Review of Modeling and Control of Magnetostrictive Actuators
Abstract
:1. Introduction
- Micropositioning. The micrometric strokes of both Terfenol and Galfenol alloys, along with high exerted forces, is exploited for micropositioning task, normally with low or very low working frequencies. Micrometric or sub-micrometric actuations are normally attained. The actuation precision represents the basic performance parameter of such application, which could be compromised by rate-independent memory effects, i.e., hysteresis, mainly shown by rare earth-based ternary compounds [38,39,40,41].
- Motors. The relatively high strokes provided by magnetostrictive materials allows conceiving micro- or inchworm-motors [38,42,43] with promising characteristics in terms of forces/torques and resolution at low speed. Several solution have been proposed in the last decades, such as friction motors, e.g., Flex-M1 by Cedrat Researches [44] or other prototypes invented in different research centers. An interesting and quite exhaustive review was provided by Claeyssen et al. [11]. The availability of Fe-Ga alloys allowed inventing micro-motors where the active material was suitably shaped due to its good mechanical characteristics [45], which demonstrated the applicability of lower-stroke magnetostrictives for actuation purposes.
- Active Vibration Control. This application has seen piezo-actuators as the leading solution in high frequency application of smart materials. However, due to their high strokes and higher energy density (1.4–2.5 J/m), magnetostrictive materials attracted the interests for that kind of high frequency actuation [46,47]. During the early 2000s, EU projects facilitated the rise of research consortiums from industries and research institutions to seek new solutions to the vibration control for aeronautical applications (MESA and MESEMA projects), in which Terfenol-D was widely investigated [48].
- Miscellanea. The framework of application for magnetostrictive materials is not limited to the above issues, but offers specific solutions to specific actuation problems. Among them, the needle actuation for fuel injectors is one of the most interesting applications of MA [10], which were also exploited for micro-pumps [49] or acoustic applications [50].
- The active material, such as Terfenol or Galfenol, is in the shape of cylindrical rods, beams, cymbals, etc.
- The magnetic circuit is necessary to guide the magnetic flux lines and strengthen the field within the active material. Permanent magnets can be added to impart a magnetic bias to the active material.
- The power coil is required to apply the input current and to induce the magnetic field.
- The structural frame has the function of applying a mechanical prestress through the use of springs, to mechanically decouple the active rod from external forces and to make the displacement available outside by using a steel cylinder or a threaded bar.
- Sensor(s) is required to detect displacement, force, strain, current, etc. and is exploited for monitoring purposes or to provide the feedback signal in the feedback control loop.
2. Geometries and Design
2.1. Linear
2.2. Cantilever
2.3. Amplified Configurations
2.4. Inchworm Actuators
2.5. Others Geometries
2.6. Magnetoelectric Coupling in Magnetostrictive Actuators
3. Modeling
- Physics-based models or phenomenological models: In the first category, models relate some basic physical properties of magnetostrictive or magnetic behavior to macroscopic quantities, while, in the second category, the models simply treat the material as a black-box and relate the input and output from a phenomenological point of view.
- Linear, nonlinear or hysteretic models.
- One-input one-output models, two-input one-output models or two-input two-output models: These consider among the two mechanical local variables (strain and stress) and two magnetic ones (field and induction), or among the macroscopic variables (displacement and force, current and magnetic flux).
- Low frequency (rate-independent) or dynamic modeling: This considers whether dynamic phenomena within the active material, the structural frame (inertia or elastic effects) or the magnetic circuit (eddy currents, etc) are neglected.
- Dimension of modeling: The model may be composed by lumped elements or allow a spatial variability of fields in 1D, 2D or 3D.
Characterization
4. Control
Smart Self-Sensing
5. Applications
6. Conclusions
Funding
Conflicts of Interest
Appendix A. Technical Information on the Review
- TITLE ((magnetostrictive OR magnetostrictives) AND (review OR overview OR survey)), to look for other reviews.
- TITLE-ABS-KEY ((magnetostrictive OR magnetostrictives) AND (actuator OR actuators) AND ∗ AND ( model OR modeling OR modeling)), to look for papers on the ∗ type of model.
- TITLE-ABS-KEY ((magnetostrictive OR magnetostrictives) AND (actuator OR actuators) AND (control OR robust OR loop)), to look for papers on control systems.
- TITLE ((actuator OR actuators) AND (magnetostrictives OR magnetostrictive OR magnetostriction)), red line; and
- TITLE ((magnetostrictives OR magnetostrictive OR magnetostriction)), blue line.
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Effect: | Joule (Direct) | Villari (Inverse) | Wiedemann | Matteucci |
---|---|---|---|---|
Application: | Actuation | Sensing/Harvesting | Actuation/Torque | Sensing |
Sketch: | ||||
Reviews: | This review [9,10,11] | [12,13,14,15] | This review [5] | [5,8] |
Linear | Cantilever | Amplified | Inchworm | Others |
---|---|---|---|---|
[36,47,69,70,71,72,73,74,75,76,77,78] | [29,39,79,80,81,82,83,84,85,86] | [50,87,88,89,90,91,92,93,94,95,96,97,98] | [38,40,42,43,88,89,99,100,101,102] | [103,104,105,106] |
Linear | Nonlinear | Mechanical Dynamics | Electro-Magnetic Dynamics | Hysteresis | |
---|---|---|---|---|---|
0-D | [23,70,72,75,125,126,129,130] | [10,23,34,51,135,139,140] | [23,132,135] | [10,23,55,75,132,135,138,148,166] | [10,51,52,53,54,55,56,60,61,62,64,65,66,94,128,132,139,140,141,142,143,144,145,146,148,149,151,154,155,156,157,158,159,161,162,163,164,166,167,168,169,170,173,178,179,180] |
1-D | [23,70] | [23,57,131,134] | [10,34,64,72,128,129,130,131,139,144,145] | [61] | |
2-D | [23] | [23,34,60,137,138,146] | [60,137,151] | [60,136,168] | |
3-D | [23] | [58,59] | [94] | [62,169] |
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Apicella, V.; Clemente, C.S.; Davino, D.; Leone, D.; Visone, C. Review of Modeling and Control of Magnetostrictive Actuators. Actuators 2019, 8, 45. https://doi.org/10.3390/act8020045
Apicella V, Clemente CS, Davino D, Leone D, Visone C. Review of Modeling and Control of Magnetostrictive Actuators. Actuators. 2019; 8(2):45. https://doi.org/10.3390/act8020045
Chicago/Turabian StyleApicella, Valerio, Carmine Stefano Clemente, Daniele Davino, Damiano Leone, and Ciro Visone. 2019. "Review of Modeling and Control of Magnetostrictive Actuators" Actuators 8, no. 2: 45. https://doi.org/10.3390/act8020045
APA StyleApicella, V., Clemente, C. S., Davino, D., Leone, D., & Visone, C. (2019). Review of Modeling and Control of Magnetostrictive Actuators. Actuators, 8(2), 45. https://doi.org/10.3390/act8020045