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Experimental Study of High-Frequency Vibration Assisted Micro/Mesoscale Forming of Metallic Materials

机译:高频振动辅助金属材料微/中尺度成形的实验研究

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摘要

Micro/mesoscale forming is a promising technology for mass production of miniature metallic parts. However, fabrication of micro/mesoscale features leads to challenges due to the friction increase at the interface and tool wear from highly localized stress. In this study, the use of high-frequency vibration for potential application in micro/mesoscale forming has been investigated. A versatile experimental setup based on a magnetostric-tive (Terfenol-D) actuator was built. Vibration assisted micro/mesoscale upsetting, pin extrusion and cup extrusion were conducted to understand the effects of workpiece size, excitation frequency, and the contact condition. Results showed a change in load reduction behavior that was dependent on the excitation frequency and the contact condition. The load reduction exhibited in this study can be explained by a combination of stress superposition and friction reduction. It was found that a higher excitation frequency and a less complicated die-specimen interface were more likely to result in a friction reduction by high-frequency vibration.
机译:微米/中尺度成型是用于大规模生产微型金属零件的有希望的技术。然而,由于界面处的摩擦增加以及高度局部应力导致的工具磨损,制造微米/中尺度特征会带来挑战。在这项研究中,已经研究了高频振动在微观/中尺度形成中的潜在应用。建立了基于磁动(Terfenol-D)执行器的多功能实验装置。进行了振动辅助的微米/中尺度up粗,销钉挤压和杯形挤压,以了解工件尺寸,激励频率和接触条件的影响。结果表明,负载减少行为的变化取决于励磁频率和接触条件。这项研究中显示的载荷降低可以通过应力叠加和摩擦降低的组合来解释。发现较高的激励频率和较简单的模具-试样界面更可能导致高频振动导致的摩擦减小。

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