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Chiracu IG, Ojoc GG, Cristea GC, Boțan M, Cantaragiu Ceoromila A, Pîrvu C, Vasiliu AV, Deleanu L. Behavior of Composites Made of Quadriaxial Glass Fiber Fabrics and Epoxy Resin under Three-Point Bending. Polymers (Basel) 2024; 16:1925. [PMID: 39000780 PMCID: PMC11244386 DOI: 10.3390/polym16131925] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 05/15/2024] [Revised: 06/09/2024] [Accepted: 06/28/2024] [Indexed: 07/17/2024] Open
Abstract
This paper presents experimental results from three-point bending tests for a composite made of quadriaxial glass fiber fabrics and an epoxy resin. Two composites were tested, one with 8 layers and the other with 16 layers; both had the same matrix (the epoxy resin). Tests were carried out, using five different test rates from 10 mm/min to 1000 mm/min. The following parameters were recorded and calculated: Young's modulus, flexural stress, flexural strain, energy, force, and all four for the first peak. The experimental data reveal no sensitivity for these materials based on the test rates, at least for the analyzed range; but, the characteristics for the thicker composite, with 16 layers of fabric, are slightly lower than those for the thinner composite, with 8 layers. The results pointed out that, for the same thickness of composite, certain characteristics, such as stress at the first peak, the flexural modulus, strain at the first peak, and energy at the first peak, are not sensitive to the test rate in the range 10-1000 mm/min. The energy at the first peak is double for the 16-layer composite compared to the 8-layer composite, but the specific energy (as energy on cross-sectional area) has close values: 103.47 kJ/m2 for the 8-layer composite and 106.51 kJ/m2 for the 16-layer composite. The results recommend this composite for applications in components with resistance to bending or for low-velocity impact protection.
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Affiliation(s)
- Ioana Gabriela Chiracu
- Department of Mechanical Engineering, Faculty of Engineering, "Dunarea de Jos" University, 111 Domneasca, 800201 Galati, Romania
| | - George Ghiocel Ojoc
- Department of Mechanical Engineering, Faculty of Engineering, "Dunarea de Jos" University, 111 Domneasca, 800201 Galati, Romania
- Autonomous Flight Technologies, 1 Aeroportului, 077060 Clinceni, Romania
| | - George Cătălin Cristea
- National Institute for Aero-Space Research (INCAS) "Elie Carafoli", 220 Iuliu Maniu, 061126 Bucharest, Romania
| | - Mihail Boțan
- National Institute for Aero-Space Research (INCAS) "Elie Carafoli", 220 Iuliu Maniu, 061126 Bucharest, Romania
| | - Alina Cantaragiu Ceoromila
- Department of Mechanical Engineering, Faculty of Engineering, "Dunarea de Jos" University, 111 Domneasca, 800201 Galati, Romania
| | - Cătălin Pîrvu
- National Institute for Aero-Space Research (INCAS) "Elie Carafoli", 220 Iuliu Maniu, 061126 Bucharest, Romania
| | - Alexandru Viorel Vasiliu
- Department of Mechanical Engineering, Faculty of Engineering, "Dunarea de Jos" University, 111 Domneasca, 800201 Galati, Romania
| | - Lorena Deleanu
- Department of Mechanical Engineering, Faculty of Engineering, "Dunarea de Jos" University, 111 Domneasca, 800201 Galati, Romania
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Papanicolaou GC, Zaoutsos SP, Anastasiou DE. Manufacturing technology and dynamic mechanical investigation of moisture‐resistant
Luffa cylindrica
‐reinforced epoxy composites. J Appl Polym Sci 2022. [DOI: 10.1002/app.51697] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/06/2022]
Affiliation(s)
- George C. Papanicolaou
- Department of Mechanical and Aeronautical Engineering University of Patras Patras Greece
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Kontaxis LC, Kozaniti FK, Papanicolaou GC. Mechanical Behavior Modelling and Filler Geometry Effect of Glass Filler Reinforced Starch-Epoxy Hybrid Matrix Composites. MATERIALS 2021; 14:ma14216587. [PMID: 34772113 PMCID: PMC8585403 DOI: 10.3390/ma14216587] [Citation(s) in RCA: 2] [Impact Index Per Article: 0.5] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Subscribe] [Scholar Register] [Received: 09/13/2021] [Revised: 10/22/2021] [Accepted: 10/28/2021] [Indexed: 11/24/2022]
Abstract
The aim of the present study is to investigate the inclusion geometry and concentration effect on the quasi-static properties of a starch-epoxy hybrid matrix composite. The composites investigated consisted of a starch-epoxy hybrid matrix reinforced with four different glass inclusions such as 3 mm long chopped strands, 0.2 mm long short glass fibers, glass beads (120 μm in diameter) and glass bubbles (65 μm in diameter) at different concentrations. The flexural modulus and the strength of all materials tested were determined using three-point bending tests. The Property Prediction Model (PPM) was applied to predict the experimental findings. The model predicted remarkably well the mechanical behavior of all the materials manufactured and tested. The maximum value of the flexural modulus in the case of the 3 mm long chopped strands was found to be 75% greater than the modulus of the hybrid matrix. Furthermore, adding glass beads in the hybrid matrix led to a simultaneous increase in both the flexural modulus and the strength.
