Response of Functionally Graded Material Plate under Thermomechanical Load Subjected to Various Boundary Conditions
Author(s) -
Manish Bhandari,
Kamlesh Purohit
Publication year - 2015
Publication title -
international journal of metals
Language(s) - English
Resource type - Journals
eISSN - 2356-704X
pISSN - 2314-680X
DOI - 10.1155/2015/416824
Subject(s) - materials science , functionally graded material , finite element method , boundary value problem , material properties , composite material , thermal , transverse plane , plate theory , rigidity (electromagnetism) , structural engineering , mathematics , mathematical analysis , engineering , physics , meteorology
Functionally graded materials (FGMs) are one of the advanced materials capable of withstanding the high temperature environments. The FGMs consist of the continuously varying composition of two different materials. One is an engineering ceramic to resist the thermal loading from the high-temperature environment, and the other is a light metal to maintain the structural rigidity. In the present study, the properties of the FGM plate are assumed to vary along the thickness direction according to the power law distribution, sigmoid distribution, and exponential distribution. The fundamental equations are obtained using the first order shear deformation theory and the finite element formulation is done using minimum potential energy approach. The numerical results are obtained for different distributions of FGM, volume fractions, and boundary conditions. The FGM plate is subjected to thermal environment and transverse UDL under thermal environment and the response is analysed. Numerical results are provided in nondimensional form
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