• Title/Summary/Keyword: Corona discharge plasma

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Effect of Magnetic Field on NOx Removal for Wire-Plate Plasma Reactor (선대 평판형 플라즈마 반응기에서 NOx 제거에 미치는 자계의 영향)

  • Park, J.Y.;Son, S.D.;Han, S.B.;Lee, D.H.;Kim, J.D.;Mun, Y.H.
    • Proceedings of the KIEE Conference
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    • 1999.07e
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    • pp.2251-2252
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    • 1999
  • In this paper, the effect of magnetic field was measured on NOx removal characteristics for wire-plate plasma reactor with magnetic field applied to electric field vertically. NOx from simulated diesel engine flue gas are decomposed by the corona discharge of DC, AC and Pulsed voltages in wire-plate reactor. Consumption power increased with increasing discharge voltage. When magnetic field was applied to electric field vertically, consumption power decreased. NOx removal rate and arc transition voltage of plasma reactor with magnetic field were higher than those of plasma reactor without magnetic field.

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A removal characteristics of NOx at the cylinderical plasma reactor with magnetic field (자계가 인가된 원통형 플라즈마 반응기에서 질소산화물(NOx)의 제거특성)

  • Lee, Dong-Hoon;Lee, Tae-Geun;Oh, Jung-Min;Lee, Doo-Hee
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2004.05b
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    • pp.104-108
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    • 2004
  • The effect of magnetic field was measured on NOx removal for cylinder-wire plasma reactor with magnetic field applied to electric field vertically. Power was supplied to plasma reactor using rotating spark gap switch. Consumption power increased with increasing discharge voltage. When magnetic field was applied to electric field vertically, consumption power was less than that without magnetic field because of lorenz's force. NOx removal rate of plasma reactor with magnetic field were higher, 10-15%, than that of plsama reactor without magnetic field. And NOx removal rate decreased with increasing gas flow rate.

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Simultaneous Removal Characteristics of NOx, SOx from Combustion Gases using Pulse Corona induced Plasma Chemical Processing (PPCP에 의한 연소가스 중 NOx, SOx 동시제거 특성)

  • Park, Jae-Yoon;Koh, Yong-Sul;Jung, Jang-Gun;Kim, Jung-Dal
    • Journal of Korean Society of Environmental Engineers
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    • v.22 no.2
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    • pp.211-216
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    • 2000
  • In this paper, experimental investigations were carried out to remove NOx, SOx simultaneously from a simulated combustion flue gas [$NO(0.02%)-SO_2(0.08%)-CO_2-Air-N_2$] by using a pulse corona induced plasma chemical processing. Discharge domain of wire-cylindrical plasma reactor was separated from a gas flow duct to avoid unstable discharge by aerosol particle deposited on discharge electrode and grounded electrode. The NOx, SOx removal was experimentally investigated by a reaction induced to ammonium nitrate, ammonium sulfate using a low price of aqueous NaOH solution and a small quantity of ammonia. Volume percentage of aqueous NaOH solution used was 20% and $N_2$ flow rate was $2.5{\ell}/min$ for bubbling aqueous NaOH solution. Ammonia gas(l4.82%) balanced by argon was diluted by air and was introduced to a main simulated flue gas duct through $NH_3$ injection system which was in downstream of reactor. The $NH_3$ molecular ratio(MR) was determined based on [$NH_3$] and [$NO+SO_2$]. MR is 1.5. The NOx removal rates increased in the order of DC, AC and pulse, but SOx removal rates was not significantly effected by source of electricity. The NOx removal rate slightly decreased with increasing initial concentration. but SOx removal rate was not significantly affected by initial concentration. The NOx, SOx removal rates decreased with increasing gas flow rate.

