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首页> 外文期刊>Advances in materials science and engineering >Design and Analysis of a Novel Piezo-Actuated XYθz Micropositioning Mechanism with Large Travel and Kinematic Decoupling
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Design and Analysis of a Novel Piezo-Actuated XYθz Micropositioning Mechanism with Large Travel and Kinematic Decoupling

机译:大型旅行和运动脱耦的新型压电驱动XYθz微定位机理的设计与分析

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A novel hybrid-type XYθz micropositioning mechanism driven by piezoelectric actuators is proposed in this paper. With the purpose of realizing a large motion range and 3-DoF independent motion within a compact size, the mechanism is designed using a symmetric translational part and a rotational part that are linked serially. The translational part is based on a double-amplification mechanism incorporating a guidance mechanism for decoupling; the rotational part uses a nonuniform beam with an amplification mechanism to translate the linear output displacement of piezoelectric actuators into a large rotational angle around the Z axis. To precisely predict the output displacements and implement dimensional design, electromechanical models of the translational mechanism and rotational mechanism are established. According to the theoretical model, dimensional optimization is carried out to achieve large motion ranges within a compact size. A prototype of the proposed mechanism is fabricated according to the optimized results, and the performance of the mechanism is validated by experiment. The experimental results show that translational travel in X and Y directions of 204.2?μm and 212.8?μm, respectively, and travel of 8.7?mrad in the θz direction can be realized in a small size of 106?mm?×?106?mm?×?23?mm. And, the output coupling was evaluated to be below 3%, indicating an excellent decoupling performance.
机译:本文提出了一种新的混合型XYθZ微定位机构由压电致动器驱动。目的是在紧凑尺寸内实现大型运动范围和3-DOF独立运动,使用对称的平移部分和连续连接的旋转部件设计机构。平移部分基于加入解耦的指导机制的双放大机制;旋转部分使用具有扩增机构的非均匀梁,将压电致动器的线性输出位移转换为Z轴周围的大旋转角度。为了精确地预测输出位移和实施尺寸设计,建立了转换机构和旋转机构的机电模型。根据理论模型,进行尺寸优化以在紧凑尺寸内实现大运动范围。根据优化结果制造所提出的机制的原型,通过实验验证机制的性能。实验结果表明,分别在204.2×μm和212.8?μm的x和y方向上的平移行进,并且在θz方向上的3.7的行程可以在106Ω·mm的小尺寸中实现,可以实现θx≤x≤106Ω ?×23?mm。并且,将输出耦合评估为低于3%,表明出色的去耦性能。

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