Aug 2026· IEEE/ASME International Conference on Mechatronic and Embedded Systems and Applications· pp. 173-178· 0 citations· 15 references
Abstract
With the rapid evolution of precision engineering such as integrated circuit fabrication and micro-nano manipulation, ultra-precision tilting stages face increasingly rigorous requirements for large stroke, high positional accuracy, low inter-axis coupling, and high structural rigidity. Conventional platforms are hampered by constrained stroke, significant cross-axis coupling and noticeable parasitic motion, while existing origami-based stages suffer from inadequate rigidity, insufficient load-bearing capacity and suboptimal motion resolution. To mitigate these bottlenecks, this paper proposes a novel 3-PRS parallel tilting stage incorporating origami-compliant mechanisms. The platform adopts a piezoelectric actuation configuration integrated with a secondary bridge-type displacement amplification mechanism, origami-inspired oscillating rocker and elliptical beam decoupling module. Mechanical modeling is established to elucidate its mechanical behaviors and motion transmission mechanisms, and ANSYS-based finite element analysis validates the theoretical model. Prototype tests demonstrate excellent displacement amplification, ultra-low inter-axis coupling, large tilting angle, considerable Z-axis travel, as well as high natural frequency and superior angular resolution. This design synergizes compliant and origami advantages, breaking through traditional limitations and providing a promising high-performance alternative for precision engineering applications.
Piezoelectric actuators have become core driving components in ultra-precision positioning and micro-nano manipulation due to their fast response, high stability and compact structure. However, traditional stick-slip piezoelectric actuators commonly suffer from backward motion, which cannot satisfy the engineering requ...
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