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The Study of NOx Removal Experiment and Numerical Analysis Modeling using Chemical Addition with Non-thermal Plasma (저온 플라즈마와 첨가제를 이용한 NOx 제거실험 및 수치해석)

  • Chae, J.O.;Moon, S.I.;Kim, K.Y.;Kim, S.W.;Park, Y.K.;Lee, C.M.
    • Proceedings of the KSME Conference
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    • 2000.11b
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    • pp.720-725
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    • 2000
  • To remove harmful gases from combustion exhaust gases. fundamental study on NOx removal using pulse corona discharge has been performed through experiments and simulations. The energy consumption should be decreased in order to apply non-thermal plasma technology to industry process. This work summarized the effects of $H_2O$ and Hydrocarbon additive in NOx removal efficiency. The Radical program is used to simulate high voltage discharge and the process of NOx removal. At last, experimental results were compared with simulation results to verify the reliability of this program.

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A Study on ther Water Plasma Chemical Process Discharge by Pulse Power Supply (펄스전원을 이용한 수중플라즈마 방전에 관한 연구)

  • Shin, Wan-Ho;Hong, Won-Seok;Yoo, Hyo-Yol;Park, Sun-Soon;Choi, Jae-Ho
    • Proceedings of the KIEE Conference
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    • 2005.07c
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    • pp.2179-2181
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    • 2005
  • An experimental study on the water plasma characteristics of removal efficiency for organic contaminants in dye waste water has been investigated. In this study, dielectric barrier discharging electrodes with round shape have disposed cross each other in reactor, and pulse power was supplied to between each electrodes. Its output pulse voltage range is from 0[V] to 30[kV] and output frequency range is from 100[Hz] to 2[kHz]. Using proposed system, High frequency discharge is tested in the mixed Tone(air and water) and the space distribution of streamer corona plasma is observed. In spite of the increasement of voltage and frequency, the proposed system have a stable operation characteristics. It is verified by the experimental results.

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Non-thermal Plasma Process for simultaneous removal of SO2/NOx from a Sintering Plant of Steel Works

  • Nam, Chang-Mo;Mok, Young-Sun;Kwon, Gi-Hong;Suh, You-Duck;Cho, Byeung-Rak
    • Journal of the Korean Society of Industry Convergence
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    • v.6 no.1
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    • pp.81-86
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    • 2003
  • For the simultaneous removal of $SO_2$/NOx from an iron-ore sintering plant, industrial plasma experiments have been conducted with a flue gas flow rate of $5,000Nm^3/hr$. The maximum 40kW power using the magnetic pulse compression (MPC) system generates a peak value of 100-150kV pulse voltage with its risetime of 200nsec and full width at half maximum (FWHM) of 500nsec, and with a frequency <300Hz. The plasma reactor module adopts a wire-plate structure with a gap of 200-400mm ID between plates. Initial concentrations of $SO_2$ and NOx were around 100-150ppm, respectively in the presence of 15% $O_2$ and <10% $H_2O$. Various reaction parameters such as specific energy ($Whr/Nm^3$), $NH_3$ injection with corona discharge, flow rate and injection of hydrocarbons were investigated for $SO_2$/NOx removal characteristics. About 90/65% of $SO_2$/NOx were simultaneously removed with a specific energy of $3.0Whr/Nm^3$ when both $NH_3$ and hydrocarbons were injected. Practical implications that the pilot-scale plasma results provide are further discussed.

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Characteristics of Electrical Properties, Ozone Generation and Decomposition of Volatile Organic Compounds by Nonthermal Plasma Reactor Packed with SBT Ferroelectric (SBT 강유전체 충전층 저온 플라즈마 반응기의 전기적 특성, 오존생성 및 휘발성유기화합물의 분해)

  • Eo, Joon;Kim, Il Won;Park, Jin Do;Lee, Joo Young;Lee, Hak Sung
    • Applied Chemistry for Engineering
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    • v.22 no.3
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    • pp.249-254
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    • 2011
  • A nonthermal plasma reactor in conjunction with a tubular type with a ferroelectric (high-dielectric ceramic) pellet layer was designed and constructed. $SrBiTaO_9$ (SBT) pellets with 2.0 mm in diameter were held within the tube arrangement by two metal mesh electrodes (20 mm separation) connected to a high-voltage AC power supply. The dielectric constant of SBT pellets was 150 at room temperature and 500 at curie temperature ($335^{\circ}C$). The generation rate of ozone in the plasma reactor almost linearly increased with increasing applied voltage. In the case of the plasma reactor packed with SBT pellets the generation rate of ozone sharply increased at the applied voltage more than 20 kV. The ozone generation rate at the negative corona discharge was higher than that of the positive corona discharge. However, the destruction efficiency of toluene and methylene chloride was not increased in proportion to ozone concentration.

