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Research Article

Nonlinear behavior mechanism of change in electrical resistance on 3D printed carbon fiber / PA6 composites during cyclic tests

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Pages 1-20 | Received 28 Aug 2021, Accepted 16 Mar 2022, Published online: 30 Mar 2022

References

  • Matsuzaki R, Ueda M, Namiki M, et al. Three-dimensional printing of continuous-fiber composites by in-nozzle impregnation. Sci Rep. 2016;6(1):1–7.
  • Tian X, Liu T, Yang C, et al. Interface and performance of 3D printed continuous carbon fiber reinforced PLA composites. Compos Part A Appl Sci Manuf. 2016;88:198–205.
  • Klift F, Koga Y, Todoroki A, et al. 3D Printing of Continuous Carbon Fiber Reinforced Thermo-Plastic (CFRTP) Tensile Test Specimens. Open J Compos Mater. 2016;6(1):18–27.
  • Ferreira RTL, Amatte IC, Dutra TA, et al. Experimental Characterization and micrography of 3D printed PLA and PLA reinforced with short carbon fibers. Compos Part B. 2017;124(1):88–100.
  • Abadi HA, Thai H, Paton-Cole V, et al. Elastic properties of 3D printed fiber-reinforced structures. Compos Struct. 2018;193:8–18.
  • Dickson AN, Ross K, Dowling DP. Additive manufacturing of woven carbon fiber polymer composites. Compos Struct. 2018;206:637–643.
  • Koga Y, Todoroki A. Three-dimensionally printed designable joint for carbon fibre reinforced plastics. Adv Compos Mater. 2019;28(2):147–161.
  • Goh GD, Dikshit V, Nagalingam AP, et al. Characterization of mechanical properties and fracture mode of additively manufactured carbon fiber and glass fiber reinforced thermoplastics. Mater Design. 2018;137:79–89.
  • Mei H, Ali Z, Yan Y, et al. Influence of mixed isotropic fiber angles and hot press on the mechanical properties of 3D printed composites. Addit Manuf. 2019;27:150–158.
  • Ishii K, Todoroki A, Mizutani Y, et al. Bending fracture rule for 3D-printed curved continuous-fiber composite. Adv Compos Mater. 2019;28(4):383–395.
  • Naranjo-Lozada J, Ahuett-Garza H, Orta-Castanon P, et al. Tensile properties and failure behavior of chopped and continuous carbon fiber composites produced by additive manufacturing. Addit Manuf. 2019;26:227–241.
  • Todoroki A, Oasada T, Mizutani Y, et al. Tensile property evaluations of 3D printed continuous carbon fiber reinforced thermoplastic composites. Adv Compos Mater. 2020;29(2):147–162.
  • Ichihara N, Ueda M, Urushiyama Y, et al. Progressive damage simulation for a 3D -printed curvilinear continuous carbon fiber-reinforced thermoplastic based on continuum damage mechanics. Adv Compos Mater. 2020;29(5):459–474.
  • Ueda M, Kishimoto S, Yamawaki M, et al. 3D compaction printing of a continuous carbon fiber reinforced thermoplastic. Compos Part A Appl Sci Manuf. 2020;137:105985.
  • Sugiyama K, Matsuzaki R, Malakhov AV, et al. 3D printing of optimized composites with variable fiber volume fraction and stiffness using continuous fiber. Compos Sci Technol. 2020;186:107905.
  • He Q, Wang H, Fu K, et al. 3D printed continuous CF/PA6 composites: effect of microscopic voids on mechanical performance. Compos Sci Technol. 2020;191:108077.
  • Todoroki A, Oasada T, Ueda M, et al. Reinforcing in the lay-up direction with self-heating for carbon fiber composites fabricated using a fused filament fabrication 3D printer. Compos Struct. 2021;266:113815.
  • Blok LG, Longana ML, Yu H, et al. An investigation into 3D printing of fibre reinforced thermoplastic composites. Addit Manuf. 2018;22:176–186.
  • Matsuzaki R, Nakamura T, Sugiyama K, et al. Effects of set curvature and fiber bundle size on the printed radius of curvature by a continuous carbon fiber composite 3D printer. Addit Manuf. 2018;24:93–102.
