• 제목/요약/키워드: Operating mass flow rate

검색결과 200건 처리시간 0.028초

연료차단밸브의 열해석에 관한 수치적 연구 (A Numerical Study on Thermal Analysis of Fuel Shut-off Valve)

  • 백낙곤;이재윤
    • 한국추진공학회지
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    • 제16권5호
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    • pp.108-114
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    • 2012
  • 연료차단밸브의 운용조건하에서 열 및 유체 특성을 수치적으로 연구하였다. 밸브의 크기는 15 mm이 고 최대유량은 600 kph이다. 해석은 STAR-CCM+를 이용하여 수행하였다. 수치해석으로부터 얻은 결과는 시험치와 비교를 하였으며 전체적으로 peak에 도달하는 온도의 기울기는 유사한 경향을 보이며 온도값도 거의 일치를 하였다.

연료차단밸브의 열해석에 관한 수치적 연구 (A Numerical Study on Thermal Analysis of Fuel Shut-off Valve)

  • 백낙곤;이재윤
    • 한국추진공학회:학술대회논문집
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    • 한국추진공학회 2011년도 제37회 추계학술대회논문집
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    • pp.559-564
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    • 2011
  • 연료차단밸브의 운용조건하에서 열 및 유체 특성을 수치적으로 연구하였다. 밸브의 크기는 15mm이고 최대유량은 600kph이다. 해석은 STAR-CCM+를 이용하여 수행하였다. 수치해석으로부터 얻은 결과는 시험치와 비교를 하였으며 전체적으로 peak에 도달하는 온도의 기울기는 유사한 경향을 보이며 온도값도 거의 일치를 하였다.

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극초음속 추진기관의 특성 및 초음속 연소 풍동 기초 설계 (Characteristics of Hypersonic Airbreathing Propulsion System and Preliminary Design of Supersonic Combustion Tunnel)

  • 김정용;허환일
    • 한국추진공학회:학술대회논문집
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    • 한국추진공학회 2001년도 제16회 학술발표회 논문초록집
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    • pp.35-38
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    • 2001
  • 차세대 추진 기관으로 연구되고 있는 스크램제트 엔진의 열역학적 특성들을 검토하였다. 유동이 엔진을 통과하면서 연소에 의해 전압력이 손실되고 노즐 출구 마하수가 감소하지만, 고온 연소 가스가 배출되기 때문에 실질적인 속도는 증가하게 되고 추력이 발생한다. 초음속 연소를 모사하기 위해 blowdown 형태의 초음속 연소 풍동 설계를 위한 개념 설계가 이루어졌다. 초음속 풍동 시험부에서 마하 2.5의 속도를 유지하기 위한 작동 압력과 질유량이 계산되었다.

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연료 과농 환경에서 분사기 유량 통과 특성 연구 (Study of Flow Discharging Characteristics of Injectors at Fuel Rich Conditions)

  • 서성현;임병직;김문기;안규복;김종규;최환석
    • 한국추진공학회:학술대회논문집
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    • 한국추진공학회 2010년도 제35회 추계학술대회논문집
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    • pp.9-12
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    • 2010
  • 본 논문은 연료 과농 연소 환경 하의 이중 와류 동축형 분사기의 유량 통과 특성 파악을 위해 수행한 실험결과를 수록하였다. 액체산소와 케로신(Jet A-1)을 사용하여 연소시험을 수행하고 유량 통과 특성을 유량계수로 표현하였다. 유량계수 산출을 위해 유량, 압력, 온도를 계측하였다. 연료 분사기의 경우, 산화제 측 분사기 형상, 연소압, 혼합비에 관계없이 일정한 유량 계수 값을 보였다. 이에 반해 산화제 분사기는 연소압과 혼합비 변화에 영향을 받는 것으로 나타났다. 화염 형성 변화가 유량계수 변화에 특히 산화제 측에 영향을 주고 있음을 밝혔다.

