Taguchi analysis of the tensile behaviour of unaged and hygrothermally aged asymmetric helicoidally stacked CFRP composites

<p>Taguchi method was used to predict and optimize the effects of hygrothermal aging on the tensile behavior of asymmetric helicoidally stacked Carbon Fiber Reinforced Plastic (CFRP) composites. This research is in furtherance to the previous work, which dealt purely with experiments. MR70 12P...

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Main Authors: Nwambu CN (Author), Chibueze GI (Author), Nwankwo EN (Author), Ekwedigwe CM (Author)
Format: Book
Published: Journal of Civil Engineering and Environmental Sciences - Peertechz Publications, 2023-10-17.
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001 peertech__10_17352_2455-488X_000071
042 |a dc 
100 1 0 |a Nwambu CN  |e author 
700 1 0 |a  Chibueze GI  |e author 
700 1 0 |a  Nwankwo EN  |e author 
700 1 0 |a  Ekwedigwe CM  |e author 
245 0 0 |a Taguchi analysis of the tensile behaviour of unaged and hygrothermally aged asymmetric helicoidally stacked CFRP composites 
260 |b Journal of Civil Engineering and Environmental Sciences - Peertechz Publications,   |c 2023-10-17. 
520 |a <p>Taguchi method was used to predict and optimize the effects of hygrothermal aging on the tensile behavior of asymmetric helicoidally stacked Carbon Fiber Reinforced Plastic (CFRP) composites. This research is in furtherance to the previous work, which dealt purely with experiments. MR70 12P carbon fiber epoxy prepreg sheets were manufactured into laminated composites comprising constant inter-ply pitch angles ranging from 0o to 30o. The composites were tested in tension as either dry unaged specimens or following hygrothermal aging in seawater at the constant temperatures of 40 oC and 60 oC for 2000 hrs. Optimizations were conducted based on Taguchi L18 orthogonal array considering two design parameters viz. inter-ply stacking angles and hygrothermal aging temperature. The result depicted that the combination of aging temperature (C) and stacking angles are major factors in determining the tensile behavior of composite materials (p = 0.011). The model explains 86.6% of tensile strength variability, with a predicted R-squared value of 93.04%. The model's robustness is supported by the adjusted R-squared value of 77.6%. Analysis of variance shows that inter-ply stacking angles are the main significant factor affecting the tensile behaviors at a 95% confidence level. A confirmation test was carried out to validate the optimized results and it was found that there were improvements in S/N ratios from initial to optimal setting.</p> 
540 |a Copyright © Nwambu CN et al. 
546 |a en 
655 7 |a Research Article  |2 local 
856 4 1 |u https://doi.org/10.17352/2455-488X.000071  |z Connect to this object online.