article · Journal of Materials Research and Technology
Manufacturing complex curved pipes from titanium alloys is challenging at room temperature due to low ductility and high yield stress. To address this, hot free bending forming technology was evaluated and optimised for producing complex-shaped TA18 titanium alloy pipes. The work combined theoretical analysis, experimental trials, and finite element modelling using the Johnson-Cook constitutive model. The resulting simulations accurately mirrored physical forming trials under various conditions. Findings indicate that hot free bending improves wall thickening and limits cross-sectional distortion while reducing the achievable bending radius by suppressing dynamic rebound. Extending the heating length to 250 mm helped suppress wall thinning and distortion, whereas higher axial propulsion speeds produced mixed outcomes on thickness variations. The microstructure of the TA18 pipes remained largely unchanged throughout the process.
Titanium alloys are valuable for lightweight, high-strength tubing but are notoriously difficult to bend without cracking or deforming at room temperature. Demonstrating a reliable hot bending process allows manufacturers to produce intricate pipe shapes with consistent quality, fewer defects, and without needing costly custom dies for every curve.
This research is applied and experimentally validated, showing direct relevance for advanced manufacturing facilities producing complex titanium piping components. Pipe bending and component manufacturing operations could use the verified simulation model and identified process parameters to optimise production settings. The abstract does not name specific end-use sectors, but the findings offer practical guidance for immediate trial and integration into specialised metal forming lines.
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Free bending forming (FBF) technology is widely used for manufacturing complex-shaped Ti pipes without changing the forming die. Nevertheless, the characteristics of Ti alloys, such as low ductility and high yield stress, pose challenges in achieving high-quality components at room temperature. Therefore, the hot FBF technology is used to manufacture and optimize the process parameters to produce complex-shaped TA18 pipes. Combining theoretical analysis, FE modeling, and experimentation, the forming characteristics of TA18 alloy pipes at elevated temperatures were revealed, and the process parameters were optimized. The Johnson-Cook constitutive model was established in this study and coupled with FE modeling providing accurate simulations of the hot FBF process under various conditions. The FE model of the TA18 alloy pipe was verified by comparing its results with the actual TA18 pipe trials. The hot FBF process can improve the wall thickening and cross-sectional distortion of TA18 bending components and reduce the bending radius of the pipe by weakening the dynamic rebound at the end of the bending and forming of titanium pipes. The increase in heating length is also generally conducive for forming TA18 pipe, and the component's external wall thickness reduction and cross-sectional distortion can be inhibited when the heating length is 250 mm. Moreover, the increase in axial propulsion speed improves the thickening of the inner wall thickness of the TA18 bending components but also increases the thinning of the wall thickness and the distortion of the cross-section. Finally, the process parameters were optimized, and the forming quality of the complex-shape TA18 pipe can be improved. The microstructure of the TA18 pipe hardly changes during the hot FBF process.
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DOI: 10.1016/j.jmrt.2024.02.187
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