Jiaqi Liang , Dunant Halim , Kean How Cheah , Chi Zhang
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引用次数: 0
Abstract
This work proposes a novel control methodology to achieve high-precision multi-axis coordinated trajectory tracking of a compliant micro-nano positioning stage system with nonlinear coupling stiffness. It addresses the problem of a positioning stage control using compliant parallel mechanisms (CPMs) to undertake complex trajectory tracking, in which multi-axis coupled motions and external disturbances significantly affect the tracking accuracy. To address this, the proposed control method is developed by utilizing the predefined-time extended state observer (PTESO) with linear sliding mode control (SMC), in which the PTESO incorporates the nonlinear stiffness model of CPMs with its stability proven through Lyapunov stability analysis. This method ensures reduced uncertainty in system coupling as disturbance observation converges to the desired accuracy within a predefined time, independent of initial conditions. By solely utilizing position signals, the control system achieves faster and more accurate velocity estimation and disturbance compensation in multi-axis coordinated trajectory tracking, thereby enhancing overall the robustness and dynamic performance. Experimental validation on a 4 PPR (Prismatic-Prismatic-Revolute) planar three-degree-of-freedom compliant stage demonstrates a tracking accuracy of 0.1 μm in a 1-Hz circular trajectory experiment. Compared to SMC with traditional ESO, the proposed scheme significantly reduces the root mean square error (RMSE) by 79.17 %. Notably, significant performance improvements are also observed when tracking other complex trajectories, compared to conventional ESO-based control schemes. The proposed control methodology also effectively mitigates time delays and enables high-precision real-time trajectory tracking at the micro-nano level.
期刊介绍:
Precision Engineering - Journal of the International Societies for Precision Engineering and Nanotechnology is devoted to the multidisciplinary study and practice of high accuracy engineering, metrology, and manufacturing. The journal takes an integrated approach to all subjects related to research, design, manufacture, performance validation, and application of high precision machines, instruments, and components, including fundamental and applied research and development in manufacturing processes, fabrication technology, and advanced measurement science. The scope includes precision-engineered systems and supporting metrology over the full range of length scales, from atom-based nanotechnology and advanced lithographic technology to large-scale systems, including optical and radio telescopes and macrometrology.