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Predicting the induction hardened case in 42CrMo4 cylinders

机译:预测42crmo4气缸中的感应硬化壳体

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Induction hardening has the potential to produce favorable surface integrity that can improve fatigue performance and extend the lifetime of a component. The localized superficial heating provided by induction is the main advantage of this process, as it allows the core to remain intact and, therefore, ductile, while the surface is hardened. Achieving favorable characteristics in the hardened case is of great importance, as this process is usually applied to load bearing and wear-susceptible metallic components. The simulation of the hardening process by induction heating is a complex and challenging task at which many efforts have been directed in the last years. Due to the numerous interactions of the many physics that take part in the process (electromagnetic, thermal, microstructural and mechanical), a highly coupled finite element model is required for its numerical simulation. In this work, a semi-analytical induction heating model is used to compute the induction hardening process, predicting the size and shape of the hardened layer and the distribution of the hardness. Using the semi-analytical model allows the computational time to be much faster compared to a fully coupled model using a commercial software, where the time consumption for the presented 2D case is reduced by 20 %. Experimental validation is presented for cylindrical 42CrMo4 billets heated by a short solenoidal inductor, which shows good agreement with the predicted results, reaching an average error of 3.2 % in temperature estimations.
机译:感应硬化具有产生有利的表面完整性,可以提高疲劳性能并延长组分的寿命。通过诱导提供的局部表面加热是该方法的主要优点,因为它允许核心保持完整,因此延展性,而表面硬化。在硬质壳体中实现有利特性非常重要,因为该过程通常适用于承载和耐磨金属部件。通过感应加热模拟硬化过程是一种复杂的且具有挑战性的任务,在过去几年中有许多努力。由于众多物理的相互作用参与过程(电磁,热,微观结构和机械),因此对其数值模拟需要高耦合的有限元模型。在这项工作中,半分析感应加热模型用于计算感应硬化过程,预测硬化层的尺寸和形状和硬度的分布。使用半分析模型允许计算时间与使用商业软件的完全耦合的模型相比要快得多,其中所呈现的2D案例的时间消耗减少了20%。通过短螺线管电感器加热的圆柱形42crmo4坯料提出了实验验证,这与预测结果显示出良好的一致性,在温度估计中达到3.2%的平均误差。

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