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Technical Paper

Optimization of a wet scrubber with electrolyzed water spray—Part II: Airborne culturable bacteria removal

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Pages 603-610 | Received 14 Sep 2018, Accepted 02 Jan 2019, Published online: 25 Mar 2019

References

  • Aarnink, A. J. A., J. van Harn, T. G. Van Hattum, Y. Zhao, and N. W. M. Ogink. 2011a. Dust reduction in broiler houses by spraying rapeseed oil. Trans. ASABE. 54 (4):1479–89. doi:10.13031/2013.39028.
  • Aarnink, A. J. A., W. J. M. Landman, R. W. Melse, Y. Zhao, J. P. M. Ploegaert, and T. T. T. Huynh. 2011b. Scrubber capabilities to remove airborne microorganisms and other aerial pollutants from the exhaust air of animal houses. Trans. ASABE. 54 (5):1921–30. doi:10.13031/2013.39833.
  • Cambra-López, M., A. Winkel, J. Van Harn, N. W. M. Ogink, and A. J. A. Aarnink. 2009. Ionization for reducing particulate matter emissions from poultry houses. Trans. ASABE. 52 (5):1757–71. doi:10.13031/2013.29138.
  • Cambra-López, M., A. J. Aarnink, Y. Zhao, S. Calvet, and A. G. Torres. 2010. Airborne particulate matter from livestock production systems: A review of an air pollution problem. Environ. Pollut. 158 (1):1–17. doi:10.1016/j.envpol.2009.07.011.
  • Deza, M. A., M. Araujo, and M. J. Garrido. 2007. Efficacy of neutral electrolyzed water to inactivate Escherichia coli, Listeria monocytogenes, Pseudomonas aeruginosa, and Staphylococcus aureus on plastic and wooden kitchen cutting boards. J. Food Prot. 70 (1):102–08. doi:10.4315/0362-028X-70.1.102.
  • Guentzel, J. L., K. L. Lam, M. A. Callan, S. A. Emmons, and V. L. Dunham. 2008. Reduction of bacteria on spinach, lettuce, and surfaces in food service areas using neutral electrolyzed oxidizing water. Food Microbiol. 25 (1):36–41. doi:10.1016/j.fm.2007.08.003.
  • Hadlocon, L. J. S., R. B. Manuzon, and L. Zhao. 2014. Optimization of ammonia absorption using acid spray wet scrubbers. Trans. ASABE. 57 (2):647–59. doi:10.13031/trans.57.10481.
  • Hadlocon, L. J. S., R. B. Manuzon, and L. Zhao. 2015. Development and evaluation of a full-scale spray scrubber for ammonia recovery and production of nitrogen fertilizer at poultry facilities. Environ. Technol. 36 (4):405–16. doi:10.1080/09593330.2014.950346.
  • Laube, H., A. Friese, C. Von Salviati, B. Guerra, and U. Rösler. 2014. Transmission of ESBL/AmpC-producing Escherichia coli from broiler chicken farms to surrounding areas. Vet. Microbiol. 172 (3):519–27. doi:10.1016/j.vetmic.2014.06.008.
  • Li, X., T. Chai, Z. Wang, C. Song, H. Cao, J. Liu, X. Zhang, W. Wang, M. Yao, and Z. Miao. 2009. Occurrence and transmission of newcastle disease virus aerosol originating from infected chickens under experimental conditions. Vet. Microbiol. 136 (3):226–32. doi:10.1016/j.vetmic.2008.11.002.
  • Li, Z., B. Li, W. Zheng, J. Tu, H. Zheng, and Y. Wang. 2019. Optimization of a wet scrubber with electrolyzed water spray–part Ⅰ: Ammonia removal. J. Air Waste Manage. Assoc. 69 (5):592–602. doi:10.1080/10962247.2019.1567621.
  • Majd, A. M. S., A. K. Ashtari, G. L. Riskowski, S. Mukhtar, L. Zhao, and W. Fang. 2015. Electrolyzed water spray scrubber for removing ammonia from air. Trans. ASABE. 58 (4):1069–78. doi:10.13031/trans.58.10973.
  • Nan, S., Y. Li, B. Li, C. Wang, X. Cui, and W. Cao. 2010. Effect of slightly acidic electrolyzed water for inactivating Escherichia coli O157: H7 and Staphylococcus aureus analyzed by transmission electron microscopy. J. Food Prot. 73 (12):2211–16. doi:10.4315/0362-028X-73.12.2211.
  • Rahman, S. M. E., T. Ding, and D. H. Oh. 2010. Effectiveness of low concentration electrolyzed water to inactivate foodborne pathogens under different environmental conditions. Int. J. Food Microbiol. 139 (3):147–53. doi:10.1016/j.ijfoodmicro.2010.03.020.
  • Ritz, C. W., B. W. Mitchell, B. D. Fairchild, M. Czarick III, and J. W. Worley. 2006. Improving in-house air quality in broiler production facilities using an electrostatic space charge system. J. Appl. Poult. Res. 15 (2):333–40. doi:10.1093/japr/15.2.333.
