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Feature-based design of extrusion process using upper-bound and finite element techniques for extrudable shapes

机译:基于上限和有限元技术的可挤压形状的挤压过程基于特征的设计

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The paper presents a feature-based approach for design of extrusion dies. Part drawing of given shape to be extruded is drawn using line, arc, circle, polyline and ellipse entities of AutoCAD Rel-12 and corresponding DXF file is created. Treating shape as a feature, DXF file is processed and necessary data are separated for feature recognition according to Kumar et al. (Int. J. Prod. Res. 37 (1999) 2519). An upper-bound model with strain hardening for die design of non-re-entry cold extrudable shapes as proposed by Kumar et al. (Trans. ASME J. Manuf. Sci. Eng. 126 (1) (2002) 71) is extended for re-entry shapes. Rounded square and clover sections are taken to test and validate the proposed procedure for re-entry shapes. The paper has been combined with a rigid plastic finite element (RPFE) model (Kumar and Prasad; J. Prod. Eng. (2003)) for steady state axisymmetric hot extrusion using the kinematically admissible velocity field obtained from the upper-bound model as proposed in Kumar et al. (Trans. ASME J. Manuf. Sci. Eng. 126 (1) (2002) 71). Based on the optimal power obtained from the upper-bound method (Int. J. Prod. Res. 37 (1999) 2519) the temperature distribution in cold as well as hot extrusion process has been determined to study the effect of process parameters such as ram velocity, reduction, friction between die-billet interface, die length and temperatures (initial billet, die and container and surrounding). The result obtained agrees well with the experiment and the theoretical analysis.
机译:本文提出了一种基于特征的挤压模具设计方法。使用AutoCAD Rel-12的线,弧,圆,多段线和椭圆实体绘制要挤出的给定形状的零件图,并创建相应的DXF文件。根据Kumar等人的观点,将形状视为特征,处理DXF文件并分离必要的数据以进行特征识别。 (国际J. Prod。Res.37(1999)2519)。 Kumar等人提出的用于不可重入的冷挤压成型模具设计的带有应变硬化的上限模型。 (Trans.ASME J.Manuf.Sci.Eng.126(1)(2002)71)已扩展为可重入形状。采用圆角正方形和三叶草截面来测试和验证所提出的重新输入形状的程序。论文已经结合了刚性塑料有限元(RPFE)模型(Kumar和Prasad; J。Prod。Eng。(2003)),使用从上限模型获得的运动学上允许的速度场,进行了稳态轴对称热挤压。在Kumar等人中提出。 (Trans.ASME J.Manuf.Sci.Eng.126(1)(2002)71)。基于上限方法获得的最佳功率(Int。J. Prod。Res。37(1999)2519),已经确定了冷挤压工艺和热挤压工艺的温度分布,以研究工艺参数的影响,例如冲头速度,压下率,模-坯界面之间的摩擦,模子长度和温度(初始坯料,模子,容器和周围环境)。所得结果与实验和理论分析吻合良好。

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