Skip to main content
Top
Published in: Journal of Nanoparticle Research 4/2022

01-04-2022 | Research paper

The effect of the body wake and operator motion on the containment of nanometer-scale airborne substances using a conventional fume hood and specially designed enclosing hood: a comparison using computational fluid dynamics

Authors: Chen Shen, Kevin H. Dunn, Susan R. Woskie, James S. Bennett, Michael J. Ellenbecker, David S. Dandy, Candace Su-Jung Tsai

Published in: Journal of Nanoparticle Research | Issue 4/2022

Log in

Activate our intelligent search to find suitable subject content or patents.

search-config
loading …

Abstract

Airborne substances in the nanoparticle size range would mostly follow the primary airflow patterns, which emphasizes the importance of understanding the airflow dynamics to effectively control exposures to toxic airborne substances such as nanometer-sized particles. Chemical fume hoods are being utilized as primary controls for worker exposure to airborne substances including nanometer-scale materials due to their overall availability and history of effective contaminant. This study evaluates the impact of the body wake on the containment performance of a conventional constant air volume (CAV) and a new “nano” ventilated enclosing hood using numerical methods. Numerical studies have been performed to predict leaks of nanomaterials handled inside the hood. We further performed experiments in this study to validate the velocity fields predicted by the computational fluid dynamic (CFD) models and to provide a basis for evaluating the impact of the human body on fume hood containment performance. Using these validated models, the effects of the motion of the arms moving out of the hood were simulated using CFD to assess how one of the common actions of an operator/user may affect containment. Results of our simulations show that areas near the hood side airfoils and directly behind the sash are more likely to concentrate contaminants released inside the hood and potentially result in leakage based on internal airflow patterns. These areas are key to monitor when assessing fume hood containment along with the operator/mannequin breathing zone to get an understanding of potential leak areas which might contribute to operator exposure as well as exposure to others inside the laboratory.

Dont have a licence yet? Then find out more about our products and how to get one now:

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Literature
go back to reference ANSYS (2009) ANSYS FLUENT 12.0 Theory Guide ANSYS (2009) ANSYS FLUENT 12.0 Theory Guide
go back to reference ASHRAE (2016) ANSI/ASHRAE standard 110-2016, methods of testing performance of laboratory fume hoods. ASHRAE, Inc., Atlanta ASHRAE (2016) ANSI/ASHRAE standard 110-2016, methods of testing performance of laboratory fume hoods. ASHRAE, Inc., Atlanta
go back to reference Asadi S, Bouvier N, Wexler A, Ristenpart W (2020) The coronavirus pandemic and aerosols: does COVID-19 transmit via expiratory particles? Aerosol Sci Technol 54(6):635–638CrossRef Asadi S, Bouvier N, Wexler A, Ristenpart W (2020) The coronavirus pandemic and aerosols: does COVID-19 transmit via expiratory particles? Aerosol Sci Technol 54(6):635–638CrossRef
go back to reference Bavasso I, Vilardi G, Stoller M, Chianese A, Di Palma L (2016) Perspectives in nanotechnology based innovative applications for the environment. Chem Eng 47 Bavasso I, Vilardi G, Stoller M, Chianese A, Di Palma L (2016) Perspectives in nanotechnology based innovative applications for the environment. Chem Eng 47
go back to reference Braconnier R, Bonthoux F (2010) Fluid dynamics of cytotoxic safety cabinets. Ann Occup Hyg 54(2):236–246 Braconnier R, Bonthoux F (2010) Fluid dynamics of cytotoxic safety cabinets. Ann Occup Hyg 54(2):236–246
go back to reference Caplan KJ, Knutson GW (1982) Influence of room air supply on laboratory hoods. Am Ind Hyg Assoc J 43(10):738–746CrossRef Caplan KJ, Knutson GW (1982) Influence of room air supply on laboratory hoods. Am Ind Hyg Assoc J 43(10):738–746CrossRef
go back to reference Denev JA, Durst F, Mohr B (1997) Room Ventilation and Its Influence on the Performance of Fume Cupboards: A Parametric Numerical Study. Ind Eng Chem Res 36:458–466CrossRef Denev JA, Durst F, Mohr B (1997) Room Ventilation and Its Influence on the Performance of Fume Cupboards: A Parametric Numerical Study. Ind Eng Chem Res 36:458–466CrossRef
go back to reference DiBerardinis LJ, First MW, Ivany RE (1991a) Field Results of an in-place, quantitative performance test for laboratory fume hoods. Appl Occup Environ Hyg 6(3):227–231CrossRef DiBerardinis LJ, First MW, Ivany RE (1991a) Field Results of an in-place, quantitative performance test for laboratory fume hoods. Appl Occup Environ Hyg 6(3):227–231CrossRef
go back to reference DiBerardinis LJ, First MW, Ivany RE (1991b) Field Results of an in-place, quantitative perfromance test for laboratory fume hoods. Appl Occup Environ Hyg 6(3):227–231CrossRef DiBerardinis LJ, First MW, Ivany RE (1991b) Field Results of an in-place, quantitative perfromance test for laboratory fume hoods. Appl Occup Environ Hyg 6(3):227–231CrossRef
go back to reference Ding Y, Kuhlbusch TA, Van Tongeren M, Jiménez AS, Tuinman I, Chen R et al (2017) Airborne engineered nanomaterials in the workplace—a review of release and worker exposure during nanomaterial production and handling processes. J Hazard Mater 322:17–28CrossRef Ding Y, Kuhlbusch TA, Van Tongeren M, Jiménez AS, Tuinman I, Chen R et al (2017) Airborne engineered nanomaterials in the workplace—a review of release and worker exposure during nanomaterial production and handling processes. J Hazard Mater 322:17–28CrossRef
go back to reference Dunn K, Tsai S, Woskie S, Bennett J, Garcia A, Ellenbecker M (2014) Evaluation of leakage from fume hoods using tracer gas, tracer nanoparticles and nanopowder handling test methodologies. J Occup Environ Hyg 11(10) Dunn K, Tsai S, Woskie S, Bennett J, Garcia A, Ellenbecker M (2014) Evaluation of leakage from fume hoods using tracer gas, tracer nanoparticles and nanopowder handling test methodologies. J Occup Environ Hyg 11(10)
go back to reference Flynn MR, Ljungqvist B (1995a) A review of wake effects on worker exposure. Ann Occup Hyg 39(2):211–221CrossRef Flynn MR, Ljungqvist B (1995a) A review of wake effects on worker exposure. Ann Occup Hyg 39(2):211–221CrossRef
go back to reference Flynn MR, Ljungqvist B (1995b) A review of wake effects on worker exposure. Ann Occup Hyg 39:211–221CrossRef Flynn MR, Ljungqvist B (1995b) A review of wake effects on worker exposure. Ann Occup Hyg 39:211–221CrossRef
