首页> 外文期刊>Journal of manufacturing science and engineering: Transactions of the ASME >Electrically-Assisted Forming of Magnesium AZ31: Effect of Current Magnitude and Deformation Rate on Forgeability
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Electrically-Assisted Forming of Magnesium AZ31: Effect of Current Magnitude and Deformation Rate on Forgeability

机译:镁AZ31的电辅助成形:电流幅度和变形速率对可锻性的影响

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摘要

Currently, the automotive and aircraft industries are considering increasing the use of magnesium within their products due to its favorable strength-to-weight characteristics. However, the implementation of this material is limited as a result of its formability. Partially addressing this issue, previous research has shown that electrically-assisted forming (EAF) improves the tensile formability of magnesium sheet metal. While these results are highly beneficial toward fabricating the skin of the vehicle, a technique for allowing the use of magnesium alloys in the production of the structural/mechanical components is also desirable. Given the influence that EAF has already exhibited on tensile deformation, the research herein focuses on incorporating this technique within compressive operations. The potential benefit of using EAF on compressive processes has been demonstrated in related research where other materials, such as titanium and aluminum, have shown improved compressive behavior. Therefore, this research endeavors to amalgamate these findings to Mg AZ31B-O, which is traditionally hard to forge. As such, to demonstrate the effects of EAF on this alloy, two series of tests were performed. First, the sensitivity of the alloy to the EAF process was determined by varying the current density and platen speed during an upsetting process (flat dies). Then, the ability to utilize impression (shaped) dies was examined. Through this study, it was shown for the first time that the EAF process increases the forgeability of this magnesium alloy through improvements such as decreased machine force requirements and increased achievable deformation. Additionally, the ability to form the desired final specimen geometry was achieved. Furthermore, this work also showed that this alloy is sensitive to any deformation rate changes when utilizing the EAF process. Last, a threshold current density was noted for this material where significant forgeability improvements could be realized once exceeded.
机译:当前,由于其良好的强度重量比特性,汽车和飞机行业正在考虑在其产品中增加镁的使用。然而,由于其可成形性,该材料的实施受到限制。部分解决了这个问题,以前的研究表明,电辅助成形(EAF)可以改善镁金属薄板的拉伸成形性。尽管这些结果对于制造车辆的蒙皮非常有利,但也需要一种允许在结构/机械部件的生产中使用镁合金的技术。考虑到EAF已经表现出对拉伸变形的影响,本文的研究集中于将该技术结合到压缩操作中。在相关研究中已经证明了在压缩过程中使用EAF的潜在好处,在该研究中,其他材料(例如钛和铝)显示出改善的压缩行为。因此,本研究致力于将这些发现与传统上难以伪造的Mg AZ31B-O合并。这样,为了证明EAF对这种合金的影响,进行了两个系列的测试。首先,通过改变an锻工艺(平模)中的电流密度和压板速度来确定合金对EAF工艺的敏感性。然后,检查了利用压印(成形)模具的能力。通过这项研究,首次表明,EAF工艺通过降低机械力要求和增加可达到的变形等改进来提高镁合金的可锻性。另外,获得了形成期望的最终样品几何形状的能力。此外,这项工作还表明,在使用电弧炉工艺时,该合金对任何变形率变化均敏感。最后,注意到该材料的阈值电流密度,一旦超过该阈值电流密度,就可以实现显着的可锻性改进。

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