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대구경 고압 T형 분기관의 지관 형상에 따른 내부 유동 영향성 해석 (A Study on Internal Flow Characteristics of T Branch using CFD Analysis)

  • 조철희;김명주;조석진;황수진
    • 한국수소및신에너지학회논문집
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    • 제26권5호
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    • pp.438-444
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    • 2015
  • This study describes the effect of T branch shape on internal flow characteristics inside itself. Continuity and three-dimensional Reynolds-averaged Navier-Stokes equation have been used as governing equations for the numerical analysis. The T branch was modeled assuming that it is used for Alaska pipeline project which was planned to provide reliable transportation of natural gas from ANS to Alaska-Yukon border. Therefore the characteristics of T branch and operating condition of pipeline were from report of Alaska pipeline project. The nine T branch shapes were analyzed and the mass flow rate ratio between mainline and branch was assumed to be 0.95 : 0.05, 0.9 : 0.1, 0.85 : 0.15. The results shows that there are typical flow patterns in T branch and the shape of T branch makes some differences to the internal flow of branch rather than mainline.

PVDF 중공사막 제조 및 벤치규모 기-액 접촉기를 이용한 SO2 흡수특성 (Preparation of PVDF Hollow Fiber Membrane and Absorption of SO2 from Flue Gas Using Bench Scale Gas-Liquid Contactor)

  • 박현희;조항대;김인원;이형근
    • Korean Chemical Engineering Research
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    • 제46권3호
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    • pp.521-528
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    • 2008
  • 중공사막 접촉기에 적절한 PVDF 중공사막을 상전이 공정에 의하여 제조하였으며, SEM 과 기체투과도에 의하여 그 특성을 분석하였다. 벤치규모 중공사막 접촉기에서 $SO_2$ 제거를 위한 흡수제는 수산화나트륨 수용액을 사용하였다. 기체는 shell side, 액체는 lumen side로 흐르는 counter-current로 실험하였으며, 흡수제의 농도, 기체의 유속, 액가스비, 유입 $SO_2$ 농도에 따른 영향을 알아보았으며, 수학적 모델링에 의해 막 물질전달계수($k_m$)를 측정하였다. 흡수제의 농도와 액기비가 증가함에 따라 기-액 계면에서 충분한 알칼리도가 제공되므로, 액체막 저항이 감소하며, 총괄물질전달 용량계수는 증가하였다. 기체유속이 증가함에 따라 기체막저항은 감소하게 되므로 총괄물질전달 용량계수는 증가하였다.

Development and Validation of a Liquid Chromatography-Tandem Mass Spectrometry Method for the Determination of ε-Acetamidocaproic Acid in Rat Plasma

  • Kim, Tae Hyun;Choi, Yong Seok;Choi, Young Hee;Kim, Yoon Gyoon
    • Toxicological Research
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    • 제29권3호
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    • pp.203-209
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    • 2013
  • A simple and rapid liquid chromatography-tandem mass spectrometry (LC-MS/MS) method was developed and validated for the quantification of ${\varepsilon}$-acetamidocaproic acid (AACA), the primary metabolite of zinc acexamate (ZAC), in rat plasma by using normetanephrine as an internal standard. Sample preparation involved protein precipitation using methanol. Separation was achieved on a Gemini-NX $C_{18}$ column ($150mm{\times}2.0mm$, i.d., 3 ${\mu}m$ particle size) using a mixture of 0.1% formic acid-water : acetonitrile (80 : 20, v/v) as the mobile phase at a flow rate of 200 ${\mu}l/min$. Quantification was performed on a triple quadrupole mass spectrometer employing electrospray ionization and operating in multiple reaction monitoring (MRM) and positive ion mode. The total chromatographic run time was 4.0 min, and the calibration curves of AACA were linear over the concentration range of 20~5000 ng/ml in rat plasma. The coefficient of variation and relative error at four QC levels were ranged from 1.0% to 5.8% and from -8.4% to 6.6%, respectively. The present method was successfully applied for estimating the pharmacokinetic parameters of AACA following intravenous or oral administration of ZAC to rats.

