Non-exhaust vehicle emissions of particulate matter and VOC from road traffic: A review
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R. Harrison | M. Heal | J. Allan | T. Murrells | Davis Carruthers | B. Marner | A. C. Lewis | A. M. Williams
[1] B. Seiwert,et al. Comprehensive characterization of tire and road wear particles in highway tunnel road dust by use of size and density fractionation. , 2021, Chemosphere.
[2] F. Amato,et al. Organic profiles of brake wear particles , 2021 .
[3] R. Harrison,et al. More mileage in reducing urban air pollution from road traffic. , 2021, Environment international.
[4] H. Jang,et al. Effect of disc material on particulate matter emissions during high-temperature braking , 2021 .
[5] S. Beevers,et al. Quantification of Non-Exhaust Particulate Matter Traffic Emissions and the Impact of COVID-19 Lockdown at London Marylebone Road , 2021, Atmosphere.
[6] A. Ball,et al. Review of the interactions between vehicular emitted potentially toxic elements, roadside soils, and associated biota. , 2021, Chemosphere.
[7] S. Prasad,et al. Spectroscopic assessment of heavy metals pollution in roadside soil and road dust: a review , 2020 .
[8] A. Segers,et al. Sources of particulate-matter air pollution and its oxidative potential in Europe , 2020, Nature.
[9] M. Seo,et al. The Impact of Composition in Non-steel and Low-Steel Type Friction Materials on Airborne Brake Wear Particulate Emission , 2020, Tribology Letters.
[10] J. Rothwell,et al. Characterisation of road-dust sediment in urban systems: a review of a global challenge , 2020, Journal of Soils and Sediments.
[11] H. Malcolm,et al. A survey of heavy metal contents of rural and urban roadside dusts: comparisons at low, medium and high traffic sites in Central Scotland , 2020, Environmental Science and Pollution Research.
[12] Loic Adamczak,et al. Potentials and Challenges of a Brake Particle Emission Collecting System , 2020 .
[13] Oleksii Nosko,et al. Correlations between the wear of car brake friction materials and airborne wear particle emissions , 2020 .
[14] P. Hopke,et al. Vehicular non-exhaust particulate emissions in Chinese megacities: Source profiles, real-world emission factors, and inventories. , 2020, Environmental pollution.
[15] Junji Cao,et al. Highly time-resolved measurements of element concentrations in PM10 and PM2.5: comparison of Delhi, Beijing, London, and Krakow , 2020, Atmospheric Chemistry and Physics.
[16] H. Jang,et al. Influences of the average molecular weight of phenolic resin and potassium titanate morphology on particulate emissions from brake linings , 2020, Wear.
[17] X. Querol,et al. Loadings, chemical patterns and risks of inhalable road dust particles in an Atlantic city in the north of Portugal. , 2020, The Science of the total environment.
[18] Y. S. Choy,et al. Tribology performance, airborne particle emissions and brake squeal noise of copper-free friction materials , 2020 .
[19] Richard C. Thompson,et al. Tyre wear particles: an abundant yet widely unreported microplastic? , 2020, Environmental Science and Pollution Research.
[20] C. Lanzerstorfer. Toward more intercomparable road dust studies , 2020 .
[21] G. Reifferscheid,et al. Tyre and road wear particles (TRWP) - A review of generation, properties, emissions, human health risk, ecotoxicity, and fate in the environment. , 2020, The Science of the total environment.
[22] E. Kavazanjian,et al. Durable and ductile double-network material for dust control , 2020 .
[23] Krag A. Petterson,et al. Source apportionment of highly time-resolved elements during a firework episode from a rural freeway site in Switzerland , 2020, Atmospheric Chemistry and Physics.
[24] U. Olofsson,et al. Friction, wear and airborne particle emission from Cu-free brake materials , 2020, Tribology International.
[25] Loic Adamczak,et al. At source brake dust collection system , 2019, Results in Engineering.
