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Contact Temperature Measurements on Hybrid Aluminum-Steel Workpieces in a Cross-Wedge Rolling Process

机译:交叉楔形轧制过程中铝钢混合工件的接触温度测量

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摘要

The Collaborative Research Center 1153 is investigating a novel process chain for manufacturing high-performance hybrid components. The combination of aluminum and steel can reduce the weight of components and lead to lower fuel consumption. During the welding of aluminum and steel, a brittle intermetallic phase is formed that reduces the service life of the component. After welding, the workpiece is heated inhomogeneously and hot-formed in a cross-wedge rolling process. Since the intermetallic phase grows depending on the temperature during hot forming, temperature control is of great importance. In this paper, the possibility of process-integrated contact temperature measurement with thin-film sensors is investigated. For this purpose, the initial temperature distribution after induction heating of the workpiece is determined. Subsequently, cross-wedge rolling is carried out, and the data of the thin-film sensors are compared to the temperature measurements after heating. It is shown that thin-film sensors inserted into the tool are capable of measuring surface temperatures even at a contact time of 0.041 s. The new process monitoring of the temperature makes it possible to develop a better understanding of the process as well as to further optimize the temperature distribution. In the long term, knowledge of the temperatures in the different materials also makes it possible to derive quality characteristics as well as insights into the causes of possible process errors (e.g., fracture of the joining zone).
机译:1153合作研究中心正在研究一种用于制造高性能混合部件的新型工艺链。铝和钢的结合可以减轻部件的重量并降低油耗。在铝和钢的焊接过程中,会形成脆性的金属间相,从而缩短部件的使用寿命。焊接后,工件被加热不均匀,并在交叉楔形轧制过程中热成型。由于金属间相在热成型过程中会随着温度的变化而增长,因此温度控制非常重要。本文研究了利用薄膜传感器进行过程集成接触式温度测量的可能性。为此,确定了工件感应加热后的初始温度分布。随后,进行交叉楔形轧制,并将薄膜传感器的数据与加热后的温度测量值进行比较。结果表明,插入工具的薄膜传感器即使在0.041 s的接触时间下也能够测量表面温度。新的过程温度监测可以更好地了解过程,并进一步优化温度分布。从长远来看,了解不同材料的温度也有助于得出质量特征,并深入了解可能的过程错误的原因(例如。g.,连接区的断裂)。

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