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Doubly shrink fitted dies: optimisation by analytical and FEM calculations

机译:双倍收缩装配模具:通过分析和有限元计算进行优化

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摘要

In some powder metallurgy part forming, when high compacting loads would require a too large single shrink fitted die, or the inner die diameter is very large but the compaction area is modest, twice shrink fitted dies, which are relatively expensive and complex to build, should be used. In both cases, at any given compacting load, the design should minimise dimensions and stresses. The design targets are minimum die size, optimum intermediate diameter and optimum interference, with maximum stresses on each die item lower than those allowable for the selected materials. In dual mode, for fixed overall dimension, intermediate diameters and shrink fitting interference should enable to maximise the compacting load without exceeding the allowable maximum stresses. In the first part of this work, for cylindrical shapes (circular profile dies) and axisymmetric plane stress problems, dimensions, interferences and stress-strain states have been analytically calculated to optimise doubly shrink fitted dies in the abovementioned sense. In the second part, the same evaluations for axisymmetric generic problems have been carried out by finite element method (FEM) approach integrated in an optimisation procedure. The minimum overall dimensions of the die are presented as a function of the ratio between applied load and maximum allowable stress. Corresponding interferences and optimum diameters have been calculated. Some approximate equations for a quick and handy optimisation are presented. The differences between analytical and numerical results obviously depend on the consideration of the actually stressed length, or compact height, and total die height. The comparison indicates that FEM analyses are needed since analytical calculations generally give low approximations, especially for some die geometries.
机译:在某些粉末冶金零件成型中,当高压实载荷需要太大的单个热缩配合模头,或者内模直径非常大但压实面积适中时,两次热缩配合模头相对昂贵且制造复杂,应该使用。在两种情况下,在任何给定的压实载荷下,设计都应使尺寸和应力最小化。设计目标是最小的模具尺寸,最佳的中间直径和最佳的干涉,每个模具项目上的最大应力低于所选材料所允许的最大应力。在双重模式下,对于固定的总体尺寸,中间直径和热缩配合干涉应能够使压实载荷最大化,而又不会超过允许的最大应力。在这项工作的第一部分中,对于圆柱形状(圆形轮廓模具)和轴对称平面应力问题,已对尺寸,干涉和应力应变状态进行了分析计算,以优化上述意义上的双收缩配合模具。在第二部分中,通过优化程序中集成的有限元方法(FEM)方法对轴对称一般问题进行了相同的评估。模具的最小总体尺寸是所施加载荷与最大允许应力之比的函数。已经计算出相应的干涉和最佳直径。提出了一些用于快速便捷优化的近似方程。分析结果和数值结果之间的差异显然取决于对实际受力长度(或紧凑高度)和模具总高度的考虑。比较结果表明需要进行有限元分析,因为分析计算通常得出较低的近似值,尤其是对于某些模具几何形状。

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