[26] H. Jang,et al. Effects of binder resin on tribological properties and particle emission of brake linings , 2019, Wear.
[27] K. Kvaal,et al. Detection and Quantification of Tire Particles in Sediments Using a Combination of Simultaneous Thermal Analysis, Fourier Transform Infra-Red, and Parallel Factor Analysis , 2019, International journal of environmental research and public health.
[28] Mark E. Rettig,et al. On-road vehicle measurements of brake wear particle emissions , 2019, Atmospheric Environment.
[29] B. Maher,et al. Airborne, vehicle-derived Fe-bearing nanoparticles in the urban environment - A review. , 2019, Environmental science & technology.
[30] Mark E. Rettig,et al. Study of Brake Wear Particle Emissions: Impact of Braking and Cruising Conditions. , 2019, Environmental science & technology.
[31] J. Panko,et al. Evaluation of Tire Wear Contribution to PM2.5 in Urban Environments , 2019, Atmosphere.
[32] G. Evans,et al. Temporal and spatial variability of traffic-related PM2.5 sources: Comparison of exhaust and non-exhaust emissions , 2019, Atmospheric Environment.
[33] Anja Verschoor,et al. Are We Speaking the Same Language? Recommendations for a Definition and Categorization Framework for Plastic Debris. , 2019, Environmental science & technology.
[34] Andrew Quinn,et al. Applying machine learning methods in managing urban concentrations of traffic-related particulate matter (PM10 and PM2.5) , 2019, Atmospheric Pollution Research.
[35] Dongjoo Park,et al. Review of pollutants in urban road dust: Part II. Organic contaminants from vehicles and road management , 2018, International Journal of Urban Sciences.
[36] T. Wallington,et al. Vehicle criteria pollutant (PM, NOx, CO, HCs) emissions: how low should we go? , 2018, npj Climate and Atmospheric Science.
[37] T. Grigoratos,et al. A novel real-world braking cycle for studying brake wear particle emissions , 2018, Wear.
[38] Seokhwan Lee,et al. Characteristics of Tire Wear Particles Generated by a Tire Simulator under Various Driving Conditions. , 2018, Environmental science & technology.
[39] Seokhwan Lee,et al. Characteristics of tire wear particles generated in a laboratory simulation of tire/road contact conditions , 2018, Journal of Aerosol Science.
[40] C. Buisson,et al. Identification and quantification of particulate tracers of exhaust and non-exhaust vehicle emissions , 2019, Atmospheric Chemistry and Physics.
[41] X. Querol,et al. Chemical profiling of PM10 from urban road dust. , 2018, The Science of the total environment.
[42] D. Carruthers,et al. Air quality simulations for London using a coupled regional-to-local modelling system , 2018, Atmospheric Chemistry and Physics.
[43] C. Lanzerstorfer. Heavy metals in the finest size fractions of road-deposited sediments. , 2018, Environmental pollution.
[44] M. Strand,et al. Road dust and its effect on human health: a literature review , 2018, Epidemiology and health.
[45] K. Kannan,et al. A Review of Environmental Occurrence, Fate, Exposure, and Toxicity of Benzothiazoles. , 2018, Environmental science & technology.
[46] D. Ladonin. Platinum-Group Elements in Soils and Street Dust of the Southeastern Administrative District of Moscow , 2018, Eurasian Soil Science.
[47] Lin Wu,et al. Occurrence of benzothiazole and its derivates in tire wear, road dust, and roadside soil. , 2018, Chemosphere.
[48] Ulf Olofsson,et al. A concept for reducing PM10 emissions for car brakes by 50 , 2018 .
[49] U. Olofsson,et al. On the influence of car brake system parameters on particulate matter emissions , 2018 .
[50] Aonghus McNabola,et al. Analysing the Co-Benefits of transport fleet and fuel policies in reducing PM2.5 and CO2 emissions , 2018 .
