• Title/Summary/Keyword: Squish Velocity

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The Design Theory of Automible Engin -for Combustion Chamber with Squish- (自動車용 機關의 設計論 -Squish를 가지는 燃燒室에 대하여-)

  • 이성렬
    • Journal of the KSME
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    • v.18 no.1
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    • pp.47-57
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    • 1978
  • 자동차용기관의 설계론을 기술함에 있어서 이미 서론에서 언급한 바와 같이 기관전반에 관한 설계론을 편다는 것은 도저히 무리이고 기관의 성능상의 문제나 배기정화의 문제에 있어서도 연소실의 문제가 중심이 되기 때문에 Squish를 가지는 연소실을 중심으로 하여 squish velocity 특성에 관하여 논하였다. 물론, 전술한 것만으로 Squish에 관한 문제가 완벽하다고는 절대 말 할수 없으나 설계계획에 있어서 Squish를 고려한 연소실의 모양 및 치수를 조금이라도 합리적으 로 잡을 수 있는데 도움이 되었으면 한다.

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The Influences of Factors on Turbulence Intensity in Combustion Chamber (연소실내의 난류강도에 미치는 각종 인자의 영향)

  • 한성빈;이상준;이종태;이성열
    • Transactions of the Korean Society of Mechanical Engineers
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    • v.18 no.3
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    • pp.793-804
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    • 1994
  • Turbulence intensity caused by piston movement was almost as same tendency as the piston speed. The turbulence intensity was increased from 0.39m/s to 0.79m/s when mean piston speed increased from 2.33m/s to 4.67m/s. In this case the maximum turbulence intensity caused by piston speed was decreased about 82 percent near the top dead center at the end of compression stroke. The maximum turbulence intensity was created from 12m/s to 22m/s when inlet flow velocity was increased from 22m/s to 45m/s. Also turbulence intensity caused by inlet flow velocity was linearly increased from 0.97m/s at top dead center at the end of compression stroke. The ratio of turbulence intensity and mean inlet flow velocity was about 3 percent for inlet flow velocity.

A Numerical Study of the Flow Field in the Combustion Chamber of the I.C Engine with Offset Valve (편심 밸브를 갖는 내연기관의 연소실 내부 유동장에 대한 수치적 연구)

  • 양희천;최영기;유홍선;고상근;허선무
    • Transactions of the Korean Society of Mechanical Engineers
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    • v.16 no.8
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    • pp.1552-1565
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    • 1992
  • Three dimensional numerical calculations were carried out for two different combustion chambers with the offset valve in order to investigate the swirl and the squish effects on the flow fields. The modified K-.epsilon. turbulence model considering the change of the density under the condition of the rapid compression and expansion of the pistion was used. During the compression process, it was found that the squish flow which controls the subsequent combustion process was produced due to the piston bowl in the bowl piston type combustion chambers but not for the flat piston type. The swirl velocity close to the solid body rotation was maintained in the flat piston type combustion chambers, but for the bowl piston type a resulting from the change of the solid body rotation was generated in the radial-circumferential plane. For the swirl ratio effect, as the swirl ratio increases, it was found that a large and strong vortex was generated in the radial-circumferential plane of bowl piston type combustion chambers because of the strong inward flows from the combustion chamber wall. These computational results were compared with the results of LDA measurement.

Effects of Injection Pressure and Injection Angle on Spray Characteristics in Loop Scavenged Type 2-stroke Engines (루프소기형태의 2행정기관에서 분사압력 및 분사각도에 따른 분무특성 연구)

  • Chae, S.;Ryou, H. S.
    • Transactions of the Korean Society of Automotive Engineers
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    • v.4 no.1
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    • pp.165-176
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    • 1996
  • The flow field and spray characteristics for loop scavenged type 2stroke engine having pancake shape was numerically computed using KIVA-Ⅱ code. The cylinder has 1intake port, 2side intake ports and 1exhaust port with induced flow angle 25 deg. In engine calculation, the chop techniques is used to strip or add planes of cells across the mesh adjacent to the TDC and the BDC(ports parts) for preventing the demand of exceed time during the computation, providing a control on cell height in the squish region. The modified turbulent model including the consideration of the compressibility effect due to the compression and expansion of piston was also used. The case of 25 deg.(injection angle) which is opposite to scavenging flow direction shows better the distribution of droplets and the evaporation rate of droplets compared to other cases(0 deg., - 25 deg.). When injection pressure was increased, the spray tip penetration became longer. When injection pressure was increased, the interaction between the upward gas velocity and spray droplets strongly cause. Thus the breakup of droplets is strongly occurred and the evaporation rate of droplets was found to be better.

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Numerical Simulations of the Injection Pressure Effect on the Flow Fields and the Spray Characteristics in Direct Injection Engine (직접분사엔진의 분사압력 변화에 따른 유동장 및 분무특성에 대한 수치해석적 연구)

  • 양희천;정연태;유홍선
    • Transactions of the Korean Society of Mechanical Engineers
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    • v.17 no.9
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    • pp.2339-2358
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    • 1993
  • Since the rate and completeness of combustion in direct injection engines were controlled by the characteristics of gas flow fields and sprays, an understanding of those was essential to the design of the direct injection engines. In this study the numerical simulations of injection pressure effects on the characteristics of gas flow fields and sprays were preformed using the spray model that could predict the interactions between gas fields and spray droplets. The governing equations were discretized by the finite volume method and the modified k-.epsilon. model which included the compressibility effects due to the compression/expansion of piston was used. The results of the numerical calculation of the spray characteristics in the quiescent environment were compared with the experimental data. There were good agreements between the results of calculation and the experimental data, except in the early stages of the spray. In the motoring condition, the results showed that a substantial air entrainment into the spray volume was emerged and hence the squish motion was relatively unimportant during the fuel injection periods. It was found that as the injection pressure increased, the evaporation rate of droplets was decreased due to the narrow width of spray and the increased number of droplets impinged on the bottom of the piston bowl.