Acceso abierto

Structural Integrity of Three Dimensional Printed Carbon Fiber Composites/Nanocomposites for Aeronautical Components—Current Scenarios and Opportunities

  
24 dic 2024

Cite
Descargar portada

Ciecieląg, K., K. Kęcik, and K. Zaleski, Effect of depth surface defects in carbon fibre reinforced composite material on the selected recurrence quantifications. Advances in Materials Science, 2020. 20(2): p. 71-80. Search in Google Scholar

Soni, D.L. and Jagadish, Current Aspects of Additive Manufacturing in the Aerospace Industry. Additive Manufacturing with Novel Materials: Processes, Properties and Applications, 2024: p. 409-427. Search in Google Scholar

Kausar, A., Advances in carbon fiber reinforced polyamide-based composite materials. Advances in materials science, 2019. 19(4): p. 67-82. Search in Google Scholar

Tamadon, A., et al., 3D-printed tool shoulder design for the analogue modelling of bobbin friction stir weld joint quality. Advances in Materials Science, 2021. 21(1): p. 27-42. Search in Google Scholar

Chouhan, G. and G. Bala Murali, Designs, advancements, and applications of three-dimensional printed gyroid structures: A review. Proceedings of the Institution of Mechanical Engineers, Part E: Journal of Process Mechanical Engineering, 2024. 238(2): p. 965-987. Search in Google Scholar

Ding, Y., et al., Embedded 3D printing of UV-curable thermosetting composites with continuous fiber. Materials Horizons, 2024. Search in Google Scholar

Rahman, M., et al., A review on nanomaterial-based additive manufacturing: Dynamics in properties, prospects, and challenges. Progress in Additive Manufacturing, 2024. 9(4): p. 1197-1224. Search in Google Scholar

Cheng, P., et al., 3D printing continuous natural fiber reinforced polymer composites: A review. Polymers for Advanced Technologies, 2024. 35(1): p. e6242. Search in Google Scholar

Khan, N. and A. Riccio, A systematic review of design for additive manufacturing of aerospace lattice structures: Current trends and future directions. Progress in Aerospace Sciences, 2024. 149: p. 101021. Search in Google Scholar

Szafran, K.S. and Ł.A. Jeziorek, Using Own Algorithms to Increase the Quality and Fatigue Resistance of FDM Printing for Use in Drones and Small Aircraft. Fatigue of Aircraft Structures. Search in Google Scholar

Huang, J., et al., Structural Analysis and Testing of a Flexible Rudder Using a Cosine Honeycomb Structure. Aerospace, 2024. 11(6): p. 462. Search in Google Scholar

Mahshid, R. and M. Heidari-Rarani, 3D printing of thermosets and their corresponding composites, in Additive Manufacturing Materials and Technology. 2024, Elsevier. p. 213-233. Search in Google Scholar

Alakas, H.M., et al., Selection of 3D printing technologies for prosthesis production with multi-criteria decision making methods. International Journal on Interactive Design and Manufacturing (IJIDeM), 2024. 18(2): p. 911-927. Search in Google Scholar

Elahee, G.F., et al., On the cogent formulation of an elastomeric silicone ink material for direct ink write (DIW) 3D printing. Polymer Engineering & Science, 2024. 64(6): p. 2476-2490. Search in Google Scholar

Milutinović, B., et al., Comparative analysis of 3D printing technologies (FDM and SLA) for the production of complex geometry parts. Search in Google Scholar

BADEA, R., et al., Comparing 3D printing techniques (SLA vs. FDM) for their use in radionuclide metrology. Romanian Reports in Physics, 2024. 76: p. 802. Search in Google Scholar

Pandav, G., T. Karanwad, and S. Banerjee, Sketching feasibility of additively manufactured different size gradient conventional hollow capsular shells (HCSs) by selective laser sintering (SLS): From design to applications. Journal of the Mechanical Behavior of Biomedical Materials, 2024. 151: p. 106393. Search in Google Scholar

