Design and performance evaluation of a photocatalytic reactor for indoor air disinfection

被引:0
作者
Silvia Mercedes Zacarías
Agustina Manassero
Silvana Pirola
Orlando Mario Alfano
María Lucila Satuf
机构
[1] Instituto de Desarrollo Tecnológico para la Industria Química (INTEC,
[2] UNL-CONICET),undefined
来源
Environmental Science and Pollution Research | 2021年 / 28卷
关键词
Bioaerosols; Air purification device; Packed bed; Photocatalysis; Efficiency parameters; Radiation absorption;
D O I
暂无
中图分类号
学科分类号
摘要
Since COVID-19 pandemic, indoor air quality control has become a priority, and the development of air purification devices effective for disinfecting airborne viruses and bacteria is of outmost relevance. In this work, a photocatalytic device for the removal of airborne microorganisms is presented. It is an annular reactor filled with TiO2-coated glass rings and irradiated internally and externally by UV-A lamps. B. subtilis spores and vegetative cells have been employed as model biological pollutants. Three types of assays with aerosolized bacterial suspensions were performed to evaluate distinct purification processes: filtration, photocatalytic inactivation in the air phase, and photocatalytic inactivation over the TiO2-coated rings. The radiation distribution inside the reactor was analysed by performing Monte Carlo simulations of photon absorption in the photocatalytic bed. Complete removal of a high load of microorganisms in the air stream could be achieved in 1 h. Nevertheless, inactivation of retained bacteria in the reactor bed required longer irradiation periods: after 8 h under internal and external irradiation, the initial concentration of retained spores and vegetative cells was reduced by 68% and 99%, respectively. Efficiency parameters were also calculated to evaluate the influence of the irradiation conditions on the photocatalytic inactivation of bacteria attached at the coated rings.
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页码:23859 / 23867
页数:8
相关论文
共 128 条
[1]  
Akach J(2018)Monte Carlo simulation of the light distribution in an annular slurry bubble column photocatalytic reactor Chem Eng Res Des 129 248-258
[2]  
Ochieng A(2014)Isovaleraldehyde elimination by UV/TiO Environ Sci Pollut Res 21 11178-11188
[3]  
Assadi AA(2002) photocatalysis: comparative study of the process at different reactors configurations and scales Int Dairy J 12 217-223
[4]  
Bouzaza A(2019)Bacterial endospores the ultimate survivors Chem Eng J 391 123531-785
[5]  
Wolbert D(2018)Strategies for the intensification of photocatalytic oxidation processes towards air streams decontamination: a review Water Air Soil Pollut 229 29-929
[6]  
Petit P(1994)Photocatalytic decontamination of airborne T2 bacteriophage viruses in a small-size TiO Environ Sci Technol 28 776-584
[7]  
Atrih A(1998)/β-SiC alveolar foam LED reactor J Chem Eng Jpn 31 922-2703
[8]  
Foster SJ(1998)Photocatalytic production of H J Chem Eng Jpn 31 577-1044
[9]  
Costa Filho BM(2007)O AIChE J 53 2688-2611
[10]  
Vilar VJP(2010) and organic peroxides on quantum-sized semiconductor colloids AIChE J 56 1030-566