• Title/Summary/Keyword: $SO_2$ and CO gas removal

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An Investigation for Air Pollutants Emitted from Small-Scale Incinerators in Highway Service Area (고속도로 휴게소의 소형소각로에서 배출되는 대기오염물질 조사)

  • Jang, Young-Kee;Choi, Sang-Jin;Kim, Kwan;Hong, Min-Sun;Choi, Join-In;Moon, Su-Ho;Kim, Soon-Tae;Kim, Seung-Do
    • Journal of Korean Society for Atmospheric Environment
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    • v.18 no.6
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    • pp.539-546
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    • 2002
  • The physicochemical properties of solid wastes generated from seven highway service areas, four branch offices, and one construction site were analyzed in concert with air pollutants including heavy metals emitted from near-by small-scale incinerators. The amount of solid wastes generated from highway areas has been increasing with recent increases in the number of highways and passengers. Twelve incinerators examined in this study generally had capacity smaller than 100 kg/hr, most of which were equipped with cyclone for dust removal. It was seen that the concentrations of the gas-phase air pollutants (e.g., SO$_2$, NO$_{x}$, HCl and H$_2$S) were above the acceptable emission standards except one or two sites. CO concentrations at all incinerators were also higher due to incomplete combustion. In addition, particulate matters showed concentration six times higher at their maximum. The results of heavy metal analysis showed that the concentrations of Cu, Cd, and Ni satisfied the emission standards. whereas Pb at one site and Zn at five sites exceeded the standards. Cr measurement results indicated that 9 of 12 incinerators had higher values than the standard; especially one branch office showed nine times higher than normal concentration. In order to satisfy more stringent emission standards in the near future, it is necessary to install air pollution control system and to develop an intensified management plan.n.

Analysis of Changing Pattern of Noxious Gas Levels with Malodorous Substance Concentrations in Individual Stage of Pig Pens for 24 hrs to Improve Piggery Environment (돈사환경 개선을 위한 생육단계별 돈사내 악취물질 농도 및 유해가스의 1일 변화추세 분석)

  • You, Won-Gyun;Kim, Cho-Long;Lee, Myung-Gyu;Kim, Dong-Kyun
    • Journal of Animal Environmental Science
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    • v.18 no.1
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    • pp.25-34
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    • 2012
  • Noxious gases with malodorous substance concentrations in each stages of pig buildings were determined at a typical 400sow-scale farm to improve piggery environment. Using IAQ-300 and pDR-1000AN, continuous records for the concentration of $NH_3$, CO, $CO_2$, $NO_2$, $SO_2$, $H_2S$, $O_2$, and along with temperature, humidity, dust concentrates from individual pig pens were collected to analyze every 6 hours' condition of indoor environment for 24 hours' period. In most pig houses, the air quality at noon was good, while at night (00:00~06:00), air composition became noxious in all buildings. The order of buildings' air quality for 24 hrs was pregnant > farrowing > nursery > growing > finishing. The cause of air quality differences was presumed to be the differences of stocking density, defecating amount and the length of exposure time of slurry in indoors. In conclusion, well-designed building structure, proper control of stocking density, quick removal of excreta from pig pens and continuous ventilation are prerequisites to improve pig housing environment.

The Optimization of Ozone Solubility and Half Life Time in Ultra Pure Water and Alkaline Solution on Semiconductor Wet Cleaning Process (반도체 습식 세정 공정 중 상온의 초순수와 염기성 수용액 내에서 오존의 용해도 최적화)

  • Lee Sang-Ho;Lee Seung-Ho;Kim Kyu-Chae;Kwon Tae-Young;Park Jin-Goo;Bae So-Ik;Lee Gun-Ho;Kim In-Jung
    • Journal of the Semiconductor & Display Technology
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    • v.4 no.4 s.13
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    • pp.19-26
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    • 2005
  • The process optimization of ozone concentration and half life time was investigated in ultra pure water and alkaline solutions for the wet cleaning of silicon wafer surface at room temperature. In the ultra pure water,. the maximum concentration (35 ppm) of ozone was measured at oxygen flow rate of 3 liters/min and ozone generator power over 60%. The half life time of ozone increased at lower power of ozone generator. Additive gases such as $N_2$ and $CO_2$ were added to increase the concentration and half life time of ozone. Although the maximum ozone concentration was higher with the addition of $N_2$ gas, a longer half life time was observed with the addition of $CO_2$. When $NH_4OH$ of 0.05 or 0.10 vol% was added in DI water, the pH of the solution was around 10. The addition of ozone resulted in the half life time less than 1 min. In order to maintain high pH and ozone concentration, ozone was continuously supplied in 0.05 vol% ammonia solutions. 3 ppm of ozone was dissolved in ammonia solutions. The static contact angle of silicon wafer surface became hydrophilic. The particle removal was possible alkaline ozone solutions. The organic contamination can be removed by ozonated ultra pure water and then alkaline solution containing ozone can remove the particles on silicon surface at room temperature.

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