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Numerical Investigation of the Oxide Scale Deformation Behaviour with Consideration of Carbon Content during Hot Forging

机译:热锻造期间碳含量思考氧化尺度变形行为的数值研究

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Due to increasing product requirements the numerical simulation has become a powerful tool for the effective and efficient design of individual process steps as well as entire process chains. In order to model hot forging processes with finite element based numerical methods realistic models are required which consider the detailed mathematical description of the material behaviour during the forging process, the surface phenomena at die and workpiece as well as machine kinematics. Although this data exist for several steel grades, yet general mathematical models for steel groups based on alloying elements like carbon content are not available. In hot forging the surface properties are strongly affected by the growth of oxide scale, which influences material flow, friction as well as product quality of the finished components. The influence of different carbon contents on oxide scale growth and material behaviour is investigated by considering three different steel grades (C15, C45 and C60). For a general description of the material behaviour, an empirical approach is used to implement mathematical functions so as to express the relationship between flow stress and dominant influence variables like alloying elements, initial microstructure and reheating mode. The oxide scale consists of three different components namely wuestite, magnetite and haematite. In order to take the oxide scale into account, additional models are required to describe the growth kinematic and flow behaviour of the oxide scale components. The mathematical relationship between oxidation time, temperature, carbon content and oxide scale height is based on Arrhenius approach. The deformation behaviour of oxide scale is separately modelled for each component with parameterized flow curves. This paper gives first approaches on the numerical modelling of plastic deformation of oxide scale in a hot forging process. The main focus lies on the involvement of the different materials as well as the calculation and assignment of material properties in dependence of current process parameters by using subroutines. The numerical model and subroutines will be implemented in the FE-Software simufact.forming. A validation of the numerical model will be carried out by comparison of numerical results with experimental data.
机译:由于产品要求的增加,数值模拟已成为各个工艺步骤的有效和高效设计的强大工具,以及整个过程链。为了模拟基于有限元的数值方法的热锻造过程,需要实际模型,其需要考虑锻造过程中材料行为的详细数学描述,模具和工件的表面现象以及机器运动学。虽然这种数据存在于几种钢等级,但基于碳含量等合金元素的钢基团的一般数学模型不可用。在热锻中,表面性质受到氧化物尺度的生长的强烈影响,这影响了物质流动,摩擦以及成品组分的产品质量。通过考虑三种不同的钢等级(C15,C45和C60),研究了不同碳含量对氧化尺度生长和材料行为的影响。为了对材料行为的一般描述,使用经验方法来实现数学函数,以便表达流量应力和主导影响变量之间的关系,如合金元件,初始显微结构和再加热模式。氧化物尺度由三种不同的组分组成,即威氏岩,磁铁矿和血矿石。为了考虑到氧化氧化物规模,需要额外的模型来描述氧化物尺度组分的生长运动和流动性能。氧化时间,温度,碳含量和氧化尺度高度之间的数学关系基于Arrhenius方法。用参数化流曲线为每个组件分别建模氧化尺度的变形行为。本文在热锻造过程中提供了氧化物尺度塑性变形的数值模拟方法。主要焦点在于使用子程序对当前过程参数的不同材料的参与以及材料特性的计算和分配。数值模型和子程序将在FE-Software Simufact.Forming中实现。通过使用实验数据的数值结果比较来执行数值模型的验证。

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