Melenka, G., et al., Advances in 2D and 3D braided composite materials modeling, in Handbook of Advances in Braided Composite Materials. 2024, Elsevier. p. 359-406. Search in Google Scholar

Wang, X., et al., 3D printing of polymer matrix composites: A review and prospective. Composites Part B: Engineering, 2017. 110: p. 442-458. Search in Google Scholar

Subramani, R., et al., Advancements in 3D printing materials: A comparative analysis of performance and applications. Applied Chemical Engineering, 2024: p. 3867-3867. Search in Google Scholar

No-Cortes, J., et al., Comparison of 3D-printed single crown outcomes among different computer-aided design software programs. 2024. Search in Google Scholar

Fu, W., et al., 3D-printed multi-material pyramids for broadband electromagnetic wave absorption. Materials Science and Engineering: B, 2024. 307: p. 117525. Search in Google Scholar

Sans, F.A., et al., Computer‐aided design and computer‐aided manufacturing poly (methyl methacrylate) interim veneers for immediate esthetic restoration of autotransplanted teeth. Dental Traumatology, 2024. 40(3): p. 325-332. Search in Google Scholar

Boopathi, S. and P. Kumar, Advanced bioprinting processes using additive manufacturing technologies: Revolutionizing tissue engineering. 3D Printing Technologies: Digital Manufacturing. Artificial Intelligence, Industry, 2024. 4: p. 95. Search in Google Scholar

Ford, S. and T. Minshall, Invited review article: Where and how 3D printing is used in teaching and education. Additive Manufacturing, 2019. 25: p. 131-150. Search in Google Scholar

Zotti, A., et al., Hierarchical aerospace epoxy composites of carbon fiber and hyperbranched filler: Toughening behavior from nanocomposites to composites. Composite Structures, 2024. 327: p. 117719. Search in Google Scholar

Rahmatabadi, D., et al., 4D printing and annealing of PETG composites reinforced with short carbon fibers. Physica Scripta, 2024. 99(5): p. 055957. Search in Google Scholar

Wang, W., et al., Fiber-laying-assisted material extrusion additive manufacturing of continuous carbon fiber reinforced SiC ceramic matrix composites. Materials Science and Engineering: A, 2024. 890: p. 145944. Search in Google Scholar

Sahu, R., et al., Interface engineering of carbon fiber composites using CNT: A review. Polymer Composites, 2024. 45(1): p. 9-42. Search in Google Scholar

Asyraf, M., et al., Advanced composite in aerospace applications: opportunities, challenges, and future perspective. Advanced Composites in Aerospace Engineering Applications, 2022: p. 471-498. Search in Google Scholar

Liu, X., et al. Enhancing Carbon Fiber Reinforced Polymer Composites by 3D Printing Optimization. in ASME Aerospace Structures, Structural Dynamics, and Materials Conference. 2024. American Society of Mechanical Engineers. Search in Google Scholar

Zhang, C. and K. Fu, Additively manufactured 3D short carbon fiber scaffold for thermoset composites. MRS Communications, 2024: p. 1-7. Search in Google Scholar

Heitkamp, T., et al., Design Principles and Restrictions for Continuous Fiber-Reinforced Additive Manufacturing. ASME Journal of Mechanical Design, 2024. 146. Search in Google Scholar

Varma, M.M.M., P.K. Baghel, and R. Raju, Additive manufacturing of thermosetting resins in-situ carbon fibers: a review. Recent Advances in Materials and Modern Manufacturing: Select Proceedings of ICAMMM 2021, 2022: p. 97-105. Search in Google Scholar

Stieven Montagna, L., et al., Recycling of carbon fiber-reinforced thermoplastic and thermoset composites: A review. Journal of Thermoplastic Composite Materials, 2023. 36(8): p. 3455-3480. Search in Google Scholar

Tekinalp, H.L., et al., Highly oriented carbon fiber–polymer composites via additive manufacturing. Composites Science and Technology, 2014. 105: p. 144-150. Search in Google Scholar

Ning, F., et al., Additive manufacturing of carbon fiber reinforced thermoplastic composites using fused deposition modeling. Composites Part B: Engineering, 2015. 80: p. 369-378. Search in Google Scholar

