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Improving the formability limits of lightweight metal alloy sheet using advanced processes: Finite element modeling and experimental validation .

机译:使用先进的工艺改进轻质金属合金板的可成形性极限:有限元建模和实验验证。

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摘要

Weight reduction is one of the major goals in the automotive, appliance and electronics industries. One way of achieving this goal is to use lightweight alloys such as aluminum and magnesium that have high strength to weight ratios. However, due to their limited formability at room temperature, advanced forming processes are needed. Room temperature and elevated temperature hydraulic bulge tests (using a submerged tool) were conducted for Al 5754-O and Mg AZ31-O to determine their mechanical properties. Experiments were conducted between room temperature and 225 C, at various approximate true strain rates. Strain values up to 0.7 were obtained under equi-biaxial state of stress at elevated temperatures. Flow stress curves were calculated using the membrane theory.; Deep drawability of aluminum and magnesium alloys is investigated through experiments and process simulation at room temperature (using solid dies), against liquid pressure (hydroforming) and at elevated temperatures (warm forming). Limiting Draw Ratio (LDR) of Al 5754-O is increased from 2.1 (room temperature) to 2.4 when hydroforming is used as the drawing process. This value is increased to 2.9 when warm forming is used. Formability of Mg AZ31-O is found to be limited at room temperature while LDR up to 3.2 is obtained at elevated temperatures. Warm forming experiments were conducted using a servo motor driven press and a heated tool set. The in-die dwelling concept is developed by using the flexibility of the servo press kinematics and blanks were heated in the tool set prior to forming. Temperature - time measurements were made at various blank holder interface pressures in order to determine the required dwell time to heat the blank to the forming temperature. Several lubricants for elevated temperature forming were evaluated using the deep draw test and a PTFE based film was selected as a lubricant at elevated temperatures. Deep drawing tests were conducted to determine the process window (max. punch velocity as functions of blank size and temperature) for Al 5754-O and Mg AZ31-O. Maximum punch velocities of 35 mm/s and 300 mm/s were obtained for the Al and Mg alloys, respectively. Comparisons for the Mg alloy sheets from two different suppliers were made and significant differences in formability were found. Additional experiments were conducted in order to understand the effect of constant and variable punch velocity and the temperature on the mechanics of deformation. Variable punch velocity is found to improve the thickness distribution of the formed part and provide 60% reduction in the drawing time. By calculating heat transfer coefficients using inverse optimization, computational models are developed and experimental results are used to validate the predictions from the computational model.
机译:减轻重量是汽车,家电和电子行业的主要目标之一。实现此目标的一种方法是使用强度和重量比高的轻质合金,例如铝和镁。但是,由于它们在室温下的可成形性有限,因此需要先进的成形工艺。对Al 5754-O和Mg AZ31-O进行了室温和高温液压凸起测试(使用浸入式工具),以确定它们的机械性能。实验是在室温至225 C之间,以各种近似真实应变速率进行的。在升高的温度下,在等双轴应力状态下获得的应变值高达0.7。使用膜理论计算流动应力曲线。通过在室温(使用固态模具),抵抗液压(液压成形)和高温(热成形)的实验和过程模拟中研究了铝和镁合金的深冲性。使用液压成形作为拉伸工艺时,Al 5754-O的极限拉伸比(LDR)从2.1(室温)增加到2.4。使用热成型时,此值增加到2.9。发现在室温下Mg AZ31-O的可成形性受到限制,而在高温下可获得高达3.2的LDR。使用伺服电动机驱动的压力机和加热工具进行热成型实验。通过使用伺服压力机运动学的灵活性来开发模内居住概念,并在成型之前在工具集中加热毛坯。在各种毛坯支架界面压力下进行温度-时间测量,以确定将毛坯加热到成型温度所需的停留时间。使用深冲试验评估了几种用于高温成型的润滑剂,并选择了基于PTFE的薄膜作为高温润滑剂。进行了深冲试验以确定Al 5754-O和Mg AZ31-O的工艺窗口(最大冲孔速度与毛坯尺寸和温度的函数关系)。 Al和Mg合金的最大冲头速度分别为35 mm / s和300 mm / s。对来自两个不同供应商的镁合金板进行了比较,发现可成型性存在显着差异。为了了解恒定和可变冲头速度以及温度对变形力学的影响,还进行了其他实验。发现可变的冲压速度可改善成形零件的厚度分布,并减少60%的拉拔时间。通过使用逆优化计算传热系数,开发了计算模型,并使用实验结果验证了计算模型的预测。

著录项

  • 作者

    Kaya, Serhat.;

  • 作者单位

    The Ohio State University.;

  • 授予单位 The Ohio State University.;
  • 学科 Engineering Mechanical.; Engineering Metallurgy.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 230 p.
  • 总页数 230
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;冶金工业;
  • 关键词

  • 入库时间 2022-08-17 11:38:49

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