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A dynamic small-sized hole flanging process driven by Lorentz-force for aluminum alloys

机译:一种由洛伦兹力驱动的铝合金动态小孔翻边工艺

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摘要

Lorentz-force-driven (LFD) stamping process is effective in formability enhancement and shape controlling in deep cup drawing. In this paper, LFD process was proposed for small-sized hole-flanging. A series of LFD flanging experiments under different diameters of pre-fabricated hole were carried out, and conventional flanging was implemented for comparison. Defect-free case with smaller prefabricated hole confirmed the potential of the LFD process in reaching higher flanged wall without fracture. Punch velocity captured during experiments reached the maximum value of around 10 m/s for both cases, four defect-free cases and the case of phi = 8.75 mm. A numerical model was established to investigate the deformation behavior and geometrical parameters during LFD flanging. Simulation results showed that excessive radial tensile strain in punch side led to the exceptional increase in thickness strain and thinning at the fillet. In addition, greater effective plastic strain along punch side elements resulted in higher hardening level than that in die side. Furthermore, bending moments would be generated when work-piece contacted with tools fillet, which formed the curved profile in die side and straight profile in flanged wall of punch side. More importantly, edge material attached to punch sidewall when slid through it and the diameter of straight profile there was totally controlled by the punch parameter.
机译:洛伦兹力驱动(LFD)冲压工艺在深杯拉拔中可有效提高成形性并控制形状。本文提出了用于小尺寸孔翻边的LFD工艺。开展了一系列不同直径预制孔下的LFD翻边试验,并采用常规翻边进行对比。具有较小预制孔的无缺陷外壳证实了 LFD 工艺在不断裂的情况下达到更高法兰壁的潜力。在实验期间捕获的冲头速度在两种情况下都达到了大约 10 m/s 的最大值,其中有 4 个无缺陷情况和 phi = 8.75 mm 的情况。建立了数值模型,研究了LFD翻边过程中的变形行为和几何参数。仿真结果表明,冲头侧径向拉伸应变过大导致厚度应变异常增加,圆角变薄。此外,沿冲头侧元件的有效塑性应变更大,导致硬化水平高于模具侧。此外,当工件与刀具圆角接触时,会产生弯矩,从而在模具侧形成弯曲轮廓,在冲头侧法兰壁形成直线轮廓。更重要的是,当滑过冲头侧壁时,附着在冲头侧壁上的边形材料以及直线轮廓的直径完全由冲头参数控制。

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