$SO_2$ and CO Removal Characteristics in Various Applied Voltage of Nonthermal Discharge Plasma in a Crossed DC Magnetic Field (전.자계상의 전원장치변화에 따른 비열방전 플라즈마의 $SO_2$와 CO가스 제거특성)

  • Lee, Geun-Taek;Geum, Sang-Taek;Mun, Jae-Duk
    • The Transactions of the Korean Institute of Electrical Engineers C
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    • v.48 no.3
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    • pp.215-220
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    • 1999
  • $SO_2$and CO gas removal characteristics of a wire-to-cylinder type nonthermal discharge plasma reactor in various applied voltage (-dc, ac, fast rising pulse and high frequency pulse) and a crossed dc magnetic field have been investigated. The experiment has been emphasized on the oxidizing characteristics of $SO_2$ and CO gas by $O_3$ and the applying of a crossed magnetic field, which would induce the cyclotronic and drift motions of electrons making the residual time longer in the removal airgap space. And it also would enhance the energy of electrons and the electrophysicochemical actions to remove the pollutant gases effectively. It is found thatthe corona onset voltage and the breakdown voltage were decreased with increasing the crossed magnetic field and decrease initial fed $SO_2$and CO concentration. As a result, a higher ozone generation and $SO_2$ and CO gas removal rate of 20[%] can be obtained with -dc, ac and fast rising pulse corona discharges in the crossed dc current-induced magnetic field. But high frequency pulse didn't show effect in applying of a crossed magnetic field.

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The Plasma Chemistry and Particle Growth in the Low Temperature Plasma Reactor for removal of NOx (NOx 제거용 저온 플라즈마 반응기에서의 플라즈마 화학 및 입자 성장)

  • Kim, Dong-Joo;Kim, Kyo-Seon
    • Journal of Industrial Technology
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    • v.19
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    • pp.331-341
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    • 1999
  • We analyzed theoretically the removal efficiency and the particle growth inside the pulse corona discharge reactor to remove $NO_x$ and investigated the effects of process variables such as the NO and $NH_3$ input concentrations. Most of NO is converted into $NO_2$ and $HNO_3$ and the $HNO_3$ reacts with $NH_3$ to form the $NH_4NO_3$ particles. About 6.4% of NO is converted into $HNO_2$ which form the $NH_4NO_2$ particles by reaction with $NH_3$. Some of $NO_2$ follows the reaction pathway to form $NO_3$ and $N_2O_5$. The amount of particles formed inside the reactor is basically determined by the input $NH_3$ concentration. The ratio of NO to $NH_3$ affects the reactor length for particle formation significantly. The higher the input concentrations of NO and $NH_3$ are, the faster the particles grow.

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Surface Properties of Epoxy Composites by Plasma Treatment (플라즈마처리에 따른 에폭시 복합재료의 표면특성)

  • 임경범;이백수;이덕출
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.14 no.10
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    • pp.821-827
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    • 2001
  • In this study performed to identify a degradation mechanism in macromolecular insulating material, the contact angel, surface potential decay, surface resistivity, and XPS analysis were compared after exposure of FRP laminate to plasma discharge. In the case of contact angle, the surface of specimen untreated showed weak hydrophobic property of 73。. However, the contact angle was decreased to 20。in the plasma-treated specimen. In the case of chemical changes arising form plasma treatment, carboxl radicals were generated mainly in the surface treated, which was rapidly changed to the hydrophilic one. In the corona potential decay study to determine the electrical changes of the surface, positive charges were rapidly decreased when compared with negative charges, leading to negative property in the surface of specimen not treated. However, in the case of the hydrophilic surface, lots of carboxl radicals acting as positive polarity were generated, resulting in positive surface. Owing to such positive surface, charges of negative polarity applied were rapidly decreased.

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