DocumentCode :
2942566
Title :
A generalized framework using hardware-in-evaluation-loop for design optimization
Author :
Ji, Jingjing ; Lee, Kok-Meng ; Bai, Kun ; Zhang, Shuyou
Author_Institution :
Dept. of Mech. Eng., Zhejiang Univ., Hangzhou, China
fYear :
2012
fDate :
11-14 July 2012
Firstpage :
659
Lastpage :
664
Abstract :
This paper presents a generalized framework using sensing, actuation and control hardware in an evaluation loop (HEL) for optimizing product/equipment designs where intervention utilizing human experience (and/or knowledge) is desired. Formulated using power variables, two practical applications covering multi physic (mechanical, electrical, magnetic and fluid) domains are demonstrated. The first illustrates a HEL with a ball-joint-like permanent-magnet spherical motor (PMSM) as a haptic device enabling a designer to realistically feel engaging forces/torques of a virtually simulated snap-fit disassembly. As a media for converting electrical to mechanical energy, measured magnetic fields in the PMSM is utilized enabling the designer to simultaneously sense the motion and torque feedback in real-time without additional dedicated sensors to derive a good evaluation. The second example extends the HEL application to optimize a fluid system design, where the interest is to minimize hydraulic energy losses. Along with an experimental prototype in the evaluation loop, algebraic solutions are used to calculate losses (against which the experimental measured data are compared) providing a basis for minimizing hydraulic energy consumption.
Keywords :
actuators; assembling; digital simulation; haptic interfaces; magnetic field measurement; minimisation; permanent magnet motors; product design; production engineering computing; sensors; HEL application; PMSM; actuation hardware; ball-joint-like permanent magnet spherical motor; control hardware; electrical-to-mechanical energy conversion; equipment design optimisation; fluid system design optimization; generalized hardware in the evaluation loop framework; haptic device; hydraulic energy consumption minimization; hydraulic energy loss minimization; magnetic field measurement; motion sensing; multiphysics domain; power variables; product design optimization; sensing hardware; torque feedback; virtually simulated snap-fit disassembly; Force; Haptic interfaces; Humans; Liquids; Orifices; Sensors; Torque;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Advanced Intelligent Mechatronics (AIM), 2012 IEEE/ASME International Conference on
Conference_Location :
Kachsiung
ISSN :
2159-6247
Print_ISBN :
978-1-4673-2575-2
Type :
conf
DOI :
10.1109/AIM.2012.6265903
Filename :
6265903
Link To Document :
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