• Title/Summary/Keyword: atomization

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Prediction of Mean Diameters Based on the Instability Theory for Twin Fluid Nozzle (불안정 이론을 이용한 2유체 노즐에서의 분무입경예측)

  • Kim, Kwan-Tae;Ahn, Kook-Young;Kim, Han-Seok;Ryu, Jeong-In
    • Journal of the Korean Society of Combustion
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    • v.1 no.1
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    • pp.57-64
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    • 1996
  • The atomizing characteristics in a spray injected from a twin fluid atomization nozzle have been investigated. The Sauter mean diameters as mean diameter are compared with wavelength calculated from the instability theory. The Sauter mean diameter are measured by the Fraunhofer diffraction theory using the Malvern particle sizer. The wavelength is calculated using the mean relative velocity instead of the exit relative velocity of nozzle. Also shadowgraphy technique is used to visualize atomization phenomena. This paper gives a possibility that the mean diameter can be predicted with the wavelength obtained by the simple instability theory.

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Combustion and Emission Characteristics of Diesel Spray in High-Pressure Environment (고압상태에서의 디젤연료분무의 연소 및 매연가스배출 특성)

  • Kwon, Y.D.;Kim, Y.M.;Kim, S.W.;Park, S.B.
    • Journal of ILASS-Korea
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    • v.2 no.1
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    • pp.18-28
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    • 1997
  • The present study is mainly aiming at numerically analyzing the combustion and emission characteristics of the diesel spray in a high-pressure environment. Computations are peformed for the peak chamber pressure with range from 4.08 MPa to 162 MPa. Numerical results indicate that the pressure increase in combustion chamber significantly influences the mechanism for droplet dynamics and mixing characteristics, spray penetration autoignition, flame lift-on height and the propagation or fuel vapor and flame. By increasing the ratio or the ambient density to injected liquid density, the fuel-air mixing rates and the burning rates increase and the $NO_x/soot$ emission level decreases.

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A Numerical Model for Atomization of an Impinging Spray on the Wall (벽면에 충돌하는 분무의 미립화에 관한 수치적 모델)

  • Joh, Mi-Ok;Huh, Kang-Y.
    • Journal of ILASS-Korea
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    • v.2 no.1
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    • pp.36-45
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    • 1997
  • A spray-wall impingement model for fuel sprays is proposed and implemented as a module into the KIVA-POSTECH code. The model is based on the single droplet experiments. The droplet behaviors after impingement are determined from experimental correlations. Different behaviors of impinged droplets depend on the wall temperature and the critical temperature of the fuel. Fuel film formation is taken into account so that the model can be applicable to any wall temperature and injection conditions. Computational results on a normal and on inclined wall are in good agreement for the spray shape and penetration. More validation against experiments and development of the heat transfer model are needed for further improvement.

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Spray and Combustion Characteristics of DME and Diesel Fuel in a Common-Rail Diesel Engine (커먼레일 디젤엔진의 DME와 디젤연료의 분무 및 연소 특성)

  • Kim, Myung-Yoon;Ha, Sung-Yong;Lee, Chang-Sik
    • Journal of ILASS-Korea
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    • v.12 no.1
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    • pp.30-37
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    • 2007
  • Dimethyl ether (DME) as an alternative fuel for compression ignition engine was investigated by measuring spray development processes, injection rate profiles, engine performance, and exhaust emission characteristics. The results of DME fueled engine were compared with those obtained by fueled with diesel. The experimental results showed that DME has approximately 0.03ms shorter injection delay and higher maximum injection rate than those of diesel fuel at a constant injection pressure of 50MPa. The spray visualization indicates that DME has shorter spray tip penetration due to its low density and faster evaporation. The combustion characteristics of DME operated engine provided faster ignition delay and three times shorter combustion duration. It is believed that the better evaporation and atomization characteristic of DME contributes the faster combustion. At all operating condition, soot emission was not detected due to the clean combustion of DME.

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Experimental Study on the Merged Angle of Mixed-Interaction Regions of Sprays from Two Pressure-Swirl Injectors (스월 분사기 분무 혼합충돌지역에서의 중첩각도에 관한 실험적 연구)

  • Yi, Young-Sun;Hong, Moon-Geun;Lee, Soo-Yong
    • Journal of ILASS-Korea
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    • v.16 no.4
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    • pp.195-200
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    • 2011
  • The pressure-swirl atomizer is widely used for the injectors in liquid rocket engines thanks to its high performance atomization and broad stability margin range. Spray mixed-interaction is an important area of study especially in cases where the propellant is mixed by spray interaction after an oxidant and a fuel are discharged separately. This interaction of sprays results in a significant modification of the spray characteristics such as the spatial evolution of the sprays. Experiments are conducted by a photographic technique to quantify the merged angle of the interaction regions of sprays from two pressure-swirl injectors. The experimental results show that the merged angle is mainly determined by the momentum flux ratios between two swirled sprays.

