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Driver roll speed influence in Ring Rolling process

机译:驱动辊速度对环轧过程的影响

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摘要

Ring Rolling is an advanced local incremental forming technology to fabricate directly precise seamless ring-shape parts with various dimensions and materials. To produce a high-quality ring different speed laws should be defined: the speed laws of the Idle and Axial rolls must be set to control the ring cross section and the Driver roll angular velocity must be chosen to avoid too high localized deformation on the ring cross section. Usually, in industrial environment, a constant rotation is set for the Driver roll, but this approach does not guarantee a constant ring angular velocity because of its diameter expansion. In particular, the higher is the ring diameter the lower is its angular velocity. The main risk due to this constrain is the generation of a non-uniform ring geometry. An innovative approach is to design a Driver Roll speed law to obtain a constant ring angular velocity. In this paper a FEM approach was followed to investigate the Driver roll speed influence on the Ring Rolling process. Different Driver roll speed laws were tested starting from a model defined in an industrial plant. Results will be analyzed by a geometrical and physical point of view.
机译:环锭轧制是一种先进的局部增量成形技术,可以直接制造具有各种尺寸和材料的精密无缝环形零件。为了生产高质量的环,应定义不同的速度定律:必须设置惰辊和轴向辊的速度定律以控制环的横截面,并且必须选择驱动辊的角速度以避免环上的局部变形过大横截面。通常,在工业环境中,为驱动辊设置一个恒定的旋转,但是这种方法由于其直径膨胀而不能保证恒定的环角速度。特别地,环直径越高,其角速度越低。由于这种限制而产生的主要风险是产生不均匀的环几何形状。一种创新方法是设计驱动器侧倾速度定律以获得恒定的环形角速度。本文采用有限元方法研究驱动辊速度对环轧工艺的影响。从工厂定义的模型开始,测试了不同的驾驶员侧倾速度定律。将通过几何和物理角度分析结果。

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