Difusión: Bibliografía
BIBLIOGRAFÍA
GENERALES
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[2]Astarloa et al (2011) "Filtro hibrido catalítico para control de emisiones gaseosas de contaminantes tóxicos COPs, PM10 y metales pesados: diseño, estudio paramétrico, construcción a escala real, puesta en marcha y validación. 220/PC08/3-13.1 Informe Final"
[3]Bahillo et al. Co-combustion of coal and olive cake in a BFB demonstration plant. Characterization of fuel gases and fly ashes. 14th European Biomass Conf.
[4]Demirbas A. Progress and recent trends in biofuels. Pr.En.Comb.Sci 2007;330].
[5]Nussbaumer, Combustion and Co-combustion of Biomass: Fundamentals, Technologies, and Primary Measures for Emission Reduction: E&F 2003
EMISIONES Y SISTEMAS DE DEPURACIÓN
[6]Bernd et al. Biomass burning - a review of organic tracers for smoke from incomplete combustion. Applied Geochemistry 17 (2002) 129-162.
[7]Celades López, I. Caracterización física, química, mineralógica y morfológica del material particulado emitido por focos canalizados de la industria de baldosas y fritas cerámicas. Castellón: Universidad Jaume I, 2013. Tesis Doctoral.
[8]Dorronsoro et al 2003 "Emission particles from combustion of leather waste in BFB" EAC.
[9]Ferge et al.; 2004 "Particle Collection Efficiency and Particle Re-entrainment of an ESP" Env.S.Tech.2004 38 (5); 1545-1553.
[10]Gutierrez-Cañas et al, Fractional Efficiency in the Submicron range and control of HMs emission of a Hybrid Filter, EAC, 2007
[11]Gutierrez-Cañas et al, Field and Laboratory Evaluations of a Hybrid Filter, 30th CFR Annual Review Meeting.
[12]Gutierrez-Cañas et al. Towards a real-time system for monitoring fine PM from stationary sources: needs, requirements and performance assessment. ISBN 9080915939.
[13]Gutierrez-Cañas et al. Heavy metals emission measurement and control. ISBN 0-9584085 8-02003.
[14]Gutierrez-Cañas et al. Dynamics of release and control of metallic aerosol. IAC2010. Chem. Eng. Transactions. 2010.
[15]Gutiérrez-Cañas et al. Combined catalytic control of PCDD/Fs and fine particle filtration from a 1.2MW biomass cofiring boiler. AAAR 2011.
[16]Gutiérrez-Canas et al. Nanostructured stainless steel welding fumes: The influence of welding process on their physicochemical characteristics and effects. AAAR 2011.
[17]Gutiérrez-Cañas et al. Nanostructure of fine and ultrafine particles from start-ups and shutdowns of a 250MW natural gas power plant. EAC 2011.
[18]Kakareka et al. Study of PAH emission from the solid fuels combustion in residential furnaces. Env.Pollution 133, 383-387, 2005.
[19]Larrion et al. Mecanismos de transformación y reparto de fases (gas/sólido) de elementos traza. ISBN 84-611-3374- 9.
[20]Lind et al. 1995 "Compositional penetration of pulverized coal combustion fly-ash trough the ESP" J. Aerosol Sci.; 26, S12-S14
[21]Lind et al. 2003 "ESP Collection Efficiency and Trace Element Emissions from Co-Combustion of Biomass" Env.S.Tech.; 37(12); 2842-2846.
[22]Melendez et al. Fine and ultrafine emission dynamics from a ferrous foundry cupola furnace. Journal of the AWMA Vol: 60, 2010.
[23]Monfort et al. Determinación de las fracciones PMx/PST en emisiones de partículas de la industria cerámica. Qualicer 2006.
[24]Nguyen et al. Emission of PAH and PM from Domestic Combustion of Selected Fuels. Env.S.Tech., 33, 2703-2709, 1999.
[25]Pena et al. Simulación y verificación de la eficacia fraccional de un electrofiltro y un filtro híbrido. ISBN 84-611-3374- 9, Volumen:1.
[26]Pena et al. Prevention of PCDD/Fs emission from a MWS incinerator through enhanced control of copper aerosol. Revista de Metalurgia iSSn: 0034-8570 Volumen: 48,no 5.
[27]Querol et al. Spatial and temporal variations in airborne particulate matter (PM10 and PM2.5) across Spain 1999" 2005. Atmos. Environ., 42, 3964-3979, 2008.
[28]Rodriguez Maroto et al. 1997 "On the ESP resolution in function of main influence factors studied in a pilot fluidized bed coal combustion plant" 9th International Conference on Coal Sci.
