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The studies of conductivity behavior of composite polymeric electrolytes (CPE) have been widely realized for about 15 years.
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Mechanics of Composite Materials encourages publication of original experimental and theoretical research on the mechanical properties and behavior of composite materials as well as matrices and fibres.
Hugh L.N. McManus, "High Temperature Thermomechanical Behavior of Composites".
The effective viscoelastic material behavior of a polymeric particulate composite is obtained from the micromechanics-based modeling with the properties of the individual material phases and corresponding volume fractions.
The mechanical behavior of polymeric fibrous composites under dynamic loading is not completely investigated.
The technique is then further extended to include linear viscoelastic capability to investigate the creep and relaxation behavior of polymeric matrix composites and stress field evolution with either continuous or discontinuous reinforcements.
An experimental investigation of the long-term creep behavior of fiber reinforced polymeric composite tubes subjected to flexural loading was performed.
In this study, we investigated the shape memory effect and drug release behavior of a biodegradable polymeric composite consisted of crosslinked poly(ε-caprolactone) (cPCL) and poly sebacic anhydride) (PSA).
An elastoplastic constitutive model is proposed to predict the overall behavior of nanoparticle-reinforced polymeric composites.
This paper is concerned with the optimization, with the inclusion of the microstructure, of the mechanical behavior of fiber-reinforced polymeric composites under both quasi-static and dynamic loading.
Then, the bridging matrix micromechanical model in combination with a constitutive equation for polymers is utilized to predict the elastic properties and mechanical behavior of fiber-reinforced polymeric composites under arbitrary applied strain rates.
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