设计和分析用于金属板成型的磁流变弹性体可控磁性坯料支架系统

IF 1.5 4区 工程技术 Q3 ENGINEERING, MECHANICAL Iranian Journal of Science and Technology-Transactions of Mechanical Engineering Pub Date : 2024-08-17 DOI:10.1007/s40997-024-00788-5
Linyuan Meng, Hongsheng Zhang, Qifeng Dong, Sicheng He, Siji Qin
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引用次数: 0

摘要

为了解决电磁永磁(EPM)坯料支架工艺中气隙造成的磁力损失问题,使用了磁流变弹性体(MRE)作为磁性基质填充磁路气隙。这样就可以利用磁流变弹性体(EPM-MRE)构建用于金属板成型的可控磁力坯料夹持系统。此外,还设计了 EPM-MRE 毛坯夹具深拉伸工具。开发了不同质量比的 MRE,并对其磁性能进行了测试。在四极磁力模型的磁路间隙中填充了空气和不同质量比的 MRE,并对磁力耦合场进行了有限元分析,随后进行了实验验证。结果表明,在磁路间隙中加入 MRE 可以显著增强磁力,在 0.5 毫米到 3.0 毫米的间隙中,增强效果超过 50%,而且随着间隙的增宽,增强效果越明显,制备的不同质量分数的 MRE 的增强效果差别不大,相差不超过 1%。通过拉深实验进一步验证了 EPM-MRE 毛坯夹持工艺,结果表明所设计的工艺装置可与压力机匹配,有效完成拉深过程。最后,对使用 EPM-MRE 夹坯技术的能耗进行了预测,预计与 EMP 夹坯技术相比可节能 50%以上,与传统夹坯技术相比可节能 80%以上。
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Design and Analysis of a Controllable Magnetic Blank Holder System with Magnetorheological Elastomer for Sheet Metal Forming

To tackle the issue of magnetic force loss caused by the air gap in the electromagnetic permanent magnet (EPM) blank holder process magnetorheological elastomer (MRE) is used to fill the air gap of the magnetic circuit as magnetic matrices. This allows for the construction of a controllable magnetic force blank holder system with magnetorheological elastomers (EPM-MRE) for sheet metal forming. Additionally, EPM-MRE blank holder deep drawing tools were designed. MREs with different mass ratios were developed and tested for their magnetic properties. Air and MREs of varying mass ratios were filled into the magnetic circuit gaps of a four-pole magnetic force model, and a finite element analysis of the magnetic force coupling field was conducted, followed by experimental verification. The results show that the inclusion of MRE in the magnetic circuit gap can significantly enhance magnetic force, with an increase of over 50% across gaps ranging from 0.5 mm to 3.0 mm, and the enhancement effect becomes more pronounced as the gap widens, and the enhancement effect of the prepared MREs with different mass fractions is not significantly different, with the difference being no more than 1%. The EPM-MRE blank holder process was further verified through deep drawing experiments and the results demonstrate that the designed process device can be matched with the press to effectively complete the drawing process. At last, the energy consumption using the EPM-MRE blank holder technique is predicted, and it is estimated to save more than 50% of energy compared with EMP blank holders and more than 80% of energy compared to conventional blank holders.

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来源期刊
CiteScore
2.90
自引率
7.70%
发文量
76
审稿时长
>12 weeks
期刊介绍: Transactions of Mechanical Engineering is to foster the growth of scientific research in all branches of mechanical engineering and its related grounds and to provide a medium by means of which the fruits of these researches may be brought to the attentionof the world’s scientific communities. The journal has the focus on the frontier topics in the theoretical, mathematical, numerical, experimental and scientific developments in mechanical engineering as well as applications of established techniques to new domains in various mechanical engineering disciplines such as: Solid Mechanics, Kinematics, Dynamics Vibration and Control, Fluids Mechanics, Thermodynamics and Heat Transfer, Energy and Environment, Computational Mechanics, Bio Micro and Nano Mechanics and Design and Materials Engineering & Manufacturing. The editors will welcome papers from all professors and researchers from universities, research centers, organizations, companies and industries from all over the world in the hope that this will advance the scientific standards of the journal and provide a channel of communication between Iranian Scholars and their colleague in other parts of the world.
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