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首页> 外文期刊>Journal of Micromechanics and Microengineering >Design and experimental investigation of a parallel flexure hinge-based 3D elliptical vibration-assisted cutting mechanism
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Design and experimental investigation of a parallel flexure hinge-based 3D elliptical vibration-assisted cutting mechanism

机译:基于挠性铰链的3D椭圆振动辅助切割机构的设计与实验研究

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摘要

3D elliptical vibration-assisted cutting (EVC) is a method for rapidly creating ultra-precision free-form surfaces with features at the micro-scale, which have a wide array of industrial applications. Displacement coupling and low stiffness limit the applications of current 3D EVC mechanisms in machining difficult to cut materials and precise micro-features. To overcome these limitations and improve overall performance, an innovative 3D EVC mechanism with a parallel layout with flexure hinges will be presented. The mechanism was specifically designed to be capable of generating decoupled output displacements in three directions and assuring high stiffness. An analytical model of the mechanism's kinematics will be formulated to facilitate the prediction of the loci of the tooltip and design and realization of the prototype device. The vibration characteristics of the mechanism were verified through both finite element analysis and experimental modal analysis using swept sine testing. To validate the machining performance of the mechanism, two groups of micro-texturing turning and simulation experiments were performed. The performance tests and comparison results between the generated and simulated micro-textures indicate that the proposed 3D EVC mechanism is capable of generating different micro-feature shapes.
机译:3D椭圆振动辅助切割(EVC)是一种快速创造超精密自由形状表面,具有微尺寸的特征,具有各种工业应用。位移耦合和低刚度限制了电流3D EVC机制在加工中的应用难以切割材料和精确的微观特征。为了克服这些限制并提高整体性能,将介绍一个具有平行布局的创新3D EVC机制,将呈现弯曲铰链。该机构专门设计成能够在三个方向上产生去耦输出位移并确保高刚度。将配制机制运动学的分析模型,以便于预测工具提示的基因座和原型装置的设计和实现。通过使用扫描正弦测试的有限元分析和实验模态分析来验证机制的振动特性。为了验证机制的加工性能,进行两组微型纹理转动和模拟实验。生成和模拟微纹理之间的性能测试和比较结果表明所提出的3D EVC机制能够产生不同的微观特征形状。

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