A Physics-Based Hybrid Dynamical Model of Hysteresis in Polycrystalline Shape Memory Alloy Wire Transducers

被引:7
作者
Mandolino, Michele A. [1 ]
Scholtes, Dominik [1 ]
Ferrante, Francesco [2 ]
Rizzello, Gianluca [1 ]
机构
[1] Saarland Univ, Dept Syst Engn, D-66123 Saarbrucken, Germany
[2] Univ Perugia, Dept Engn, I-06123 Perugia, Italy
关键词
Wires; Hysteresis; Mathematical models; Modeling; Load modeling; Numerical models; Martensite; Hybrid systems; hysteresis; minor loops; modeling; polycrystalline; shape memory alloy (SMA) wire actuator; CONSTITUTIVE MODEL; ACTUATORS; FRAMEWORK;
D O I
10.1109/TMECH.2023.3253250
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Shape memory alloys (SMAs) are a class of smart materials that exhibit a macroscopic contraction of up to 5% when heated via an electric current. This effect can be exploited for the development of novel unconventional actuators. Despite having many features such as compactness, lightweight, and high energy density, commercial SMA wires are characterized by a highly nonlinear behavior, which manifests itself as a load-, temperature-, and rate-dependent hysteresis exhibiting a complex shape and minor loops. Accurate modeling and compensation of such hysteresis are fundamental for the development of high-performance SMA applications. In this work, we propose a new dynamical model to describe the complex hysteresis of polycrystalline SMA wires. The approach is based on a reformulation of the Muller-Achenbach-Seelecke model for uniaxial SMA wires within a hybrid dynamical framework. In this way, we can significantly reduce the numerical complexity and computation time without losing accuracy and physical interpretability. After describing the model, an extensive experimental validation campaign is carried out on a 75-mu m diameter SMA wire specimen. The new hybrid model will pave the development of hybrid controllers and observers for SMA actuators.
引用
收藏
页码:2529 / 2540
页数:12
相关论文
共 35 条
[1]   Improvements and algorithmical considerations on a recent three-dimensional model describing stress-induced solid phase transformations [J].
Auricchio, F ;
Petrini, L .
INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN ENGINEERING, 2002, 55 (11) :1255-1284
[2]   Mesoscopic free energy as a framework for modeling shape memory alloys [J].
Ballew, Wesley ;
Seelecke, Stefan .
JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, 2019, 30 (13) :1969-2012
[3]   Hysteresis Modeling, Identification and Fuzzy PID Control of SMA Wire Actuators Using Generalized Prandtl-Ishlinskii Model with Experimental Validation [J].
Basaeri, Hamid ;
Zakerzadeh, Mohammad Reza ;
Yousefi-Koma, Aghil ;
Rad, Nafise Faridi ;
Mahdavian, Mohammad .
JOURNAL OF COMPUTATIONAL APPLIED MECHANICS, 2019, 50 (02) :263-274
[4]  
Bernard P, 2020, IEEE DECIS CONTR P, P5767, DOI 10.1109/CDC42340.2020.9304274
[5]  
Chaudhari Rakesh, 2021, Recent Advances in Mechanical Infrastructure. Proceedings of ICRAM 2020. Lecture Notes in Intelligent Transportation and Infrastructure (LNITI), P123, DOI 10.1007/978-981-33-4176-0_10
[6]   A constitutive model for cyclic actuation of high-temperature shape memory alloys [J].
Chemisky, Yves ;
Chatzigeorgiou, George ;
Kumar, Parikshith ;
Lagoudas, Dimitris C. .
MECHANICS OF MATERIALS, 2014, 68 :120-136
[7]   A review of constitutive models and modeling techniques for shape memory alloys [J].
Cisse, Cheikh ;
Zaki, Wael ;
Ben Zineb, Tarak .
INTERNATIONAL JOURNAL OF PLASTICITY, 2016, 76 :244-284
[8]   Shape Memory Alloys for Aerospace, Recent Developments, and New Applications: A Short Review [J].
Costanza, Girolamo ;
Tata, Maria Elisa .
MATERIALS, 2020, 13 (08)
[9]   Differential hysteresis modeling of a shape memory alloy wire actuator [J].
Dutta, SM ;
Ghorbel, FH .
IEEE-ASME TRANSACTIONS ON MECHATRONICS, 2005, 10 (02) :189-197
[10]  
G Sanfelice R., 2020, Hybrid Feedback Control