[51] F. Gauterin,et al. Investigation of ultra fine particulate matter emission of rubber tires , 2018 .
[52] Krag A. Petterson,et al. Field and laboratory evaluation of a high time resolution x-ray fluorescence instrument for determining the elemental composition of ambient aerosols , 2017, Atmospheric Measurement Techniques.
[53] F. Ajmone-Marsan,et al. Bioaccessibility and size distribution of metals in road dust and roadside soils along a peri-urban transect. , 2017, The Science of the total environment.
[54] P. J. Kole,et al. Wear and Tear of Tyres: A Stealthy Source of Microplastics in the Environment , 2017, International journal of environmental research and public health.
[55] R. Harrison,et al. Isotopic signatures in atmospheric particulate matter suggest important 6 contributions from recycled gasoline for lead and non-exhaust traffic 7 sources for copper and zinc in aerosols in London, United Kingdom 8 , 2017 .
[56] Krag A. Petterson,et al. Elemental composition of ambient aerosols measured with high temporal resolution using an online XRF spectrometer , 2017 .
[57] E. Saikawa,et al. Comparison of emissions inventories of anthropogenic air pollutants and greenhouse gases in China , 2017 .
[58] U. Olofsson,et al. Effective density of airborne wear particles from car brake materials , 2017 .
[59] V. Tomášek,et al. Release of volatile organic compounds by oxidative wear of automotive friction materials , 2017 .
[60] Seokhwan Lee,et al. Laboratory study of the generation of nanoparticles from tire tread , 2017 .
[61] U. Olofsson,et al. Emission of 1.3–10 nm airborne particles from brake materials , 2017 .
[62] John D. Fieldhouse,et al. New Developments of an On-Vehicle Brake Pad Waste Collection System , 2016 .
[63] Dongjoo Park,et al. Review of pollutants in urban road dust and stormwater runoff: part 1. Heavy metals released from vehicles , 2016 .
[64] Victor R.J.H. Timmers,et al. Non-exhaust PM emissions from electric vehicles , 2016 .
[65] E. Adamiec,et al. Heavy metals from non-exhaust vehicle emissions in urban and motorway road dusts , 2016, Environmental Monitoring and Assessment.
[66] C. Reche,et al. Effects of water and CMA in mitigating industrial road dust resuspension , 2016 .
[67] H. Hagino,et al. Laboratory testing of airborne brake wear particle emissions using a dynamometer system under urban city driving cycles , 2016 .
[68] X. Querol,et al. Traffic induced particle resuspension in Paris: Emission factors and source contributions , 2016 .
[69] R. Harrison,et al. Detection of brake wear aerosols by aerosol time-of-flight mass spectrometry , 2016 .
[70] M. Heal,et al. The sensitivities of emissions reductions for the mitigation of UK PM 2.5 , 2016 .
[71] R. Harrison,et al. Review: Particle number size distributions from seven major sources and implications for source apportionment studies , 2015 .
[72] E. Boldo,et al. Implementation of road dust resuspension in air quality simulations of particulate matter in Madrid (Spain) , 2015, Front. Environ. Sci..
[73] L. Williams,et al. Advanced source apportionment of size-resolved trace elements at multiple sites in London during winter , 2015 .
[74] R. Harrison,et al. Receptor modelling of both particle composition and size distribution from a background site in London, UK – a two-step approach , 2019 .
[75] R. Harrison,et al. AIRUSE-LIFE+: a harmonized PM speciation and source apportionment in five southern European cities , 2015 .
[76] Steven D. Kohl,et al. Characterization of ambient PM2.5 at a pollution hotspot in New Delhi, India and inference of sources , 2015 .
[77] James Allan,et al. The molecular identification of organic compounds in the atmosphere: state of the art and challenges. , 2015, Chemical reviews.
[78] U. Pfeffer,et al. A quantitative estimation of the exhaust, abrasion and resuspension components of particulate traffic emissions using electron microscopy , 2014 .
