-03T13:51:07Z2022-04https://hdl.handle.net/20.500.12381/640POS_FUL_2020_1_1009051Agriculture and forestry residues are potential sources of sustainable energy that do not compete with food or demand land use changes. Small-scale biomass gasification could be used to generate decentralized renewable electricity where these biomass stocks are locally available, while co-producing biochar to sequester carbon. This study evaluated how the scale and the syngas-biochar trade-offs impact the economics and decarbonization potential of a gasification system. A small-scale downdraft gasifier fed with logging residues in Michigan was used as case study. A Life Cycle Assessment (LCA) approach was used to formulate Economic Benefit (EB) and Carbon Abatement (CA) objective functions that formed a Multi Criteria Decision Analysis (MCDA) problem. Feasible product mix and scale configurations were mapped, and a pareto frontier was identified. EB is maximized when the electricity generation and the scale are maximized, at expense of emitting 1.683 kg CO2eq/kWh. Conversely, CA is maximized to 0.348 kg CO2eq abated per kWh for the highest biochar production and the smallest scale. Results were found to be sensitive to external factors: EB optimum shifted to maximize biochar when the carbon price was increased from 5 $/ton CO2eq to match the social cost of carbon (50 $/ton CO2eq) and 2030 projections (100 $/ton CO2eq), CA increased 112.0% when grid electricity emissions were increased from 0.48 kg CO2eq/kWh (Michigan’s) to 0.87 kg CO2eq/kWh (West Virignia’s), and EB reached 0.147 $/kWh when a high electricity price of 33 ¢/kWh (Hawaii’s) is considered instead of Michigan’s 13 ¢/kWh. For different stakeholders and contexts, the maximization of positive impacts can require different technology configurations. The developed LCA-MCDA combined methodology provides an example of a framework that could inform decision-making in the deployment of biomass gasification to reconcile economic and climate change mitigation objectives.Agencia Nacional de Investigación e InnovaciónComisión Fulbright UruguayengUniversity of MichiganBiomass gasificationLife cycle assessmentDecarbonizationBiocharBioenergyIngeniería y TecnologíaIngeniería del Medio AmbienteIngeniería QuímicaCiencias Naturales y ExactasCiencias de la Tierra y relacionadas con el Medio AmbienteCiencias MedioambientalesIngeniería del Petróleo, Energía y CombustiblesImpact of changes in the syngas-biochar mix and plant size on the economics and environmental performance of distributed biomass gasification systemsTesis de maestríaAceptadoinfo:eu-repo/semantics/acceptedVersioninfo:eu-repo/semantics/masterThesis//Ingeniería y Tecnología/Ingeniería del Medio Ambiente/Ingeniería del Medio Ambiente//Ingeniería y Tecnología/Ingeniería Química/Ingeniería Química//Ciencias Naturales y Exactas/Ciencias de la Tierra y relacionadas con el Medio Ambiente/Ciencias Medioambientales//Ingeniería y Tecnología/Ingeniería del Medio Ambiente/Ingeniería del Petróleo, Energía y Combustiblesreponame:REDIinstname:Agencia Nacional de Investigación e Innovacióninstacron:Agencia Nacional de Investigación e InnovaciónCamarero Lema, Sofía InésAlfaro, JoseVaishnav, ParthLICENSElicense.txtlicense.txttext/plain; charset=utf-84944https://redi.anii.org.uy/jspui/bitstream/20.500.12381/640/2/license.txt3c9d86d36485746409b4281a0893d729MD52ORIGINALCamarero_Sofia_Thesis.pdfCamarero_Sofia_Thesis.pdfMasters Thesisapplication/pdf878529https://redi.anii.org.uy/jspui/bitstream/20.500.12381/640/1/Camarero_Sofia_Thesis.pdf136b63d5c6acc58bb3d51f7d1f0ee51aMD5120.500.12381/6402022-10-03 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- Agencia Nacional de Investigación e Innovaciónfalse
spellingShingle Impact of changes in the syngas-biochar mix and plant size on the economics and environmental performance of distributed biomass gasification systems
Camarero Lema, Sofía Inés
Biomass gasification
Life cycle assessment
Decarbonization
Biochar
Bioenergy
Ingeniería y Tecnología
Ingeniería del Medio Ambiente
Ingeniería Química
Ciencias Naturales y Exactas
Ciencias de la Tierra y relacionadas con el Medio Ambiente
Ciencias Medioambientales
Ingeniería del Petróleo, Energía y Combustibles
status_str acceptedVersion
title Impact of changes in the syngas-biochar mix and plant size on the economics and environmental performance of distributed biomass gasification systems
title_full Impact of changes in the syngas-biochar mix and plant size on the economics and environmental performance of distributed biomass gasification systems
title_fullStr Impact of changes in the syngas-biochar mix and plant size on the economics and environmental performance of distributed biomass gasification systems
title_full_unstemmed Impact of changes in the syngas-biochar mix and plant size on the economics and environmental performance of distributed biomass gasification systems
title_short Impact of changes in the syngas-biochar mix and plant size on the economics and environmental performance of distributed biomass gasification systems
title_sort Impact of changes in the syngas-biochar mix and plant size on the economics and environmental performance of distributed biomass gasification systems
topic Biomass gasification
Life cycle assessment
Decarbonization
Biochar
Bioenergy
Ingeniería y Tecnología
Ingeniería del Medio Ambiente
Ingeniería Química
Ciencias Naturales y Exactas
Ciencias de la Tierra y relacionadas con el Medio Ambiente
Ciencias Medioambientales
Ingeniería del Petróleo, Energía y Combustibles
url https://hdl.handle.net/20.500.12381/640