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Numerical optimization of warm hydromechanical deep drawing process parameters and its experimental verification

机译:温加氢机械深绘制参数的数值优化及其实验验证

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摘要

Warm Hydromechanical Deep Drawing (WHDD) is considered as an effective sheet metal forming process to overcome low formability problems of lightweight materials, such as aluminum and magnesium alloys, at room temperature. WHDD process combines the advantages of Hydromechanical Deep Drawing (HDD) and Warm Deep Drawing (WDD) processes. In this study, interactive and combined effects of Pressure (P) and Blank Holder Force (BHF) variation on the formability of the AA 5754 aluminum alloy sheets in the WHDD process were investigated experimentally and numerically. Different from available studies, the optimal fluid pressure (P) and blank holder force (BHF) profiles, which were determined numerically using adaptive FEA integrated with fuzzy logic control algorithm (aFEA-FLCA), were validated experimentally for the first time in literature. Consequently, limiting drawing ratios (LDR) of AA5754 material were recorded as 2.5, 2.625, and 3.125 for HDD, WDD, and WHDD processes, respectively. Thus, it was demonstrated that the formability of lightweight materials, such as AA5754, could be increased significantly using the WHDD process through the proposed optimization method. This method was also implemented into the WHDD of an industrial part with complex geometry, successfully forming sharp features with minimal thinning at reduced levels of force, pressure, and time. Consequently, it is reasonably to state that the method developed in this study can be adopted for the manufacturing of any other part using the WHDD process.
机译:温暖的流体力学深拉(WHDD)被认为是一种有效的金属板形成过程,以克服室温下轻质材料(如铝和镁合金)的低可成形性问题。 WHDD工艺结合了流体力学深拉(HDD)和温暖的深拉(WDD)工艺的优点。在实验和数值上研究了在WHDD工艺中的互动(P)和空白夹持器力(BHF)变化的相互作用和组合效应(P)和空白保持力(BHF)的变化。不同于可用的研究,最佳流体压力(P)和空白保持力(BHF)型材,这些曲线使用与模糊逻辑控制算法(AFEA-FLCA)集成的自适应FEA确定,在文献中首次进行了实验验证。因此,对于HDD,WDD和WHDD工艺,将AA5754材料的限制拉伸比(LDR)记录为2.5,2.625和3.125。因此,证明使用WHDD工艺通过所提出的优化方法,可以显着地增加轻质材料的可成形性,例如AA5754,如AA5754,可以显着地增加。该方法还被实施到具有复杂几何形状的工业部件的WHDD中,成功地形成尖锐的特征,在减少力,压力和时间水平下最小化。因此,合理地说明,可以使用WHDD工艺制造本研究中开发的方法。

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