Topology Optimal Compliant Microgripper
Shyh‐Chour Huang, Chi‐Ming Lee, Chien-Ching Chiu, Weiliang Chen
Abstract
Open-access reader
Shyh‐Chour Huang, Chi‐Ming Lee, Chien-Ching Chiu, Weiliang Chen
Abstract
Open-access reader
This study proposes a MEMS microgripper design based on a compliant mechanism, utilizing the multi-input method to obtain greater output force and displacement. The compliant mechanism is very effective because the mechanism has flexible pieces that transmit force or deliver motion. The design domain is formed by the ground structure parameterization of the optimal topology. The goal is to obtain the optimal topology layout through computer simulation. This study combines insights from the topology optimization of the compliant mechanism and the piezoelectric microactuator to design a microgripper and to analyze outputs and displacement with different parameters under topology optimization.
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This study proposes a MEMS microgripper design based on a compliant mechanism, utilizing the multi-input method to obtain greater output force and displacement. The compliant mechanism is very effective because the mechanism has flexible pieces that transmit force or deliver motion. The design domain is formed by the ground structure parameterization of the optimal topology. The goal is to obtain the optimal topology layout through computer simulation. This study combines insights from the topology optimization of the compliant mechanism and the piezoelectric microactuator to design a microgripper and to analyze outputs and displacement with different parameters under topology optimization.
Key concepts: Topology optimization, Compliant mechanism, Microactuator, Topology (electrical circuits), Mechanism (biology), Displacement (psychology), Computer science, Optimal design