Hydrogen sulfide (H2S) emitted from various sources is a major odorous compound, and non-thermal plasma (NP) has emerged as a promising technique to eliminate H2S. This study was conducted to investigate lab-scale and pilot-scale NP reactors using corona discharge for the removal of H2S, and the effects of relative humidity, applied electrical power on reactor performance and ozone generation were determined. A gas stream containing H2S was injected to the lab-scale NP reactor, and the changes in H2S and ozone concentration were monitored. In the pilotscale NP experiment, the inlet concentration and flow rate were modified to determine the effect of relative humidity and applied power on the NP performance. In the lab-scale NP experiments, H2S removal was found to be the 1st-order reaction in the presence of ozone. On the other hand, when plasma reaction and ozone generation were initiated after H2S was introduced, the H2S oxidation followed the 0th-order kinetics. The ratio of indirect oxidation by ozone to the overall H2S removal was evaluated using two different experimental findings, indicating that approximately 70% of the overall H2S elimination was accounted for by the indirect oxidation. The pilotscale NP experiments showed that H2S introduced to the reactor was completely removed at low flow rates, and approximately 90% of H2S was eliminated at the gas flow rate of 15 m3/min. Furthermore, the elimination capacity of the pilot-scale NP was 3.4 g/m3·min for the removal of H2S at various inlet concentrations. Finally, the experimental results obtained from both the lab-scale and the pilot-scale reactor operations indicated that the H2S mass removal was proportional to the applied electrical power, and average H2S masses removed per unit electrical power were calculated to be 358 and 348 mg-H2S/kW in the lab-scale and the pilot-scale reactors, respectively. To optimize energy efficiency and prevent the generation of excessive ozone, an appropriate operating time of the NP reactor must be determined.
Most of steam power plants in Korea are using the method of heating the feed water whenever the ambient temperature around the power plant area below 5°C to prevent freezing water flowing in the pipe in winter time. But this kind of heat supplying system is not useful to save energy. If we take the method that the temperature of the each pipe is controled by direct measure of temperature by attaching sensor on the outside surface of the feed water tubes, then we can expect that a plenty of energy can be saved. In this study, the computer simulation is used to compare the energy consumption loads of both systems. Energy saving rate is calculated for the location of Incheon area in winter season. Four convection heat transfer coefficients for the ambient air and three initial flowing water temperature inside the tube were used. The result shows that the temperature control system using sensor represents more than 95% of energy saving rate in Incheon area. Even in the severe January weather condition, the energy saving rate is almost 75% in two days basis and even 83% in one day basis.
본 논문에서는 도심지 지하에 터널 전력구를 건설하는 경우 시공단계별 영향을 고려한 구조해석을 수행하였다. 해석대상의 도심지 지하에는 여러 종류의 다양한 라이프라인 구조체가 설치되어 있다. 터널전력구의 구조해석에는 지반체의 유한요소해석 프로그램인 MPDAP을 사용하였다. 라이프라인 구조체와 터널 전력구 사이의 이격거리가 가장 작은 대표적인 3개의 단면에 대하여 구조해석을 수행하였다. 터널의 굴착단계별 유한요소해석에서 발생되는 평형불균형성 문제는 평형섭동개념을 적용하여 해결하였다. 또한 터널 굴착에 의한 시간의존 변형의 영향은 하중분담율을 사용하여 시공단계별로 고려하였다. 본 연구에서 검토한 3개의 대표단면에서는 터널 전력구 주변 지반체에서 발생하는 최대변위값은 허용변위값이내를 보여주었다.
We report on the effects of TiO2 doping power on the characteristics of multicomponent TiO2-ITO (TITO) electrodes prepared by a multi-target sputtering system with tilted cathode guns. Both as-deposited and annealed TITO electrodes showed linearly increased sheet resistance and resistivity with increasing TiO2 doping power. However, the TITO electrodes exhibited a fairly high optical transmittance regardless of the TiO2 doping power due to the high transparency of the TiO2. Although the annealed TITO showed much lower sheet resistance and resistivity relative to the as-deposited samples, the electrical properties of the annealed samples exhibited similar dependence on the TiO2 power to the as-deposited samples. In addition, it was found that doping of an anatase TiO2 in the ITO electrode prevented the preferred (222) orientation of the TITO electrodes. Although the TITO electrode showed higher sheet resistance and resistivity than that of the pure ITO electrode, it offers a very smooth surface and usage of a low-cost Ti element. It is thus considered a promising multicomponent transparent conducting electrode for cost-efficient flat panel displays and photovoltatics.
