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Ultrafine and Respirable Particles in an Automotive Grey Iron Foundry
Author(s) -
D. Evans,
William A. Heitbrink,
Thomas J. Slavin,
Thomas M. Peters
Publication year - 2007
Publication title -
the annals of occupational hygiene
Language(s) - English
Resource type - Journals
eISSN - 1475-3162
pISSN - 0003-4878
DOI - 10.1093/annhyg/mem056
Subject(s) - ultrafine particle , foundry , environmental science , particle (ecology) , particulates , particle number , mass concentration (chemistry) , grinding , particle size , metallurgy , environmental engineering , environmental chemistry , materials science , waste management , chemistry , chemical engineering , geology , engineering , physics , nanotechnology , plasma , organic chemistry , oceanography , quantum mechanics
Ultrafine particle number and respirable particle mass concentrations were measured throughout an automotive grey iron foundry during winter, spring and summer using a particle concentration mapping procedure. Substantial temporal and spatial variability was observed in all seasons and attributed, in part, to the batch nature of operations, process emission variability and frequent work interruptions. The need for fine mapping grids was demonstrated, where elevations in particle concentrations were highly localized. Ultrafine particle concentrations were generally greatest during winter when incoming make-up air was heated with direct fire, natural gas burners. Make-up air drawn from roof level had elevated respirable mass and ultrafine number concentrations above ambient outdoor levels, suggesting inadvertent recirculation of foundry process emissions. Elevated respirable mass concentrations were highly localized on occasions (e.g. abrasive blasting and grinding), depended on the area within the facility where measurements were obtained, but were largely unaffected by season. Particle sources were further characterized by measuring their respective number and mass concentrations by particle size. Sources that contributed to ultrafine particles included process-specific sources (e.g. melting and pouring operations), and non-process sources (e.g. direct fire natural gas heating units, a liquid propane-fuelled sweeper and cigarette smoking) were additionally identified.

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