Study on the Spray Characteristics of a Port Fuel Injector for a Gasoline Engine (가솔린엔진용 포트분사식 인젝터의 분무특성에 관한 연구)

  • Lee, Sang-In;Lee, Sung-Won;Park, Sung-Young
    • Journal of ILASS-Korea
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    • v.15 no.2
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    • pp.61-66
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    • 2010
  • Fuel spray characteristics of the gasoline engine injector has been studied experimentally. To provide fundamental performance data of 4-hole and 12-hole injectors, spray fuel-mass distribution, wall wetting fuel amount and visualization of injectors have been tested and measured with various fuel supply pressure conditions. Spray visualization has been performed to analyze spray formation, spray angle, stream width and penetration length. Test result shows that wall wetting is greatly influenced by the induction air amount and spray atomization. Spray visualization shows that the 12-hole injector has robust performance characteristics with various fuel supply pressure conditions compared with the 4-hole injector. 4-hole injector generates relatively less wall-wetting fuel amount than 12-hole injector does.

Measurement of Sizes and Velocities of Spray Droplets by Image Processing Method (영상 처리에 의한 분무 액적의 크기 및 속도 추출)

  • Choo, Y.J.;Kang, B.S.
    • Journal of ILASS-Korea
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    • v.7 no.4
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    • pp.23-31
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    • 2002
  • In this study, the sizes and velocities of droplets in sprays were measured by image processing method from digital images of local region of sprays. The morphological method based on the Euclidean distance transform, Watershed separation, and perimeter image was adopted for the recognition and separation of overlapped particles. The match probability method was used for the particle tracking and pairing. The measurement results show that the present method may be reliable for the analysis of the motion and distribution of droplets produced by spray and atomization devices.

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A Study on Analysis of Breakup Mechanism of Vaporizing Fuel Droplet in High Temperature and Velocity Air Stream (고온고속류에서 기화를 고려한 연료액적의 분열(Breakup)기구 해석에 관한 연구)

  • Kim, K.C.;Hwang, S.S.
    • Journal of ILASS-Korea
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    • v.3 no.3
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    • pp.1-13
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    • 1998
  • In this study, an experimental study was performed to investigate the breakup mechanism of vaporizing droplet. A well-controlled experimental apparatus was used to study breakup mechanisms of a monodisperse stream of drops injected into a transverse high temperature and velocity air stream. The experiments gave information$ about the microscopic structure of the liquid drop breakup process, drop breakup regimes, and drop trajectories in high temperature flow region. The breakup time, drop acceleration and wavelength of surface instability wave were measured from a high-magnification and double spark photography. The two instability theories, i.e., Kelvin-Helmholtz instability and Rayleigh-Taylor instability, were estimated by comparing the calculated data with the measurements. The results showed that the breakup time in high temperature flow condition is shortened because the surface tension is decreased by the increase of gas temperature.

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A Study on the High-Efficiency Atomisation Molten Materials (PART 2 : A Study on the Mechanism of Liquid Supplying and Film Formation by Applying the Ejector Principle) (Atomize법에 의한 용융소재의 고효율 미세화에 관한 연구(제2보 : 이젝터의 원리를 이용한 액체노즐의 액체공급 및 액막생성 기구와 특성))

  • Oh, J.G.;Cho, I.Y.
    • Journal of ILASS-Korea
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    • v.3 no.2
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    • pp.14-23
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    • 1998
  • The negative pressure as much as 10's mmHg is demanded at nozzle inside, in case of atomizing the large density molten materials. by conventional air jet nozzle. In this study, suction type fluid nozzle is designed by applying the ejector principle in order to clarify the air flow of nozzle inside, mechanism of liquid suction and liquid film formation. The results of this experimental study areas follows. Suction force of liquid is magnified by using liquid nozzle, and it is able to supply the liquid stable. Negative pressure at nozzle inside is varied by throttle angle of liquid nozzle, position and outer diameter of air jet nozzle, and have a influence on liquid suction quantity and liquid film formation.

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The Experimental Study of Atomization Characteristics of Gasoline Spray Impinging on Glow Plug

  • Moon, Young-ho;Oh, Young-taig
    • Journal of Mechanical Science and Technology
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    • v.16 no.2
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    • pp.270-278
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    • 2002
  • In order to reduce the exhaust emissions of a spark ignition engine, it is important not only to improve the catalyst conversion efficiency, but also to directly reduce the engine-out exhaust emissions during a cold starting of the engine and warm up periods. The purpose of this study is to evaluate feasibility of a glow plug for an early fuel evaporator. In order to promote atomization, gasoline is injected on the glow plug with room temperature(20$\^{C}$) and high temperature(250$\^{C}$). To analyze the spray behavior characteristics, a PMAS is used to measure the SMD and the dropsize distribution of an impinging spray and a free spray. Results show that the evaporation rate of the impinging spray on the high temperature surface of the glow plug was higher than that of the free spray on the room temperature surface.