[79] J.H.J. Hulskotte,et al. Elemental composition of current automotive braking materials and derived air emission factors , 2014 .
[80] D. Lowe,et al. Gaseous chemistry and aerosol mechanism developments for version 3.5.1 of the online regional model, WRF-Chem , 2014, Geoscientific Model Development.
[81] J. Kwak,et al. On-road and laboratory investigations on non-exhaust ultrafine particles from the interaction between the tire and road pavement under braking conditions , 2014 .
[82] G. Martini,et al. Brake wear particle emissions: a review , 2014, Environmental Science and Pollution Research.
[83] R. Harrison,et al. Characteristics of tyre dust in polluted air: Studies by single particle mass spectrometry (ATOFMS) , 2014 .
[84] Mats Gustafsson,et al. Urban air quality: the challenge of traffic non-exhaust emissions. , 2014, Journal of hazardous materials.
[85] Roger Westerholm,et al. Tire tread wear particles in ambient air—a previously unknown source of human exposure to the biocide 2-mercaptobenzothiazole , 2014, Environmental Science and Pollution Research.
[86] Matthias Ketzel,et al. A coupled road dust and surface moisture model to predict non-exhaust road traffic induced particle emissions (NORTRIP). Part 1: Road dust loading and suspension modelling , 2013 .
[87] Ranjeet S. Sokhi,et al. Source apportionment of traffic emissions of particulate matter using tunnel measurements , 2013 .
[88] R. Harrison,et al. Estimation of the contribution of road traffic emissions to particulate matter concentrations from field measurements: A review , 2013 .
[89] Hongsuk Kim,et al. Characterization of non-exhaust coarse and fine particles from on-road driving and laboratory measurements. , 2013, The Science of the total environment.
[90] J. Panko,et al. Measurement of airborne concentrations of tire and road wear particles in urban and rural areas of France, Japan, and the United States , 2013 .
[91] Leonidas Ntziachristos,et al. The Policy Relevance of Wear Emissions from Road Transport, Now and in the Future—An International Workshop Report and Consensus Statement , 2013, Journal of the Air & Waste Management Association.
[92] Hugo Denier van der Gon,et al. Effect of rain events on the mobility of road dust load in two Dutch and Spanish roads , 2012 .
[93] Julio Lumbreras,et al. Emission factors from road dust resuspension in a Mediterranean freeway , 2012 .
[94] J. Panko,et al. Use of a Deuterated Internal Standard with Pyrolysis-GC/MS Dimeric Marker Analysis to Quantify Tire Tread Particles in the Environment , 2012, International journal of environmental research and public health.
[95] Klaus Schrewe,et al. Partial Flow Sintered Metal Filter as Part of a Tier 4 Emission Reduction Strategy , 2012 .
[96] X. Querol,et al. Hourly elemental concentrations in PM2.5 aerosols sampled simultaneously at urban background and road site , 2012 .
[97] Roy M Harrison,et al. Estimation of the contributions of brake dust, tire wear, and resuspension to nonexhaust traffic particles derived from atmospheric measurements. , 2012, Environmental science & technology.
[98] Scott C. Brown,et al. Analysis of the effectiveness of control measures to mitigate road dust emissions in a regional network , 2012 .
[99] Sunyeong Lee,et al. Properties of roadway particles from interaction between the tire and road pavement , 2012 .
[100] Christer Johansson,et al. Automobile tires--a potential source of highly carcinogenic dibenzopyrenes to the environment. , 2012, Environmental science & technology.
[101] W. Püttmann,et al. Platinum group elements (Pt, Pd, Rh) in airborne particulate matter in rural vs. urban areas of Germany: concentrations and spatial patterns of distribution. , 2012, The Science of the total environment.
[102] Fei Song,et al. Size distributions of trace elements associated with ambient particular matter in the affinity of a major highway in the New Jersey–New York metropolitan area , 2011 .
