• 제목/요약/키워드: 충돌액적

검색결과 147건 처리시간 0.032초

방빙 시스템의 히터에 대한 열해석 (Thermal Analysis of Heater for Anti-Icing System)

  • 김민수;장윤석;이승수;강대일;정윤수;김성수;한동건
    • 한국항공우주학회지
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    • 제47권8호
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    • pp.541-548
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    • 2019
  • 본 논문은 Flush Air Data Sensing(FADS) 시스템의 방빙에 요구되는 열량을 예측하였다. 설계 초기 단계에서 효과적으로 요구 열량을 예측하기 위해 handbook 기법을 적용하였다. 이를 위해 비행환경에 따른 대표 물리량들을 입력하면 handbook 기법의 수식을 통해 열량을 예측하는 프로그램을 개발하였다. 이때 예측 값의 신뢰도를 높이기 위하여 handbook 기법에서 핵심적인 변수인 충돌효율계수를 CFD 해석을 통해 계산해 내었다. 액적 충돌 판정을 효과적으로 수행하기 위해 Kriging 기법을 적용하여 물체 형상에 대한 등고면 DB를 구축하였다. 또한 액적 궤적 예측을 위해 마찬가지로 Kriging 기법을 적용하여 속도장 DB를 구축하였다.

흡입유동 중 충돌벽면 근처에서 가솔린 분무특성 (Characteristics of the Gasoline Spray near Impinging Wall in Suction Flow)

  • 김원태;강신재;노병준
    • 대한기계학회논문집B
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    • 제24권10호
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    • pp.1285-1293
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    • 2000
  • In port fuel injection system of SI engines, injected fuel is impinged onto the surface of intake valves and port-wall, and then formed the wall flow under the cold start operation. Wall flows entrained into the cylinder result in the unsteady and nonuniform mixture formation. Therefore, the spray impingement to the wall is considered as having negative influences such as lowering combustion efficiency and causing unburned hydrocarbon emissions. This study investigates the spray characteristics of the wall impinging air-assist spray in suction air flow. A PDPA was used to analyze the flow characteristics under the different conditions such as impingement angle and supplied air. Experimental data concerning the impinging sprays has been obtained in the vicinity of the wall. Measured droplets divided into the pre-impinging droplets which denote as the positive normal velocities and post-impinging droplets that describe as the negative normal velocities for the suction flow. Their velocities, size distributions and SMD are comparatively analyzed before and after the impingement.

PLIF 기법을 이용한 액체로켓용 충돌분사 인젝터의 분무분포 특성 해석 (Analysis of the Spray Distribution Characterization of Impinging Jet Injectors for Liquid Rockets Using PLIF Technique)

  • 정기훈;윤영빈;황상순
    • 한국추진공학회지
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    • 제4권1호
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    • pp.36-45
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    • 2000
  • 지금까지의 충돌분무에 대한 연구는 제트의 충돌시 형성되는 액막의 분열 과정을 이해하고 이를 모델링하는데 초점을 두어왔기 때문에 실질적으로 연소 효율에 가장 큰 영향을 미치는 연료의 공간분포 특성에 대한 연구가 부족하였다. 따라서 본 연구에서는 like-doublet 충돌분사 노즐을 사용하여 연료 유량 플럭스의 단면분포 특성을 연구하였다. PDPA(Phase Doppler Particle Analyzer)를 통해 액적의 크기를 측정한 기존의 방법은 연료의 평면적인 분포특성을 이해하는데 상당히 제한적이었기 때문에 평면 레이저 유도형광기법(PLE : Planar Laser Induced Fluorescence)을 이용하여 분무의 단면 분포를 측정하였고, 직접사진을 통하여 액적의 크기도 측정하여 PLIF의 결과와 비교하였다.

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충돌각과 혼합비 변화에 따른 충돌형 분사기의 분무특성에 관한 연구 (Spray Characteristics on Impingement Angle Variation and Mixture ratio of Impinging Injectors)

  • 강신재;송범근;송기정;이정규
    • 한국항공우주학회지
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    • 제31권5호
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    • pp.72-79
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    • 2003
  • 본 실험에서는 충돌형 F-O-O-F 형태인 분사기의 충돌각을 15, 20, 그리고 30도로 변화시켰으며, 혼합비(O/F 비)는 1.5부터 3.0까지 증가시키면서 분무특성을 살펴보았다. 실험결과, 분무의 가시화를 통해서 혼합비는 확산각에 큰 영향을 주지 않지만 수밀도에는 영향을 끼쳤으며, 충돌각과 환산각 사이에는 충돌각이 증가할수록 확산각이 증가하는 선형적인 실험 관계식이 있음을 알 수 있었고, 충돌각이 증가함에 따라 분무폭은 커지며. 액적들의 속도 분포와 표준편차, 그리고 SMD는 작아짐을 알 수 있었다. 또한, 액적의 크기분포를 살펴본 결과 Rosin-Rammler와 Upper-Limit 분포함수와 잘 일치하고 있음을 확인 할 수 있었다.

