• 제목/요약/키워드: emission time constant

검색결과 91건 처리시간 0.028초

실습선을 이용한 주 추진기관의 배기배출물의 실시간 계측 (Real Time Measurement of Exhaust Emissions from Main Engine using Training Ship)

  • 최정식;이상득;이경우;천강우;남연우;윤석훈;최재혁
    • 해양환경안전학회지
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    • 제19권5호
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    • pp.531-537
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    • 2013
  • 본 연구에서는 한국해양대학교 실습선 한바다를 이용하여 선박의 입 출항 및 약 150 rpm의 정속 운항 할 때 주기관에서 배출되는 배기가스를 실시간 계측하였다. 실측 결과 질소산화물의 농도는 정속 운항시 800 ppm 에서 1,000 ppm 사이인데 반해, 입 출항시에는 210 ppm 에서 1,230 ppm 까지 큰 범위에서 값이 변화하였다. 일산화탄소의 농도 역시 정속운항 상태 보다 입 출항시 측정값의 변화가 크게 나타났다. 이러한 결과는 입 출항시 가능한 한 주기관의 부하변동이 급격히 발생되지 않도록 하는 선박 조종 스킬이 필요하다는 것을 의미한다. 또한, 배기가스 저감 기술의 적용에 있어 입 출항시와 정속 운항할 때 그 차이를 고려할 필요가 있다는 것을 나타낸다.

고형연료제품 사용시설에서의 SNCR의 운전조건에 따른 NOx 배출특성 (NOx Emission Characteristics with Operating Conditions of SNCR in SRF Usage Facilities)

  • 서제우;김영희
    • 청정기술
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    • 제27권4호
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    • pp.350-358
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    • 2021
  • 본 연구결과에서 연소로 내 온도가 848.27 ~ 1,026.80 ℃ 범위로써 평균 976.61 ℃으로 나타났으며, 온도증가에 따라 NOx 농도는 증가하는 경향으로 나타났다. 요소 사용량은 291.00 ~ 693.00 kg d-1로 평균 542.34 kg d-1로 나타났으며, 요소 사용량의 증가에 따라 NOx 농도는 감소하는 경향으로 나타났다. 체류시간이 3.38 ~ 9.17 s로 평균 약 5.22 s로써 설계시 고려한 2 s이내 보다 약 2.61 배 크게 나타났다. 이는 SRF 투입량 허가조건인 1,950 kg h-1 대비 평균 SRF 투입량이 약 55.71%인 1,086 kg h-1로써 연소실 면적은 일정하나 SRF 연소량의 감소에 따라 배가스량 감소에 따른 체류시간이 증가하는 것으로 판단된다. O2/CO 비는 847.05 ~ 14,877.34로 평균 3,111.30으로 나타났고, O2/CO 비 증가에 따라 NOx 농도는 다소 증가하는 경향으로 나타났다. 온도증가와 O2/CO 비의 증가에 공기 중 질소 성분과의 연소반응이 증가하여 NOx 농도가 다소 증가하였으며, 요소 투입량 증가와 체류시간이 증가할수록 배가스의 NOx와의 반응량이 증가하여 처리 후의 NOx 농도는 다소 감소하는 경향으로 나타났다. TMS 자료에 의한 굴뚝 출구에서의 NOx 농도는 7.88 ~ 34.02 ppm으로 평균 19.92 ppm으로써 배출허용기준 60 ppm 이내로 배출되었다. NOx 배출계수는 1.058 ~ 1.795 kg ton-1으로써 평균 1.450 kg ton-1으로 나타났다. 본 연구결과 NOx 배출계수는 기타 고체연료인 최대 배출계수 5.830 kg ton-1 약 24.87%로 나타났으며, 기타 합성수지류와 기타 사업장폐기물의 배출계수인 1.817 kg ton-1, 3.322 kg ton-1 대비 각각 79.80%, 43.65%로 나타났다. 기 유사 연구결과인 NIER 고시(2005-9)의 RDF 배출계수인 1.400 kg ton-1과 유사하게 나타났으며, 최대로 나타난 SRF의 경우인 배출계수 13.210 kg ton-1에 비해 약 10.98%로 나타났다. 따라서 NOx의 배출계수는 편차가 크게 나타났다.

