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Research on Bidirectional Macro-Micro Assembly Technology Accuracy Based on 3-UPU Parallel Mechanism

机译:基于3-UPU并联机构的双向宏微装配技术精度研究

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The accuracy question for macro-micro assembly technology is essential for the design of bidirectional macro-micro assembly. The paper presents some new ideas that are different from the traditional design. A complex motion is decomposed into two simple motions. One (named assembling part) of the two assembled objects is fixed on the moving 3-UPU parallel mechanism (3 represents three degrees of freedom, U represents the hook pair, P represents the moving pair), and the other (named assembled part) is fixed on the rotating 3-UPU PM (parallel mechanism). By macro-micro motion of the PM, both assembling part and assembled part are assembled in three-dimensional space. By the design, both the mechanism and its motion control are simplified. Further more, both the kinematics analysis and accuracy simulation analysis of the 3-UPU PM are discussed. In order to improve the assembly accuracy, the kinematics analysis and simulation accuracy analysis for PM is an essential part of the design. And with the decrease of structure parameters error, the moving platform center accuracy will gradually be improved. Compared with the structure parameters error for PM, the centre moving error of the moving platform is smaller. In a certain extent, there is coupling error rather than the accumulation error for PM. By the analysis of hook pair error, the factors that affect the accuracy of the PM are found. And it provides theoretical design basis for the application of the PM in the macro-micro assembly technology.
机译:宏微装配技术的精度问题对于双向宏微装配的设计至关重要。本文提出了一些不同于传统设计的新想法。一个复杂的运动被分解为两个简单的运动。两个组装物体中的一个(命名为组装部分)固定在移动式3-UPU并联机构上(3表示三个自由度,U表示钩子对,P表示移动对),另一个(命名为组装部分)固定在旋转的3-UPU PM(并联机构)上。通过PM的宏观运动,组装部件和组装部件都在三维空间中组装。通过该设计,简化了机构及其运动控制。此外,还讨论了3-UPU PM的运动学分析和精度仿真分析。为了提高装配精度,PM的运动学分析和仿真精度分析是设计的重要部分。随着结构参数误差的减小,移动平台中心精度将逐渐提高。与PM的结构参数误差相比,移动平台的中心移动误差较小。在一定程度上,存在耦合误差而不是PM的累积误差。通过对钩对误差的分析,发现了影响检波器精度的因素。并为永磁体在宏微装配技术中的应用提供理论设计依据。

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