[29]Rodriguez Maroto et al. 2002 "ESP performance for different combustion processes" 6th IAC.
[30]Saez et al. 2003. Cascade Impactor Sampling to measure PAH from Biomass Combustion Processes. Biosystems Eng. 86.
[31]Sanz et al 2006 "Ensayo de un proceso para la depuración simultánea de partículas y contaminantes gaseosos en efluentes de combustión de biomasa y residuos" PROMA X.
[32]Sanz et al. 2007 "Pilot plant tests of a ceramic catalytic filter" EAC 2007.
[33]Sanz et al. 2012. Performance of a multifunctional hybrid filter for fine and ultrafine PM and trace pollutants from waste biomass combustion. 21st Int. Conf. on FB Combustion.
EMISIONES DIFUSAS
[34]Beauchenim et al. Emissions and APC for the Biomass Pellet Manufacturing Industry. The BCM of the Environment, 2010.
[35]Monfort et al. Control y estimación de emisiones difusas de material particulado en operaciones al aire libre.
PROMA-X, (DL: BI-2278-06).
[36]Monfort et al. Diffuse PM10 emission factors associated with dust abatement technologies in the ceramic industry. Atmos. Environ. 45, 7286-7292, 2011.
[37]Santacatalina et al. Impact of fugitive emissions in ambient PM levels and composition. A case study in Southeast Spain. Sci. of the Total Environment, 408(21), 4999-5009, 2010.
IMPACTO DE AEROSOLES SECUNDARIOS
[38]Alves et al. Smoke emissions from biomass burning in a Mediterranean shrubland. Atmos. Environ.44 (2010).
[39]Favez et al. Evidence for a significant contribution of wood burning for aerosols to PM2.5 during the winter season. Atmos. Environ.43 (2009) 3640-3644.
[40]Gomez et al. Size particle and mineralogical composition of atmospheric particulate pollutants in an industrial coastal Mediterranean area. Madrid: MMA, 2001.
[41]Hobbs et al. Evolution of gases and particles from savanna fire in S.Africa. J. Geoph. Res., Vol. 108, D13, 8485, 2003
[42]Qiaoqiao et al. Impact of biomass burning on urban air quality estimated by organic tracers. Atm. Environ.41, 8380-8390, 2007.
[43]Querol et al. Monitoring of PM10 and PM2.5 around primary particulate anthropogenic emission sources. 2001. Atm. Environ., 35(5), 845-858, 2001.
[44]Reche et al. Biomass burning contributions to urban aerosols in a coastal Mediterranean City. Sci. of the Total Env. 427-428 (2012) 175-190.
[45]Ryu et al. Characteristics of biomass burning aerosol and its impact on regional air quality at Gwangju. Atm. Res. 84 (2007) 362-373.
DMAs Y CARGADORES ELÉCTRICOS
[46]Alguacil et al. 2006. Multiple charging of ultrafine particles in a corona charger. J.Aerosol Sci., 37, 875-884.
[47]Alonso et al. 1997. Bipolar charging and neutralization of nanometer-sized aerosol particles. J.Aerosol Sci., 28, 1479-1490.
[48]Alonso. 2006. Conceptual possibilities for extending the particle size range of a differential mobility analyzer using longitudinal and transversal electrodes. J. Aerosol Sci., 37, 1340-1346.
[49]Bourgeois et al. 2009. DBD as a post-discharge bipolar ions source and selective ion-induced nucleation versus ions polarity. J. Phys. D: Appl. Phys., 205202.
[50]Brunelli et al. 2009. Radial differential mobility analyzer for one nanometer particle classification. Aerosol Sci. Tech., 43, 53-59.
[51]Martinez-Lozano et al. Resolution improvements of a nano-DMA operating transonically. J. Aerosol Sci., 37, 500- 512.
[52]Rosell-Lompart et al. 1996. Sizing nanoparticles and ions with a short differential mobility analyzer. J. Aerosol Sci., 27, 695-719.
[53]Santos et al. 2009. Performance evaluation of a high-resolution parallel-plate differential mobility analyzer. Atmos. Chem. Phys., 9, 2419-2429.
[54]Tsai et al. 2010. Enhancement of extrinsic charging efficiency of a nanoparticle charger with multiple discharging wires. Aerosol Sci. Tech., 807-816.
[55]Winklmayr, et al. 1991. A new electromobility spectrometer for the measurement of aerosol size distributions in the size range 1-1000 nm. J. Aerosol Sci., 22.