复杂铝合金板件冲击液压成形的变形特性及惯性效应:实验与数值分析

IF 4.2 2区 工程技术 Q2 ENGINEERING, MANUFACTURING
Liang-Liang Xia, Shi-Hong Zhang, Yong Xu, Shuai-Feng Chen, Boris B. Khina, Artur I. Pokrovsky
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引用次数: 3

摘要

冲击液压成形(IHF)作为一种新型的金属板材成形技术,具有高应变速率成形和柔性液体加载的优点,非常适合于高效制造铝复杂形状的板材。本文系统地研究了复杂板件在IHF作用下的变形特性。研究了2024铝合金在宽应变速率范围(10−3 s−1–3.3×103 s−1)下的力学性能。结果表明,在3.306的应变速率下,2024铝合金的伸长率提高了116.01% × 103 s−1,参见10−3 s−1。此外,选择了具有对称和非对称结构的复杂形状部件。采用完善的高精度固液耦合有限元(SLC-FE)模型,研究了IHF作用下薄板的变形特性和惯性效应的作用。对称结构在中心区有明显的先变形,在初始成形阶段表现出“凸起”轮廓。然而,对于具有“平面”轮廓的非对称结构,提出了同步变形。此外,在对称和非对称结构的不同位置变化处都观察到了独特的惯性效应,其中在其中心区域产生了较低的值。同时,惯性效应随撞击速度的增加而演化。特别是,随着冲击速度的增加,惯性效应的差异越来越大。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Deformation characteristics and inertial effect of complex aluminum alloy sheet part under impact hydroforming: experiments and numerical analysis

Deformation characteristics and inertial effect of complex aluminum alloy sheet part under impact hydroforming: experiments and numerical analysis

Impact hydroforming (IHF), as a novel sheet metal forming technology with the advantages of high strain rate forming and flexible liquid loading, is highly suitable for efficiently manufacturing aluminum complex-shaped sheet parts. In this paper, deformation characteristics of complex sheet parts under IHF are systematically investigated. The mechanical properties of 2024 aluminum alloy under a wide range of strain rates (10−3 s−1–3.3×103 s−1) were studied. It indicated that the elongation of 2024 aluminum alloy was improved by 116.01% under strain rates of 3.306 × 103 s−1, referring to 10−3 s−1. Further, a complex-shaped part with symmetrical and asymmetrical structures was selected. The deformation characteristics of sheet and role of inertial effect under IHF were investigated with well-developed solid–liquid coupling finite element (SLC-FE) model with high accuracy. Differentiating deformation tendency is found for symmetrical structure with notably prior deformation at central zone, showing a “bulging” profile at initial forming stage. Whereas, synchronous deformation is presented for asymmetrical structure with a “flat” profile. Additionally, distinctive inertial effect was observed at different positions change for both symmetrical and asymmetrical structures, in which lower values were resulted at their central regions. Meanwhile, the inertial effect evolved with the impacting speed. Specially, larger difference of inertial effect was observed with increasing impacting speed.

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来源期刊
Advances in Manufacturing
Advances in Manufacturing Materials Science-Polymers and Plastics
CiteScore
9.10
自引率
3.80%
发文量
274
期刊介绍: As an innovative, fundamental and scientific journal, Advances in Manufacturing aims to describe the latest regional and global research results and forefront developments in advanced manufacturing field. As such, it serves as an international platform for academic exchange between experts, scholars and researchers in this field. All articles in Advances in Manufacturing are peer reviewed. Respected scholars from the fields of advanced manufacturing fields will be invited to write some comments. We also encourage and give priority to research papers that have made major breakthroughs or innovations in the fundamental theory. The targeted fields include: manufacturing automation, mechatronics and robotics, precision manufacturing and control, micro-nano-manufacturing, green manufacturing, design in manufacturing, metallic and nonmetallic materials in manufacturing, metallurgical process, etc. The forms of articles include (but not limited to): academic articles, research reports, and general reviews.
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