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Papanicolaou GC, Portan DV, Kontaxis LC. Interrelation between Fiber-Matrix Interphasial Phenomena and Flexural Stress Relaxation Behavior of a Glass Fiber-Polymer Composite. Polymers (Basel) 2021; 13:polym13060978. [PMID: 33806764 PMCID: PMC8004977 DOI: 10.3390/polym13060978] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 02/05/2021] [Revised: 03/19/2021] [Accepted: 03/19/2021] [Indexed: 11/16/2022] Open
Abstract
The response of fiber-reinforced polymer composites to an externally applied mechanical excitation is closely related to the microscopic stress transfer mechanisms taking place in the fiber–matrix interphasial region. In particular, in the case of viscoelastic responses, these mechanisms are time dependent. Defining the interphase thickness as the maximum radial distance from the fiber surface where a specific matrix property is affected by the fiber presence, it is important to study its variation with time. In the present investigation, the stress relaxation behavior of a glass fiber-reinforced polymer (GFRP) under flexural conditions was studied. Next, applying the hybrid viscoelastic interphase model (HVIM), developed by the first author, the interphase modulus and interphase thickness were both evaluated, and their variation with time during the stress relaxation test was plotted. It was found that the interphase modulus decreases with the radial distance, being always higher than the bulk matrix modulus. In addition, the interphase thickness increases with time, showing that during stress relaxation, fiber–matrix debonding takes place. Finally, the effect of fiber interaction on the interphase modulus was found. It is observed that fiber interaction depends on both the fiber–matrix degree of adhesion as well as the fiber volume fraction and the time-dependent interphase modulus.
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Experimental Study on Damage Identification of Nano-SiO 2 Concrete Filled GFRP Tube Column Using Piezoceramic Transducers. SENSORS 2020; 20:s20102883. [PMID: 32438721 PMCID: PMC7288003 DOI: 10.3390/s20102883] [Citation(s) in RCA: 4] [Impact Index Per Article: 0.8] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Subscribe] [Scholar Register] [Received: 03/28/2020] [Revised: 04/29/2020] [Accepted: 05/12/2020] [Indexed: 12/15/2022]
Abstract
This paper proposes a new approach to damage detection of nano-SiO2 concrete-filled glass fiber reinforced polymer (GFRP) tube column using piezoceramic transducers. Stress waves are emitted and received by a pair of piezoceramic transducers embedded in the concrete-filled GFRP tube, and the energy and damage indices at different levels of loading in the tube are obtained by wavelet packet to evaluate the damage degree of GFRP tube nano-SiO2 concrete column. Through the experimental studies, the effects of different nano-SiO2 contents, concrete grades, and superplasticizer on the damage were analyzed to gain load–displacement curves, load–energy index curves, and load–damage index curves. The results show that the wave method can be adopted to monitor the damage of GFRP tube nano-SiO2 concrete column. The specimens with 3% nano-SiO2 content have the smallest energy change rate, indicating that adding 3% nano-SiO2 content into concrete can effectively delay the development of damage. After the addition of superplasticizer, with the increase in the strength grade of concrete, the cracks in the specimen tend to develop slowly, and therefore the specimens have a stronger resistance to damage. The damage of the specimens with the nano-SiO2 content of 1% appeared the latest, while the damage without the nano-SiO2 specimen appeared the fastest. The experimental results show that this method can better monitor the damage of the Nano-SiO2 concrete in the glass fiber reinforced polymer (GFRP) tube.
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Glaskova-Kuzmina T, Aniskevich A, Papanicolaou G, Portan D, Zotti A, Borriello A, Zarrelli M. Hydrothermal Aging of an Epoxy Resin Filled with Carbon Nanofillers. Polymers (Basel) 2020; 12:E1153. [PMID: 32443583 PMCID: PMC7284495 DOI: 10.3390/polym12051153] [Citation(s) in RCA: 14] [Impact Index Per Article: 2.8] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 04/28/2020] [Revised: 05/13/2020] [Accepted: 05/15/2020] [Indexed: 11/16/2022] Open
Abstract
The effects of temperature and moisture on flexural and thermomechanical properties of neat and filled epoxy with both multiwall carbon nanotubes (CNT), carbon nanofibers (CNF), and their hybrid components were investigated. Two regimes of environmental aging were applied: Water absorption at 70 °C until equilibrium moisture content and thermal heating at 70 °C for the same time period. Three-point bending and dynamic mechanical tests were carried out for all samples before and after conditioning. The property prediction model (PPM) was successfully applied for the prediction of the modulus of elasticity in bending of manufactured specimens subjected to both water absorption and thermal aging. It was experimentally confirmed that, due to addition of carbon nanofillers to the epoxy resin, the sorption, flexural, and thermomechanical characteristics were slightly improved compared to the neat system. Considering experimental and theoretical results, most of the epoxy composites filled with hybrid carbon nanofiller revealed the lowest effect of temperature and moisture on material properties, along with the lowest sorption characteristics.
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Affiliation(s)
| | - Andrey Aniskevich
- Institute for Mechanics of Materials, University of Latvia, LV-1004 Riga, Latvia;
| | - George Papanicolaou
- Composite Materials Group, Department of Mechanical Engineering & Aeronautics, University of Patras, GR-26500 Patras, Greece; (G.P.); (D.P.)
| | - Diana Portan
- Composite Materials Group, Department of Mechanical Engineering & Aeronautics, University of Patras, GR-26500 Patras, Greece; (G.P.); (D.P.)
| | - Aldobenedetto Zotti
- Institute for Polymers, Composites and Biomaterials, National Research Council of Italy, 80055 Portici, Italy; (A.Z.); (A.B.); (M.Z.)
| | - Anna Borriello
- Institute for Polymers, Composites and Biomaterials, National Research Council of Italy, 80055 Portici, Italy; (A.Z.); (A.B.); (M.Z.)
| | - Mauro Zarrelli
- Institute for Polymers, Composites and Biomaterials, National Research Council of Italy, 80055 Portici, Italy; (A.Z.); (A.B.); (M.Z.)
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