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FINITE ELEMENT ANALYSIS OF ELASTOHYDRODYNAMIC STERN TUBE BEARINGS (LUBRICATION, JOURNAL, OPTIMIZATION).

机译:弹性水力斯特恩管轴承的有限元分析(润滑,轴颈,优化)。

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摘要

A finite element analysis is performed for a marine shafting/bearing system utilizing a hydrodynamic oil-lubricated stern tube bearing. The stern tube bearing analysis consists of a three-dimensional finite element analysis of the shafting system, a two-dimensional finite element analysis of the oil film hydrodynamics, a three-dimensional finite element analysis of the bearing liner, and iterative techniques to establish the equilibrium position among the shaft, the oil film, and the bearing material.;A non-derivative optimization (minimization) technique is utilized to search systematically for the equilibrium position of the shaft in the bearing clearance. This is necessary because the shaft and the bearing boundaries are difficult to control because of their extreme softness compared with the effective spring constant of the oil film. Both the Nelder and Mead and the Powell methods are found to be effective. The shaft is assumed to remain circular but flexible along the stern bearing. A convergent predictor-corrector process which takes full advantage of the physics of this particular problem is introduced within each objective function evaluation.;The results of this analysis are in very good agreement with a wide range of experimental data from a stern tube bearing simulation apparatus.;The shafting system analysis is formulated as a coupled, three-dimensional problem using beam elements which include bending, shear, thrust, and possible continuous elastic foundation effects. The forward shaft bearings can be taken either as (1) point supports with or without lateral and rotational flexibility or (2) regions of continuous elastic foundation. The two-dimensional finite element analysis of the oil film hydrodynamics is based on the Reynolds equation. The oil film domain is discretized into linear or quadratic triangular elements. The three-dimensional finite element analysis of the bearing material is modeled by linear isoparametric rectangular prism elements. This bearing material analysis includes capability to treat either (1) an inelastic metalic stern bearing or (2) a highly elastic, low-modulus, anistropic plastic bearing.
机译:对使用液压动力油润滑尾管的船用轴系/轴承系统进行了有限元分析。船尾管轴承分析包括轴系的三维有限元分析,油膜流体动力学的二维有限元分析,轴承衬套的三维有限元分析以及建立轴瓦的迭代技术。轴,油膜和轴承材料之间的平衡位置。;非导数优化(最小化)技术用于系统地搜索轴在轴承游隙中的平衡位置。这是必要的,因为与油膜的有效弹簧常数相比,轴和轴承的边界非常柔软,因此很难控制。发现Nelder和Mead方法以及Powell方法都是有效的。假定轴保持圆形,但沿船尾轴承可弯曲。在每个目标函数评估中都引入了一个充分利用该特定问题的物理特性的收敛预测器-校正器过程。该分析的结果与船尾管轴承仿真设备的大量实验数据非常吻合轴系分析使用梁单元公式化为耦合的三维问题,其中包括弯曲,剪切,推力和可能的连续弹性地基效应。前轴轴承既可以用作(1)具有或不具有横向和旋转柔性的点支撑,又可以用作(2)具有连续弹性基础的区域。油膜流体动力学的二维有限元分析基于雷诺方程。油膜域被离散为线性或二次三角形元素。轴承材料的三维有限元分析是通过线性等参直角棱镜单元建模的。这种轴承材料分析包括处理(1)非弹性金属尾轴承或(2)高弹性,低模量,各向异性塑料轴承的能力。

著录项

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Engineering Marine and Ocean.
  • 学位 Ph.D.
  • 年度 1985
  • 页码 231 p.
  • 总页数 231
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:51:08

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