Tamez, M.B.A. and I. Taha, A review of additive manufacturing technologies and markets for thermosetting resins and their potential for carbon fiber integration. Additive Manufacturing, 2021. 37: p. 101748. Search in Google Scholar

Karimi, A., D. Rahmatabadi, and M. Baghani, Various FDM mechanisms used in the fabrication of continuous-fiber reinforced composites: a review. Polymers, 2024. 16(6): p. 831. Search in Google Scholar

Kaybal, H.B. and H. Ulus, Comparative analysis of thermoplastic and thermoset adhesives performance and the influence on failure analysis in jointed elium‐based composite structures. Polymer Composites, 2024. 45(4): p. 3474-3492. Search in Google Scholar

Wang, F., et al., Fabrication of a novel continuous fiber 3D printed thermoset all-composite honeycomb sandwich structure with polymethacrylimide foam reinforcement. Composites Communications, 2024. 45: p. 101794. Search in Google Scholar

Lu, S., et al., High-strength carbon fiber-reinforced polyether-ether-ketone composites with longer fiber retention length manufactured via screw extrusion-based 3D printing. Additive Manufacturing, 2024. 86: p. 104200. Search in Google Scholar

Yang, D., et al., Effects of crystallinity control on mechanical properties of 3D-printed short-carbon-fiber-reinforced polyether ether ketone composites. Polymer Testing, 2021. 97: p. 107149. Search in Google Scholar

Islam, M.Z., et al., Mechanical Characterization and Production of Various Shapes Using Continuous Carbon Fiber-Reinforced Thermoset Resin-Based 3D Printing. Polymers, 2024. 16(13): p. 1828. Search in Google Scholar

Patadia, M. and R. Sweat, Modelling and analysis of multiscale hybrid composite structures for virtual design and performance-driven manufacturing: a review. Advances in Materials and Processing Technologies, 2024: p. 1-36. Search in Google Scholar

Dev, B., C.R. Gujjala, and T. Maly, Thermo-mechanical analysis of a probe for electron paramagnetic resonance spectroscopy operating at cryogenic temperatures. Review of Scientific Instruments, 2019. 90(4). Search in Google Scholar

Zach, T.F. and M.C. Dudescu, The Three-Dimensional Printing of Composites: A Review of the Finite Element/Finite Volume Modelling of the Process. Journal of Composites Science, 2024. 8(4): p. 146. Search in Google Scholar

Gómez-Fernández, H., et al., Comprehensive review of the state-of-the-art in corneal 3D bioprinting, including regulatory aspects. International Journal of Pharmaceutics, 2024: p. 124510. Search in Google Scholar

Chen, X., et al., Field-based toolpath generation for 3D printing continuous fibre reinforced thermoplastic composites. Additive Manufacturing, 2022. 49: p. 102470. Search in Google Scholar

Al Rashid, A., H. Ikram, and M. Koç, Additive manufacturing and mechanical performance of carbon fiber reinforced Polyamide-6 composites. Materials Today: Proceedings, 2022. 62: p. 6359-6363. Search in Google Scholar

Chen, S., et al., Performance enhancement of 3D‐printed carbon fiber‐reinforced nylon 6 composites. Polymer Composites, 2024. 45(6): p. 5754-5772. Search in Google Scholar

Mohammadizadeh, M. and I. Fidan, Tensile performance of 3D-printed continuous fiber-reinforced nylon composites. Journal of Manufacturing and Materials Processing, 2021. 5(3): p. 68. Search in Google Scholar

Kim, H.C., R. Tu, and H.A. Sodano, Room temperature 3D printing of high-temperature engineering polymer and its nanocomposites with porosity control for multifunctional structures. Composites Part B: Engineering, 2024. 279: p. 111444. Search in Google Scholar

Tian, X., et al., Interface and performance of 3D printed continuous carbon fiber reinforced PLA composites. Composites Part A: Applied Science and Manufacturing, 2016. 88: p. 198-205. Search in Google Scholar

