Effect of Process Parameters on Thermal and Mechanical Properties of Filament Wound Polymer-Based Composite Pipes

Author:

Srebrenkoska Sara1,Kochoski Filip2ORCID,Srebrenkoska Vineta2ORCID,Risteska Svetlana3,Kotynia Renata4ORCID

Affiliation:

1. Faculty of Mechanical Engineering, Goce Delcev University, Krste Misirkov 10-A, P.O. Box 201, 2000 Stip, North Macedonia

2. Faculty of Technology, Goce Delcev University, Krste Misirkov 10-A, P.O. Box 201, 2000 Stip, North Macedonia

3. Institute for Advanced Composites and Robotics (IACR), 7500 Prilep, North Macedonia

4. Faculty of Civil Engineering, Architecture and Environmental Engineering, Lodz University of Technlogy (TUL), 93-590 Lodz, Poland

Abstract

The aim of this study was to investigate the mechanical and thermal properties of composite pipes based on epoxy resin and glass fibers produced by filament winding (FW) technology. Epoxy resins are widely used polymers in FW composite structures. The thermal characterization of the neat epoxy resin, curing, and post-curing characteristics for the determination of polymerization and glass transition temperature was performed, which is important for the mechanical properties of polymer composite pipes. In the present work, the applicability of the full factorial experimental design in predicting the hoop tensile and compressive strengths of glass fiber/epoxy resin composite pipes was investigated. The composite pipes in accordance with the 23 full factorial experimental design by using of three parameters and two levels of variation were prepared. The winding speed of the composites was taken to be the first factor, the second was the fiber tension, and the third was winding angle. To approximate the response, i.e., the mechanical properties of the composite pipes within the study domain, the first-order linear model with the interaction was used. The influence of each individual factor to the response function was established, as well as the influence of the interaction of the two and three factors. Additionally, those results were completed with the thermal characterization of the polymer composite pipes. From received results from mechanical and thermal characterization, it was concluded that the properties of composite specimens were highly affected by the analyzed parameters in filament winding technology. It was found that the estimated first-degree regression equation with the interaction gave a very good approximation of the experimental results of the hoop tensile and the compressive strengths of composite pipes within the study domain.

Funder

COST Action TU1207

Publisher

MDPI AG

Subject

Polymers and Plastics,General Chemistry

Reference36 articles.

1. Analysis of Filament Wound Composite Structures Considering the Change of Winding Angles Through the Thickness Direction;Park;Compos. Struct.,2002

2. Fatigue Failure Behavior of Glass/Epoxy ±55° Filament Wound Pipes Under Internal Pressure;Gemi;Compos. Sci. Technol.,2004

3. Biaxial Fatigue Behaviour of a Multidirectional Filament-Wound Glass-Fiber/Epoxy Pipe;Ellyin;Compos. Sci. Technol.,2001

4. Hoop Strength Characterization of High Strength Carbon Fibre Composites;Etemad;Composites,1992

5. Aydin, M. (2019). Development of Fiber Reinforced Cylindrical Composite Structures by Filament Winding Technique. [Master’s Thesis, Izmir Institute of Technology İYTE].

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