go back to reference Flynn MR, Ahn K, Miller CT (1995) Three-dimensional finite-element simulation of a turbulent push-pull ventilation system. Ann Occup Hyg 39(5):573–589CrossRef Flynn MR, Ahn K, Miller CT (1995) Three-dimensional finite-element simulation of a turbulent push-pull ventilation system. Ann Occup Hyg 39(5):573–589CrossRef
go back to reference George DK, Flynn MR, Goodman R (1990) The impact of boundary layer separation on local exhaust design and worker exposure. Appl Occup Environ Hyg 5(8):501–509 George DK, Flynn MR, Goodman R (1990) The impact of boundary layer separation on local exhaust design and worker exposure. Appl Occup Environ Hyg 5(8):501–509
go back to reference Hinds WC (1999) Aerosol technology - properties, behavior, and measurement of airborne particles. vol Book, Whole. Wiley-Interscience, New York Hinds WC (1999) Aerosol technology - properties, behavior, and measurement of airborne particles. vol Book, Whole. Wiley-Interscience, New York
go back to reference Hu P, Ingham DB, Wen X (1996) Effect of the location of the exhaust duct, an exterior obstruction and handle on the air flow inside and around a fume cupboard. Ann Occup Hyg 40(2):127–144CrossRef Hu P, Ingham DB, Wen X (1996) Effect of the location of the exhaust duct, an exterior obstruction and handle on the air flow inside and around a fume cupboard. Ann Occup Hyg 40(2):127–144CrossRef
go back to reference Hu P, Ingham DB, Wen X (1998) Effect of baffles and a louvered bypass on the airflow and the convective patterns of contaminant inside a fume hood. Am Ind Hyg Assoc J 59(5):303–312CrossRef Hu P, Ingham DB, Wen X (1998) Effect of baffles and a louvered bypass on the airflow and the convective patterns of contaminant inside a fume hood. Am Ind Hyg Assoc J 59(5):303–312CrossRef
go back to reference Huang RF, Chen HD, Hung CH (2007a) Effects of walk-by and sash movement on contaminant leakage of air curtain-isolated fume hood. Ind Health 45(6):804–816CrossRef Huang RF, Chen HD, Hung CH (2007a) Effects of walk-by and sash movement on contaminant leakage of air curtain-isolated fume hood. Ind Health 45(6):804–816CrossRef
go back to reference Ivany RE, First MW, Diberardinis LJ (1989) A new method for quantitative, in-use testing of laboratory fume hoods. Am Ind Hyg Assoc J 50(5):275–280CrossRef Ivany RE, First MW, Diberardinis LJ (1989) A new method for quantitative, in-use testing of laboratory fume hoods. Am Ind Hyg Assoc J 50(5):275–280CrossRef
go back to reference Kim TH, Flynn MR (1991a) Airflow pattern around a worker in a uniform freestream. Am Ind Hyg Assoc J 52:287–296CrossRef Kim TH, Flynn MR (1991a) Airflow pattern around a worker in a uniform freestream. Am Ind Hyg Assoc J 52:287–296CrossRef
go back to reference Kim TH, Flynn MR (1991b) Modeling a worker’s exposure from a hand-held source in a uniform freestream. Am Ind Hyg Assoc J 52(11):458–463CrossRef Kim TH, Flynn MR (1991b) Modeling a worker’s exposure from a hand-held source in a uniform freestream. Am Ind Hyg Assoc J 52(11):458–463CrossRef
go back to reference Kim TH, Flynn MR (1992) The effect of contaminant source momentum on a worker’s breathing zone concentration in a uniform freestream. Am Ind Hyg Assoc J 53(12):757–766CrossRef Kim TH, Flynn MR (1992) The effect of contaminant source momentum on a worker’s breathing zone concentration in a uniform freestream. Am Ind Hyg Assoc J 53(12):757–766CrossRef
go back to reference Lan NS, Viswanathan S (2001a) Numerical simulation of airflow around a variable volume/constant face velocity fume cupboard. AIHAJ 62(3):303–312CrossRef Lan NS, Viswanathan S (2001a) Numerical simulation of airflow around a variable volume/constant face velocity fume cupboard. AIHAJ 62(3):303–312CrossRef
go back to reference Lan NS, Viswanathan S (2001b) Numerical simulation of airflow around a variable volume/constant face velocity fume cupboard. Am Ind Hyg Assoc J 62(3):303–312CrossRef Lan NS, Viswanathan S (2001b) Numerical simulation of airflow around a variable volume/constant face velocity fume cupboard. Am Ind Hyg Assoc J 62(3):303–312CrossRef
go back to reference Ljungqvist B (1991) Aerodynamic design of fume cupboards. Safety Health Pract 8:36–40 Ljungqvist B (1991) Aerodynamic design of fume cupboards. Safety Health Pract 8:36–40
go back to reference Ljungqvist B (1992) Ventilated benches and enclosures in laboratories. Safety Health Pract 10:41–44 Ljungqvist B (1992) Ventilated benches and enclosures in laboratories. Safety Health Pract 10:41–44
