Power plant fuel switching and air quality in a tropical, forested environment

dc.contributor.authorMedeiros, Adan Sady S.
dc.contributor.authorCalderaro, Gisele
dc.contributor.authorGuimarães, Patrícia Costa
dc.contributor.authorMagalhaes, Mateus R.
dc.contributor.authorMorais, Marcos Vinícius Bueno de
dc.contributor.authorRafee, Sameh Adib Abou
dc.contributor.authorRibeiro, Igor Oliveira
dc.contributor.authorAndreoli, Rita Valéria
dc.contributor.authorMartins, Jorge Alberto
dc.contributor.authorMartins, Leila Droprinchinski
dc.contributor.authorMartin, Scot T.
dc.contributor.authorSouza, Rodrigo Augusto Ferreira de
dc.date.accessioned2020-05-18T15:08:13Z
dc.date.available2020-05-18T15:08:13Z
dc.date.issued2017
dc.description.abstractHow a changing energy matrix for electricity production affects air quality is considered for an urban region in a tropical, forested environment. Manaus, the largest city in the central Amazon Basin of Brazil, is in the process of changing its energy matrix for electricity production from fuel oil and diesel to natural gas over an approximately 10-year period, with a minor contribution by hydropower. Three scenarios of urban air quality, specifically afternoon ozone concentrations, were simulated using the Weather Research and Forecasting (WRF-Chem) model. The first scenario used fuel oil and diesel for electricity production, which was the reality in 2008. The second scenario was based on the fuel mix from 2014, the most current year for which data were available. The third scenario considered nearly complete use of natural gas for electricity production, which is the anticipated future, possibly for 2018. For each case, inventories of anthropogenic emissions were based on electricity generation, refinery operations, and transportation. Transportation and refinery operations were held constant across the three scenarios to focus on effects of power plant fuel switching in a tropical context. The simulated NOx and CO emissions for the urban region decrease by 89 and 55% respectively, after the complete change in the energy matrix. The results of the simulations indicate that a change to natural gas significantly decreases maximum afternoon ozone concentrations over the population center, reducing ozone by > 70% for the most polluted days. The sensitivity of ozone concentrations to the fuel switchover is consistent with a NOx-limited regime, as expected for a tropical forest having high emissions of biogenic volatile organic compounds, high water vapor concentrations, and abundant solar radiation. There are key differences in a shifting energy matrix in a tropical, forested environment compared to other world environments. Policies favoring the burning of natural gas in place of fuel oil and diesel have great potential for ozone reduction and improved air quality for growing urban regions located in tropical, forested environments around the world. © 2017 Author(s). This work is distributed under the Creative Commons Attribution 3.0 License.en
dc.identifier.doi10.5194/acp-17-8987-2017
dc.identifier.urihttps://repositorio.inpa.gov.br/handle/1/15722
dc.language.isoenpt_BR
dc.publisher.journalAtmospheric Chemistry and Physicspt_BR
dc.relation.ispartofVolume 17, Número 14, Pags. 8987-8998pt_BR
dc.rightsAttribution-NonCommercial-NoDerivs 3.0 Brazil*
dc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/3.0/br/*
dc.subjectAir Qualityen
dc.subjectAtmospheric Modelingen
dc.subjectElectricity Generationen
dc.subjectEmission Inventoryen
dc.subjectFuelen
dc.subjectHuman Activityen
dc.subjectNitrous Oxideen
dc.subjectOzoneen
dc.subjectPower Planten
dc.subjectTropical Foresten
dc.subjectAmazon Basinen
dc.titlePower plant fuel switching and air quality in a tropical, forested environmenten
dc.typeArtigopt_BR

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