Study on the Actuating Performance of an Embedded Macro Fiber Composite Considering the Shear Lag Effect
Abstract
:1. Introduction
2. The Constitutive Relation of MFC
3. Actuating Force Calculation of the Embedded MFC
3.1. Equivalent Material Parameters
- (1)
- Determine the bending deformation equations of the laminated structure at the MFC bottom and the equivalent plate structure, as shown in Equation (7).
- (2)
- Establish the bending moment equilibrium equations of the laminated structure at the MFC bottom and equivalent plate structure, as shown in Equation (8).
- (3)
- Combine from Equations (7) and (8) to obtain the equivalent flexibility coefficient :from (9) transforms the laminated structure at the MFC bottom to the equivalent plate structure with the identical flexibility coefficient and deduces the functional form of the shearing stress distribution of the adhesive layer at the MFC bottom through the uniform strain model.
- (1)
- The MFC internal electric field is a uniform electric field along axis . Under voltage, the MFC is in the state of membrane stress, and its actuating direction strain remains unchanged along axis [27].
- (2)
- Since the composite layer at the MFC top is thin, this layer is considered to be in a state of membrane stress under the MFC actuating force.
- (3)
- The sandwich structure meets the Kirchhoff plate theory, i.e., it is believed to simultaneously create tension and compression and bending deformation, the stress along axis is ignored, and the normal direction displacement has no relation to [31].
- (4)
- When the stress boundary conditions are defined for the actuating force formula of the embedded MFC, it is assumed that there is no shearing stress in each layer at the central line location of the embedded MFC; when bending deformation is produced by the MFC to the sandwich structure, the actuating performance at the MFC end is weak, which indicates that the end position only has deformation related to the overall bending.
3.2. Actuating Pattern of an Embedded MFC Based on the Shearing Lag Model
4. Analysis of Examples
5. Conclusions
- (1)
- A research idea of investigating the actuating performance of an embedded MFC is proposed, which divides MFC into two non-interaction actuating units, and the laminated structure of the lower part of MFC is equivalent to the plate structure composed of homogenous material, which simplifies the analysis of the shear lag effect.
- (2)
- In the composite sandwich structure with an embedded MFC, there is shearing lag on the upper and lower surfaces of the MFC, and the MFC end actuating force is too great to ignore. The internal force calculation result of the embedded MFC actuating force formula is highly consistent with the ANSYS piezoelectric simulation.
- (3)
- The simulation of the composite sandwich structure was compared with Bernoulli–Euler model and shows that the deflection calculation result of the MFC actuating force considering the shearing lag effect is closer to that of ANSYS piezoelectric simulation. Thus, consideration of the MFC end actuating force is reasonable and applicable. This method can be further promoted to the fields of vibration reduction and deformation control of composite sandwich structures.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Du, L. Finite element analysis of bird strike on composite wing leading edge based on the coupling eulerian-lagrangian method. J. Vib. Shock. 2012, 31, 137–141. [Google Scholar]
- Yao, X.; Zeng, L.; Yang, W.; Zhang, A. Experimental research on fatigue life of bolt hole in marine composite laminates. Shipbuild. China 2010, 51, 78–84. [Google Scholar]
- Ye, H.; Zhu, Y.; Pu, R. Numerical simulation of strain rate effect of fiber reinforced composites. J. Jilin Univ. Eng. Technol. Ed. 2019, 49, 8. [Google Scholar]
- Chen, P.C.; Chopra, I. Induced strain actuation of composite beams and rotor blades with embedded piezoceramic elements. Smart Mater. Struct. 1996, 5, 35. [Google Scholar] [CrossRef]