[103] X. Querol,et al. Sources and variability of inhalable road dust particles in three European cities , 2011 .
[104] M. Tsuzuki,et al. Evaluation of hydrogenated resin acids as molecular markers for tire-wear debris in urban environments. , 2011, Environmental science & technology.
[105] Thorsten Benter,et al. Investigation on the potential generation of ultrafine particles from the tire–road interface , 2011 .
[106] Petr Vodička,et al. Contribution of the road traffic to air pollution in the Prague city (busy speedway and suburban crossroads) , 2011 .
[107] R. Harrison,et al. PMF analysis of wide-range particle size spectra collected on a major highway. , 2011, Environmental science & technology.
[108] Julio Lumbreras,et al. Road dust contribution to PM levels - Evaluation of the effectiveness of street washing activities by means of Positive Matrix Factorization , 2011 .
[109] Pavel Moravec,et al. On airborne nano/micro-sized wear particles released from low-metallic automotive brakes. , 2011, Environmental pollution.
[110] Chunsheng Zhao,et al. Mobility particle size spectrometers: harmonization of technical standards and data structure to facilitate high quality long-term observations of atmospheric particle number size distributions , 2010 .
[111] Lily D. Poulikakos,et al. Mobile load simulators – A tool to distinguish between the emissions due to abrasion and resuspension of PM10 from road surfaces , 2010 .
[112] J M Baldasano,et al. A comprehensive assessment of PM emissions from paved roads: real-world Emission Factors and intense street cleaning trials. , 2010, The Science of the total environment.
[113] Aatmeeyata,et al. Polycyclic aromatic hydrocarbons, elemental and organic carbon emissions from tire-wear. , 2010, The Science of the total environment.
[114] C. Johansson,et al. A review on the effectiveness of street sweeping, washing and dust suppressants as urban PM control methods. , 2010, Science of the Total Environment.
[115] Michael Cusack,et al. Variability of Particle Number, Black Carbon, and PM10, PM2.5, and PM1 Levels and Speciation: Influence of Road Traffic Emissions on Urban Air Quality , 2010 .
[116] R. Gehrig,et al. PM10 emission factors for non-exhaust particles generated by road traffic in an urban street canyon and along a freeway in Switzerland , 2010 .
[117] U. Olofsson,et al. Size, Shape, and Elemental Composition of Airborne Wear Particles from Disc Brake Materials , 2010 .
[118] Ulf Olofsson,et al. A pin-on-disc simulation of airborne wear particles from disc brakes , 2010 .
[119] D. Eatough,et al. Review of Recent Advances in Detection of Organic Markers in Fine Particulate Matter and Their Use for Source Apportionment , 2010, Journal of the Air & Waste Management Association.
[120] Mats Gustafsson,et al. Factors influencing PM10 emissions from road pavement wear , 2009 .
[121] Jean-François Gal,et al. Elemental characterization and source identification of PM2.5 using Positive Matrix Factorization: The Malraux road tunnel, Nice, France , 2009 .
[122] Gerald Falkenberg,et al. Real-world emission factors for antimony and other brake wear related trace elements: size-segregated values for light and heavy duty vehicles. , 2009, Environmental science & technology.
[123] G. Dongarrà,et al. Possible markers of traffic-related emissions , 2009, Environmental monitoring and assessment.
[124] David C. Carslaw,et al. Analysis of air pollution data at a mixed source location using boosted regression trees , 2009 .
[125] Monica Pandolfi,et al. Quantifying road dust resuspension in urban environment by Multilinear Engine: A comparison with PMF2 , 2009 .
[126] Ulf Olofsson,et al. A disc brake test stand for measurement of airborne wear particles , 2009 .
[127] Y. Fujitani,et al. Clarification of the predominant emission sources of antimony in airborne particulate matter and estimation of their effects on the atmosphere in Japan , 2009 .