Ferreira, R.T.L., et al., Experimental characterization and micrography of 3D printed PLA and PLA reinforced with short carbon fibers. Composites Part B: Engineering, 2017. 124: p. 88-100. Search in Google Scholar

Acanfora, V., et al., On the effect of printing orientation on the surface roughness of an additive manufactured composite vertical tail. The International Journal of Advanced Manufacturing Technology, 2024. 130(9): p. 4543-4564. Search in Google Scholar

Kumari, S., et al. Advanced Welding of Dissimilar Materials for Aerospace and Automotive Applications. in E3S Web of Conferences. 2023. EDP Sciences. Search in Google Scholar

Zaghloul, M.M.Y., M.M.Y. Zaghloul, and M. Fuseini, Recent progress in Epoxy Nanocomposites: Corrosion, structural, flame retardancy and applications—A comprehensive review. Polymers for Advanced Technologies, 2023. Search in Google Scholar

Saxena, A., et al., A short review on machine learning for the purpose of optimizing and predicting the properties of polymeric nanocomposites. Materials Today: Proceedings, 2023. Search in Google Scholar

Cuellar, C., K. Watson, and E. Smela, Fabrication, characterization, and repair of nanocarbon-loaded aircraft paint-based sensors for real-world SHM: studies at the laboratory scale. Structural Health Monitoring, 2023: p. 14759217231198015. Search in Google Scholar

Ogunsola, S.S., et al., Carbon nanotubes for sustainable environmental remediation: A critical and comprehensive review. Nano-Structures & Nano-Objects, 2024. 37: p. 101099. Search in Google Scholar

K. C, N., et al., Carbon nanotube filled rubber nanocomposites. Frontiers in Carbon, 2024. 3: p. 1339418. Search in Google Scholar

Liu, D., et al., Functionalization of carbon nanotubes for multifunctional applications. Trends in Chemistry, 2024. Search in Google Scholar

Sui, G., et al., The dispersion of CNT in TPU matrix with different preparation methods: solution mixing vs melt mixing. Polymer, 2019. 182: p. 121838. Search in Google Scholar

Belkheir, M., et al., Effect of carbon nanotube (CNT)-reinforced polymers and biopolymer matrix on interface damage of nanocomposite materials. Emergent Materials, 2023: p. 1-14. Search in Google Scholar

Patadia, M., et al., Enhanced Multifunctionality in Carbon Fiber/Carbon Nanotube Reinforced PEEK Hybrid Composites: Superior Combination of Mechanical Properties, Electrical Conductivity, and EMI Shielding. Composites Part B: Engineering, 2024: p. 111674. Search in Google Scholar

Wang, D. and S. Li, Collaborative optimization design of lightweight and crashworthiness of the front-end structures of automobile body using HW–GRA for Pareto mining. Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science, 2021: p. 0954406221992802. Search in Google Scholar

Özçakır, G., Carbon Fiber and Its Composites: Synthesis, Properties, Applications. Sinop Üniversitesi Fen Bilimleri Dergisi, 2024. 9(1): p. 240-265. Search in Google Scholar

Wang, Y., et al., Sustainable self-healing at ultra-low temperatures in structural composites incorporating hollow vessels and heating elements. Royal Society Open Science, 2016. 3(9): p. 160488. Search in Google Scholar

Guadagno, L., et al., Functional structural nanocomposites with integrated self-healing ability. Materials Today: Proceedings, 2021. 34: p. 243-249. Search in Google Scholar

Ikumapayi, O.M. and E.T. Akinlabi, Efficacy of α-β grade titanium alloy powder (Ti–6Al–2Sn– 2Zr–2Mo–2Cr–0.25 Si) in surface modification and corrosion mitigation in 3.5% NaCl on friction stir processed armour grade 7075-T651 aluminum alloys—insight in defence applications. Materials Research Express, 2019. 6(7): p. 076546. Search in Google Scholar