Code development on steady-state thermal-hydraulic for small modular natural circulation lead-based fast reactor

  • Zhao, Pengcheng;Liu, Zijing;Yu, Tao;Xie, Jinsen;Chen, Zhenping;Shen, Chong
    • Nuclear Engineering and Technology
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    • 제52권12호
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    • pp.2789-2802
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    • 2020
  • Small Modular Reactors (SMRs) are attracting wide attention due to their outstanding performance, extensive studies have been carried out for lead-based fast reactors (LFRs) that cooled with Lead or Lead-bismuth (LBE), and small modular natural circulation LFR is one of the promising candidates for SMRs and LFRs development. One of the challenges for the design small modular natural circulation LFR is to master the natural circulation thermal-hydraulic performance in the reactor primary circuit, while the natural circulation characteristics is a coupled thermal-hydraulic problem of the core thermal power, the primary loop layout and the operating state of secondary cooling system etc. Thus, accurate predicting the natural circulation LFRs thermal-hydraulic features are highly required for conducting reactor operating condition evaluate and Thermal hydraulic design optimization. In this study, a thermal-hydraulic analysis code is developed for small modular natural circulation LFRs, which is based on several mathematical models for natural circulation originally. A small modular natural circulation LBE cooled fast reactor named URANUS developed by Korea is chosen to assess the code's capability. Comparisons are performed to demonstrate the accuracy of the code by the calculation results of MARS, and the key thermal-hydraulic parameters agree fairly well with the MARS ones. As a typical application case, steady-state analyses were conducted to have an assessment of thermal-hydraulic behavior under nominal condition, and several parameters affecting natural circulation were evaluated. What's more, two characteristics parameters that used to analyze natural circulation LFRs natural circulation capacity were established. The analyses show that the core thermal power, thermal center difference and flow resistance is the main factors affecting the reactor natural circulation. Improving the core thermal power, increasing the thermal center difference and decreasing the flow resistance can significantly increase the reactor mass flow rate. Characteristics parameters can be used to quickly evaluate the natural circulation capacity of natural circulation LFR under normal operating conditions.

압축점화 가솔린기관의 성능 및 배기특성 (Performance and Emission Characteristics of Compression Ignition Gasoline Engine)

  • 김홍성;김문헌
    • 대한기계학회논문집B
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    • 제27권7호
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    • pp.1007-1014
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    • 2003
  • This work deals with a controlled auto-ignition (CAI) single cylinder gasoline engine, focusing on the extension of operating conditions. The fuel is injected indirectly into electrically heated inlet air flow. In order to keep a homogeneous air-fuel mixing, the fuel injector is water-cooled by a specially designed coolant passage. Investigated are the engine performance and emission characteristics under the wide range of operating conditions such as 32 to 63 in the air-fuel ratio, 1000 to 1800 rpm in the engine speed, and 150 to 18$0^{\circ}C$ in the inlet air temperature. The compression ignition gasoline engine can be achieved that the ultra lean-burn with self-ignition of gasoline fuel by heating inlet air. For example. the allowable lean limit of air-fuel ratio is extended until 63 at engine speed of 1000 rpm and inlet air temperature of 17$0^{\circ}C$. It can be achieved that the emission concentrations of carbon monoxide, hydrocarbons and nitrogen oxide had been significantly reduced by CAI combustion compared with conventional spark ignition engine.

분사시기의 변화에 따른 제어자발화 가솔린기관의 성능 및 배기특성 (Performance and Emission Characteristics of a Controlled Auto-Ignition Gasoline Engine according to Variation of the Injection Timing)

  • 김홍성
    • 동력기계공학회지
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    • 제9권1호
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    • pp.14-22
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    • 2005
  • This work deals with a controlled auto-ignition (CAI) single cylinder gasoline engine, focusing on the extension of operating conditions. The fuel is injected indirectly into electrically heated inlet air flow. In order to keep a homogeneous air-fuel mixing, the fuel injector is water-cooled by a specially designed coolant passage. Investigated are the engine performance and emission characteristics under the wide range of operating conditions such as 40 in the air-fuel ratio, 1000 to 1800 rpm in the engine speed, $150\;to\;180^{\circ}C$ in the inlet-air temperature, and $80^{\circ}$ BTDC to $20^{\circ}$ ATDC in the injection timing. A controlled auto-ignition gasoline engine can be achieved that the ultra lean-burn with self-ignition of gasoline fuel by heating inlet air. It can be achieved that the emission concentrations of carbon monoxide, hydrocarbons and nitrogen oxide had been significantly reduced by CAI combustion compared with conventional spark ignition engine.

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