물/부동액-기반Al2O3나노유체를 이용한 차량용 냉각시스템 성능 향상에 관한 실험적 연구 (Experimental Investigation on the Thermal Performance Enhancement of Cooling System for Vehicles using Water/Coolant-Based Al2O3 Nanofluids)

  • 박용준;김현진;이승현;최태종;강예준;장석필
    • 한국분무공학회지
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    • 제20권2호
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    • pp.65-69
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    • 2015
  • In this study, the thermal performance of vehicle's cooling system is experimentally investigated using the water/coolant-based $Al_2O_3$ nanofluids as working fluids. For the purpose, the water/coolant-based $Al_2O_3$ nanofluids are prepared by twostep method with gum arabic. In order to obtain the well-suspended nanofluids, the agglomerated $Al_2O_3$ nanoparticles are precipitated using centrifugal force and the experiments are performed with supernatant of them. The thermal conductivity is measured by transient hot wire method and the thermal conductivity of nanofluids is enhanced up to 4.8% as compared to that of base fluids. Moreover, the cooling performance of water/coolant-based $Al_2O_3$ nanofluids is evaluated using vehicle's engine simulator under the constant RPM condition. The results show that the cooling performance of automobile engine increases up to 5.9% using prepared nanofluids. To investigate the effect of nanofluids on exhaust gas, the $NO_x$ emission is measured during the operation with respect to time and 10.3% of $NO_x$ emission is decreased. The experimental results imply that the water/coolant-based $Al_2O_3$ nanofluids might be used as a next-generation vehicles' coolant

Electrically Driven Quantum Dot/wire/well Hybrid Light-emitting Diodes via GaN Nano-sized Pyramid Structure

  • 고영호;김제형;김려화;고석민;권봉준;김주성;김택;조용훈
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2011년도 제40회 동계학술대회 초록집
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    • pp.47-47
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    • 2011
  • There have been numerous efforts to enhance the efficiency of light-emitting diodes (LEDs) by using low dimensional structures such as quantum dots (QDs), wire (QWRs), and wells (QWs). We demonstrate QD/QWR/QW hybrid structured LEDs by using nano-scaled pyramid structures of GaN with ~260 nm height. Photoluminescence (PL) showed three multi-peak spectra centered at around 535 nm, 600 nm, 665 nm for QWs, QWRs, and QDs, respectively. The QD emission survived at room temperature due to carrier localization, whereas the QW emission diminished from 10 K to 300 K. We confirmed that hybrid LEDs had zero-, one-, and two-dimensional behavior from a temperature-dependent time-resolved PL study. The radiative lifetime of the QDs was nearly constant over the temperature, while that of the QWs increased with increasing temperature, due to low dimensional behavior. Cathodoluminescence revealed spatial distributions of InGaN QDs, QWRs, and QWs on the vertices, edges, and sidewalls, respectively. We investigated the blue-shifted electroluminescence with increasing current due to the band-filling effect. The hybrid LEDs provided broad-band spectra with high internal quantum efficiency, and color-tunability for visible light-emitting sources.

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Development and Testing of a Prototype Long Pulse Ion Source for the KSTAR Neutral Beam System

