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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Design and control of a piezoactuated microfeed mechanism for cell injection
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Design and control of a piezoactuated microfeed mechanism for cell injection

机译:压电式微胶机机理的设计与控制电池注射液

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摘要

A novel microfeed mechanism for cell injection driven by a piezoelectric actuator (PEA) was developed in this study to fulfill the requirement of a precise cell membrane puncture. A bridge-type displacement amplification mechanism was designed based on a compliant mechanism principle and the micrometric displacement characteristic of the PEA to realize the zero-clearance precision motion of the microfeed mechanism using a flexure hinge as a supporting member. Static and modal analyses and structural optimization specific to the bridge-type amplification mechanism were performed to acquire a high inherent frequency and a large displacement amplification coefficient. A simulation verification of the mechanism's mechanical performance was implemented. A sliding-mode control strategy was proposed, considering that the complicated nonlinear hysteresis effect of PEA might cause low system precision. Cell puncturing experiments were performed on zebrafish embryos to demonstrate the performance of the proposed methodology. In comparison with existing studies, the manipulation precision of the proposed technique was less than 1.1 mu m with a strong robustness. Thus, this new approach could be beneficial for the progress of cell puncture technology.
机译:在该研究中开发了一种由压电致动器(PEA)驱动的用于细胞注射的微胶质机制,以满足精确的细胞膜穿刺的要求。基于柔性机构原理和微米位移特性设计了桥式位移放大机构,以实现使用挠曲铰链作为支撑构件的微细纤维机构的零间隙精度运动。进行静态和模态分析和对桥型扩增机构的结构优化进行,以获取高固有频率和大的位移放大系数。实施了机制机理性能的模拟验证。提出了一种滑模控制策略,考虑到豌豆的复杂非线性滞后效果可能导致低系统精度。在斑马鱼胚胎上进行细胞穿刺实验,以证明所提出的方法的性能。与现有研究相比,所提出的技术的操纵精度小于1.1μm,具有强大的鲁棒性。因此,这种新方法可能有利于细胞穿刺技术的进展。

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