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首页> 外文期刊>Materials Science and Engineering. A, Structural Materials: Properties, Microstructure and Processing >Spherical dome formation by transformation of superplasticity of titanium alloys and titanium matrix composites
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Spherical dome formation by transformation of superplasticity of titanium alloys and titanium matrix composites

机译:钛合金和钛基复合材料超塑性转变形成球形球

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摘要

Titanium alloys and titanium matrix composites are useful materials in aerospace applications due to their high strength and stiffness, good corrosion resistance and low density. The gas pressure bulging of metal sheets has become an important forming method. As the bulging process progresses, significant thinning in the sheet material becomes obvious. This paper presents a simple analytical procedure for obtaining the dome height with respect to the forming time useful to the process designer for the selection of initial blank thickness as well as non-uniform thinning in the dome after forming. By thermally cycling through their transformation temperature range, coarse-grained, polymorphic materials can be deformed superplastically, owing to the emergence of transformation mismatch plasticity (or transformation superplasticity) as a deformation mechanism. This mechanism was examined under biaxial stress conditions during thermal cycling of titanium alloys with and without discontinuous reinforcements. For the transformation superplasticity, the strain-rate sensitivity index is considered as unity. The radius of curvature, thickness and height of the dome with respect to the forming time are obtained. The analytical results were found to be reasonably in good agreement with the test results.
机译:钛合金和钛基复合材料由于其高强度和刚度,良好的耐腐蚀性和低密度而在航空航天应用中是有用的材料。金属板的气压凸出已成为重要的成形方法。随着鼓胀过程的进行,片材的明显变薄变得明显。本文提出了一种简单的分析程序,用于获得相对于成形时间的拱顶高度,这对工艺设计人员而言非常有用,可用于选择初始毛坯厚度以及成形后拱顶中的不均匀变薄。通过在变形温度范围内进行热循环,由于出现了变形失配可塑性(或变形超塑性)作为变形机制,粗晶粒多晶型材料可以进行超塑性变形。在有和没有不连续增强的钛合金的热循环过程中,在双轴应力条件下检查了这种机理。对于相变超塑性,应变率敏感性指数被认为是统一的。获得相对于成型时间的拱顶的曲率半径,厚度和高度。发现分析结果与测试结果合理地吻合良好。

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