  • Chang Doo-Hee;Oh Byung-Hoon;Seo Chang-Seog
    • Nuclear Engineering and Technology
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    • 제36권4호
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    • pp.357-363
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    • 2004
  • A prototype long pulse ion source was developed, and the beam extraction experiments of the ion source were carried out at the Neutral Beam Test Stand (NBTS) of the Korea Superconducting Tokamak Advanced Research (KSTAR). The ion source consists of a magnetic bucket plasma generator, with multi-pole cusp fields, and a set of tetrode accelerators with circular apertures. Design requirements for the ion source were a 120kV/65A deuterium beam and a 300 s pulse length. Arc discharges of the plasma generator were controlled by using the emission-limited mode, in turn controlled by the applied heating voltage of the cathode filaments. Stable and efficient arc plasmas with a maximum arc power of 100 kW were produced using the constant power mode operation of an arc power supply. A maximum ion density of $8.3{\times}10^{11}\;cm^{-3}$ was obtained by using electrostatic probes, and an optimum arc efficiency of 0.46 A/kW was estimated. The accelerating and decelerating voltages were applied repeatedly, using the re-triggering mode operation of the high voltage switches during a beam pulse, when beam disruptions occurred. The decelerating voltage was always applied prior to the accelerating voltage, to suppress effectively the back-streaming electrons produced at the time of an initial beam formation, by the pre-programmed fast-switch control system. A maximum beam power of 0.9 MW (i.e. $70\;kV{\times}12.5\;A$) with hydrogen was measured for a pulse duration of 0.8 s. Optimum beam perveance, deduced from the ratio of the gradient grid current to the total beam current, was $0.7\;{\mu}perv$. Stable beams for a long pulse duration of $5{\sim}10\;s$ were tested at low accelerating voltages.

대형 디젤엔진의 NOx 저감을 위한 연료분사노즐 최적화 연구 (The Optimization of Fuel Injection Nozzles for the Reduction of NOx Emissions in a Large Diesel Engine)

  • 윤욱현;김병석;김동훈;김기두;하지수
    • 한국자동차공학회논문집
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    • 제12권6호
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    • pp.60-65
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    • 2004
  • Numerical simulations and experiments have been carried out to investigate the effect of fuel injection nozzles on the combustion and NOx formation processes in a medium-speed marine diesel engine. Spray visualization experiment was performed in the constant-volume high-pressure chamber to verify the numerical results on the spray characteristics such as spray angle and spray tip penetration. Time-resolved spray behaviors were captured by high-speed digital camera and analyzed to extract the information on the spray parameters. Spray and combustion phenomena were examined numerically using FIRE code. Wave breakup and Zeldovich models were adopted to describe the atomization characteristics and NOx formation processes. Numerical results were verified with experimental data such as cylinder pressure, heat release rate and NOx emission. Finally, the effects of fuel injection nozzles on the engine performance were investigated numerically to find the optimum nozzle parameters such as fuel injection angle, nozzle hole diameter and number of nozzle holes. From this study, the optimum fuel injection nozzle (nozzle hole diameter, 0.32 mm, number of nozzle holes, 8 and fuel injection angle, $148^{\circ}$) was selected to reduce both the fuel consumption and NOx emission. The reason for this selection could be explained from the highest fuel-air mixing in the early phase of injection due to the longest spray tip penetration and the highest heat release rate after $19^{\circ}$ ATDC due to the increased injection duration.

분사 압력에 따른 수소 제트의 형상과 LIBs를 적용한 국부 당량비 계측 (Hydrogen Jet Structure and Measurement of Local Equivalence Ratio by LIBs under the Different Injection Pressure)

  • 이상욱;김정호;배충식
    • 한국분무공학회지
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    • 제27권2호
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    • pp.84-93
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    • 2022
  • To implement carbon-neutrality in transportation sectors until 2050, hydrogen is considered a promising fuel for internal combustion engines because hydrogen does not contain carbon itself. Although hydrogen does not emit CO2 emission from its combustion process, the low energy density in a volume unit hinders the adoption of hydrogen. Therefore, the understanding of hydrogen jet behavior and measurement of equivalence ratio must be conducted to completely implement the high-pressure hydrogen direct injection. The main objective of this research is feasibility test of hydrogen local equivalence ratio measurement by laser-induced breakdown spectroscopy (LIBs). To visualize the macroscopic structure of hydrogen jet, high-speed schlieren imaging was conducted. Moreover, LIBs has been adopted to validate the feasibility of hydrogen local equivalence ratio measurement. The hydrogen injection pressure was varied from 4 MPa to 8 MPa and injected in a constant volume chamber where the ambient pressure was 0.5 MPa. The increased injection pressure extends the vertical penetration of hydrogen jet. Due to the higher momentum supply when the injection pressure is high, the hydrogen has easily diffused in all directions. As the laser trigger timing has delayed, the low hydrogen atomic emission was detected due to the longer mixture formation time. Based on equivalence ratio measurement results, LIBs could be applied as a methodology for hydrogen local equivalence ratio measurement.

