Finite Element Simulation of Hot Rolling for Large-Scale AISI 430 Ferritic Stainless-Steel Slabs Using Industrial Rolling Schedules-Part 2: Simulation of the Roughing Stage and Comparison with Experimental Results.

IF 3.1 3区 材料科学 Q3 CHEMISTRY, PHYSICAL
Materials Pub Date : 2025-03-15 DOI:10.3390/ma18061298
Adrián Ojeda-López, Marta Botana-Galvín, Juan F Almagro Bello, Leandro González-Rovira, Francisco Javier Botana
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Abstract

Modeling hot rolling remains a major challenge in computational solid mechanics. It demands the simultaneous consideration of geometric and material responses. Although the finite element method (FEM) is widely used, multi-pass simulations often treat each pass independently, leading to error accumulation, particularly in flat product rolling, where inter-pass interactions are crucial. Advanced models and remeshing techniques have been developed to address these issues, but substantial computational resources are required. In this study, a previously validated and simplified 3D FEM model was employed to simulate the initial stages of the hot rolling of large-scale AISI 430 ferritic stainless-steel slabs, using data from an industrial rolling schedule. Specifically, the simulations encompassed preheating and descaling, and seven passes of the roughing stage. Through these simulations, a transfer bar with an approximate length of 16,100 mm was obtained. The simulated thickness and rolling load values were compared with experimental data, demonstrating good agreement in most passes. Subsequently, the temperature, effective plastic strain, and equivalent stress distributions along the rolled material were extracted and analyzed. The results highlighted that the employed model adequately predicted the variations in the analyzed parameters throughout the volume of the rolled material during the different stages of the process. However, discrepancies were identified in the rolling load values during the final passes, which were attributed to the presence of phenomena not considered in the constitutive model used. This model will be refined in future studies to reduce the error in the rolling load estimation.

大型AISI 430铁素体不锈钢板工业轧制规程热轧的有限元模拟-第2部分:粗加工阶段的模拟及与试验结果的比较
热轧建模是计算固体力学的主要挑战。它要求同时考虑几何响应和材料响应。虽然有限元方法(FEM)得到了广泛的应用,但多道次模拟往往独立处理每个道次,导致误差积累,特别是在平面产品轧制中,其中道次间的相互作用至关重要。先进的模型和重网格技术已经开发出来解决这些问题,但需要大量的计算资源。在本研究中,采用先前验证和简化的三维有限元模型,使用工业轧制计划的数据,模拟了大型AISI 430铁素体不锈钢板热轧的初始阶段。具体来说,模拟包括预热和除垢,以及七道粗化阶段。通过这些模拟,得到了一个长度约为16,100 mm的传递杆。将模拟厚度和轧制载荷值与实验数据进行了比较,结果表明,在大多数道次中,模拟厚度和轧制载荷值符合较好。随后,提取并分析了轧制材料的温度分布、有效塑性应变分布和等效应力分布。结果表明,所采用的模型充分预测了在轧制过程的不同阶段,所分析的参数在整个轧制材料体积中的变化。然而,在最后通过的滚动载荷值中发现了差异,这归因于所使用的本构模型中未考虑的现象的存在。该模型将在今后的研究中进一步完善,以减小滚动载荷估计中的误差。
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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来源期刊
Materials
Materials MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
5.80
自引率
14.70%
发文量
7753
审稿时长
1.2 months
期刊介绍: Materials (ISSN 1996-1944) is an open access journal of related scientific research and technology development. It publishes reviews, regular research papers (articles) and short communications. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. Therefore, there is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced. Materials provides a forum for publishing papers which advance the in-depth understanding of the relationship between the structure, the properties or the functions of all kinds of materials. Chemical syntheses, chemical structures and mechanical, chemical, electronic, magnetic and optical properties and various applications will be considered.
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