go back to reference Mosovsky JA (1995) Sulfur hexafluoride tracer gas evaluations on hood exhaust reductions. Am Ind Hyg Assoc J 56(1):44–49CrossRef Mosovsky JA (1995) Sulfur hexafluoride tracer gas evaluations on hood exhaust reductions. Am Ind Hyg Assoc J 56(1):44–49CrossRef
go back to reference Nicholson GP, Clark RP, de Calcina-Goff ML (2000) Computational fluid dynamics as a method for assessing fume cupboard performance. Ann Occup Hyg 44(3):203–217CrossRef Nicholson GP, Clark RP, de Calcina-Goff ML (2000) Computational fluid dynamics as a method for assessing fume cupboard performance. Ann Occup Hyg 44(3):203–217CrossRef
go back to reference NIOSH (2009) Approaches to Safe Nanotechnology: Managing the Health and Safety Concerns Associated with Engineered Nanomaterials. Cincinnati, OH: US Department of Health and Human Services, Public Health Service, Centers for Disease Control and Prevention, National Institute for Occupational Safety and Health, DHHS (NIOSH) Publication No 2009–125 NIOSH (2009) Approaches to Safe Nanotechnology: Managing the Health and Safety Concerns Associated with Engineered Nanomaterials. Cincinnati, OH: US Department of Health and Human Services, Public Health Service, Centers for Disease Control and Prevention, National Institute for Occupational Safety and Health, DHHS (NIOSH) Publication No 2009–125
go back to reference Ong S, Tan Y, Chia P, Lee T, Ng O, Wong M et al (2020) Air, surface environmental, and personal protective equipment contamination by severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) from a symptomatic patient. JAMA E1–E3. https://doi.org/10.1001/jama.2020.3227 Ong S, Tan Y, Chia P, Lee T, Ng O, Wong M et al (2020) Air, surface environmental, and personal protective equipment contamination by severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) from a symptomatic patient. JAMA E1–E3. https://​doi.​org/​10.​1001/​jama.​2020.​3227
go back to reference Tsai SJ, Huang RF, Ellenbecker MJ (2010) Airborne nanoparticle exposures while using constant-flow, constant-velocity, and air-curtain-isolated fume hoods. Ann Occup Hyg 54(1):78–87 Tsai SJ, Huang RF, Ellenbecker MJ (2010) Airborne nanoparticle exposures while using constant-flow, constant-velocity, and air-curtain-isolated fume hoods. Ann Occup Hyg 54(1):78–87
go back to reference Tseng L, Huang RF, Chen CC, Chang CP (2006) Correlation between airflow patterns and performance of a laboratory fume hood. J Occup Environ Hyg 3:694–706CrossRef Tseng L, Huang RF, Chen CC, Chang CP (2006) Correlation between airflow patterns and performance of a laboratory fume hood. J Occup Environ Hyg 3:694–706CrossRef
go back to reference Tseng LC, Huang RF, Chen CC (2010) Significance of face velocity fluctuation in relation to laboratory fume hood performance. Ind Health 48(1):43–51CrossRef Tseng LC, Huang RF, Chen CC (2010) Significance of face velocity fluctuation in relation to laboratory fume hood performance. Ind Health 48(1):43–51CrossRef
go back to reference Varley JO, Ghorashi B (1997) The effect of turbulent structures on hood design—a review of CFD and flow visualization studies. HVAC R Res 3(3):291–308CrossRef Varley JO, Ghorashi B (1997) The effect of turbulent structures on hood design—a review of CFD and flow visualization studies. HVAC R Res 3(3):291–308CrossRef
go back to reference Welling I, Andersson I-M, Rosen G, Räisänen J, Mielo T, Marttinen K et al (2000) Contaminant dispersion in the vicinity of a worker in a uniform velocity field. Ann Occup Hyg 44(3):219–225CrossRef Welling I, Andersson I-M, Rosen G, Räisänen J, Mielo T, Marttinen K et al (2000) Contaminant dispersion in the vicinity of a worker in a uniform velocity field. Ann Occup Hyg 44(3):219–225CrossRef
Metadata
Title
The effect of the body wake and operator motion on the containment of nanometer-scale airborne substances using a conventional fume hood and specially designed enclosing hood: a comparison using computational fluid dynamics
Authors
Chen Shen
Kevin H. Dunn
Susan R. Woskie
James S. Bennett
Michael J. Ellenbecker
David S. Dandy
Candace Su-Jung Tsai
Publication date
01-04-2022
Publisher
Springer Netherlands
Published in
Journal of Nanoparticle Research / Issue 4/2022
Print ISSN: 1388-0764
Electronic ISSN: 1572-896X
DOI
https://doi.org/10.1007/s11051-022-05445-z

Other articles of this Issue 4/2022

Journal of Nanoparticle Research 4/2022 Go to the issue

Premium Partners