Mixed-domain traveling-wave motor model with lossy (complex) material properties

被引:2
作者
Glenn, TS [1 ]
Ghandi, K [1 ]
Atalla, MJ [1 ]
Hagood, NW [1 ]
机构
[1] MIT, Act Mat & Struct Lab, Cambridge, MA 02139 USA
来源
SMART STRUCTURES AND MATERIALS 2001: MODELING, SIGNAL PROCESSING, AND CONTROL IN SMART STRUCTURES | 2001年 / 4326卷
关键词
piezoelectric; ultrasonic motor; modeling; rotor flexibility; stick-slip; friction; frequency domain; complex; loss;
D O I
10.1117/12.436505
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
A piezoelectric traveling-wave motor model has been developed with parameters entirely related to physical properties. The approach is well-rooted in the formulation suggested earlier by Hagood and McFarland, but several model improvements have been integrated in an effort to realize an accurate model suited for automated design optimization. Additional model considerations include a flexible rotor model and a hysteretic stick-slip friction contact model which replace the previous assumptions of a rigid rotor and pure slip. The most notable contribution has been the use of lossy (complex) material properties to account for inherent material losses, supplanting the use of non-physical damping coefficients. The model is partly formulated in the frequency domain, and by representing the modal states and forces as Fourier series expansions and retaining higher harmonic terms, it has been generalized to account for non-ideal traveling-wave excitation. Needing to simulate the hysteretic contact model in the time domain, a mixed-domain solution procedure has been implemented to maintain some of the computational efficiency of frequency domain analysis. A preliminary validation study has demonstrated excellent correlation between simulation results and experimental data for a commercial motor.
引用
收藏
页码:525 / 537
页数:13
相关论文
共 11 条
[1]  
[Anonymous], 1761987 ANSIIEEE
[2]   The importance of rotor flexibility in ultrasonic traveling wave motors [J].
Hagedorn, P ;
Sattel, T ;
Speziari, D ;
Schmidt, J ;
Diana, G .
SMART MATERIALS & STRUCTURES, 1998, 7 (03) :352-368
[3]  
Hagood N. W., 1990, Journal of Intelligent Material Systems and Structures, V1, P327, DOI 10.1177/1045389X9000100305
[4]   MODELING OF A PIEZOELECTRIC ROTARY ULTRASONIC MOTOR [J].
HAGOOD, NW ;
MCFARLAND, AJ .
IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 1995, 42 (02) :210-224
[5]   REPRESENTATION OF DIELECTRIC ELASTIC AND PIEZOELECTRIC LOSSES BY COMPLEX COEFFICIENTS [J].
HOLLAND, R .
IEEE TRANSACTIONS ON SONICS AND ULTRASONICS, 1967, SU14 (01) :18-+
[6]  
INMAN DJ, 1994, ENG VIBRATION, P99
[7]   A note on the contact problem in an ultrasonic travelling wave motor [J].
Schmidt, JP ;
Hagedorn, P ;
Miao, BQ .
INTERNATIONAL JOURNAL OF NON-LINEAR MECHANICS, 1996, 31 (06) :915-924
[8]  
SHERRIT S, 1998, P IEEE ULTR S, V1, P633
[9]  
SIEBERT WM, 1986, CIRCUITS SIGNALS SYS, P380
[10]   Loss mechanisms in piezoelectrics: How to measure different losses separately [J].
Uchino, K ;
Hirose, S .
IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 2001, 48 (01) :307-321