Combustion Aerosols: Factors Governing Their Size and Composition and Implications to Human Health
Аэрозоли горения: факторы, определяющие их размер и состав, и последствия для здоровья человека
2000-09-01
SCID: 54.1/5gp7hhfq
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PM2.5combustion-generated particlespolycyclic aromatic hydrocarbonstransition metalsultrafine particles
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Abstract (AI)
Particulate matter (PM) emissions from stationary combustion sources burning coal, fuel oil, biomass, and waste, and PM from internal combustion (IC) engines burning gasoline and diesel, are a significant source of primary particles smaller than 2.5 microns (PM2.5) in urban areas. Combustion-generated particles are generally smaller than geologically produced dust and have unique chemical composition and morphology. The fundamental processes affecting formation of combustion PM and the emission characteristics of important applications are reviewed. Particles containing transition metals, ultrafine particles, and soot are emphasized because these types of particles have been studied extensively, and their emissions are controlled by the fuel composition and the oxidant-temperature-mixing history from the flame to the stack. There is a need for better integration of the combustion, air pollution control, atmospheric chemistry, and inhalation health research communities. Epidemiology has demonstrated that susceptible individuals are being harmed by ambient PM. Particle surface area, number of ultrafine particles, bioavailable transition metals, polycyclic aromatic hydrocarbons (PAH), and other particle-bound organic compounds are suspected to be more important than particle mass in determining the effects of air pollution. Time- and size-resolved PM measurements are needed for testing mechanistic toxicological hypotheses, for characterizing the relationship between combustion operating conditions and transient emissions, and for source apportionment studies to develop air quality plans. Citations are provided to more specialized reviews, and the concluding comments make suggestions for further research.
Key Findings
1
Combustion particles are generally smaller than geologically produced dust and exhibit distinct chemical compositions and morphologies.
2
Combustion sources are significant urban contributors of primary PM2.5, including emissions from coal, fuel oil, biomass, waste, gasoline, and diesel.
3
Particle formation and emissions of transition metals, ultrafine particles, and soot depend strongly on fuel composition and oxidant–temperature–mixing histories from flame to stack.
4
Particle surface area, ultrafine-particle number, bioavailable transition metals, PAHs, and other particle-bound organics may influence health effects more strongly than particle mass.
5
Time- and size-resolved measurements are needed to test toxicological mechanisms, link operating conditions with transient emissions, and improve source apportionment and air-quality planning.
Research Object
Combustion-generated particulate matter (PM2.5), including ultrafine particles, soot, and transition-metal- and organic-compound-containing particles, emitted from stationary and internal-combustion sources
Research Subject
The factors governing the size, chemical composition, morphology, and health-relevant toxicity of combustion-generated particles, including effects of fuel composition and oxidant–temperature–mixing history
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2000-09-01
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