Modified constitutive models for Inconel 718 considering current density and temperature in electrically assisted forming process

IF 5.3 1区 工程技术 Q1 ENGINEERING, AEROSPACE Chinese Journal of Aeronautics Pub Date : 2023-12-06 DOI:10.1016/j.cja.2023.12.007
Xuan CUI , Rui ZHAO , Min WAN
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Abstract

Electrically Assisted Forming (EAF) technology has obvious advantages in material forming. To develop an effective constitutive model considering electrical effects, room temperature and electrically assisted quasi-static uniaxial tensile tests were conducted using ultrathin nickel-based superalloy plates with a thickness of 0.25 mm. The research focused on the two most widely recognized effects: the Joule thermal and the electric athermal effects. The mechanism of current action can be divided into two scenarios: one considering the Joule thermal effect only, and the other considering both effects simultaneously. Two basic constitutive models, namely the Modified-Hollomon model and the Johnson-Cook (J-C) model, were selected to be optimized through the classification of two different situations, and four optimized constitutive models were proposed. It was found that the J-C model with simultaneous consideration of the Joule thermal effect and electric athermal effect had the best prediction effect by comparing the results of these four models. Finally, the accuracy of the optimization model was verified by finite element simulation of the electrically assisted stretching optimization model. The results show that the constitutive model can effectively predict the temperature effect caused by the Joule heat effect and the athermal effect of current on the material.

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考虑到电辅助成形工艺中的电流密度和温度的因科镍合金 718 修正构成模型
电辅助成形(EAF)技术在材料成形方面具有明显优势。为了开发一种考虑到电效应的有效构成模型,使用厚度为 0.25 毫米的超薄镍基超合金板进行了室温和电辅助准静态单轴拉伸试验。研究重点是两种最广为人知的效应:焦耳热效应和电热效应。电流作用机理可分为两种情况:一种是只考虑焦耳热效应,另一种是同时考虑两种效应。通过对两种不同情况的分类,选取了两个基本构成模型,即修正霍洛蒙模型和约翰逊-库克(J-C)模型进行优化,并提出了四个优化构成模型。通过比较这四个模型的结果发现,同时考虑焦耳热效应和电热效应的 J-C 模型预测效果最好。最后,通过对电辅助拉伸优化模型进行有限元模拟,验证了优化模型的准确性。结果表明,构成模型可以有效预测焦耳热效应和电流热效应对材料造成的温度效应。
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来源期刊
Chinese Journal of Aeronautics
Chinese Journal of Aeronautics 工程技术-工程:宇航
CiteScore
10.00
自引率
17.50%
发文量
3080
审稿时长
55 days
期刊介绍: Chinese Journal of Aeronautics (CJA) is an open access, peer-reviewed international journal covering all aspects of aerospace engineering. The Journal reports the scientific and technological achievements and frontiers in aeronautic engineering and astronautic engineering, in both theory and practice, such as theoretical research articles, experiment ones, research notes, comprehensive reviews, technological briefs and other reports on the latest developments and everything related to the fields of aeronautics and astronautics, as well as those ground equipment concerned.
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