  • Schulz, J., A. Friese, S. Klees, B. A. Tenhagen, A. Fetsch, U. Rösler, and J. Hartung. 2012. Longitudinal study of the contamination of air and of soil surfaces in the vicinity of pig barns by livestock-associated methicillin-resistant Staphylococcus aureus. Appl. Environ. Microbiol. 78 (16):5666–71. doi:10.1128/AEM.00550-12.
  • Seedorf, J., J. Hartung, M. Schröder, K. H. Linkert, V. R. Phillips, M. R. Holden, R. W. Sneath, J. L. Short, R. P. White, S. Pedersen, et al. 1998. Concentrations and emissions of airborne endotoxins and microorganisms in livestock buildings in Northern Europe. J. Agric. Eng. Res 70 (1):97–109. doi:10.1006/jaer.1997.0281.
  • Silindir, M., and A. Y. Özer. 2009. Sterilization methods and the comparison of e-beam sterilization with gamma radiation sterilization. FABAD J. Pharm. Sci. 34 (1):43–53.
  • Wu, P. 2010. Applying electrolyzed water as disinfectant in animal house. Master Tesis. National Ilan University, Ilan, Taiwan.
  • Yuan, W., T. J. Chai, and Z. M. Miao. 2010. ERIC-PCR identification of the spread of airborne Escherichia coli in pig houses. Sci. Total Environ. 408 (6):1446–50. doi:10.1016/j.scitotenv.2009.12.019.
  • Zeng, X., W. Tang, G. Ye, T. Ouyang, L. Tian, Y. Ni, and P. Li. 2010. Studies on disinfection mechanism of electrolyzed oxidizing water on E. coli and Staphylococcus aureus. J. Food Prot. 75 (5):M253–M260. doi:10.1111/j.1750-3841.2010.01649.x.
  • Zhao, Y., A. J. Aarnink, P. Doornenbal, T. T. Huynh, P. W. G. Koerkamp, M. C. de Jong, and W. J. Landman. 2011a. Investigation of the efficiencies of bioaerosol samplers for collecting aerosolized bacteria using a fluorescent tracer. I: Effects of Non-sampling processes on bacterial culturability. Aerosol Sci. Technol. 45 (3):423–31. doi:10.1080/02786826.2010.543196.
  • Zhao, Y., A. J. A. Aarnink, M. C. M. D. Jong, N. W. M. Ogink, and P. Koerkamp. 2011b. Effectiveness of multi-stage scrubbers in reducing emissions of air pollutants from pig houses. Trans. ASABE. 54 (1):285–93. doi:10.13031/2013.36256.
  • Zhao, Y., H. Xin, D. Zhao, W. Zheng, W. Tian, H. Ma, K. Liu, H. Hu, T. Wang, and M. L. Soupir. 2014. Free chlorine loss during spraying of membraneless acidic electrolyzed water and its antimicrobial effect on airborne bacteria from poultry house. Ann. Agric. Environ. Med. 21 (2):249–55. doi:10.5604/1232-1966.1108585.
  • Zheng, W., L. Ni, and B. Li. 2016c. Electrolyzed water and its application in animal houses. Front Agric. Sci. Eng. 3 (3):195–205. doi:10.15302/J-FASE-2016109.
  • Zheng, W., L. Ni, X. Hui, B. Li, and J. Zhang. 2016b. Optimization of slightly acidic electrolyzed water spray for airborne culturable bacteria reduction in animal housing. Int. J. Agric. Biol. Eng. 9 (4):185–91. doi:10.3965/j.ijabe.20160904.2366.
  • Zheng, W., R. Kang, H. Wang, B. Li, C. Xu, and S. Wang. 2013. Airborne bacterial reduction by spraying slightly acidic electrolyzed water in a laying-hen house. J. Air Waste Manage. Assoc. 63 (10):1205–11. doi:10.1080/10962247.2013.812815.
  • Zheng, W., Y. Zhao, H. Xin, R. S. Gates, B. Li, Y. Zhang, and M. L. Soupir. 2014. Airborne particulate matter and culturable bacteria reduction from spraying slightly acidic electrolyzed water in an experimental aviary laying-hen housing chamber. Trans. ASABE. 57 (1):229–36. doi:10.13031/trans.57.10306.
  • Zheng, W., Z. Li, S. B. Shah, and B. Li. 2016a. Removal of ammonia and airborne culturable bacteria by proof-of-concept windbreak wall with slightly acidic electrolyzed water spray for a layer breeding house. Appl. Eng. Agric. 32 (3):393–99. doi:10.13031/aea.32.11509.
  • Zhong, Z., T. Chai, H. Duan, Z. Miao, X. Li, M. Yao, W. Yuan, W. Wang, Q. Li, B.-A. Zucker, et al. 2009. REP-PCR tracking of the origin and spread of airborne Staphylococcus aureus in and around chicken house. Indoor Air. 19 (6):511–16. doi:10.1111/j.1600-0668.2009.00618.x.

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