4.6 Article

Axial Motion Characterization of a Helical Ionic Polymer Metal Composite Actuator and Its Application in 3-DOF Micro-Parallel Platforms

Journal

ACTUATORS
Volume 10, Issue 10, Pages -

Publisher

MDPI
DOI: 10.3390/act10100248

Keywords

IPMC; helical; actuation performance; model; multiphysics; 3-DOF platform

Funding

  1. National Natural Science Foundation of China [51605220, U1637101]
  2. Natural Science Foundation of Jiangsu Province of China [BK20160793]
  3. Fundamental Research Funds for the Central Universities [NS2020029]

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The study focused on a helical ionic polymer metal composite (IPMC) actuator, observing its axial actuation behaviors and evaluating its characteristics. Experimental results demonstrated that the most satisfactory motion was achieved under a direct current (DC) signal. Coupling different modules in simulation work, the obtained data matched well with experimental results, leading to the design of a three-degree-of-freedom micro-parallel platform.
In this work, a helical ionic polymer metal composite (IPMC) was fabricated by thermal treatment in a mold with helix grooves. The axial actuation behaviors of the helical IPMC actuator were observed, and the electromechanical and electrochemical characteristics were evaluated. The experimental results showed that as the voltage increased and the frequency decreased, the axial displacement, axial force, and electric current of the actuator all increased. Compared with square wave and sinusoidal signals, the actuator exhibited the most satisfactory motion under the direct current (DC) signal. For the electrochemical test, as the scanning rate decreased, the gravimetric specific capacitance increased. Within a suitable voltage range, the actuator was chemically stable. In addition, we coupled the Electrostatics module, Transport of Diluted Species module, and Solid Mechanics module in COMSOL Multiphysics software to model and analyze the helical IPMC actuator. The simulation data obtained were in good agreement with the experimental data. Finally, by using three helical IPMC actuators as driving components, an innovative three-degree-of-freedom (3-DOF) micro-parallel platform was designed, and it could realize a complex coupling movement of pitch, roll, and yaw under the action of an electric field. This platform is expected to be used in micro-assembly, flexible robots, and other fields.

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