[128] Mar Viana,et al. Spatial and chemical patterns of PM10 in road dust deposited in urban environment , 2009 .
[129] P. Yu,et al. Fingerprinting metals in urban street dust of Beijing, Shanghai, and Hong Kong. , 2008, Environmental science & technology.
[130] Roy M Harrison,et al. Sources and properties of non-exhaust particulate matter from road traffic: a review. , 2008, The Science of the total environment.
[131] G P Ostermeyer,et al. New insights into the tribology of brake systems , 2008 .
[132] H. Raclavská,et al. Wear and environmental aspects of composite materials for automotive braking industry , 2008 .
[133] Eliseo Monfort,et al. Spatial and temporal variations in airborne particulate matter (PM10 and PM2.5) across Spain 1999–2005 , 2008 .
[134] Mats Gustafsson,et al. Properties and toxicological effects of particles from the interaction between tyres, road pavement and winter traction material. , 2008, The Science of the total environment.
[135] Naoki Furuta,et al. Emission factor for antimony in brake abrasion dusts as one of the major atmospheric antimony sources. , 2008, Environmental science & technology.
[136] Christer Johansson,et al. Factors affecting non-tailpipe aerosol particle emissions from paved roads: On-road measurements in Stockholm, Sweden , 2008 .
[137] A.J.H. Visschedijk,et al. A revised estimate of copper emissions from road transport in UNECE-Europe and its impact on predicted copper concentrations , 2007 .
[138] David S T Hjortenkrans,et al. Metal emissions from brake linings and tires: case studies of Stockholm, Sweden 1995/1998 and 2005. , 2007, Environmental science & technology.
[139] Nittaya Rattanasom,et al. Reinforcement of natural rubber with silica/carbon black hybrid filler , 2007 .
[140] D. Murphy,et al. The design of single particle laser mass spectrometers. , 2007, Mass spectrometry reviews.
[141] Kimberly A Prather,et al. Aerosol time-of-flight mass spectrometry data analysis: a benchmark of clustering algorithms. , 2007, Analytica chimica acta.
[142] Mats Gustafsson,et al. Traffic-generated emissions of ultrafine particles from pavement–tire interface , 2006 .
[143] J. Blok,et al. Environmental exposure of road borders to zinc. , 2005, The Science of the total environment.
[144] R. Gehrig,et al. Trace metals in ambient air: Hourly size-segregated mass concentrations determined by synchrotron-XRF. , 2005, Environmental science & technology.
[145] J. Schauer,et al. Emissions of metals associated with motor vehicle roadways. , 2005, Environmental science & technology.
[146] K. Adachi,et al. Characterization of heavy metal particles embedded in tire dust. , 2004, Environment international.
[147] Gwidon Stachowiak,et al. Review of automotive brake friction materials , 2004 .
[148] E. Landa,et al. Tire-wear particles as a source of zinc to the environment. , 2004, Environmental science & technology.
[149] Kaarle Kupiainen,et al. The effect of mineralogy, texture and mechanical properties of anti-skid and asphalt aggregates on urban dust , 2003 .
[150] M Matti Maricq,et al. Airborne brake wear debris: size distributions, composition, and a comparison of dynamometer and vehicle tests. , 2003, Environmental science & technology.
[151] J. Schauer,et al. Trimethylsilyl derivatives of organic compounds in source samples and in atmospheric fine particulate matter. , 2002, Environmental science & technology.
[152] Fien Degryse,et al. Fate and effect of zinc from tire debris in soil. , 2002, Environmental science & technology.
[153] Judith C. Chow,et al. Review of PM2.5 and PM10 Apportionment for Fossil Fuel Combustion and Other Sources by the Chemical Mass Balance Receptor Model , 2002 .
[154] P. Blau,et al. Compositions, Functions, and Testing of Friction Brake Materials and Their Additives , 2001 .