  • Shiratori H, Todoroki A, Ueda M, et al. Mechanism of folding a fiber bundle in the curved section of 3D printed carbon fiber reinforced plastics. Adv Compos Mater. 2020;29(3):247–257.
  • Zhang H, Chen J, Yang D. Fibre misalignment and breakage in 3D printing of continuous carbon fibre reinforced thermoplastic composites. Addit Manuf. 2021;38:101775.
  • Nickels L. Carbon fiber 3D printing propels bike development. Reinforced Plastics. 2019;63(2):93–96.
  • Fu X, Chung DDL. Self-Monitoring of fatigue damage in carbon fiber reinforced cement. Cement Concrete Res. 1996;26(1):15–20.
  • Wang X, Chung DDL. Real-time monitoring of fatigue damage and dynamic strain in carbon fiber polymer-matrix composite by electrical resistance measurement. Smart Mater Struct. 1997;6(4):504–508.
  • Wang X, Chung DDL. Fiber breakage in polymer-matrix composite during static and fatigue loading, observed by electrical resistance measurement. J Mater Res. 1999;14(11):4224–4229.
  • Prasse T, Michel F, Mook G, et al. A comparative investigation of electrical resistance and acoustic emission during cyclic loading of CFRP laminates. Compos Sci Technol. 2001;61(6):831–835.
  • Todoroki A, Tanaka M, Shimamura Y. Measurement of orthotropic electric conductance of CFRP laminates and analysis of the effect on delamination monitoring with an electric resistance change method. Compos Sci Technol. 2002;62(5):619–628.
  • Mei Z, Guerrero VH, Kowalik DP, et al. Mechanical damage and strain in carbon fiber thermoplastic-matrix composite, sensed by electrical resistivity measurement. Polym Compos. 2002;23(3):425–432.
  • Angelidis N, Wei CY, Irving PE. The electrical resistance response of continuous carbon fiber composite laminates to mechanical strain. Compos Part A Appl Sci Manuf. 2004;35(10):1135–1147.
  • Todoroki A, Yoshida J. Electrical Resistance Change of Unidirectional CFRP Due to Applied Load. JSME Int J Series A. 2004;47(3):357–364.
  • Ogi K, Takao Y. Characterization of piezoresistance behavior in a CFRP unidirectional laminate. Sci Mater. 2005;65(2):231–239.
  • Wang S, Chung DDL. Self-sensing of flexural strain and damage in carbon fiber polymer-matrix composite by electrical resistance measurement. Carbon. 2006;44(13):2739–2751.
  • Todoroki A, Samejima Y, Hirano Y, et al. Piezoresistivity of unidirectional carbon/epoxy composites for multiaxial loading. Compos Sci Technol. 2009;69(11–12):1841–1846.
  • Wen J, Xia Z, Choy F. Damage detection of carbon fiber reinforced polymer composites via electrical resistance measurement. Compos Part B Eng. 2011;42(1):77–86.
  • Suzuki Y, Todoroki A, Matsuzaki R, et al. Impact-damage visualization in CFRP by resistive heating: development of a new detection method for indentations caused by impact loads. Compos Part A Appl Sci Manuf. 2012;43(1):53–64.
  • Todoroki A, Haruyama D, Mizutani Y, et al. Electrical Resistance Change of Carbon/Epoxy Composite Laminates under Cyclic Loading under Damage Initiation Limit. Open J Compos Mater. 2014;04(1):22–31.
  • Nishio Y, Todoroki A, Mizutani Y, et al. Piezoresistive effect of plain-weave CFRP fabric subjected to cyclic loading. Adv Compos Mater. 2017;26(3):229–243.
  • Yao X, Luan C, Zhang D, et al. Evaluation of carbon fiber-embedded 3D printed structures for strengthening and structural-health monitoring. Mater Design. 2017;114:424–432.
  • Luan C, Yao X, Shen H, et al. Self-sensing of Position-Related Loads in Continuous Carbon Fibers-Embedded 3D-Printed Polymer Structures Using Electrical Resistance Measurement. Sensors. 2018;18(994):1–14.
  • Iizuka K, Todoroki A, Takahashi T, et al. Reverse piezo-resistivity of 3D printed continuous carbon fiber/PA6 composites in a low stress range. Adv Compos Mater. 2021;30(4):380–395.

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