Title :
Active damping control of linear hybrid stepping motor for cogging force compensation
Author :
Hwang, Tai-Sik ; Seok, Jul-Ki ; Kim, Dong-Hun
Author_Institution :
Sch. of Electr. Eng., Yeungnam Univ., Kyungbuk, South Korea
Abstract :
Linear hybrid stepping motors (LHSMs) have a simple structure and provide ripple-free holding force at the aligned position. Despite these attractive features, however, an LHSM delivers strong thrust vibrations during position-to-position movement that are the dominant cause of the positioning error, mechanical stress, and acoustic noise. In order to overcome this defect, we have developed an active control scheme to damp the vibration of a π/4-multiple-pitched LHSM by a feed-forward compensation signal. Utilizing an elaborate reluctance network based on the finite-element analysis to take the nonlinear magnetic properties into account, we model the LHSM with force ripple components as a nonlinear position-dependent function. We estimate the damping force signal from the Jacobian linearization observer. The positioning accuracy is significantly improved through a closed-loop control scheme for restraining the thrust ripple.
Keywords :
closed loop systems; compensation; control system analysis; damping; feedforward; finite element analysis; linear motors; linearisation techniques; reluctance motors; stepping motors; vibration control; Jacobian linearization observer; acoustic noise; active damping control; closed-loop control; cogging force compensation; damping force signal; feedforward compensation; finite-element analysis; force ripple components; linear hybrid stepping motor; mechanical stress; nonlinear magnetic properties; position-to-position movement; positioning errors; reluctance network; ripple-free holding force; thrust ripples; thrust vibrations; Acoustic noise; Damping; Feedforward systems; Finite element methods; Force control; Forging; Magnetic analysis; Reluctance motors; Stress; Vibration control; Active control scheme; closed-loop control; feed-forward compensation; linear hybrid stepping motors (LHSMs); thrust vibrations;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2005.860961