Pappas, J.M. and X. Dong. Nanoporous Carbon Nanotube Coating for 3D Printing of High-Performance Continuous Fiber Reinforced Polymer Composites. in International Manufacturing Science and Engineering Conference. 2022. American Society of Mechanical Engineers. Search in Google Scholar

Mansour, M.T., K. Tsongas, and D. Tzetzis, 3D printed hierarchical honeycombs with carbon fiber and carbon nanotube reinforced acrylonitrile butadiene styrene. Journal of Composites Science, 2021. 5(2): p. 62. Search in Google Scholar

Kasraie, M., et al., Carbon nanotube as a conductive rheological modifier for carbon fiber-reinforced epoxy 3D printing inks. Composites Part B: Engineering, 2024. 282: p. 111583. Search in Google Scholar

Yu, A., et al., Molten Salt Electrolytic CO2-Derived Carbon-Based Nanomaterials for Energy Storage and Electrocatalysis: A Review. ACS Applied Nano Materials, 2024. Search in Google Scholar

Yuchang, Q., et al., Temperature dependence of the electromagnetic properties of graphene nanosheet reinforced alumina ceramics in the X-band. Journal of Materials Chemistry C, 2016. 4(22): p. 4853-4862. Search in Google Scholar

Obaid, A.N. and E. Al-Bermany, Impact of graphene nanosheets on adhesion and corrosion performance of reinforced polyurethane coating for aerospace aluminium alloy 2024-T3. International Journal of Adhesion and Adhesives, 2024. 132: p. 103695. Search in Google Scholar

Anu, K., et al., Carbon fiber-reinforced, activated carbon-embedded copper oxide nanoparticles/epoxy hybrid composites for EMI shielding in aircraft applications. Polymer Bulletin, 2024: p. 1-28. Search in Google Scholar

Tambe, P., M. Tanniru, and B.K. Sai, Structural/load bearing characteristics of polymer-graphene composites, in Polymer Nanocomposites Containing Graphene. 2022, Elsevier. p. 379-400. Search in Google Scholar

Ghimire, R. and F. Liou, Quasi-static multifunctional characterization of 3d-printed carbon fiber composites for compressive-electrical properties. Polymers, 2022. 14(2): p. 328. Search in Google Scholar

Xiao, R., et al., Stereolithography (SLA) 3D printing of carbon fiber-graphene oxide (CF-GO) reinforced polymer lattices. Nanotechnology, 2021. 32(23): p. 235702. Search in Google Scholar

Thomas, D., Enhancing the electrical and mechanical properties of graphene nanoplatelet composites for 3D printed microsatellite structures. Additive Manufacturing, 2021. 47: p. 102215. Search in Google Scholar

Chinmay, M., et al., Microstructural Modification, Mechanical Properties, and Wear Behaviour of Aged Al-Si-Mg/Si3N4 Composites for Aerospace Applications. International Journal of Lightweight Materials and Manufacture, 2024. Search in Google Scholar

Ismail, S.O., et al., Comprehensive study on tool wear during machining of fiber-reinforced polymeric composites. Machining and Machinability of Fiber Reinforced Polymer Composites, 2021: p. 129-147. Search in Google Scholar

Aslantas, K., et al., Effect of cutting conditions on tool wear and wear mechanism in micro-milling of additively manufactured titanium alloy. Tribology International, 2024. 193: p. 109340. Search in Google Scholar

Cococcetta, N.M., et al., Investigating surface finish, burr formation, and tool wear during machining of 3D printed carbon fiber reinforced polymer composite. Journal of manufacturing processes, 2020. 56: p. 1304-1316. Search in Google Scholar

Bianchi, I., et al., Effect of nozzle wear on mechanical properties of 3D printed carbon fiber-reinforced polymer parts by material extrusion. The International Journal of Advanced Manufacturing Technology, 2024. 130(9): p. 4699-4712. Search in Google Scholar

Lin, S., et al., Influence of structural geometry on tensile properties and fracture toughness in 3D printed novel structures. Engineering Failure Analysis, 2024. 161: p. 108277. Search in Google Scholar

