DOI QR코드

DOI QR Code

Filtration Efficiency of Electrically Charged Air Filters by a Corona Method

  • 투고 : 2019.03.25
  • 심사 : 2019.03.26
  • 발행 : 2019.03.31

초록

The influences of corona charging parameters on collection efficiency and surface potential of air filters were investigated. A polypropylene filter medium was electrically charged using a corona charger, and the resulting surface potential and filtration efficiency against neutralized KCl particles were measured. The filter media was charged under different conditions of applied voltage, voltage polarity, charging time, and distance between electrodes. In addition, we considered charging both sides of the filter as well as charging one side of the filter. As a result, electrical force obtained by charged fiber affected filtration efficiency when the apply voltage strength was higher than 7 kV. Negatively charged filter had higher filtration efficiency than positively charged filter while the surface potential of the negatively charged filter was slightly lower than those of positively charged filter. Moreover, the filtration efficiency increased as the charging time of filter fiber increased and the distance between electrodes decreased. The filtration efficiency was more sensitive to changes of charging time than to those of electrode distance, and the efficiency of both sides charged filter was higher than that of single side charged filter.

키워드

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Fig. 1. SEM images of the filter sample.

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Fig. 2. Schematic of filter charging system.

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Fig. 3. Experimental setup for filtration test.

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Fig. 5. Overall filtration efficiency with (a) various charging time and (b) various electrode distance.

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Fig. 6. Charging effectiveness and increasing rates of surface potentials (a) by charging time and (b) by electrode distance.

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Fig. 4. (a) Size distribution of inlet particles and partial filtration efficiency of fabricated electret filters at 3 cm/s of filtration velocity, and (b) the efficiency under various filtration velocities when applied voltage, charging time, and charging distance were of -10 kV, 5 minutes, and 15 mm, respectively.

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Fig. 7. (a) Overall filtration efficiency for single-side and both-side charged electret filters and (b) partial filtration efficiency for each particle size when filtration velocity is 5 cm/s.

