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Fabrication Experiments and Analysis of an LBM Additive-Manufactured Flexure Parallel Mechanism

机译:LBM增材制造的挠性并联机构的制造实验和分析

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摘要

Additive manufacturing technology has advantages for realizing complex monolithic structures, providing huge potential for developing advanced flexure mechanisms for precision manipulation. However, the characteristics of flexure hinges fabricated by laser beam melting (LBM) additive manufacturing (AM) are currently little known. In this paper, the fabrication and characterization of a flexure parallel mechanism through the LBM process are reported for the first time to demonstrate the development of this technique. The geometrical accuracy of the additive-manufactured flexure mechanism was evaluated by three-dimensional scanning. The stiffness characteristics of the flexure mechanism were investigated through finite element analysis and experimental tests. The effective hinge thickness was determined based on the parameters study of the flexure parallel mechanism. The presented results highlight the promising outlook of LBM flexure parts for developing novel nanomanipulation platforms, while additional attention is required for material properties and manufacturing errors.
机译:增材制造技术具有实现复杂的整体结构的优势,为开发用于精确操纵的高级挠曲机构具有巨大潜力。但是,目前尚不清楚通过激光束熔化(LBM)增材制造(AM)制造的挠性铰链的特性。在本文中,首次报道了通过LBM工艺制造和表征挠性并联机构的过程,以证明该技术的发展。通过三维扫描评估了增材制造的挠曲机构的几何精度。通过有限元分析和实验测试研究了挠曲机构的刚度特性。有效铰链厚度是根据挠性并联机构的参数研究确定的。提出的结果突出了用于开发新型纳米操纵平台的LBM挠性零件的有前途的前景,同时还需要进一步关注材料性能和制造误差。

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