Comparing Two-Zone Models of Dust Exposure.

The selection and application of mathematical models to work tasks is challenging. Previously, we developed and evaluated a semi-empirical two-zone model that predicts time-weighted average (TWA) concentrations (Ctwa) of dust emitted during the sanding of drywall joint compound. Here, we fit the emi...

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Publicado en:Journal of Occupational & Environmental Hygiene Vol. 8; no. 9; pp. 513 - 520
Autores principales: Jones, Rachael M., Simmons, Catherine E., Boelter, Fred W.
Formato: CEU equations & formulas research tables/charts Journal Article
Publicado: Taylor & Francis Ltd Sep2011
Acceso en línea:Ver este registro en EBSCOhost
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      dt: Sep2011
      vid: 8
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      pub: Taylor & Francis Ltd
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        atl: Comparing Two-Zone Models of Dust Exposure.
      aug:
        au:
          Jones, Rachael M.
          Simmons, Catherine E.
          Boelter, Fred W.
        affil: ENVIRON International Corporation, Chicago, Illinois,School of Public Health, University of Illinois at Chicago, Chicago, Illinois
      sug:
        subj:
          Occupational Exposure Evaluation
          Air Pollution Analysis
          Dust Analysis
          Models, Statistical
          Human
          Industry
          Pearson's Correlation Coefficient
          Predictive Value of Tests
          Comparative Studies
          Education, Continuing (Credit)
      ab: The selection and application of mathematical models to work tasks is challenging. Previously, we developed and evaluated a semi-empirical two-zone model that predicts time-weighted average (TWA) concentrations (Ctwa) of dust emitted during the sanding of drywall joint compound. Here, we fit the emission rate and random air speed variables of a mechanistic two-zone model to testing event data and apply and evaluate the model using data from two field studies. We found that the fitted random air speed values and emission rate were sensitive to (i) the size of the near-field and (ii) the objective function used for fitting, but this did not substantially impact predicted dust Ctwa. The mechanistic model predictions were lower than the semi-empirical model predictions and measured respirable dust Ctwa at Site A but were within an acceptable range. At Site B, a 10.5 m3 room, the mechanistic model did not capture the observed difference between PBZ and area Ctwa. The model predicted uniform mixing and predicted dust Ctwa up to an order of magnitude greater than was measured. We suggest that applications of the mechanistic model be limited to contexts where the near-field volume is very small relative to the far-field volume. [Supplementary materials are available for this article. Go to the publisher's online edition of the Journal of Occupational and Environmental Hygiene for the following free supplemental resource: a PDF file containing tables giving data for fitted emission rates and random air speeds for testing events with measured airflow rates for both near- and far-field zones and near-field zone only, and figures showing fitted random air speed varies with near-filed geometry when fitted with objective functions 1 and 2.]
      pubtype: Academic Journal
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        CEU
        equations & formulas
        research
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    language: English
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