Topology Optimized Design, Microfabrication and Characterization of Electro-Thermally Driven Microgripper

Author:

Rubio Wilfredo M.1,Silva Emilio C.N.2,Bordatchev Evgueni V.3,Zeman Marco J.F.3

Affiliation:

1. Department of Mechatronics and Mechanical Systems Engineering, Escola Politecnica da Universidade de São Paulo, Av. Prof. Mello Moraes, 2231 - Cidade Universitária, São Paulo - SP - 05508-900, Brazil,

2. Department of Mechatronics and Mechanical Systems Engineering, Escola Politecnica da Universidade de São Paulo, Av. Prof. Mello Moraes, 2231 - Cidade Universitária, São Paulo - SP - 05508-900, Brazil

3. Industrial Materials Institute, National Research Council of Canada, 800 Collip Circle, London, Ont., Canada

Abstract

This article presents a systematic and logical study of the topology optimized design, microfabrication, and static/dynamic performance characterization of an electro-thermo-mechanical microgripper. The microgripper is designed using a topology optimization algorithm based on a spatial filtering technique and considering different penalization coefficients for different material properties during the optimization cycle. The microgripper design has a symmetric monolithic 2D structure which consists of a complex combination of rigid links integrating both the actuating and gripping mechanisms. The numerical simulation is performed by studying the effects of convective heat transfer, thermal boundary conditions at the fixed anchors, and microgripper performance considering temperature-dependent and independent material properties. The microgripper is fabricated from a 25 μm thick nickel foil using laser microfabrication technology and its static/dynamic performance is experimentally evaluated. The static and dynamic electro-mechanical characteristics are analyzed as step response functions with respect to tweezing/actuating displacements, applied current/power, and actual electric resistance. A microgripper prototype having overall dimensions of 1 mm (L) × 2.5mm (W) is able to deliver the maximum tweezing and actuating displacements of 25.5 μm and 33.2 μm along X and Y axes, respectively, under an applied power of 2.32 W. Experimental performance is compared with finite element modeling simulation results.

Publisher

SAGE Publications

Subject

Mechanical Engineering,General Materials Science

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