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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Predicting Gas Leakage in the Rotary Engine-Part Ⅱ: Side Seals and Summary
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Predicting Gas Leakage in the Rotary Engine-Part Ⅱ: Side Seals and Summary

机译:预测旋转式发动机的气体泄漏-第二部分:侧密封和摘要

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摘要

The Wankel rotary engine offers a greater power density than piston engines, but higher fuel consumption and hydrocarbon emissions, in large part due to poor gas sealing. This paper presents a model for the deformable dynamics of the side seal, which completes a set of modeling tools for the comprehensive assessment of the gas leakage mechanisms in the rotary engine. It is shown that the main leakage mechanisms for the side seals are: (1) opening of the inner flank due to the contact with the trailing corner seal, (2) flow through the gap with the leading corner seal, (3) simultaneous opening of both inner and outer flanks due to body force at high speed, and (4) running face leakage due to noncon-formability at high speed. The leakage mechanisms are qualitatively validated at low speed with observed oil patterns on the rotor from laser-induced fluorescence (LIF) experiments. Finally, the predicted total leakage area for all the gas seals ranges from 1.5 mm~2/chamber at low speeds to 2 mm~2/ chamber at high speeds, which is in agreement with the previous experimental studies, and the three gas seal types (side seals, apex seals, and corner seals) each accounts for about 1/3 of the total leakage, with minor variation as a function of speed.
机译:Wankel旋转发动机比活塞发动机提供更高的功率密度,但更高的燃料消耗和碳氢化合物排放量,很大程度上是由于气体密封性差。本文提出了一种用于侧密封件变形动力学的模型,该模型完善了一套用于全面评估旋转发动机气体泄漏机理的建模工具。结果表明,侧密封的主要泄漏机理为:(1)由于与尾随角密封的接触而打开内侧面;(2)与前角密封一起流过间隙;(3)同时打开(4)由于高速不均匀性,内外齿缘由于高速受力而产生滑动面泄漏。通过激光诱导荧光(LIF)实验在转子上观察到油样,可以在低速下对泄漏机理进行定性验证。最后,所有气体密封件的预计总泄漏面积范围从低速下的1.5 mm〜2 /腔室到高速下的2 mm〜2 /腔室,这与先前的实验研究和三种气体密封类型均相符(侧密封,顶密封和角密封)各自约占总泄漏的1/3,并且随速度的变化较小。

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  • 来源
    《Journal of Engineering for Gas Turbines and Power 》 |2016年第6期| 062504.1-062504.8| 共8页
  • 作者单位

    Department of Mechanical Engineering, Massachusetts Institute of Technology, 77 Massachusetts Avenue, Cambridge, MA 02139;

    Department of Mechanical Engineering, Massachusetts Institute of Technology, 77 Massachusetts Avenue, Cambridge, MA 02139;

    Mazda Motor Corporation, 3-1 Shinchi, Fuchu-cho, Aki-gun, Hiroshima 730-8670, Japan;

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