...
首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >The Dynamics of Second Ring Flutter and Collapse in Modern Diesel Engines
【24h】

The Dynamics of Second Ring Flutter and Collapse in Modern Diesel Engines

机译:现代柴油机中二环颤动和崩溃的动力学

获取原文
获取原文并翻译 | 示例
           

摘要

Second ring fluttering and radial ring collapse are recognized as having significant influences on engine blowby and oil consumption. As the gas flow is coupled with the piston ring motion, understanding the ring dynamics is important for understanding not only the engine blowby mechanism, but also oil consumption mechanisms and how to control them. Only second ring flutter and collapse that occurs around the top dead center (TDC) firing conditions is examined in this paper based on a modern heavy-duty diesel engine. However, the principles described are equally applicable to all engines. First, the authors describe the fundamental mechanisms of how second ring fluttering and radial ring collapse occur. This is described by examining the forces that are acting on the second ring. Then, two cases are shown. One case shows second ring flutter and the other case shows stable second ring motion. The reasons for these two different cases are explained, including the effect of static twist and the end gaps of the rings. A sensitivity study was performed to evaluate the effect of changing the top and second ring end gaps on ring lift. It was shown how the gaps could affect the second ring flutter and ring collapse. It is concluded that the second ring will he more likely to flutter or collapse if it has a negative static twist, if the second ring end gap is large, and/or if the top ring end gap is small. If the second ring does not flutter, it may still be possible to design the ring pack such that there is not any reverse blowby. However, this must be carefully studied and controlled or the second land pressures will be too high, resulting in reverse blowby and/or top ring lifting.
机译:公认第二环振颤和径向环塌陷对发动机漏气和机油消耗有重大影响。由于气流与活塞环的运动有关,因此了解环的动力学特性不仅对理解发动机漏气机制,对油耗机制以及如何控制它们也很重要。本文仅基于现代重型柴油机,研究了在上止点(TDC)点火条件周围发生的第二次振铃颤动和塌陷。但是,所描述的原理同样适用于所有发动机。首先,作者描述了第二环颤动和径向环塌陷如何发生的基本机制。这通过检查作用在第二个环上的力来描述。然后,显示两种情况。一种情况显示第二环振颤,另一种情况显示第二环振颤稳定。解释了这两种不同情况的原因,包括静态扭曲的影响和环的端部间隙。进行了敏感性研究,以评估改变顶部和第二个环端间隙对环升力的影响。结果表明,间隙如何影响第二环振铃和环塌陷。结论是,如果第二环的负静态扭曲,第二环端部间隙大和/或顶环端部间隙小,则第二环将更可能飘动或塌陷。如果第二个环没有颤动,则仍然有可能将环组设计为没有任何反向漏气。但是,必须对此进行仔细研究和控制,否则第二接地压力会过高,从而导致反向漏气和/或顶环提升。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号