铜线多道拉拔工艺的实验、分析和数值分析

S. Di Donato
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引用次数: 0

摘要

摘要在冷拉丝过程中,作用在线材上的应力取决于工艺参数和材料流动应力,包括逐步发生的应变硬化。必须确保线材在模具出口处的应力低于材料的屈服应力,以防止线材缩颈和断裂。在工业上,这一过程是利用多步多线机连续进行的,这种机器能以较高的应变率值使材料产生高应变。应用分析模型评估作用在金属丝上的应力时,假设了简化的边界条件,如模具内应变和应变率的平均分布。有必要进行进一步研究,考虑整个多工序工业情况,并进行有限元模拟,这是当今优化工业流程的主要工具。在这项工作中,对 ETP 纯铜(重量为 99.9%)的拉伸工艺进行了实验、分析和数值分析。通过扭转试验对材料进行了表征,并对工艺的四个步骤进行了拉拔试验。通过对不同分析方法的分析表明,有必要仔细评估摩擦系数值,以减少拉拔力估算中的误差。目的是通过对材料流动应力的适当描述和对摩擦模型的评估,提供一个可靠的数值模型,用于预测多道拉拔过程中作用在线材上的应力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental, analytical, and numerical analysis of the copper wire multi-pass drawing process
Abstract. In the cold wire drawing process, the stress acting on the wire depends on process parameters, as well as on the material flow stress, including the strain-hardening that occurs step by step. It is essential to ensure that the stress applied to the wire at the exit of the die remains below the material's yield stress, to prevent wire necking and fracture. Industrially, the process is carried out continuously using multi-step-multi-wires machines that deform the material to high strain at elevated strain rate values. The application of analytical models for evaluating the stresses acting on the wire assumes simplified boundary conditions, such as an average distribution of strain and strain rate within the die. Further studies are necessary, considering the entire multi-pass industrial case and involving finite element simulation, which is today the main tool for optimizing industrial processes. In this work, the drawing process applied to ETP Pure Copper (99.9% in weight) is analyzed experimentally, analytically, and numerically. The material was characterized by torsion tests and experimental drawing tests were carried out on four steps of the process. Through the analysis of the different analytical methods, it was shown that a careful evaluation of the friction coefficient values is necessary to reduce errors in estimating the drawing forces. The aim is to provide a reliable numerical model for predicting the stress acting on the wire during the multi-pass drawing process, through an appropriate characterization of the material flow stress and an evaluation of the friction model.
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CiteScore
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