• CN: 11-2187/TH
  • ISSN: 0577-6686

Journal of Mechanical Engineering ›› 2026, Vol. 62 ›› Issue (13): 283-293.doi: 10.3901/JME.260698

Previous Articles     Next Articles

Feature-driven Topology Optimization Design of Multi-input-multi-output Compliant Mechanism

CAI Shouyu, ZHANG Qianqian, XU Wentao, ZHOU Wenshang   

  1. School of Mechanics and Safety Engineering, Zhengzhou University, Zhengzhou 450001
  • Received:2025-06-10 Revised:2025-12-07 Published:2026-08-28

Abstract: A new topology optimization design framework based on the feature-driven method is proposed to solve the three typical problems in the multi-input-multi-output (MIMO) compliant mechanism synthesis — movement coupling, de facto hinge and topology extraction. In the initial layout of topology optimization, the fixed boundary as well as input and output ports of the MIMO compliant mechanism are connected in pairs by using several features (i.e., basic design primitives) with sufficient deformation capacity, whose bending deformation and width variation are expressed by B-spline curve functions. The optimization design model considering the coupling issue and de facto hinges is then established, in which input and output coupling constraints are introduced to achieve the fully decoupled design, and a weighted objective function is adopted to realize the synthesis of the rigid-flexible combined compliant mechanism (i.e., the distributed compliant mechanism) without de facto hinges. The sensitivity analysis related to the objective function and constraint functions is further carried out. A numerical example concerning the topology optimization of the classical MIMO displacement inverter is tested to demonstrate the effectiveness of the proposed method in tackling the movement coupling and de facto hinge problems, and it can also be seen that, owing to the parametric geometric description of the flexibly deformable features, the design result composed of multiple features can be directly and precisely generated in CAD systems without tedious topology extraction.

Key words: compliant mechanism, topology optimization, feature driven, input and output coupling terms, de facto hinge

CLC Number: