Title :
A two-way flexural rotation manipulator using opposing shape memory alloy wires
Author :
Wang, Jhe-Hong ; Fan, Chen-Hsien ; Lan, Chao-Chieh
Author_Institution :
Dept. of Mech. Eng., Nat. Cheng Kung Univ., Tainan, Taiwan
Abstract :
This paper presents the design, fabrication, and control of a two-way rotational manipulator using opposing shape memory alloy (SMA) wire actuated flexures. Monolithic flexure mechanisms have no friction/backlash and are capable of miniaturization. SMA exhibits large stroke, high energy density, and requires low driving voltage. Combining SMA as driver and flexure as force/motion transmitter makes them well-suited for tasks that required high precision and packed space. To explore flexure shapes beyond traditional notch hinges and leaf springs, we present a general design method to find the optimal flexure shapes for maximal rotation without yield. The advantages gained from shape variations are shown through a simulation example. By parallel connecting two flexure mechanisms with two opposing one-way SMA wires, the manipulator achieves two-way motion without sacrificing stroke. By actively contracting and extending, two-way manipulators are much faster than owe-way manipulators that rely passively on bias spring to extend. A feedback PID control algorithm with fuzzy-tuning gains is implemented to precisely control the response of the manipulator. We illustrate the two-way performance by several tracking response experiments. With the merits shown, we expect this type of manipulator can be utilized in meso to micro scale applications.
Keywords :
manipulators; shape memory effects; three-term control; wires; feedback PID control algorithm; fuzzy-tuning gains; monolithic flexure mechanisms; positioning manipulators; shape memory alloy wires; two-way flexural rotation manipulator; Fabrication; Fasteners; Friction; Low voltage; Shape control; Shape memory alloys; Space exploration; Springs; Transmitters; Wires; PID control; Positioning manipulators; flexure mechanisms; shape design; shape memory alloys;
Conference_Titel :
Advanced Intelligent Mechatronics, 2009. AIM 2009. IEEE/ASME International Conference on
Conference_Location :
Singapore
Print_ISBN :
978-1-4244-2852-6
DOI :
10.1109/AIM.2009.5230048