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Tytuł artykułu

Experimental investigation on effective detection of delamination in gfrp composites using taguchi method

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Detection of delamination defect in glass fiber reinforced plastics (GFRP) by using ultrasonic testing has been a challenging task in industry. The properties of the constituent materials, fiber orientation and the stacking sequence of laminated composite materials could cause high attenuation of ultrasound signals. Ultrasonic testing is based on the interpretation of the reflected ultrasound signals when a transducer imposes ultrasound waves (pulse) to a material. It is difficult to differentiate if the reflected signal is induced from the defects, fiber content or the intermediate layers of GFRP composites. Most of the time, the drastic attenuation of signals could enshroud the modest changes in the reflected signals from defects. The purpose of this paper is to investigate the influence of fiber orientation, thickness and delamination of GFRP composites on the rise time, pulse duration and attenuation ratio of the reflected ultrasound signal. The rise time, pulse duration and attenuation ratio of A-scan data was observed with respect to different positions of damage (delamination), thickness and stacking sequence of the lamina. It is essential to identify the significant factors that contribute to the abnormal characteristics of the reflected signals in which the defect is identified. Moreover, this paper presents the application of Taguchi method for maximizing the detection of defect in GFRP composites influenced by delamination. The optimum combination of the significant contributing factor for the signal's abnormal characteristics and its effect on damage detection was obtained by using the analysis of signal-to-noise ratio. The finding of this study revealed that delamination is the most influential factor on the attenuation ratio.
Rocznik
Strony
16--24
Opis fizyczny
Bibliogr. 16 poz., rys., tab.
Twórcy
autor
autor
autor
autor
autor
  • Intelligent System and Robotic Laboratory, Institute of Advanced Technology, Universiti Putra Malaysia, 43400 Serdang, Selangor, Malaysia
Bibliografia
  • 1. Ng S.C., Ismail N., Aidy Ali, Barkawi Sahari, Yusof J.M. and Chu B.W.: Non-destructive inspection of multi-layered composite using ultrasonic signal processing. IOP Conference Series: Material Science and Engineering (2011), 17 012045.
  • 2. Reifsnider K.: Damage in composite materials. ASTM STP775, American Society for Testing and Materials, Philadelphia, 1982.
  • 3. Ambu, R., Aymerich, F., Ginesu, F. and Priolo, P.: Assessment of NDT interferometric techniques for impact damage detection in composite laminates. Composites Science and Technology 66(2006), 199-205.
  • 4. Adams, R.D. and Cawley, P.: Defect types and non-destructive testing techniques for composites and bonded joints. Constructions and Building Materials 3(1989), 170-183.
  • 5. Brizuela, J., Fritsch, C., and Ibáñez, A.: Railway wheel-flat detection and measurement by ultrasound. Transportation Research Part C: Emerging Technologies 19(2011), 975-984.
  • 6. Ohara Yoshikazu, Horinouchi Satoshi, Hashimoto Makoto, Shintaku Yohei, Yamanaka Kazushi.: Nonlinear ultrasonic imaging method for closed cracks using subtraction of responses at different external loads. Ultrasonics 51(2011), 661-666.
  • 7. Krishnan Balasubramaniam, Jitendra S. Valluri and Raghu V. Prakash.: Creep damage characterization using a low amplitude nonlinear ultrasonic technique. Materials Characterization, 62(2011), 275-286.
  • 8. Zumpano, G., and Meo, M.: Damage localization using transient non-linear elastic wave spectroscopy on composite structures. International Journal of Non-Linear mechanics, 43(2007), 217-30.
  • 9. Meo, M., Polimeno, U. and Zumpano, G.: Detecting damage in composite material using nonlinear elastic wave spectroscopy methods. Applied Composite Materials 15(2008), 115-126.
  • 10. Wooh, S.C. and Wei, C.A.: High-fidelity ultrasonic pulse-echo scheme for detecting delaminations in composite laminates. Composites Part B: Engineering 30(1999), 433-441.
  • 11. Kilickap, E.: Optimization of cutting parameters on delamination based on Taguchi method during drilling of GFRP composite. Expert Systems with Applications 37(2010), 6116-6122.
  • 12. Davidson, M. Joseph, Balasubramanian, K. and Tagore, G.R.N.: Experimental investigation on flow-forming of AA6061 alloy – a Taguchi approach. Journal of Materials Processing Technology 200(2008), 283-287.
  • 13. Rosa, J.L., Robin, A. M.B. Silva, C.A. Baldan, M.P. Peres.: Electrodeposition of copper on titanium wires: Taguchi experimental design approach. Journal of Materials Processing Technology 209(2009), 1181-1188.
  • 14. Diamanti, K., Soutis, C. and Hodgkinson, J.M.: Lamb waves for the non-destructive inspection of monolithic and sandwich composite beams. Composites Part A: Applied Science and Manufacturing 36(2005), 189–195.
  • 15. Irusta, R., Antolín, G., Velasco, E. and García, J.C.: The selection of testing methods for biofuels using the Taguchi signal-to-noise ratio. Biomass and Bioenergy 6(1994), 405-413.
  • 16. Bagci, E. and Ozcelik, B.: Analysis of temperature changes on the twist drill under different drilling conditions based on Taguchi method during dry drilling of Al 7075-T651. The International Journal of Advanced Manufacturing Technology 29(2006), 629-636.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BPG8-0084-0046
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