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Dual phase titanium alloy hot forging process design: experiments and numerical modeling

机译:双相钛合金热锻工艺设计:实验与数值模拟

摘要

Titanium alloys are considered desirable materials when both good mechanical properties and weight reduction are required at the same time. This class of materials is widely used in those fields (aeronautics, aerospace) in which common steels and light-weight materials, e.g., aluminum alloys, are not able to satisfy all operative service conditions. During the last decade, forging of titanium alloys has attracted greater attention from both industrial and scientific/academic researchers because of their potential in providing a near net shaped part with minimal need for machining. In this paper, a numerical model of the forging sequences for a Ti-6Al-4V titanium alloy aerospace component is presented. The model was tested and validated against experimental forgings. The model is then applied to predict loads final microstructure and defects of an aeronautical component. In addition to metal flow and die stresses, microstructural transformations (α and β phases) are considered for the determination of proper process parameters. It is found that transformation from α/β to β phase during forging and reverse transformations in post-forge cooling needs to be considered in the computational model for reasonable prediction of forging loads and product properties.
机译:当同时要求良好的机械性能和轻量化时,钛合金被认为是理想的材料。此类材料广泛用于普通钢和轻质材料(例如铝合金)无法满足所有使用条件的领域(航空,航天)。在过去的十年中,钛合金的锻造已经吸引了工业和科学/学术研究人员的广泛关注,因为它们具有提供几乎无须机械加工的近净成形零件的潜力。本文提出了一个Ti-6Al-4V钛合金航空航天零件锻造序列的数值模型。该模型已针对实验锻件进行了测试和验证。然后将模型应用于预测载荷,最终的微观结构和航空部件的缺陷。除了金属流动和模具应力,还考虑了微结构转变(α和β相)以确定适当的工艺参数。结果发现,在计算模型中需要考虑锻造过程中从α/β相到β相的转变以及锻后冷却过程中的逆向转变,以合理地预测锻造载荷和产品性能。

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