- Chen, P.C.; Chopra, I. Wind tunnel test of a smart rotor model with individual blade twist control. J. Intell. Mater. Syst. Struct. 1997, 8, 414–425. [Google Scholar] [CrossRef]
- Tsushima, N.; Su, W. Active piezoelectric actuation and control of highly flexible multifunctional wings. In Proceedings of the 57th AIAA/ASCE/AHS/ASC Structures, Structural Dynamics, and Materials Conference, San Diego, CA, USA, 4–8 January 2016. [Google Scholar]
- Tsushima, N.; Su, W. Flutter suppression for highly flexible wings using passive and active piezoelectric effects. Aerosp. Sci. Technol. 2017, 65, 78–89. [Google Scholar] [CrossRef]
- Testa, C.; Bernardini, G.; Gennaretti, M. Aircraft cabin tonal noise alleviation through fuselage skin embedded piezoelectric actuators. J. Vib. Acoust. 2011, 133, 051009. [Google Scholar] [CrossRef]
- Bernardini, G.; Testa, C.; Gennaretti, M. Optimal design of tonal noise control inside smart-stiffened cylindrical shells. J. Vib. Control 2011, 18, 1233–1246. [Google Scholar] [CrossRef]
- Bernardini, G.; Testa, C.; Gennaretti, M. Tiltrotor cabin noise control through smart actuators. J. Vib. Control 2016, 22, 3–17. [Google Scholar] [CrossRef] [Green Version]
- Park, J.; Kim, J. Analytical development of single crystal macro fiber composite actuators for active twist rotor blades. Smart Mater. Struct. 2005, 14, 745. [Google Scholar] [CrossRef]
- Tu, J.; Zhang, J.; Li, Z.; Gao, K.; Liu, M. Research on actuation performance of macro fiber composites based on third order shear deformation theory. Smart Mater. Struct. 2020, 29, 015038. [Google Scholar] [CrossRef]
- Zhang, J.; Tu, J.; Li, Z.; Gao, K.; Xie, H. Modeling on actuation behavior of macro-fiber composite laminated structures based on sinusoidal shear deformation theory. Appl. Sci. 2019, 9, 2893. [Google Scholar] [CrossRef] [Green Version]
- Wilkie, W.K.; Bryant, R.G.; James, W.H.; Robert, L.F.; Richard, F.H.; Anthony, J., Jr.; Bruce, D.L.; Paul, H.M. Low-cost piezocomposite actuator for structural control applications. In Proceedings of the Spie the International Society for Optical Engineering, Newport Beach, CA, USA, 6–8 March 2000. [Google Scholar]
- Dębski, H.; Latalski, J. Numerical analysis of composite structures with embedded piezoelectric active elements. J. KONES Powertrain Transp. 2012, 19, 62–69. [Google Scholar] [CrossRef]
- Park, J.; Kim, J. Suppression of aero-thermal large deflections and snap-through behaviors of composite panels using macro fiber composite actuators. Smart Mater. Struct. 2004, 13, 1448–1459. [Google Scholar] [CrossRef]
- Park, J.; Kim, J. Design and aeroelastic analysis of active twist rotor blades incorporating single crystal macro fiber composite actuators. Compos. Part B 2008, 39, 1011–1025. [Google Scholar] [CrossRef]
- Tarazaga, P.A.; Inman, D.J.; Wilkie, W.K. Control of a space rigidizable inflatable boom using macro fiber composite actuators. J. Vib. Control 2007, 13, 935–950. [Google Scholar] [CrossRef]
- Paradies, R.; Ciresa, P. Active wing design with integrated flight control using piezoelectric macro fiber composites. Smart Mater. Struct. 2009, 18, 035010. [Google Scholar] [CrossRef]
- Molinari, G.; Arrieta, A.F.; Ermanni, P. Aero-structural optimization of three-dimensional adaptive wings with embedded smart actuators. AIAA J. 2014, 52, 1940–1951. [Google Scholar] [CrossRef]
- Zhou, J.; Xu, M.; Yang, Z. Aeroelastic stability analysis of curved composite panels with embedded macro fiber composite actuators. Compos. Struct. 2019, 308, 725–734. [Google Scholar] [CrossRef]
- Chopra, I. Review of current status of smart structures and integrated systems. Smart Struct. Mater. 1996 Smart Struct. Integr. Syst. 1996, 2717, 20–62. [Google Scholar]
- Lin, C.C.; Huang, H.N. Vibration control of beam–plates with bonded piezoelectric sensors and actuators. Comput. Struct. 1999, 73, 239–248. [Google Scholar] [CrossRef]
- Donoso, A.; Sigmund, O. Optimization of piezoelectric bimorph actuators with active damping for static and dynamic loads. Struct. Multidiscip. Optim. 2009, 38, 171–183. [Google Scholar] [CrossRef] [Green Version]