Table 1. Experimental condition

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참고문헌

  1. Agranovski, I.E., Huang, R., Pyankov, O.V., Altman, I.S., and Grinshpun, S.A. (2006). Enhancement of the performance of low-efficiency HVAC filters due to continuous unipolar ion emission, Aerosol Science and Technology, 40, 963-968. https://doi.org/10.1080/02786820600833203
  2. Ahn, Y.C., Park, S.K., Kim, G.T., Hwang, Y.J., Lee, C.G., Shin, H.S., and Lee, J.K. (2006). Development of high efficiency nanofilters made of nanofibers, Current Applied Physics, 6, 1030-1035. https://doi.org/10.1016/j.cap.2005.07.013
  3. Boelter, K.J., and Davidson, J.H. (1997). Ozone generation by indoor, electrostatic air cleaners, Aerosol Science and Technology, 27, 689-708. https://doi.org/10.1080/02786829708965505
  4. Chang, J.S., Lawless, P.A., and Yamamoto, T. (1991). Corona discharge processes, IEEE Transactions on Plasma Science, 19, 1152-1166. https://doi.org/10.1109/27.125038
  5. Chazelet, S., Bemer, D., and Grippari, F. (2011). Effect of the test aerosol charge on the penetration through electret filter, Separation and Purification Technology, 79, 352-356. https://doi.org/10.1016/j.seppur.2011.03.021
  6. Chen, J., and Davidson, J.H. (2003). Model of the negative DC corona plasma: Comparison to the positive DC corona plasma, Plasma Chemistry and Plasma Processing, 23, 83-102. https://doi.org/10.1023/A:1022468803203
  7. Chuaybamroong, P., Chotigawin, R., Supothina, S., Sribenjalux, P., Larpkiattaworn, S., and Wu, C.Y. (2010). Efficacy of photocatalytic HEPA filter on microorganism removal, Indoor Air, 20, 246-254. https://doi.org/10.1111/j.1600-0668.2010.00651.x
  8. Donovan, R.P. (1985). Fabric filtration for combustion sources: Fundamentals and basic technology, New York and Basel, Marcel Dekker, Inc.
  9. Emets, E.P., Kascheev, V.A., and Poluektov, P.P. (1991). Simultaneous measurement of aerosol particle charge and size distributions, Journal of Aerosol Science, 22, 389-394. https://doi.org/10.1016/S0021-8502(05)80015-1
  10. EN 779 (2012). Particulate air filters for general ventilation: Determination of the filtration performance, European Standard.
  11. Fisk, W.J., Faulkner, D., Palonen, J., and Seppanen, O. (2002). Performance and costs of particle air filtration technologies, Indoor Air, 12, 223-234. https://doi.org/10.1034/j.1600-0668.2002.01136.x
  12. Grass, N., Hartmann, W., and Klockner, M. (2004). Application of different types of high-voltage supplies on industrial electrostatic precipitators, IEEE Transactions on Industry Applications, 40, 1513-1520. https://doi.org/10.1109/TIA.2004.836298
  13. Gu, Z., and Schill, R.A. (1997). Novel quasi-electrostatic air filter: A single-particle study, Journal of Electrostatics, 39, 203-230. https://doi.org/10.1016/S0304-3886(97)00006-5
  14. Hinds, W.C. (1999). Aerosol Technology: Properties, Behavior, and Measurement of Airborne Particles, 2nd Ed., New York, John Wiley & Sons, Inc.
  15. Intra, P., and Tippayawong, N. (2010). Effect of needle cone angle and air flow rate on electrostatic discharge characteristics of a corona-needle ionizer, Journal of Electrostatics, 68, 254-260. https://doi.org/10.1016/j.elstat.2010.01.008
  16. Johnston, A.M., Vincent, J.H., and Jones, A.D. (1987). Electrical charge characteristics of dry aerosols produced by a number of laboratory mechanical dispensers, Aerosol Science and Technology, 6, 115-127. https://doi.org/10.1080/02786828708959125
  17. Kim, S.C., Harrington, M.S., and Pui, D.Y. (2007). Experimental study of nanoparticles penetration through commercial filter media, Journal of Nanoparticle Research, 9, 117-125. https://doi.org/10.1007/s11051-006-9176-4
  18. Kuffel, E., Zaengl, W.S., and Kuffel, J. (2000). High voltage engineering: Fundamentals, 2nd Ed., Amsterdam, Newnes.
  19. Lee, B.U., Yermakov, M., and Grinshpun, S.A. (2004). Unipolar ion emission enhances respiratory protection against fine and ultrafine particles, Journal of Aerosol Science, 35, 1359-1368. https://doi.org/10.1016/j.jaerosci.2004.05.006
  20. Li, K., and Jo, Y.M. (2010). Dust collection by a fiber bundle electret filter in an MVAC system, Aerosol Science and Technology, 44, 578-587. https://doi.org/10.1080/02786826.2010.481227
