Materials Map

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The Materials Map is an open tool for improving networking and interdisciplinary exchange within materials research. It enables cross-database search for cooperation and network partners and discovering of the research landscape.

The dashboard provides detailed information about the selected scientist, e.g. publications. The dashboard can be filtered and shows the relationship to co-authors in different diagrams. In addition, a link is provided to find contact information.

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The Materials Map is still under development. In its current state, it is only based on one single data source and, thus, incomplete and contains duplicates. We are working on incorporating new open data sources like ORCID to improve the quality and the timeliness of our data. We will update Materials Map as soon as possible and kindly ask for your patience.

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Naji, M.
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Shirinbayan, Mohammadali

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Laboratory of Microstructure Studies and Mechanics of Materials

in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (56/56 displayed)

  • 2025Coupled effects of hygrothermal degradation and fatigue damage of sheet molding compound (SMC) composite1citations
  • 2024Investigation of manufacturing process effects on microstructure and fatigue prediction in composite automotive tailgate design3citations
  • 2024Investigation of manufacturing process effects on microstructure and fatigue prediction in composite automotive tailgate design3citations
  • 2024Effect of processing conditions on morphology and mechanical damage in glass‐reinforced polypropylene composite4citations
  • 2024Viscoelastic-damageable behavior of sheet molding compound (SMC) compositescitations
  • 2024Study of composite polymer degradation for high pressure hydrogen vessel by machine learning approach5citations
  • 2024Multi-scale fatigue damage analysis in filament-wound carbon fiber reinforced epoxy composites for hydrogen storage tanks4citations
  • 2024Coupled effects of hygrothermal degradation and fatigue damage of sheet molding compound (SMC) composite1citations
  • 2024Investigation of manufacturing process effects on microstructure and fatigue prediction in composite automotive tailgate design ; Int J Adv Manuf Technol3citations
  • 2024Exploring fatigue characteristics of metallic boss-polymer liner adhesion in hydrogen storage tanks: Experimental insights post surface treatment5citations
  • 2024Multi‐scale experimental investigation of porosity‐induced damage effects in filament‐wound carbon fiber reinforced epoxy composites used in hydrogen storage tanks2citations
  • 2023Optimal dome design for 700 bar hydrogen tank type IV : Hyperelliptic functions and shape factor3citations
  • 2023Manufacturing Process Effect on the Mechanical Properties of Glass Fiber/Polypropylene Composite Under High Strain Rate Loading: Woven (W-GF-PP) and Compressed GF50-PP6citations
  • 2023Design, fabrication, and evaluation of a small turbine blade manufactured by rotational molding4citations
  • 2023Exploring fatigue characteristics of metallic boss-polymer liner adhesion in hydrogen storage tanks: Experimental insights post surface treatment5citations
  • 2023Thermal, Tensile and Fatigue Behaviors of the PA6, Short Carbon Fiber-Reinforced PA6, and Continuous Glass Fiber-Reinforced PA6 Materials in Fused Filament Fabrication (FFF)19citations
  • 2022Mechanical behavior of polymer-based composites using fused filament fabrication under monotonic and fatigue loadings18citations
  • 2022Stereolithography of (meth)acrylate-based photocurable resin: Thermal and mechanical properties12citations
  • 2022Effect of build orientation and post-curing of (meth)acrylate‐based photocurable resin fabricated by stereolithography on the mechanical behavior from quasi-static to high strain rate loadings4citations
  • 2022Geometric Accuracy and Mechanical Behavior of PA6 Composite Curved Tubes Fabricated by Fused Filament Fabrication (FFF)8citations
  • 2021Multi-scale damage analysis and fatigue behavior of PLA manufactured by fused deposition modeling (FDM)49citations
  • 2021Multiscale damage analysis of the tension‐tension fatigue behavior of a low‐density sheet molding compound8citations
  • 2021Rotational Molding of Polyamide-12 Nanocomposites: Modeling of the Viscoelastic Behavior11citations
  • 2021Rotational Molding of Polyamide-12 Nanocomposites: Modeling of the Viscoelastic Behavior11citations
  • 2021Multi-scale analysis of mechanical properties and damage behavior of polypropylene composite (GF50-PP) plate at room and cryogenic temperatures12citations
  • 2021On the importance of physical and mechanical properties of PLGA films during drug release20citations
  • 2021Toward Polymeric and Polymer Composites Impeller Fabrication19citations
