In the present study, viscoelastic response of an active fiber composite (AFC) is investigated by conducting stress relaxation and creep deformation tests, and the quasi-linear viscoelastic (QLV) constitutive model is used to describe the viscoelastic response of the AFC. The AFC under study consists of unidirectional long piezoelectric ceramic fibers embedded in an epoxy polymer, encapsulated between two Kapton layers with interdigitated surface electrodes. The relaxation and creep experiments are performed by loading the AFC samples along the longitudinal axis of the fibers, under several strain and stress levels at three temperatures, namely 25 °C, 50 °C, and 75 °C. The experimental results reveal the nonlinear viscoelastic behavior of the composite. Next, simulation and prediction of the viscoelastic response, including stress relaxation and creep deformation of the material, are done by using semi-analytical QLV model in which a relaxation time-dependent function is used, which also depends on strain and temperature. The results from the model are compared with those from the experiments. In general, the experimental and simulation results are in good agreement, except in the case of some of the creep responses, where considerable discrepancies are seen between the experimental and analytical approaches. Possible reasons for these differences are discussed in details.
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April 2014
Research-Article
Nonlinear Viscoelastic Behavior of Active Fiber Composites
Vahid Tajeddini,
Vahid Tajeddini
Mechanical Engineering Department,
Texas A&M University
,College Station, TX 77843
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Hassene Ben Atitallah,
Hassene Ben Atitallah
The Electroactive Materials
Characterization Laboratory,
Department of Mechanical
and Nuclear Engineering,
Characterization Laboratory,
Department of Mechanical
and Nuclear Engineering,
Pennsylvania State University
,University Park
,State College, PA 16801
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Anastasia Muliana,
Anastasia Muliana
Mechanical Engineering Department,
Texas A&M University
,College Station, TX 77843
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Zoubeida Ounaies
Zoubeida Ounaies
The Electroactive Materials
Characterization Laboratory,
Department of Mechanical
and Nuclear Engineering,
Characterization Laboratory,
Department of Mechanical
and Nuclear Engineering,
Pennsylvania State University
,University Park
,State College, PA 16801
Search for other works by this author on:
Vahid Tajeddini
Mechanical Engineering Department,
Texas A&M University
,College Station, TX 77843
Hassene Ben Atitallah
The Electroactive Materials
Characterization Laboratory,
Department of Mechanical
and Nuclear Engineering,
Characterization Laboratory,
Department of Mechanical
and Nuclear Engineering,
Pennsylvania State University
,University Park
,State College, PA 16801
Anastasia Muliana
Mechanical Engineering Department,
Texas A&M University
,College Station, TX 77843
Zoubeida Ounaies
The Electroactive Materials
Characterization Laboratory,
Department of Mechanical
and Nuclear Engineering,
Characterization Laboratory,
Department of Mechanical
and Nuclear Engineering,
Pennsylvania State University
,University Park
,State College, PA 16801
Contributed by the Materials Division of ASME for publication in the JOURNAL OF ENGINEERING MATERIALS AND TECHNOLOGY. Manuscript received October 3, 2013; final manuscript received January 8, 2014; published online February 5, 2014. Assoc. Editor: Hanchen Huang.
J. Eng. Mater. Technol. Apr 2014, 136(2): 021005 (8 pages)
Published Online: February 5, 2014
Article history
Received:
October 3, 2013
Revision Received:
January 8, 2014
Citation
Tajeddini, V., Ben Atitallah, H., Muliana, A., and Ounaies, Z. (February 5, 2014). "Nonlinear Viscoelastic Behavior of Active Fiber Composites." ASME. J. Eng. Mater. Technol. April 2014; 136(2): 021005. https://doi.org/10.1115/1.4026474
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