Tiwary, V.K., A. Padmakumar, and V.R. Malik, Investigations on friction stir spot welding to overcome bed size limits of material extrusion (MEX) 3D printers. Rapid Prototyping Journal, 2024. 30(1): p. 106-123. Search in Google Scholar

Asmatulu, E., J. Twomey, and M. Overcash, Recycling of fiber-reinforced composites and direct structural composite recycling concept. Journal of Composite Materials, 2014. 48(5): p. 593-608. Search in Google Scholar

Huang, Y., et al., 3D printing of topologically optimized wing spar with continuous carbon fiber reinforced composites. Composites Part B: Engineering, 2024. 272: p. 111166. Search in Google Scholar

Skomorokhova, A.I., A.O. Glebov, and S.V. Karpov. Numerical modeling of strain-stress state of structures from porous materials. in AIP Conference Proceedings. 2024. AIP Publishing. Search in Google Scholar

Pappas, J.M., et al., A parametric study and characterization of additively manufactured continuous carbon fiber reinforced composites for high-speed 3D printing. The International Journal of Advanced Manufacturing Technology, 2021. 113: p. 2137-2151. Search in Google Scholar

Subhedar, K.M., et al., Effect of fibre orientation on mechanical properties of carbon fibre composites. Indian Journal of Engineering and Materials Sciences (IJEMS), 2021. 27(6): p. 1100-1103. Search in Google Scholar

Xiang, J., et al., Interlaminar and translaminar fracture toughness of 3D‐printed continuous fiber reinforced composites: A review and prospect. Polymer Composites, 2024. 45(5): p. 3883-3900. Search in Google Scholar

Kirmse, S., B. Ranabhat, and K.-T. Hsiao, Experimental and analytical investigation on the interlaminar shear strength of carbon fiber composites reinforced with carbon nanofiber z-threads. Materials Today Communications, 2020. 25: p. 101512. Search in Google Scholar

Somireddy, M., C. Singh, and A. Czekanski, Mechanical behaviour of 3D printed composite parts with short carbon fiber reinforcements. Engineering Failure Analysis, 2020. 107: p. 104232. Search in Google Scholar

Iragi, M., et al., Ply and interlaminar behaviours of 3D printed continuous carbon fibre-reinforced thermoplastic laminates; effects of processing conditions and microstructure. Additive Manufacturing, 2019. 30: p. 100884. Search in Google Scholar

Caminero, M., et al., Interlaminar bonding performance of 3D printed continuous fibre reinforced thermoplastic composites using fused deposition modelling. Polymer Testing, 2018. 68: p. 415-423. Search in Google Scholar

Uşun, A., B.B. Vatandaş, and R. Gümrük, Enhanced Mechanical Properties of Continuous Carbon Fiber Reinforced Polyether-Ether-Ketone Composites via Infrared Preheating and High Fiber Volume Fraction. Additive Manufacturing, 2024: p. 104289. Search in Google Scholar

Hou, Z., et al., Design and 3D printing of continuous fiber reinforced heterogeneous composites. Composite Structures, 2020. 237: p. 111945. Search in Google Scholar

Billerbeck, K., C. Hägele, and J. Träger, Relation of the working curve and exposure intensity in VPP 3D-printing. Progress in Additive Manufacturing, 2024. 9(4): p. 1015-1023. Search in Google Scholar

Niu, S., et al., Enhanced high-temperature dimensional accuracy by fibers in silica ceramic cores prepared through vat photopolymerization 3D printing. Ceramics International, 2024. Search in Google Scholar

Subramani, R., et al., Selection and Optimization of Carbon-Reinforced Polyether Ether Ketone Process Parameters in 3D Printing—A Rotating Component Application. Polymers, 2024. 16(10): p. 1443. Search in Google Scholar

Whitmore, S.A., Three-dimensional printing of “Green” fuels for low-cost small spacecraft propulsion systems. Journal of Spacecraft and Rockets, 2018. 55(1): p. 13-26. Search in Google Scholar

