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Thermo-Mechanical Deformation and Stress Analysis of Hydroxyapatite/Titanium FGM plate by FEM

Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Hydroxyapatite(HA)/titanium(Ti) functionally graded materials(FGM) are latest materials used for medical implants, structural components in defense, in dentistry, in aviation, and other fields under various type of loads. A finite element analysis model is designed to study the behavior of a HA/Ti FGM plate under thermo-mechanical loadings. Simply supported plate subjected to mechanical and thermal loads on its top and bottom surface is considered with suitable temperature and loading function. The first-order shear deformation plate (FSDT) method is used to investigate the thermo mechanical behavior of functionally graded plate .The volume fraction of the FGM plate is varied smoothly and continuously along the thickness of the plate. Results are discussed for the deformation and stresses of HA/Ti FGM plate It is observed from the study that FGMs are able to resist higher temperatures and loads without delamination.
Rocznik
Strony
499--513
Opis fizyczny
Bibliogr. 22 poz.
Twórcy
autor
  • Research Scholar I.K. Gujral Punjab Technical University Jalandhar, India
autor
  • Chitkara University Rajpura Punjab. India
autor
  • I.K. Gujral Punjab Technical University Jalandhar, India
Bibliografia
  • [1] Sharma, R., Jadon, V. K. and Singh, B.: A review of the finite element based methods for thermal analysis of functionally graded materials, J. of IE(India): Series C (under Springer), 96, 1, 73-81, 2015.
  • [2] Xu, Y., Wang, L. L. and Zhang, Z.: Analysis of Convective heat transfer steady thermal stresses in a Zro2/FGM/Ti-6Al-4V composite plate by FEM, Int. Joint Conf. on Compu. Sci. and Optimization, 266-269, 2009.
  • [3] Ramkumar, K. and Ganesan, N.: Finite-element buckling and vibration analysis of functionally graded box columns in thermal environments, J. of Mat.: Design and Applications, 222, 53-64, 2007.
  • [4] Chen,B., and Tong, L.: Sensitivity Analysis of heat Conduction for functionally graded materials, Mater. Des., 25, 663-672, 2004.
  • [5] Alshorbagy, A. E., Alieldin, S. S., Shaat, M. and Mahmond, F. F.: Finite Element Analysis of the Deformation of functionally Graded Plates under Thermo-mechanical Loads, Mathematical Problems in Engineering, ID 569781, 2013.
  • [6] Ravichandran, K. S.: Thermal residual stresses in a Functionally Graded Material system, Mat. Sci. and Engg., 20, 269-276, 2001.
  • [7] Kim, K. S. and Noda, N.:A Green's function approach to the deflection of a FGM plate under transient thermal loading, Archive of Applied Mechanics, 72, 127-137, 2002.
  • [8] Cho, J. R. and Oden, J. T.: Functionally graded material: - a parametric study on thermal-stress characteristics using the Crank-Nicolson-Galerkin scheme, Comp. methods in appl. mech. & engg., 188, 17-38,2000.
  • [9] Talha, M. and Singh, B. N.: Thermo-mechanical deformation behavior of functionally graded rectangular plates subjected to various boundary conditions and loadings, World Academy of Science, Engineering and Technology, 973-984, 2011.
  • [10] Cheng, Z. Q. and Batra, R. C.: Three dimensional thermoplastic deformation of a functionally graded elliptic plate, Composites part B: Engineering, 31, 2, 97-106, 2000.
  • [11] Tanigwa, Y., Akai, T., Kawamura, R. and Oka, N.: Transient heat conduction and thermal stress problems of a nonhomogeneous plate with temperature-dependent material properties, J. of Thermal Stresses, 19, 1, 77-102, 1996.
  • [12] Praveen, G. N. and Reddy, J. N.: Nonlinear transient thermoelestic analysis of functionally graded ceramic-metal plates, Int. J. of Solids and Structures, 35, 33, 4457-4476, 1998.
  • [13] Alibeigloo, A.: Exact solution for thermo-elastic response of functionally graded rectangular plates, Composite structures, 92, 113-121, 2010.
  • [14] Afsar, A. . and Go, J.: Finite element analysis of thermoelastic field in a rotating FGM circular disk, Applied Mathematical Modelling, 34, 11, 3309-3320, 2010.
  • [15] Tung, H. V. and Duc, N. D.: Nonlinear analysis of stability for functionally graded plates under mechanical and thermal loads, Composite Structures, 92, 5, 1184-1191, 2010.
  • [16] Singha, M. K., Prakash, T. and Ganapathi, M.: Finite element analysis of functionally graded plates under transverse load, Finite Elements in Analysis and Design, 47, 4, 453-460, 2011.
  • [17] Chareonsuk, J. and Vessakosol, P.: Numerical solutions for functionally graded solids under thermal and mechanical loads using a high-order control volume finite element method, Applied Thermal Engineering, 31(2-3), 213-227, 2011.
  • [18] Croce, L. D. and Venini, P.: Finite elements for functionally graded Reissner-Mindlin plates, Comp. Methods in Appl. Mech.& Engg., 193(9-11), 705-725, 2004.
  • [19] Uysal, M. U.: Investigation of Thermal and Mechanical Loading on Functional Graded Material Plates, Int. J. of Mechanical, Aerospace, Industrial and mechatronics Engg., 7, 11,1208-14, 2013.
  • [20] Crosby, K. D.: Titanium-6Aluminum-4Vanadium For Functionally Graded Orthopedic Implant Applications, PhD Thesis, 218, University of Connecticut, 2013.
  • [21] Hadi, A., Rastgoo, A., Daneshmehr, A. R. and Ehsani, F.: Stress and Strain Analysis of Functionally Graded Rectangular Plate with Exponentially Varying Properties, Indian J. of Mat. Sci., 2013.
  • [22] Srinivas, G., Prasad, U. S., Manikandan, M. and Kumar, A. P.: Simulation of traditional composites under thermal loads, Research J. of Recent Sci., 2, 273-278, 2013.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-243c2ded-b5b7-4df9-affc-92f5ca985b89
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