Browse > Article

Effects of Pressure and Temperature of Airflow on Performance of Nozzle-type Electrostatic Eliminator  

CHOI Kwang-Seok (Independent Administrative Institution, National Institute of Industrial Safety (NIIS))
MOGAMI Tomofumi (Kasuga Denki INC)
SUZUKI Teruo (Kasuga Denki INC)
Publication Information
KIEE International Transactions on Electrophysics and Applications / v.5C, no.6, 2005 , pp. 228-232 More about this Journal
Abstract
The effects of the pressure and temperature of airflow were experimentally investigated to improve the performance of a nozzle-type electrostatic eliminator. The pressure ($A_P$) and the temperature ($A_T$) of the airflow toward the needle electrode were controlled in the ranges of 0 Mpa to 0.3 Mpa and of $25^{\circ}C$ to $125^{\circ}C$, respectively. It was confirmed that the ion-generation ability was increased depending on the magnitude of the $A_P$ and the $A_T$ of the airflow provided to the surrounding region of the needle electrode in the nozzle-type electrostatic eliminator. In addition, it was clear that the mixed effect of the $A_P$ and the $A_T$ of the airflow was large. These results were attributed mainly to (1) the activation of the corona discharge by the $A_T$, (2) the change of the decomposition and production of a suppression gas by the $A_T$, (3) the blow-off of the suppression gas near the needle electrode by the $A_P$, and (4) the change of the distribution of the current densities on the needle electrode by the $A_P$.
Keywords
airflow; corona discharge; electrostatic eliminator; pressure; temperature;
Citations & Related Records
연도 인용수 순위
  • Reference
1 B, Eliasson, M. Hirth, and U. Kogelschatz: J. Phys. D: Appli. Phys. 20 (1987), 1421   DOI   ScienceOn
2 T. Kodama, T. Suzuki, and T. Mogami: NIIS-RR-2003 (2004), 95-107 [in Japanese].
3 T. Kodama, T. Suzuki, K. Nishimura, S. Yagi, and S. Watano: Proc. 2000 IEEE/IAS Annual Meeting (2000), p. 652
4 K.S. Choi, T. Fujiki, and Y. Murata: Japanese J. Applied Physics, 43 (2004) 11A, 7693   DOI
5 Y. Sekiya, T. Hosokawa, and K. Hasebe: T. IEE Japan, Vol. 107-A (1987), No. 6, 312
6 T. Kodama, T. Suzuki, K. Nishimura, S. Yagi, and S. Watano: Proc. 2000 IEEE/IAS Annual Meeting (2000), p. 652
7 K.S. Choi, T. Fujiki, and Y. Murata: Japanese J. Applied Physics, 43 (2004), 11A, 7693   DOI
8 A. Kasuga, Y. Hoshino, M. Omodani, and F. Koike, IS&T's NIP 13, Int. Conf. Digital Printing Technol. (1997), p. 93
9 S. Masuda: IEEE Trans. on Industry Applications. Vol. 24 (1988), No. 2, 223   DOI   ScienceOn
10 Handbook of Electrostatics: Inst. Electrostatics of Japan, (Ohmsha, Tokyo 1998), pp. 1123, 1148 [in Japanese].
11 K.S. Choi, M. Yamaguma, T. Kodama, J.H. Joung, D.S. Shin, N. Iwai, T. Kashiwazaki, and M. Takeuchi: KIEE Int. Trans. on EA, 11C (2001), 1