Rahman, M.A., et al., 3D printing of continuous carbon fiber reinforced thermoset composites using UV curable resin. Polymer Composites, 2021. 42(11): p. 5859-5868. Search in Google Scholar

Wu, H., et al., Evolution of Manufacturing Defects of 3D-Printed Thermoplastic Composites with Processing Parameters: A Micro-CT Analysis. Materials, 2023. 16(19): p. 6521. Search in Google Scholar

Huang, F., et al., Microcracking Resistance of 3D Printed Fibre Composites at Cryogenic Temperatures. Additive Manufacturing, 2024: p. 104307. Search in Google Scholar

Nishihara, K., et al., The Thermo-Mechanical Properties of Carbon-Fiber-Reinforced Polymer Composites Exposed to a Low Earth Orbit Environment. Aerospace, 2024. 11(3): p. 201. Search in Google Scholar

Di Trani, N., et al., Probing Physicochemical Performances of 3D Printed Carbon Fiber Composites During 8‐Month Exposure to Space Environment. Advanced Functional Materials, 2024. 34(13): p. 2310243. Search in Google Scholar

Barrios, M. and S. Van Sciver, Thermal conductivity of rigid foam insulations for aerospace vehicles. Cryogenics, 2013. 55: p. 12-19. Search in Google Scholar

Shemelya, C., et al., Anisotropy of thermal conductivity in 3D printed polymer matrix composites for space based cube satellites. Additive Manufacturing, 2017. 16: p. 186-196. Search in Google Scholar

Zhan, X., et al., Mechanical, Thermal, and Electrical Properties on 3D Printed Short Carbon Fiber Reinforced Polypropylene Composites. ACS Applied Polymer Materials, 2024. 6(7): p. 3787-3795. Search in Google Scholar

Stepashkin, А., et al., 3D-printed PEEK-carbon fiber (CF) composites: Structure and thermal properties. Composites Science and Technology, 2018. 164: p. 319-326. Search in Google Scholar

Samal, S.K., et al., 3D-printed satellite brackets: materials, manufacturing and applications. Crystals, 2022. 12(8): p. 1148. Search in Google Scholar

Chen, Y., et al., 3D printed carbon-fibre reinforced composite lattice structures with good thermal-dimensional stability. Composites Science and Technology, 2022. 227: p. 109599. Search in Google Scholar

Maier, R., et al., Investigation into thermomechanical response of polymer composite materials produced through additive manufacturing technologies. Materials, 2022. 15(14): p. 5069. Search in Google Scholar

Tuli, N.T., S. Khatun, and A.B. Rashid, Unlocking the future of precision manufacturing: A comprehensive exploration of 3D printing with fiber-reinforced composites in aerospace, automotive, medical, and consumer industries. Heliyon, 2024. Search in Google Scholar

Kausar, A. and I. Ahmad, Nanocomposites of nanocarbon functionalized carbon fibers— manufacturing to methodological applications. Advances in Materials Science, 2024. 24(1): p. 46-71. Search in Google Scholar

Ma, T., et al., Repairing surface defects of carbon fibers: Electrostatic spraying nano-carbons on stabilized PAN-fibers and subsequent thermal annealing. Surfaces and Interfaces, 2024. 52: p. 104783. Search in Google Scholar

Li, C.X., et al., Manufacturing Autoclave-Grade Thermoset Carbon Fiber-Reinforced Polymer Aerospace Composites without an Autoclave Using Nanoporous Materials. ACS Applied Materials & Interfaces, 2024. 16(19): p. 25280-25293. Search in Google Scholar

Qaidi, S.M., et al., Recycling of mine tailings for the geopolymers production: A systematic review. Case Studies in Construction Materials, 2022. 16: p. e00933. Search in Google Scholar

Qaidi, S.M., et al., Engineering properties of sustainable green concrete incorporating eco-friendly aggregate of crumb rubber: A review. Journal of Cleaner Production, 2021. 324: p. 129251. Search in Google Scholar

Idioma:
Inglés
Calendario de la edición:
4 veces al año
Temas de la revista:
Ciencia de los materiales, Materiales funcionales e inteligentes