Advanced FEM Insights into Pressure-Assisted Warm Single-Point Incremental Forming of Ti-6Al-4V Titanium Alloy Sheet Metal

Metals Pub Date : 2024-05-24 DOI:10.3390/met14060619
Tomasz Trzepieciński, Marcin Szpunar, Robert Ostrowski, Waldemar Ziaja, M. Motyka
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Abstract

This study employs the finite element (FE) method to analyze the Incremental Sheet Forming (ISF) process of Ti-6Al-4V titanium alloy. The numerical modeling of pressure-assisted warm forming of Ti-6Al-4V sheets with combined oil-heating and friction stir rotation-assisted heating of the workpiece is presented in this article. The thermo-mechanical FE-based numerical model took into account the characteristics of the mechanical properties of the sheet along with the temperature. The experimental conditions were replicated in FEM simulations conducted in Abaqus/Explicit, which incorporated boundary conditions and evaluated various mesh sizes for enhanced accuracy and efficiency. The simulation outcomes were compared with actual experimental results to validate the FE-based model’s predictive capacity. The maximum temperature of the tool measured using infrared camera was approximately 326 °C. Different mesh sizes were considered. The results of FEM modeling were experimentally validated based on axial forming force and thickness distribution measured using the ARGUS optical measuring system for non-contact acquisition of deformations. The greatest agreement between FEM results and the experimental result of the axial component of forming force was obtained for finite elements with a size of 1 mm. The maximum values of the axial component of forming force determined experimentally and numerically differ by approximately 8%. The variations of the forming force components and thickness distribution predicted by FEM are in good agreement with experimental measurements. The numerical model overestimated the wall thickness with an error of approximately 5%. By focusing on the heating techniques applied to Ti-6Al-4V titanium alloy sheet, this comparative analysis underlines the adaptability and precision of numerical analysis applied in modeling advanced manufacturing processes.
对 Ti-6Al-4V 钛合金板材的压力辅助型单点增量式热成型的高级有限元深入研究
本研究采用有限元(FE)方法分析了 Ti-6Al-4V 钛合金的增量薄板成形(ISF)工艺。本文介绍了 Ti-6Al-4V 板材压力辅助温成型的数值建模,并结合了工件的油加热和摩擦搅拌旋转辅助加热。基于热机械 FE 的数值模型考虑了板材的机械特性和温度特性。在 Abaqus/Explicit 中进行的有限元模拟复制了实验条件,其中包含边界条件,并评估了各种网格尺寸,以提高精度和效率。模拟结果与实际实验结果进行了比较,以验证基于有限元模型的预测能力。使用红外摄像机测量的工具最高温度约为 326 °C。考虑了不同的网格尺寸。使用 ARGUS 光学测量系统测量轴向成形力和厚度分布,以非接触方式获取变形,从而对有限元模型的结果进行了实验验证。有限元尺寸为 1 毫米时,成形力轴向分量的有限元计算结果与实验结果的一致性最高。实验和数值确定的成形力轴向分量最大值相差约 8%。有限元预测的成形力分量变化和厚度分布与实验测量结果十分吻合。数值模型高估了壁厚,误差约为 5%。通过重点分析 Ti-6Al-4V 钛合金板材的加热技术,该对比分析凸显了数值分析在先进制造工艺建模中的适应性和精确性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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