• 제목/요약/키워드: nozzle location

검색결과 132건 처리시간 0.018초

수중초음속제트의 불안정성에 대한 실험적 고찰 (Experimental Observation of Instability of Supersonic Submerged Jets)

  • 정재권;이대훈;차홍석;박승오;권세진
    • 한국추진공학회지
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    • 제6권2호
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    • pp.45-52
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    • 2002
  • 2차원 수중 초음속 제트의 구조 및 유동 불안정성에 대한 실험적 연구를 수행하였다. 제트의 구조 및 시간에 따른 변화를 관찰하기 위하여 고속 디지털 카메라 촬영과 정압을 측정하였다. 공기 유량의 변화에 따른 제트의 구조를 초고속 촬영하여 이로부터 얻어진 장면에서 확산각을 구했다. 일련의 제트의 주기적인 특성에 따른 구조를 관찰하였고 불안정성의 초당 주기 발생 횟수가 5-6회 정도로 측정되었다. 세 가지 특성 길이 $L_1$, $L_2$, $L_3$를 정의하였다. $L_1$은 불안정적 주기가 발생할 경우 최대제트의 폭 스케일, $L_2$는 2차적인 유동이 유입되는 곳의 제트의 폭 스케일, $L_3$는 노즐 출구로부터 2차적으로 유도된 유동이 유임되는 곳까지의 길이다. $L_1$/$L_2$는 전압 즉, 탱크 압력이 증가함에 따라 감소하는 경향성을 가지고 있고 $L_3$는 전압이 증가함에 따라 증가하는 경향성을 띄었다. 시간에 따른 정압 변화를 측정하였으며 FFT결과를 통해서 불안정성으로 인해 발생하는 주파수와 유사한 값인 5Hz에서 고유진동이 발생하는 것을 확인하였다.

CFD ANALYSIS OF TURBULENT JET BEHAVIOR INDUCED BY A STEAM JET DISCHARGED THROUGH A VERTICAL UPWARD SINGLE HOLE IN A SUBCOOLED WATER POOL

  • Kang, Hyung-Seok;Song, Chul-Hwa
    • Nuclear Engineering and Technology
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    • 제42권4호
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    • pp.382-393
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    • 2010
  • Thermal mixing by steam jets in a pool is dominantly influenced by a turbulent water jet generated by the condensing steam jets, and the proper prediction of this turbulent jet behavior is critical for the pool mixing analysis. A turbulent jet flow induced by a steam jet discharged through a vertical upward single hole into a subcooled water pool was subjected to computational fluid dynamics (CFD) analysis. Based on the small-scale test data derived under a horizontal steam discharging condition, this analysis was performed to validate a CFD method of analysis previously developed for condensing jet-induced pool mixing phenomena. In previous validation work, the CFD results and the test data for a limited range of radial and axial directions were compared in terms of profiles of the turbulent jet velocity and temperature. Furthermore, the behavior of the turbulent jet induced by the steam jet through a horizontal single hole in a subcooled water pool failed to show the exact axisymmetric flow pattern with regards to an overall pool mixing, whereas the CFD analysis was done with an axisymmetric grid model. Therefore, another new small-scale test was conducted under a vertical upward steam discharging condition. The purpose of this test was to generate the velocity and temperature profiles of the turbulent jet by expanding the measurement ranges from the jet center to a location at about 5% of $U_m$ and 10 cm to 30 cm from the exit of the discharge nozzle. The results of the new CFD analysis show that the recommended CFD model of the high turbulent intensity of 40% for the turbulent jet and the fine mesh grid model can accurately predict the test results within an error rate of about 10%. In this work, the turbulent jet model, which is used to simply predict the temperature and velocity profiles along the axial and radial directions by means of the empirical correlations and Tollmien's theory was improved on the basis of the new test data. The results validate the CFD model of analysis. Furthermore, the turbulent jet model developed in this study can be used to analyze pool thermal mixing when an ellipsoidal steam jet is discharged under a high steam mass flux in a subcooled water pool.