완전 비습윤 고체 표면 위 타원형 액적의 충돌 및 퍼짐 거동에 대한 수치적 연구 (NUMERICAL ANALYSIS OF THE IMPACTING AND SPREADING DYNAMICS OF THE ELLIPSOIDAL DROP ON THE PERFECT NON-WETTING SOLID SURFACE)

  • 윤성찬
    • 한국전산유체공학회지
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    • 제21권4호
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    • pp.90-95
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    • 2016
  • Leidenfrost drops with ellipsoidal shaping can control the bouncing height by adjusting the aspect ratio(AR) of the shape at the moment of impact. In this work, we focus on the effect of the AR and the impact Weber number(We) on the non-axisymmetrical spreading dynamics of the drop, which plays an important role in the control of bouncing. To understand the impact dynamics, the numerical simulation is conducted for the ellipsoidal drop impact upon the perfect non-wetting solid surface by using volume of fluid method, which shows the characteristics of the spreading behavior in each principal axis. As the AR increases, the drop has a high degree of the alignment into one principal axis, which leads to the consequent suppression of bouncing height with shape oscillation. As the We increases, the maximum spreading diameters in the principal axes both increase whereas the contact time on the solid surface rarely depends on the impact velocity at the same AR. The comprehensive understanding of the ellipsoidal drop impact upon non-wetting surface will provide the way to control of drop deposition in applications, such as surface cleaning and spray cooling.

Leidenfrost 온도 이상의 가열 벽면과 충돌 시 열전달에 대한 액적 온도의 영향 (Effects of Droplet Temperature on Heat Transfer During Collision on a Heated Wall Above the Leidenfrost Temperature)

  • 박준석;김형대
    • 한국분무공학회지
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    • 제21권2호
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    • pp.78-87
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    • 2016
  • This study experimentally investigated the effects of droplet temperature on the heat transfer characteristics during collision of a single droplet on a heated wall above the Leidenfrost temperature. Experiments were performed by varying temperature from 40 to $100^{\circ}C$ while the collision velocity and wall temperature were maintained constant at 0.7 m/s at $500^{\circ}C$, respectively. Evolution of temperature distribution at the droplet-wall interface as well as collision dynamics of the droplet were simultaneously recorded using synchronized high-speed video and infrared cameras. The local heat flux distribution at the collision surface was deduced using the measured temperature distribution data. Various physical parameters, including residence time, local heat flux distribution, heat transfer rate, heat transfer effectiveness and vapor film thickness, were measured from the visualization data. The results showed that increase in droplet temperature reduces the residence time and increases the vapor film thickness. This ultimately results in reduction in the total heat transfer by conduction through the vapor film during droplet-wall collision.

표면 전하 유무에 따른 대전된 미소액적의 충돌 현상 (The impact behaviors of electrified micro-droplet with existence and nonexistence of electrical charged for surface)

  • 이재현;김지훈;변도영
    • 한국가시화정보학회지
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    • 제13권1호
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    • pp.49-53
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    • 2015
  • Recently, researches for droplet impact phenomena have been faced a new phase in the direction of studying the effect of complex external conditions (e.g. wettability, temperature, morphology, electric field, etc.) for depth understanding and precise controlling in various applications. Hence, here we investigated the electrified droplet impact phenomena, because there were few quantitative researches for electrified droplet impact when we considering many real applications such as electrospray, electrohydrodynamic (EHD) jet printing. To observe interaction effect of surface charge between substrate and droplet simultaneously, micro-droplets with various Reynolds number (Re) and Weber number (We) were dripped on super-hydrophobic surface with existence and nonexistence of electrical surface charge. It shows three kinds of impact behaviors, fully bouncing, partial bouncing, and splashing with different We. Also, charged droplet bounced higher on electrically charged surface than on non-charged surface. Additionally, transition regions of three impact behaviors were classified quantitatively with water hammer pressure value, which means instant pressure inside droplet at the impact moment.

액체 온도 변화에 따른 평판 충돌 액적의 거동에 관한 연구 (Behavior of an Impinging Droplet on a Solid Surface with a Variation of Liquid Temperature)

  • 이동조;박병성;정진택;김호영
    • 대한기계학회논문집B
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    • 제29권3호
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    • pp.330-339
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    • 2005
  • An experimental study on the behavior of droplets impinging on a solid flat surface was carried out in the present study. Breakup of a liquid droplet impinging on a solid surface has been investigated experimentally for various liquids with different properties. The liquid droplet temperature and incident angle were chosen as major parameters. Liquid droplet temperature and incident angle varied in the range from $-20{\circ}C\;to\;30{\circ}C\;and\;from\;30{\circ}\;to\;60{\circ},$ respectively. It was found that the variation of droplet temperature influences upon the mean diameter and uniformity of droplets which were bounced out from the solid surface. With increase of incident angle the dispersion mass fraction increases, causing the decrease of liquid film flow rate. As the liquid temperature increases, dispersion mass fraction increases since the surface tension decreases.