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Huzaifa Maaz Fazlurrahman, Atteshamsuddin Sayyed,
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- Student, Professor Department of Structural Engineering, Sanjivani College of Engineering, Kopargaon, Maharashtra, India, Department of Structural Engineering, Sanjivani College of Engineering, Kopargaon, Maharashtra, India
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Abstract
nThis study introduces a novel higher-order shear deformation theory, tailored to accommodate various loading conditions experienced by laminated plates. The theory is specifically designed for the hygrothermal analysis of functionally graded plates. Three homogenization methods are used to calculate the Young’s Modulus that is Power law distribution, The exponential distribution and The Mori-Tanaka scheme. Navier’s solution scheme is used for flexural analysis of Functionally graded plates simply supported at all four edges. Obtained results for stresses and displacement are discussed and compare with previously published theories and results.
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Keywords: Functionally graded plate, Stress-Strain relationship, Displacement field, Shear deformation theory, Functionally graded material
n[if 424 equals=”Regular Issue”][This article belongs to Journal of Structural Engineering and Management(josem)]
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References
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[11] Thai H.T. and Kim S.E., “A simple higher-order shear deformation theory for bending and free vibration analysis of functionally graded plates” Composite Structures Journal; 2013; vol96: 165 – 8p.
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[13] Mantari J.L., Oktem A.S. and Soares C.G., “A New Higher Order Shear Deformation Theory Laminated Composite and Sandwich Plates” Journals of Composites: part B; 2012; vol.43.
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[16] Zidi M., Tounsi A, Houarib M.S.A, Bediaa A, Beg O.A., “Bending analysis of FGM plates under hygro-thermo-mechanical loading using a four variable refined plate theory” Aerospace Science and Technology; 2014; vol.34: 24 – 10p.
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Journal of Structural Engineering and Management
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| Volume | ||
| [if 424 equals=”Regular Issue”]Issue[/if 424][if 424 equals=”Special Issue”]Special Issue[/if 424] [if 424 equals=”Conference”][/if 424] | ||
| Received | June 3, 2024 | |
| Accepted | July 16, 2024 | |
| Published | July 18, 2024 |
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