  • 2021Modeling of Short Fiber Reinforced Polymer Composites Subjected to Multi‐block Loading2citations
  • 2021Tension, compression, and shear behavior of advanced sheet molding compound (A-SMC): Multi-scale damage analysis and strain rate effect22citations
  • 2021Modeling of Short Fiber Reinforced Polymer Composites Subjected to Multi‐block Loading2citations
  • 2021Effect of process parameters on thermal and mechanical properties of polymer‐based composites using fused filament fabrication32citations
  • 2020Effect of thermal aging on crystallization behaviors and dynamic mechanical properties of glass fiber reinforced polyphenylene sulfide (PPS/GF) composites34citations
  • 2020Influence of process parameters on thermal and mechanical properties of polylactic acid fabricated by fused filament fabrication76citations
  • 2020Experimental and numerical multi-scale approach for Sheet-Molding-Compound composites fatigue prediction based on fiber-matrix interface cyclic damage10citations
  • 2020Investigation of magnetic composites using as photocatalyst and antibacterial application5citations
  • 2020Two Hybrid Approaches to Fatigue Modeling of Advanced-Sheet Molding Compounds (A-SMC) Composite6citations
  • 2020Two Hybrid Approaches to Fatigue Modeling of Advanced-Sheet Molding Compounds (A-SMC) Composite6citations
  • 2020Microstructure dependent fatigue life prediction for short fibers reinforced composites: Application to sheet molding compounds16citations
  • 2020Microstructure dependent fatigue life prediction for short fibers reinforced composites: Application to sheet molding compounds16citations
  • 2020Multiscale damage analysis of the tension‐tension fatigue behavior of a low‐density sheet molding compound8citations
  • 2020Multi‐scale analysis of short glass fiber‐reinforced polypropylene under monotonic and fatigue loading17citations
  • 2020Multiscale thermal study of virgin and aged polyphenylene sulfide reinforced by glass fiber20citations
  • 2020Micromechanical Modelling of Dynamic Behavior of Advanced Sheet Molding Compound (A-SMC) Composite8citations
  • 2020In vitro study of drug release from various loaded polyurethane samples and subjected to different non-pulsed flow rates16citations
  • 2019Conventional rotational molding process and aerodynamic characteristics of an axial-flow hollow blades rotor13citations
  • 2019Multiscale physicochemical characterization of a short glass fiber–reinforced polyphenylene sulfide composite under aging and its thermo-oxidative mechanism23citations
  • 2019Thermal aging effects on overall mechanical behavior of short glass fiber-reinforced polyphenylene sulfide composites31citations
  • 2018Multi-scale analysis of the effect of loading conditions on monotonic and fatigue behavior of a glass fiber reinforced polyphenylene sulfide (PPS) composite43citations
  • 2018Influence of loading conditions on the overall mechanical behavior of polyether-ether-ketone (PEEK)44citations
  • 2017Mechanical characterization of a Low Density Sheet Molding Compound (LD-SMC): Multi-scale damage analysis and strain rate effect37citations
  • 2017Multi-scale experimental investigation of the viscous nature of damage in Advanced Sheet Molding Compound (A-SMC) submitted to high strain rates28citations
  • 2017Coupled effect of loading frequency and amplitude on the fatigue behavior of advanced sheet molding compound (A-SMC)26citations
  • 2015Implementation of surface tension force in fluid flow during reactive rotational molding2citations
  • 2015Micro and macroscopic characterization of A-SMC under high speed tensile testcitations
  • 2015High strain rate visco-damageable behavior of Advanced Sheet Molding Compound (A-SMC) under tension43citations
  • 2014Some New Concepts of Shape Memory Effect of Polymers40citations

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Abdessalem, Abir
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Fitoussi, Joseph
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Laribi, Mohamed Amine
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Laribi, Mohamed-Amine
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Laribi, Mohamed
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Lucas, Albert
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Villalonga, Stéphane
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Farzaneh, Sedigheh
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Nikooharf, Mohammad Hossein
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Abbasnezhad, Navideh
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Khelladi, Sofiane
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Vanaei, Saeedeh
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Nouri Sedeh, M.
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Montazeri, A.
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Rezaei-Khamseh, Mojdeh
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Bakir, Farid
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Ben Dali, Hachmi
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Co-Authors (by relevance)