  21. Lin, J.H., Lou, C.W., and Yang, Z.Z. (2004). Novel process for manufacturing electret from polypropylene nonwoven fabrics, Journal of the Textile Institute, 95, 95-105. https://doi.org/10.1533/joti.2002.0004
  22. Nifuku, M., Zhou, Y., Kisiel, A., Kobayashi, T., and Katoh, H. (2001). Charging characteristics for electret filter materials, Journal of Electrostatics, 51, 200-205. https://doi.org/10.1016/S0304-3886(01)00117-6
  23. Park, H.S., and Park, Y.O. (2005). Simulation of particle deposition on filter fiber in an external electric field, Korean Journal of Chemical Engineering, 22, 303-314. https://doi.org/10.1007/BF02701502
  24. Park, J.H., Yoon, K.Y., and Hwang, J. (2011). Removal of submicron particles using a carbon fiber ionizer- assisted medium air filter in a heating, ventilation, and air-conditioning (HVAC) system, Building and Environment, 46, 1699-1708. https://doi.org/10.1016/j.buildenv.2011.02.010
  25. Park, J.H., Yoon, K.Y., Kim, Y.S., Byeon, J.H., and Hwang, J. (2009). Removal of submicron aerosol particles and bioaerosols using carbon fiber ionizer assisted fibrous medium filter media, Journal of Mechanical Science and Technology, 23, 1846-1851. https://doi.org/10.1007/s12206-009-0613-z
  26. Plopeanu, M.C., Notingher, P.V., Dumitran, L.M., Tabti, B., Antoniu, A., and Dascalescu, L. (2011). Surface potential decay characterization of non-woven electret filter media, IEEE Transactions on Dielectrics and Electrical Insulation, 18, 1393-1400. https://doi.org/10.1109/TDEI.2011.6032807
  27. Rengasamy, S., Miller, A., Vo, E., and Eimer, B.C. (2013). Filter performance degradation of electrostatic N95 and P100 filtering facepiece respirators by dioctyl phthalate aerosol loading, Journal of Engineered Fibers and Fabrics, 8, 62-69.
  28. Romay, F.J., Liu, B.Y., and Chae, S.J. (1998). Experimental study of electrostatic capture mechanisms in commercial electret filters, Aerosol Science and Technology, 28, 224-234. https://doi.org/10.1080/02786829808965523
  29. Sim, K.M., Park, H.S., Bae, G.N., and Jung, J.H. (2015). Antimicrobial nanoparticle-coated electrostatic air filter with high filtration efficiency and low pressure drop, Science of The Total Environment, 533, 266-274. https://doi.org/10.1016/j.scitotenv.2015.07.003
  30. Tabti, B., Dascalescu, L., Plopeanu, M., Antoniu, A., and Mekideche, M. (2009). Factors that influence the corona charging of fibrous dielectric materials, Journal of Electrostatics, 67, 193-197. https://doi.org/10.1016/j.elstat.2009.01.047
  31. Tabti, B., Mekideche, M.R., Plopeanu, M.C., Dumitran, L.M., Antoniu, A., and Dascalescu, L. (2010). Factors that influence the decay rate of the potential at the surface of nonwoven fabrics after negative corona discharge deposition, IEEE Transactions on Industry Applications, 46, 1586-1592. https://doi.org/10.1109/TIA.2010.2049626
  32. Tabti, B., Mekideche, M.R., Plopeanu, M.C., Dumitran, L.M., Herous, L., and Dascalescu, L. (2010a). Corona-charging and charge-decay characteristics of nonwoven filter media, IEEE Transactions on Industry Applications, 46, 634-640. https://doi.org/10.1109/TIA.2010.2041090
  33. Thorpe, A., and Brown, R.C. (2003). Performance of electrically augmented fibrous filters, measured with monodisperse aerosols, Aerosol Science and Technology, 37, 231-245. https://doi.org/10.1080/02786820300944
  34. Tsai, P.P., Schreuder-Gibson, H., and Gibson, P. (2002). Different electrostatic methods for making electret filters, Journal of Electrostatics, 54, 333-341. https://doi.org/10.1016/S0304-3886(01)00160-7
  35. Yang, S., Lee, W.M.G., Huang, H.L., Huang, Y.C., Luo, C.H., Wu, C.C., and Yu, K.P. (2007). Aerosol penetration properties of an electret filter with submicron aerosols with various operating factors, Journal of Environmental Science and Health Part A, 42, 51-57. https://doi.org/10.1080/10934520601015651
  36. Yeh, H.C., Carpenter, R.L., and Cheng, Y.S. (1988). Electrostatic charge of aerosol particles from a fluidized bed aerosol generator, Journal of Aerosol Science, 19, 147-151. https://doi.org/10.1016/0021-8502(88)90263-7

피인용 문헌

  1. Research progress on the cleaning and regeneration of PM2.5 filter media vol.57, 2019, https://doi.org/10.1016/j.partic.2020.11.006