钛合金螺纹冷滚压材料流动特性与金相缺陷形成机理

    Study on Material Flow Characteristics and Metallurgical Defect Formation Mechanism of Cold Rolling of Titanium Alloy Thread

    • 摘要: 针对钛合金螺纹冷滚压成形中材料流动特性与金相缺陷形成机理不明的局限性,建立了钛合金螺纹冷滚压成形的数值模型,通过实验与数值模拟相结合的方法,阐明了螺纹滚压过程中的材料流动特性,揭示了螺纹牙侧金相缺陷的形成机理。结果表明,模拟获得的应变分布与显微硬度实验数据的对比验证了模型的有效性。塑性变形诱发的应变硬化效应显著影响了螺纹亚表面的晶粒细化,牙底区域硬化程度最高,牙侧次之,牙顶最弱。此外,螺纹牙侧中径以上区域的裂纹源于材料多向流动引发的动态应力集中,当局部应力超过材料断裂阈值时形成牙侧裂纹。

       

      Abstract: To address the unclear mechanisms of material flow characteristics and metallurgical defect formation in cold rolling of titanium alloy threads, a numerical model for cold rolling process of titanium alloy thread was established. By combining experimental and numerical simulation methods, the material flow behavior during thread rolling was clarified, and the formation mechanism of metallurgical defects at the threaded tooth side was revealed. The results show that the validity of the model is verified by comparing the simulated strain distribution with the experimental microhardness data. The strain hardening effect induced by plastic deformation significantly influences grain refinement in the thread subsurface layer, with the highest hardening degree at the thread root, followed by the thread side, and the least at the thread top. The cracks in the area above the middle diameter of the thread side are caused by dynamic stress concentration by the multi-directional flow of the material. When the local stress exceeds the material fracture threshold, the crack at the thread side is formed.

       

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