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Dynamic analysis and optimal design of over-head cam systems.

机译:顶置凸轮系统的动态分析和优化设计。

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摘要

High speed valve train systems for automotive engines are the subject of this research. The primary concern is the determination of cam profiles which give good performance in high speed engines.;In the first part of this study, the valve train systems have been modeled and analyzed in order to describe the dynamic characteristics of the existing systems. The time step integration methods from Newmark algorithms have been used for the solution of the nonlinear simultaneous differential equations. Subsequently, the decoupling technique and the mode superposition technique are applied to determine the valve spring reaction force. The parameters which most significantly affect the high speed performances of valve train systems are determined from the sensitivity analysis of the multi-degree of freedom model.;The second part of this study begins with the problem of moving a mass from one position to another without initiating a vibration in the mass being moved. Next, the motion of a mass initiated by another mass is evaluated, and the force required to move the system in question is determined.;In the third part of this study, a design methodology is proposed for the optimal cam profiles using the model and analysis methods obtained in the first part of the study. These cam profiles have been designed using the rational B-spline. In addition, the rational B-spline functions are used to satisfy the arbitrary prescribed displacement, velocity and acceleration constraints in a least squares sense. A random search method has been applied to obtain the global optimization of the cam shape that gives the lowest output residual vibration amplitude.;In conclusion, an optimized cam was successfully designed and numerically tested for increased maximum operating speeds. The computer model of the optimized cam showed improved dynamic characteristics.
机译:用于汽车发动机的高速气门机构系统是本研究的主题。首先要考虑的是确定在高速发动机中具有良好性能的凸轮轮廓。在本研究的第一部分中,对气门机构系统进行了建模和分析,以描述现有系统的动态特性。 Newmark算法的时间步积分方法已用于求解非线性联立微分方程。随后,应用解耦技术和模式叠加技术确定气门弹簧反作用力。从多自由度模型的灵敏度分析中确定对气门机构系统的高速性能影响最大的参数。本研究的第二部分从不将质量从一个位置移动到另一个位置的问题开始。在被移动的物体中引发振动。接下来,评估由另一个质量引发的质量运动,并确定移动所讨论系统所需的力。在本研究的第三部分中,提出了使用模型和最佳凸轮轮廓的设计方法。在研究的第一部分中获得的分析方法。这些凸轮轮廓是使用有理B样条设计的。此外,有理B样条函数用于在最小二乘意义上满足任意规定的位移,速度和加速度约束。已应用随机搜索方法来获得给出最低输出残余振动幅度的凸轮形状的全局优化方法;最后,成功设计了优化的凸轮并进行了数值测试,以提高最大运行速度。优化凸轮的计算机模型显示出改善的动态特性。

著录项

  • 作者

    Yoon, Byung Ok.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Engineering Automotive.;Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 1993
  • 页码 129 p.
  • 总页数 129
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 自动化技术及设备;机械、仪表工业;
  • 关键词

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