  • Abdessalem, Abir
  • Fitoussi, Joseph
  • Laribi, Mohamed Amine
  • Ben Daly, Hachmi
  • Tamboura, Sahbi
  • Nouira, Samia
  • Benfriha, Khaled
  • Bi, Robert Tie
  • Kallel, Achraf
  • Tie Bi, Robert
  • Laribi, Mohamed-Amine
  • Peixinho, Jorge
  • Hassine, Tarek
  • Laribi, Amine Mohamed
  • Kadri, K.
  • Ballut, S.
  • Guerard, G.
  • Abdallah, A. Ben
  • Thomas, Cedric
  • Feki, Imen
  • Maeso, Jean-Baptiste
  • Laribi, Mohamed
  • Aoussat, Améziane
  • Ahmadifar, Mohammad
  • Maeso, Jeanbaptiste
  • Heripre, Eva
  • Tcharkhtchi, Abbas
  • Lucas, Albert
  • Villalonga, Stéphane
  • Zirak, Nader
  • Farzaneh, Sedigheh
  • Jendli, Zouhaier
  • Nikooharf, Mohammad Hossein
  • Abbasnezhad, Navideh
  • Zywica, Grzegorz
  • Pereira, Michaël
  • Deligant, Michael
  • Saddaoui, Ouiza
  • Azzouz, Kamel
  • Mammeri, Amrid
  • Khelladi, Sofiane
  • Vanaei, Saeedeh
  • Vanaei, Hamid Reza
  • Nouri Sedeh, M.
  • Montazeri, A.
  • Tcharkhrtchi, Abbas
  • Rezaei-Khamseh, Mojdeh
  • Bakir, Farid
  • Bi, R. Tie
  • Ben Dali, Hachmi
  • Beigi Rizi, Hassan
  • Dali, Hachmi Ben
  • Zuo, Peiyuan
  • Vanaei, Hamidreza
  • Raissi, Kaddour
  • Sidhom, Habib
  • Laribi, Mohamad-Amine
  • Ayari, Houssem
  • Bendaly, Hachmi
  • Rizi, Hassan Beigi
  • Motamedi, Hossein
  • Gheisari, Khalil
  • Imaddahen, Amine
  • Tamboura, S.
  • Dali, H. Ben
  • Laribi, M. A.
  • Foucard, Mathieu
  • Imaddahen, Mohamed A.
  • Danlos, Amélie
  • Motaharinejad, Vajihe
  • Paridaens, Richard
  • Peiyuan, Zuo
  • Benevides, Rodrigo C.
  • Khavandi, Alireza
  • Arabi, Hossein
  • Meraghni, Fodil
  • Surowiec, Benjamin
  • Bocquet, Michel
  • Hamidi, A.
  • Illoul, A.
  • Abdallah-Elhirtsi, Sofiane
  • Ebrahimi, Kambiz
OrganizationsLocationPeople

document

Effect of processing conditions on morphology and mechanical damage in glass‐reinforced polypropylene composite

  • Nouira, Samia
  • Benfriha, Khaled
  • Peixinho, Jorge
  • Shirinbayan, Mohammadali
  • Fitoussi, Joseph
  • Hassine, Tarek
Abstract

This study aims to analyze the effect of processing parameters, particularly the cooling rate, on the morphology and mechanical properties of reinforced glass fiber polypropylene (GF-PP) films. To achieve the objective, a multi-scale analysis was performed to study the different morphology of neat PP and reinforced PP films obtained by controlling the thermal condition during the fabrication process. Films of PP with a thickness of about 100 μm have been prepared to observe the crystalline microstructure's formation and follow its kinetics on the scale of the spherulites. The same procedure was followed using a single glass fiber to obtain the mono-composite film of PP by controlling the interface/interphase between the fiber and the matrix. Moreover, the dependence of the damage mechanisms on the spherulite diameters and the mechanical test conditions was established. The deformation mechanisms (intra and inter-spherulitic damage) were analyzed qualitatively and quantitatively according to the controlled morphologies produced for the polymer and the composite, especially at the level of the transcrystalline phase. The results confirm that the processing parameters affect not only the width of the transcrystalline phase but also the morphology of the fiber-matrix interface. Furthermore, increasing the thickness of the transcrystalline phase exhibited remarkably higher interfacial shear strength, as demonstrated by the single fiber fragmentation test.

Topics
  • microstructure
  • polymer
  • phase
  • glass
  • glass
  • strength
  • composite
  • deformation mechanism
  • interfacial
  • size-exclusion chromatography
  • crystallization