首页> 外文期刊>International Journal of Automotive Technology >EFFECT OF INTAKE PORT GEOMETRY ON THE IN-CYLINDER FLOW CHARACTERISTICS IN A HIGH SPEED D.I. DIESEL ENGINE
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EFFECT OF INTAKE PORT GEOMETRY ON THE IN-CYLINDER FLOW CHARACTERISTICS IN A HIGH SPEED D.I. DIESEL ENGINE

机译:进气口几何形状对高速D.I.缸内流动特性的影响柴油发动机

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摘要

Recently, the HSDI (High Speed Direct Injection) diesel engine has been spotlighted as a next generation engine because it has a good potential for high thermal efficiency and fuel economy. This study was carried out to investigate the in-cylinder flow characteristics generated in a HSDI diesel engine with a 4-valve type cylinder head. The four kinds of cylinder head were manufactured to elucidate the effect of intake port geometry on the in-cylinder flow characteristics. The steady flow characteristics such as coefficient of flow rate (C{sub}f), swirl ratio (Rs), and mass flow rate (m{sub}s) were measured by the steady flow test rig and the unsteady flow velocity within a cylinder was measured by PIV. In addition, the in-cylinder flow patterns were visualized by the visualization experiment and these results were compared with simulation results calculated by the commercial CFD code. The steady flow test results indicated that the mass flow rate of the cylinder head with a short distance between the two intake ports is 13% more than that of the other head. However, the non-dimensional swirl ratio is decreased by approximately 15%. As a result of in-cylinder flow characteristics obtained by PIV and CFD calculation, we found that the swirl center was eccentric from the cylinder center and the position of swirl center was changed with crank angle. As the piston moves to near the TDC, the swirl center corresponded to the cylinder center and the velocity distribution became uniform. In addition, the results of the calculation are in good agreement with the experimental results.
机译:最近,HSDI(高速直接喷射)柴油发动机已成为下一代发动机,因为它具有较高的热效率和燃油经济性。进行这项研究以研究具有4气门型气缸盖的HSDI柴油发动机产生的缸内流动特性。制造了四种气缸盖,以阐明进气道几何形状对缸内流动特性的影响。稳态流量特性,例如流量系数(C {sub} f),涡旋比(Rs)和质量流量(m {sub} s),由稳态流量测试装置测量,并在通过PIV测量圆柱体。此外,通过可视化实验将缸内流动模式可视化,并将这些结果与通过商业CFD代码计算的模拟结果进行比较。稳态流量测试结果表明,两个进气口之间距离较短的气缸盖的质量流量比另一个气缸盖的质量流量高13%。但是,无量纲涡流比降低了约15%。通过PIV和CFD计算得到的缸内流动特性的结果,我们发现旋流中心从汽缸中心偏心,并且旋流中心的位置随曲柄角而变化。当活塞移至TDC附近时,涡旋中心与气缸中心相对应,速度分布变得均匀。另外,计算结果与实验结果吻合良好。

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