Dynamic mechanism of rock mass sliding and identification of key blocks in multi-fracture rock mass

  • Jinhai Zhao;Qi Liu;Changbao Jiang;Zhang Shupeng;Zhu Weilong;Ma Hailong
    • Geomechanics and Engineering
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    • 제32권4호
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    • pp.375-385
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    • 2023
  • There are many joint fissures distributed in the engineering rock mass. In the process of geological history, the underground rock mass undergoes strong geological processes, and undergoes complex geological processes such as fracture breeding, expansion, recementation, and re-expansion. In this paper, the damage-stick-slip process (DSSP), an analysis model used for rock mass failure slip, was established to examine the master control and time-dependent mechanical properties of the new and primary fractures of a multi-fractured rock mass under the action of stress loading. The experimental system for the recemented multi-fractured rock mass was developed to validate the above theory. First, a rock mass failure test was conducted. Then, the failure stress state was kept constant, and the fractured rock mass was grouted and cemented. A secondary loading was applied until the grouted mass reached the intended strength to investigate the bearing capacity of the recemented multi-fractured rock mass, and an acoustic emission (AE) system was used to monitor AE events and the update of damage energy. The results show that the initial fracture angle and direction had a significant effect on the re-failure process of the cement rock mass; Compared with the monitoring results of the acoustic emission (AE) measurements, the master control surface, key blocks and other control factors in the multi-fractured rock mass were obtained; The triangular shaped block in rock mass plays an important role in the stress and displacement change of multi-fracture rock mass and the long fissure and the fractures with close fracture tip are easier to activate, and the position where the longer fractures intersect with the smaller fractures is easier to generate new fractures. The results are of great significance to a multi-block structure, which affects the safety of underground coal mining.

교류 전압 구동에 의한 유기 발광 소자의 발광 특성 연구 (Light-Emission Characteristics of Organic Light-Emitting Diodes Driven by Alternating Current)

  • 권오태;김태완
    • 한국전기전자재료학회논문지
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    • 제29권10호
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    • pp.625-629
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    • 2016
  • Electrical and optical properties of the AC voltage driven organic light-emitting diodes were investigated by measuring the electroluminescence of the device. Device structure of ITO(170 nm)/TPD(40 nm)/Alq3(60 nm)/LiF(0.5 nm)/Al(100 nm) was manufactured using a thermal evaporation. Sinusoidal and square-type AC voltage was applied to the device using a function generator. Amplitude of the applied voltage was 9.0 V, and a frequency was varied from 50 Hz to 50 kHz. Electroluminescence out of the device was measured in a Si photodetector simultaneously with the applied voltage together. An intensity and a delayed residual luminescence from the device were depended on the frequency of the sinusoidal voltage. It is thought to be due to a contribution of the capacitive nature in the equivalent circuit of the device. An electron mobility was estimated using a time constant obtained from the luminescence of the device driven by the square-type AC voltage.

동적특성을 고려한 디젤엔진 흡배기 시스템의 상태추정 모델 (Air System Modeling for State Estimation of a Diesel Engine with Consideration of Dynamic Characteristics)

  • 이주원;박영섭;선우명호
    • 한국자동차공학회논문집
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    • 제22권4호
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    • pp.36-45
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    • 2014
  • Model based control methods are widely used to improve the control performance of diesel engine air systems because the control results of the air system significantly affect the emission level and drivability. However, the model based control algorithm requires a lot of unmeasurable states which are hard to be measured in a mass production engine. In this study, an air system model of the diesel engine is proposed to estimate 11 unmeasurable states using only sensors equipped in a mass production engine. In order to improve the estimation performance in the transient condition, dynamic characteristics of the air system are analyzed and implemented as discrete filters. Turbine and compressor efficiency models are also proposed to overcome a limitation of the constant or look-up table based efficiency values. The proposed air system model was validated in steady state and transient conditions by real-time engine experiments. The maximum error of the estimation for 11 physical states was 11.7%.