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A DACE study on a three stage metal forming process made of Sandvik Nanoflex~(TM)

机译:山谷族〜(TM)三级金属成形工艺的一项雏型研究

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Sandvik Nanoflex~(TM)combines good corrosion resistance with high strength.The steel has good deformability in austenitic conditions.This material belongs to the group of metastable austenites,so during deformation a strain-induced transformation into martensite takes place.After deformation,the transformation continues as a result of internal residual stresses.Depending on the heat treatment,this stress-assisted transformation is more or less autocatalytic.Both transformations are stress-state,temperature and crystal orientation dependent.This article presents a constitutive model for this steel,based on the macroscopic material behaviour measured by inductive measurements.Both the stress-assisted and the strain-induced transformation to martensite are incorporated in this model.Path-dependent work hardening is also taken into account,together with the inheritance of the dislocations from one phase to the other.The model is implemented in an internal Philips code called CRYSTAL for doing simulations.A multi-stage metal forming process is simulated.The process consists of different forming steps with intervals between them to simulate the waiting time between the different metal forming steps.During the engineering process of a high precision metal formed product often questions arise about the relation between the scatter on the initial parameters,like standard deviation on the strip thickness,yield stress etc,and the product accuracy.This becomes even more complex if the material is:o the transformation rate depends on the stress state,which is related to friction,the transformation rate depends on the temperature,which is related to deformation heat and the heat distribution during the entire process.A way to get more understanding in these phenomena in relation to the process is doing a process window study,using DACE(Design and Analysis of Computer Experiments).In this article an example is given how to make a DACE study on a a three stage metal forming process,using a distributed computing technique.The method is shown,together with some results.The problem is focused on the influence of the transformation rate,transformation plasticity and dilatation strain on the product accuracy.
机译:Sandvik nanoflex〜(Tm)结合了高强度的良好耐腐蚀性。钢在奥氏体条件下具有良好的变形性。本材料属于亚稳奥氏体组,因此在变形过程中,将应变诱导的转化发生在马氏体中。变形后,由于内部残余应力的结果继续。在热处理上,这种应力辅助转化或多或少的自催化。转换是应力 - 状态,温度和晶体取向依赖性。本文提出了该钢的构成模型,基于通过电感测量测量的宏观材料行为。将应力辅助和应变诱导的马氏体转化纳入本型模型中。依赖于依赖的工作硬化,以及从一个脱位的遗传阶段到另一个。模型是在一个名为Crystal的内部飞利浦代码中实现的仿真。模拟了多级金属成形过程。该过程包括不同的形成步骤,它们之间的间隔模拟不同的金属成形步骤之间的等待时间。造成高精度金属成形产品的工程过程通常出现问题关于初始参数的散射之间的关系,如在条带厚度,屈服应力等的标准偏差,以及产品精度。如果材料是:o转化率取决于应力状态,这变得更加复杂,这是与摩擦有关,转化率取决于与变形热量相关的温度和整个过程中的热分布。在这些过程中获得更多理解的方式,在这些过程中,使用DACE正在进行过程窗口研究。 (计算机实验的设计和分析)。本文赋予了如何对AA三级金属成型过程进行DACE研究的一个例子,使用分布式计算技术。该方法与一些结果一起显示。问题集中在转化率,转化可塑性和扩张应变对产品精度的影响。

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