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Original Articles

Health monitoring of composite single lap joints with highly sensitive MWCNTs film sensors

, , , , &
Pages 954-971 | Received 20 Feb 2021, Accepted 01 Jul 2021, Published online: 29 Jul 2021

References

  • Chadegani A, Batra RC. Analysis of adhesive-bonded single-lap joint with an interfacial crack and a void. Int J Adhes Adhes. 2011;31(6):455–465.
  • Ye J, Yan Y, Li J, et al. 3D explicit finite element analysis of tensile failure behavior in adhesive-bonded composite single-lap joints. Compos Struct. 2018;201:261–275.
  • Valente JPA, Campilho RDSG, Marques EAS, et al. Adhesive joint analysis under tensile impact loads by cohesive zone modelling. Compos Struct. 2019;222:110894.
  • Machado JJM, Gamarra PM-R, Marques EAS, et al. Numerical study of the behaviour of composite mixed adhesive joints under impact strength for the automotive industry. Compos Struct. 2018;185:373–380.
  • Liu Y, Lemanski S, Zhang X. Parametric study of size, curvature and free edge effects on the predicted strength of bonded composite joints. Compos Struct. 2018;202:364–373.
  • Neto JABP, Campilho RDSG, Silva LFMD. Parametric study of adhesive joints with composites. Int J Adhes Adhes. 2012;37:96–101.
  • Ribeiro FMF, Campilho RDSG, Carbas RJC, et al. Strength and damage growth in composite bonded joints with defects. Compos Part B-Eng. 2016;100:91–100.
  • Li J, Yan Y, Liang Z, et al. Experimental and numerical study of adhesively bonded CFRP scarf-lap joints subjected to tensile loads. J Adhesion. 2016;92(1):1–17.
  • Luo H, Yan Y, Zhang T, et al. Progressive failure and experimental study of adhesively bonded composite single-lap joints subjected to axial tensile loads. J Adhes Sci Technol. 2016;30(8):894–914.
  • Tang JH, Sridhar I, Srikanth N. Static and fatigue failure analysis of adhesively bonded thick composite single lap joints. Compos Sci Technol. 2013;86:18–25.
  • Mohamed Bak K, Kalaichelvan K, Jothilingam A, et al. Acoustic emission characterization of failure modes of single-lap joints in glass/epoxy specimens. J Compos Mater. 2016;0(0):1–21.
  • Scarselli G, Nicassio F. Analysis of debonding in single lap joints based on employment of ultrasounds. Proceedings of the SPIE smart structures and materials + nondestructive evaluation and healthmonitoring; 2017 March 25–29; Portland, OR, USA.
  • Kim DH, Hwang HY, Kim SS. Fabrication of PVDF film sensors for fatigue damage monitoring of single-lap adhesive joints. Compos Struct. 2019;207:223–231.
  • Kemiklioğlu U, Baba BO. Vibration effects on tensile properties of adhesively bonded single lap joints in composite materials. Polym Composite. 2018;40(3):1–10.
  • Leone C, Genna S. Effects of surface laser treatment on direct co-bonding strength of CFRP laminates. Compos Struct. 2018;194:240–251.
  • Pan B, Ma LJ, Xia Y. A novel technique for measuring 3D deformation of adhesively bonded single lap joint. Sci China Phys Mech. 2016;59(1):614601–614601.
  • Sam-Daliri O, Faller L-M, Farahani M, et al. Impedance analysis for condition monitoring of single lap CNT-epoxy adhesive joint. Int J Adhes Adhes. 2018;88:59–65.
  • Canal LP, Sarfaraz R, Violakis G, et al. Monitoring strain gradients in adhesive composite joints by embedded fiber Bragg grating sensors. Compos Struct. 2014;112:241–247.
  • Wu X, Peters K. Non-destructive inspection of adhesively bonded joints using amplitude modulated thermography. Exp Mech. 2015;55(8):1485–1501.
  • Shin PH, Webb SC, Peters KJ. Pulsed phase thermography imaging of fatigue-loaded composite adhesively bonded joints. Ndt E Int. 2016;79:7–16.
  • da Silva LFM, Moreira PMGP, Loureiro ALD. Determination of the strain distribution in adhesive joints using Fiber Bragg Grating (FBG). J Adhes Sci Technol. 2014;28(14–15):1480–1499.
  • de A. A. Lima R, Rocca D, Da Costa HRM, et al. Interfacial adhesion between embedded fibre optic sensors and epoxy matrix in composites. J Adhes Sci Technol. 2019;33(3):253–272.
  • Iijima S. Helical microtubules of graphitic carbon. Nature. 1991;354(6348):56–58.
  • Krucińska I, Skrzetuska E, Urbaniak-Domagała W. The use of carbon nanotubes in textile printing. J Appl Polym Sci. 2011;121(1):483–490.
  • Askari D, Ghasemi-Nejhad MN. Effects of vertically aligned carbon nanotubes on shear performance of laminated nanocomposite bonded joints. Sci Technol Adv Mater. 2012;13(4):045002.
  • Kim CH, Choi JH. Effects of dispersion methods and surface treatment of carbon nano-tubes on defect detectability and static strengths of adhesive joints. Compos Struct. 2017;176(sep):684–691.
  • An WJ, Kim CH, Kim TH, et al. Study on strength and defect detection capability of bonded joints according to CNT content. Compos Struct. 2019;207(JAN):204–212.
  • Baek SJ, Kim MS, An WJ, et al. Defect detection of composite adhesive joints using electrical resistance method. Compos Struct. 2019;220:179–184.
  • Khashaba UA, Aljinaidi AA, Hamed MA. Nanofillers modification of Epocast 50-A1/946 epoxy for bonded joints. Chinese J Aeronaut. 2014;27(5):1288–1300.
  • Khashaba UA, Aljinaidi AA, Hamed MA. Analysis of adhesively bonded CFRE composite scarf joints modified with MWCNTs. Compos Part A-Appl S. 2015;71:59–71.
  • Monteiro EC, Avila AF. The carbon nanotubes effect into single-lap joint failure modes and load capacity: a macromechanical analysis. Mat Res. 2018;20(suppl 1):143–152.
  • Shokrian MD, Shelesh-Nezhad K, Najjar R. Effect of CNT dispersion methods on the strength and fracture mechanism of interface in epoxy adhesive/Al joints. J Adhes Sci Technol. 2019;33(13):1–16.
  • Jojibabu P, Jagannatham M, Haridoss P, et al. Effect of different carbon nano-fillers on rheological properties and lap shear strength of epoxy adhesive joints. Compos Part A-Appl S. 2016;82:53–64.
  • Mactabi R, Rosca ID, Hoa SV. Monitoring the integrity of adhesive joints during fatigue loading using carbon nanotubes. Compos Sci Technol. 2013;78:1–9.
  • Zhao Y, Schagerl M. Shear stress monitoring of a single-lap joint using inkjet-printed carbon nanotube strain distribution sensor. Proceedings of the 8th European Workshop On Structural Health Monitoring; 2016 July 5–8; Spain, Bilbao. paper no.1-10, Bilbao: EWSHM.
  • Buldum A, Lu JP. Contact resistance between carbon nanotubes. Phys Rev B. 2001;63(16):161403.
  • Li C, Thostenson ET, Chou TW. Dominant role of tunneling resistance in the electrical conductivity of carbon nanotube–based composites. Appl Phys Lett. 2007;91(22):223113–223114.

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