- Choi, S.B.; Lee, C.H. Force tracking control of a flexible gripper driven by piezoceramic actuators. Trans. ASME J. Dyn. Syst. Meas. Control. 1997, 119, 439–446. [Google Scholar] [CrossRef]
- Liang, L.; Yang, Z.; Ouyang, Y.; Wang, W. Optimization of piezoelectric actuator configuration on a vertical tail for buffeting control. Acta Aeronaut. ET Astronaut. Sin. 2016, 37, 9. [Google Scholar]
- Kwak, M.K.; Sciulli, D. Fuzzy-logic based vibration suppression control experiments on active structures. J. Sound Vib. 1996, 191, 15–28. [Google Scholar] [CrossRef]
- Crawley, E.F.; Anderson, E.H. Detailed models of piezoceramic actuation of beams. J. Intell. Mater. Syst. Struct. 1990, 1, 4–25. [Google Scholar] [CrossRef]
- Moheimani, S.O.R.; Fleming, A.J. Piezoelectric Transducers for Vibration Control and Damping; Springer: London, UK, 2006. [Google Scholar]
- Li, M.; Chen, W.-M.; Wang, M.-C.; Jia, L. A load simulation method of piezoelectric actuator in FEM for smart structures. Sci. China Ser. E-Tech. Sci. 2009, 52, 2576–2584. [Google Scholar] [CrossRef] [Green Version]
- Kapuria, S.; Sharma, B.N.; Arockiarajan, A. Dynamic shear-lag model for stress transfer in piezoelectric transducer bonded to plate. AIAA J. 2019, 57, 5. [Google Scholar] [CrossRef]
- Gao, L.; Lu, Q.; Fei, F.; Liu, L.; Liu, Y.; Leng, J. Active vibration control based on piezoelectric smart composite. Smart Mater. Struct. 2013, 22, 125032. [Google Scholar] [CrossRef]
- Touratier, M. An efficient standard plate theory. Int. J. Eng. Sci. 1991, 29, 901–916. [Google Scholar] [CrossRef]
- Li, X.; Liu, D. Generalized laminate theories based on double superposition hypothesis. Int. J. Numer. Meth. Eng. 1997, 40, 1197–1212. [Google Scholar] [CrossRef]
- Karama, M.; Afaq, K.S.; Mistou, S. Mechanical behaviour of laminated composite beam by the new multi-layered laminated composite structures model with transverse shear stress continuity. Int. J. Solids Struct. 2003, 40, 1525–1546. [Google Scholar] [CrossRef]
- Alghamdi, A.; Mummery, P.; Sheikh, M.A. Multi-scale 3D image-based modelling of a carbon/carbon composite. Model. Simul. Mater. Sci. Eng. 2013, 21, 085014. [Google Scholar] [CrossRef]
- Wei, C.Y.; Kukureka, S.N. Evaluation of damping and elastic properties of composites and composite structures by the resonance technique. J. Mater. Sci. 2000, 25, 3785–3792. [Google Scholar] [CrossRef]
- Dugnani, R. Extension of the crawley’s adhesive model to dynamically actuated piezoelectric transducers. J. Intell. Mater. Sys. Struct. 2015, 27, 2112–2124. [Google Scholar] [CrossRef]
Material Parameters | Composite Sandwich Structure | MFC Types | ||
---|---|---|---|---|
Composite [35] | Core Board [36,37] | Adhesive Layer [30] | P1 Type [31] | |
Elasticity modulus | 10.4 GPa | 2.45 Gpa | 4.7 Gpa | 30.336/15.857 Gpa (axis /axis ) |
Shear modulus | 6.20 Gpa | 0.94 Gpa | 1.67 Gpa | 6.06 Gpa |
Poisson ratio | 0.2 | 0.3 | 0.4 | 0.31 |
Piezoelectric strain constant | / | / | / | 460 × 10−12 C/N |
Piezoelectric strain constant | / | / | / | −210 × 10−12 C/N |
Geometric size | 196 × 42 × 1 mm2 | 196 × 42 × 10 mm2 | 28 × 14 × 0.04 mm2 | 28 × 14 × 0.3 mm2 |
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations. |
© 2022 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Wei, J.; Gao, S.; Zhang, J.; Tu, J. Study on the Actuating Performance of an Embedded Macro Fiber Composite Considering the Shear Lag Effect. Materials 2022, 15, 3968. https://doi.org/10.3390/ma15113968
Wei J, Gao S, Zhang J, Tu J. Study on the Actuating Performance of an Embedded Macro Fiber Composite Considering the Shear Lag Effect. Materials. 2022; 15(11):3968. https://doi.org/10.3390/ma15113968
Chicago/Turabian StyleWei, Jianhui, Shuang Gao, Jiarui Zhang, and Jianwei Tu. 2022. "Study on the Actuating Performance of an Embedded Macro Fiber Composite Considering the Shear Lag Effect" Materials 15, no. 11: 3968. https://doi.org/10.3390/ma15113968
APA StyleWei, J., Gao, S., Zhang, J., & Tu, J. (2022). Study on the Actuating Performance of an Embedded Macro Fiber Composite Considering the Shear Lag Effect. Materials, 15(11), 3968. https://doi.org/10.3390/ma15113968