TA2 圆管冷轧成型过程中边缘波缺陷控制的数值和实验分析

Mingze Yue, Jing Zhang, Bing Xiao, Gang Chen, Qiang Fang, Xinxin Tang, Biyou Peng
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摘要

随着 TA2 钛型材在船舶和石化工业中的应用日益广泛,对 U 型、矩形和管状薄壁型材等各种形状的需求也在不断增长。机械减材加工和挤压等传统方法虽然普遍,但生产成本高、效率低。作为一种金属板材成型技术,辊轧成型因其高效、精确和可连续生产复杂形状而脱颖而出。然而,由于 TA2 型材的弹性模量低、屈服强度高,将冷轧技术应用于 TA2 型材具有挑战性。有鉴于此,本研究采用有限元模拟分析了 TA2 轧制成形过程中的应力和应变分布,旨在更好地了解边缘波缺陷的形成机制。通过正交实验评估了机架间距、成形速度、轧辊间隙和下坡量对边缘波缺陷的影响。实验结果表明,下坡量的影响占主导地位。将下坡量保持在钢管直径的 0.6 倍,可将纵向应变保持在 0.9% 以下,从而有效减少边缘波缺陷。在实际的 TA2 冷弯成型工艺中实施这些优化参数证实了模拟的可靠性。这项研究为推进 TA2 管材冷弯成型工艺、提高钛型材的生产效率奠定了坚实的基础,并为当前的节能减排工作提供了一些启示。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical and experimental analysis of edge wave defect control during TA2 circular tube cold roll forming
The increasing application of TA2 titanium profiles in marine and petrochemical industries has spurred in a growing demand for diverse forms, including U‐shaped, rectangular, and tubular thin‐walled profiles. Traditional methods like mechanical subtractive processing and extrusion, despite their prevalence, suffer from high production costs and low efficiency. As a metal sheet forming technology, roll forming stands out for its efficiency, accuracy, and capability of producing complex shapes continuously. Nevertheless, the application of cold rolling to TA2 profiles is challenging primarily due to its low elastic modulus and high yield strength. In view of this, this study employed finite element simulation to analyze the stress and strain distribution during the TA2 roll forming process, aiming to have a better understanding of edge wave defect formation mechanism. Orthogonal experiments were performed to assess the influence of frame spacing, forming speed, roll gap, and downhill amount, on edge wave defects. The findings revealed a predominant influence of the downhill amount. Maintaining the downhill volume at 0.6 times the tube diameter kept the longitudinal strain below 0.9%, effectively mitigating edge wave defects. Implementation of these optimized parameters in an actual TA2 roll forming process confirmed the reliability of the simulations. This study establishes a solid foundation for advancing the TA2 tube cold roll forming process, enhancing the production efficiency of titanium profiles, and shedding some light on current energy conservation and emission reduction.
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