Literature DB >> 25897559

Experimental Measurements of Near-Source Exposure Modeling Parameters.

C B Keil1.   

Abstract

Air concentrations near pollutant sources can be modeled using two-zone and turbulent diffusion models. Each type of model requires a specific pollutant transport parameter: the interzonal air flow (β) is used in the two-zone model and the turbulent diffusion coefficient (DT) in the diffusion model. In this study β and DT were determined experimentally by using concentrations measured around the release of a tracer vapor. A robot arm provided motion in the space near the source to simulate worker actions. Eighty-two experiments were conducted at two room locations and with different robot arm motion programs. β and DT for were calculated using room geometry, ventilation parameters and the measured concentrations during the experiments. The near zone geometry was a 0.4 m hemisphere. The presence of motion in the vicinity of the source was important for the appropriate application of both models. The values of β were log-normally distributed with a mean of 2.03 m3/min, a geometric mean (GM) of 1.65 m3/min (1.42-1.93 95% C.I.) and a geometric standard deviation of 1.82. DT was also log-normally distributed with a mean of 0.586 m2/min, a GM of 0.545 m2/min (0.493-0.600 95% C.I.) and GSD of 1.45. The location within the room had an influence on the value of both β and DT. The use of random airspeed and the free surface area around the source was confirmed as an appropriate method for determining β. A recently developed algorithm was supported as useful for determination of DT. The results strengthen the application of both the two-zone and turbulent diffusion models for worker exposure modeling.

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Keywords:  eddy diffusion model; exposure modeling; near field far field model; turbulent diffusion model; two-zone model

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Year:  2015        PMID: 25897559     DOI: 10.1080/15459624.2015.1029619

Source DB:  PubMed          Journal:  J Occup Environ Hyg        ISSN: 1545-9624            Impact factor:   2.155


  1 in total

1.  Quantifying Emission Factors and Setting Conditions of Use According to ECHA Chapter R.14 for a Spray Process Designed for Nanocoatings-A Case Study.

Authors:  Antti Joonas Koivisto; Benedetta Del Secco; Sara Trabucco; Alessia Nicosia; Fabrizio Ravegnani; Marko Altin; Joan Cabellos; Irini Furxhi; Magda Blosi; Anna Costa; Jesús Lopez de Ipiña; Franco Belosi
Journal:  Nanomaterials (Basel)       Date:  2022-02-10       Impact factor: 5.076

  1 in total

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