Open Access
Issue
E3S Web Conf.
Volume 672, 2025
The 17th ROOMVENT Conference (ROOMVENT 2024)
Article Number 04007
Number of page(s) 8
Section Industrial Ventilation
DOI https://doi.org/10.1051/e3sconf/202567204007
Published online 05 December 2025
  1. Wolf J., Prüss-Ustün A., Ivanov I. et al. Preventing Disease through a Healthier and Safer Workplace, WHO, (2018) [Google Scholar]
  2. WHO. Global health observatory (GHO). Available at: http://www.who.int/gho/en/ (Accessed 13 November 2017) [Google Scholar]
  3. Hamra G.B., Guha N., Cohen A., et al. Outdoor particulate matter exposure and lung cancer: a systematic review and meta-analysis, Environ. Health Perspect. 122, 906–911 (2014) [Google Scholar]
  4. Zhang J, Wang J, Gao J, Zhang WM. Exhaust hood performance and its improvement technologies in industrial buildings: A literature review, Build. Simul. 17, 23–40 (2024) [Google Scholar]
  5. ACGIH, H.A. Industrial Ventilation: A Manual of Recommended Practice for Design, ACGIH, USA, (2013) [Google Scholar]
  6. Goodfellow H. D., Wang Y. (Eds.). Industrial ventilation design guidebook, Volume 2: Engineering design and applications, MA: Academic Press, 346–349 (2021) [Google Scholar]
  7. Huang YQ, Lu K, Guo JW, et al. Study on ventilation performance of lateral exhaust hood under the influence of two high-temperature buoyant jets, Build. Environ. 177, 106849 (2020) [Google Scholar]
  8. Chen WH, Liu JJ, Mak C. M., et al. Near fields of annular slotted hoods measured via 2D-PIV, Build. Environ. 144, 1–8 (2018) [CrossRef] [Google Scholar]
  9. Lee S. M., Lee J. W. A new local ventilation system using a vortex flow generated with a finned rotating annular disk, ASHRAE Transactions 111, 149–158 (2005) [Google Scholar]
  10. Logachev K.I., Ziganshin A.M., Popov E.N., et al. Experiment determining pressure loss reduction using a shaped round exhaust hood, Build. Environ. 190, 107572 (2021) [Google Scholar]
  11. Logachev K.I., Ziganshin A.M., Averkova O.A., Gol’tsov A.B. Reducing power consumption of local exhaust ventilation systems, Journal of Physics: Conference Series 1683, 042015 (2020) [Google Scholar]
  12. Hunt G. R., Ingham D. B. Long range exhaustion—A mathematical model for the axisymmetric air flow of a local exhaust ventilation hood assisted by a turbulent radial jet, The Annals of Occupational Hygiene 40, 171–196 (1996) [Google Scholar]
  13. Wen X, Hunt G. R., Ingham D. B. Theoretical and numerical predictions of two-dimensional Aaberg slot exhaust hoods, The Annals of Occupational Hygiene 44, 375–390 (2000) [Google Scholar]
  14. Zhang J, Wang J, Gao J, et al. Experimental and numerical study of the effect of perimeter jet enhancement on the capture velocity of a rectangular exhaust hood, Journal of Building Engineering 33, 101652 (2021) [Google Scholar]
  15. Wang Y, Zou Y, Yang Y, et al. Movement and control of evaporating droplets released from an open surface tank in the push–pull ventilation system, Build. Simul. 9, 443–457 (2016) [Google Scholar]
  16. Liu LD, Dai JW, Yang JW, et al. Intelligent simulation experimental study on influence of air velocity of air supply hood and exhaust hood with vertical push-pull ventilation, Journal of Intelligent & Fuzzy Systems 37, 4819–4826 (2019) [Google Scholar]
  17. Wang Y, Yang Y, Wei YY, et al. Experimental investigation on the flow characteristics of an exhaust hood assisted by a jet, International Journal of Ventilation 13, 89–100 (2014) [Google Scholar]
  18. Fan JN, Yang Y, Wang Y, et al. Droplet control of a local exhaust hood enhanced by air curtains, Journal of Building Engineering 59, 105092 (2022) [Google Scholar]
  19. Cao ZX, Wang Y, Duan MJ, Zhu HX. Study of the vortex principle for improving the efficiency of an exhaust ventilation system, Energy and Buildings 142, 39–48 (2017) [Google Scholar]
  20. Cao ZX, Zhang C, Zhai C, et al. Evaluation of a novel curved vortex exhaust system for pollutant removal, Build. Environ. 200, 107931 (2021) [Google Scholar]
  21. Cao ZX, Xiao P, Wang Y, et al. Performance of novel overhead crane fume-collecting hood for pollutant removal, Build. Simul. 16, 1081–1095 (2023) [Google Scholar]
  22. Huang YQ, Wang Y, Liu L, et al. Reduced-scale experimental investigation on ventilation performance of a local exhaust hood in an industrial plant, Build. Environ. 85, 94–103 (2015) [Google Scholar]
  23. Yanqiu Huang, Yi Wang, Li Liu, Peter V. Nielsen, Rasmus L. Jensen, Xiaoni Yang, Performance of constant exhaust ventilation for removal of transient high-temperature contaminated airflows and ventilation-performance comparison between two local exhaust hoods, Energy and Buildings 154, 207–216 (2017) [Google Scholar]
  24. Hunt G. R., Kaye N. G. Virtual origin correction for lazy turbulent plumes. J. Fluid Mech. 435, 377–396 (2001) [Google Scholar]
  25. Morton B. R. Forced plumes. J. Fluid Mech. 5, 151–163 (1959) [Google Scholar]
  26. Huang YQ, Wang WY, Yang Shan, et al. Transport characteristics of pulsating high- temperature particles based on vortex structure analysis by large-eddy simulation, Build. Environ. 209, 108679 (2022) [Google Scholar]
  27. Grotjans H., Menter F. R. Wall functions for general application CFD codes. In: Proceedings of the 4th European Computational Fluid Dynamics Conference, Athens, Greece. (1998). [Google Scholar]
  28. Javaherchi T., Aliseda A. The transport of suspended sediment in the wake of a marine hydrokinetic turbine: Simulations via a validated Discrete Random Walk (DRW) model, Ocean Eng. 129, 529–537 (2017) [Google Scholar]
  29. Elghobashi S. On predicting particles-laden turbulent flows. Appl. Sci. Res. 52, 309–329 (1994) [CrossRef] [Google Scholar]

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