We have investigated the structural and electrical properties of Ga-doped ZnO (GZO) thin films deposited by anRF magnetron sputtering at various RF powers from 50 to 90W. All the GZO thin films are grown as a hexagonal wurtzitephase with highly c-axis preferred parameters. The structural and electrical properties are strongly related to the RF power. Thegrain size increases as the RF power increases since the columnar growth of GZO thin film is enhanced at an elevated RFpower. This result means that the crystallinity of GZO is improved as the RF power increases. The resistivity of GZO rapidlydecreases as the RF power increases up to 70W and saturates to 90W. In contrast, the electron concentration of GZO increasesas the RF power increases up to 70W and saturates to 90W. GZO thin film shows the lowest resistivity of 2.2×10−4Ωcmand the highest electron concentration of 1.7×1021cm−3 at 90W. The mobility of GZO increases as the RF power increasessince the grain boundary scattering decreases due to the reduced density of the grain boundary at a high RF power. Thetransmittance of GZO thin films in the visible range is above 90%. GZO is a feasible transparent electrode for application asa transparent electrode for thin film solar cells.
원자력발전소에 설치되는 안전관련 캐비닛형 전기기기는 설치 전에 내진검증이 요구된다. 전기기기의 동특성분석은 내진 검증에 포함된 중요한 과정이며, 기기의 정확한 해석모델을 작성하기 위해서도 필수적으로 요구되는 업무이다. 이 연구에서는 입력진동수준에 따른 기기의 동특성 변화를 분석하기 위하여 원전 지진감시시스템 캐비닛을 대상으로 진동대시험을 수행하고, 입력진동운동의 수준별로 계측된 진동응답신호를 진동수영역분해법으로 분석하였다. 분석결과, 대상기기는 입력진동수준의 크기에 따라 동특성이 비선형적으로 변화하고, 국내 원전의 안전정지지진 수준 이하의 진동에서도 동특성이 비선형적 거동을 보이고 있음을 확인하였다. 이러한 입력진동 수준에 따라 전기기기의 동특성이 비선형적으로 변하는 원인은 대상기기의 특성과 입력진동수준을 고려할 때 일반적인 재료 비선형보다는 각 부품들의 마찰력과 기하학적인 비선형성에 기인하는 것으로 판단된다. 따라서 전기 캐비닛의 입력진동수준에 따른 동특성의 비선형적 변화는 향후 안전관련 기기의 내진검증 업무에서 중요하게 검토되어야 할 것으로 판단된다.
연안에서 목적으로 하는 어업에 적합하도록 소형 어군탐지기를 효율적으로 설계하고 평가할 수 있는 방법에 대해 검토하기 위하여 일반적으로 사용되고 있는 어군탐지기의 특성과 탐지범위 등에 대해 조사하였다. 먼저 일반적인 어군탐지기의 빔폭은 주파수와 송신전력이 상승함에 따라 좁아지고 송수파기의 직경은 송신전력이 증가함에 커지는 경향을 보였다. 이 특성을 이용하여 상업적으로 사용되는 일반적인 어군탐지기의 신호대 잡음비를 유도하였다. 탐지거리와 탐지폭으로 구성되는 탐지범위는 이 신호대 잡음비(SN비)로부터 얻을 수 있다. 탐지거리는 주파수의 증가와 함께 증가하였지만 고주파에서는 흡수계수의 영향으로 원거리 탐지가 어려워진다. 즉 송수파기 직경, 송신전력의 증가에 따른 효과는 저주파에서는 크고, 고주파에서는 적은 경향을 보인다. 탐지범위 등을 종합적으로 응용하여 휴대용 어군탐지기의 설계 범용도를 작성하였다. 범용도에는 SN비를 송수파기의 직경, 빔폭, 탐지거리를 변수로하여 주파수에 대해 표시하였다. 범용도에서 SN비가 높고 실용성이 높은 적절한 설계영역을 표시하였다. 설계영역에서 설계점을 정하면 전체적으로 적절한 설계를 할 수 있다. 설계범용도는 어군탐지기의 성능평가에도 응용할 수 있다.
In this paper, we propose the Chaos Fuzzy controller to analyze the chaotic character of time series obtained from the specific plant and to predict the short-term for power consumption of the plant using the Fuzzy controller. We compared the predicted data with the active ones and checked the error generated by them after we time series of supplied power to the proposed controller. As a result of the simulation, we obtained a admirable consequence that the proposed controller can be advanced through various and accurate data acquisition, and continuous analysis of the resident and industrial environment.