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Particle and Aerosol Research
Vol. 18, No. 3, September 2022, Pages 79-86
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ISSN : 1738-8716 (Print)
ISSN : 2287-8130 (Online)
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Filtration Efficiency of Granular Activated Carbons to Polydisperse Ultrafine Particles
through the Surface Adsoprtion
Kyungil Cho1), Giwon Kang1), Jiyoon Shin1), and Changhyuk Kim1) *
1)School of Civil and Environmental Engineering, Pusan National University
*Corresponding author.
Tel.: +82-51-510-2417, E-mail: changhyuk.kim@pusan.ac.kr
Received 13 September 2022, Revised 23 September 2022, Accepted 25 September 2022, Available online 29 September 2022
http://dx.doi.org/10.11629/jpaar.2022.18.3.079
Abstracts
Many commercial air purifiers currently have deployed granular activated carbon (GAC) filters for removing volatile organic compounds in the indoor air. GACs are generally used to remove gaseous contaminants in the air through adsorption by the inner surfaces of pores. In addition, airborne particles can be also filtered by the surface adsorption of the GACs, which can improve the life-time of the particulate filters. In this study, the filtration efficiency of GACs to ultrafine particles through surface adsorption was investigated at different volume flow rates by deploying a continuous particle filtration system. The polydisperse sodium chloride (NaCl) particles were generated by a set of an atomizer and a diffusion dryer, and then mixed with particle-free air at different volume flow rates. The penetration of ultrafine particles and pressure drop for each experimental condition were measured to figure out the effect of the volume flow rate on the surface adsoprtion of the GACs to particles, ~ 2 mm. The particle filtration efficiency of the GACs decreased as the volume flow rate increased from 4 to 14 lpm. However, the 5 times thicker GAC filter layer decreased the penetration of ultraparticles than a preious study. The filtration efficiency of the single granule was also higher than the previous result in the literature with smaller granule filter materials.
Keywords
filtration efficiency, granular activated carbon, ultrafine particles, surface adsorption
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