[155] M. Griepentrog,et al. Chemical and microstructural changes induced by friction and wear of brakes , 2001 .
[156] A. Davis,et al. Loading estimates of lead, copper, cadmium, and zinc in urban runoff from specific sources. , 2001, Chemosphere.
[157] Christopher A. Laroo,et al. Brake Wear Particulate Matter Emissions , 2000 .
[158] P. Paatero. The Multilinear Engine—A Table-Driven, Least Squares Program for Solving Multilinear Problems, Including the n-Way Parallel Factor Analysis Model , 1999 .
[159] P. Paatero. Least squares formulation of robust non-negative factor analysis , 1997 .
[160] J C Chow,et al. Measurement methods to determine compliance with ambient air quality standards for suspended particles. , 1995, Journal of the Air & Waste Management Association.
[161] P. Paatero,et al. Positive matrix factorization: A non-negative factor model with optimal utilization of error estimates of data values† , 1994 .
[162] R. Harrison,et al. PM10 and PM2.5 emission factors for non-exhaust particles from road vehicles: Dependence upon vehicle mass and implications for battery electric vehicles , 2021 .
[163] V. Dietze,et al. Tire Abrasion as a Major Source of Microplastics in the Environment , 2018 .
[164] J. Kukutschová,et al. Review of Brake Wear Emissions , 2018 .
[165] K. Kupiainen,et al. Review of Road Dust Emissions , 2018 .
[166] M. Gustafsson. Review of Road Wear Emissions: A Review of Road Emission Measurement Studies: Identification of Gaps and Future Needs , 2018 .
[167] P. Hopke,et al. Current State of Particulate Air Quality , 2018 .
[168] R. Harrison,et al. Source apportionment of fine and coarse particles at a roadside and urban background site in London during the 2012 summer ClearfLo campaign. , 2017, Environmental pollution.
[169] M. Keuken,et al. Improving the modeling of road dust levels for Barcelona at urban scale and street level , 2016 .
[170] Martini Giorgio,et al. Non-exhaust traffic related emissions – Brake and tyre wear PM , 2014 .
[171] D. G. Gajghate,et al. Source Apportionment of PM2.5 Using a CMB Model for a Centrally Located Indian City , 2014 .
[172] F. Bardelli,et al. Speciation of Sb in airborne particulate matter, vehicle brake linings, and brake pad wear residues , 2013 .
[173] Christer Johansson,et al. NORTRIP - Non-exhaust road traffic induced particle emissions : development of a model for assessing the effect on air quality and exposure , 2012 .
[174] Yajun Wang,et al. Health risk of platinum group elements from automobile catalysts , 2012 .
[175] Philip K. Hopke,et al. Source apportionment of the ambient PM2.5 across St. Louis using constrained positive matrix factorization , 2012 .
[176] K. Prather,et al. Mass spectrometry of atmospheric aerosols--recent developments and applications. Part II: On-line mass spectrometry techniques. , 2012, Mass spectrometry reviews.
[177] José María Baldasano,et al. Implementation of resuspension from paved roads for the improvement of CALIOPE air quality system in Spain , 2011 .
[178] Julie M Panko,et al. Physical and chemical characterization of tire-related particles: comparison of particles generated using different methodologies. , 2010, The Science of the total environment.
[179] Roy M. Harrison,et al. Identification of brake wear particles and derivation of a quantitative tracer for brake dust at a major road , 2010 .
[180] B. Mahler,et al. PAHs underfoot: contaminated dust from coal-tar sealcoated pavement is widespread in the United States. , 2009, Environmental science & technology.
[181] P. Lenschow,et al. Some ideas about the sources of PM10 , 2001 .
[182] Glen R. Cass,et al. SOURCES OF FINE ORGANIC AEROSOL. 3. ROAD DUST, TIRE DEBRIS, AND ORGANOMETALLIC BRAKE LINING DUST: ROADS AS SOURCES AND SINKS , 1993 .