
تعداد نشریات | 22 |
تعداد شمارهها | 485 |
تعداد مقالات | 5,045 |
تعداد مشاهده مقاله | 9,290,887 |
تعداد دریافت فایل اصل مقاله | 6,135,354 |
Creep Analysis of the FGM Cylinder under Steady-state Symmetric Loading | ||
Journal of Stress Analysis | ||
مقاله 2، دوره 1، شماره 1، آذر 2016، صفحه 9-21 اصل مقاله (1005.01 K) | ||
نوع مقاله: Original Research Paper | ||
شناسه دیجیتال (DOI): 10.22084/jsa.2017.11195.1003 | ||
نویسندگان | ||
N. Habibi* 1؛ S. Samawati2؛ O. Ahmadi3 | ||
1Mechanical Engineering Department, University of Kurdistan, Iran. | ||
2Mechanical Engineering Department, Khajeh Nasir Toosi University of Technology, Iran. | ||
3Mechanical Engineering Department, Urmia University, Iran. | ||
چکیده | ||
In this paper, a semi-analytical method for creep investigation and elastic behavior of FGM rotary cylinders has been introduced. Assumed cylinder was divided to numerous finite width layers with constant thermodynamic properties in each layer. Governing equations converted to ordinary differential equations with constant coefficients by applying continuity conditions between layers and boundary conditions of disc in derived equations, then these equations could be solved by a prepared computer code. For thermo-elastic part, variation of dimensionless radial and circumferential strains versus dimensionless radius investigated for several power of FGM material. Also, verification of results was done. For creep part, variation of dimensionless radial and circumferential strain rates versus dimensionless radius was studied for different temperatures and limited timeframe. Changes of radial and circumferential strain rates versus radius were investigated and the results were validated. Finally, the effects of various parameters on creep behavior of rotary cylinder in several examples was examined. | ||
کلیدواژهها | ||
Exact Solution؛ Rotary Cylinder؛ creep؛ Navier Equation | ||
مراجع | ||
[1] M. Koizumi, Concept of FGM, Ceramic. Trans. 34 (1993) 3-10. [2] S.B. Singh, S. Ray, Creep analysis in an isotropic FGM rotating disc of Al-Sic composite, J. Mate. Process. Tech. 143(1) (2003) 616-622. [3] S.B. Singh, S. Ray, Modeling the anisotropy and creep in orthotropic aluminum-silicon carbide composite rotating disc, J. Mech. Mater. 34 (2002) 363-372. [4] S. Hui-shen, Post buckling analysis of axial loaded functionally graded cylindrical panels in thermal environments. Int. J. Solids. Struc. 39 (2002) 5991- 6010. [5] L.P. Jacob, Thermoelastic analysis and optimization of functionally graded plates and shells, MSc Thesis, USA: Maine University, 2003. [6] K.M. Liew, S. Kitipornchai, X.Z. Zhang, C.W. Lim, Analysis of the thermal stress behavior of functionally graded hollow circular cylinders. Int. J. Solids. Struct. 40 (2003) 2355-2380. [7] T. Singh, V.K. Gupta, Effect of anisotropy on steady state creep in functionally graded cylinder, Compos. Struct. 93(2) (2011) 747-758. [8] J.F. Durodola, O. Attia, Deformation and stresses in FG rotating disks. Compos. Sci. Technol. 60(2000) 987-995. [9] A. Loghman, V. Atabakhshian, Semi-analytical Solution for Time-dependent creep analysis of rotating cylinders made of anisotropic exponentially graded material (EGM), J. Solid. Mech. 4(3) (2012) 313-326. [10] M. Ghannad, G.H. Rahimi, M. Zamani-Nejad, Elastic analysis of pressurized thick cylindrical shells with variable thickness made of functionally graded materials, Composites. 45 (2013) 388-396. [11] M. Zamani-Nejad, M.D. Kashkoli, Timedependent thermo-creep analysis of rotating FGM thick-walled cylindrical pressure vessels under heat ux. Int. J. Eng. Sci. 82 (2014) 222-237. [12] M. Zamani-Nejad, M. Jabbari, M. Ghannad, Elastic analysis of FGM rotating thick truncated conical shells with axially-varying properties under non-uniform pressure loading. Compos. Struct. 122 (2015) 561-569. [13] M. Zamani-Nejad, M. Jabbari, M. Ghannad, Elastic analysis of axially functionally graded rotating thick cylinder with variable thickness under nonuniform arbitrarily pressure loading. Int. J. Eng. Sci. 89 (2015) 86-99. [14] M. Zamani-Nejad, M. Jabbari, M. Ghannad, Elastic analysis of rotating thick cylindrical pressure vessels under non-uniform pressure: Linear and non-linear thickness. Period. Polytech. Mech. 59(2) (2015) 65. [15] M. Jabbari, M. Zamani-Nejad, M. Ghannad, Thermoelstic analysis of axially functionally graded rotating thick cylindrical pressure vessels with variable thickness under mechanical loading, Int. J. Eng. Sci. 96 (2015) 1-18. [16] A. Loghman, H. Shayeste-moghadam, MagnetoThermo-Mechanical creep behavior of nanocomposite rotating cylinder made of polypropylene reinforced by MWCNTS, J. Theor. App. Mech-pol. 54 (2011) 239-249. [17] M. Garg, B.S. Salaria, V.K. Gupta, Modeling creep in a variable thickness rotating FGM disc under varying thermal gradient, Eng. Computations. 32 (2015) 1230 -1250. [18] A. Hassani, M.H. Hojjati, G.H. Farrahi, R.A. Alashti, Semi-exact solution for thermo-mechanical analysis of functionally graded elastic-strain hardening rotating disks. Commun. Nonlinear Sci. Numer. Simul. 17(9) (2012) 3747-3762. [19] M. Garg, B.S. Salaria, V.K. Gupta, Effect of disc geometry on the steady-state creep in a rotating disc made of functionally graded material. Mater. Sci. Forum (2013) 183-191. [20] K. Khanna, V.K. Gupta, S.P. Nigam, Creep analysis of a variable thickness rotating FGM disc using Tresca Criterion, defence. Sci. J. 65 (2015) 163-170. [21] S.A. Hosseini Kordkheili, R. Naghdabadi, Thermoelastic analysis of functionally graded rotating disk, Compos. Struct. 79 (2007) 508-516. | ||
آمار تعداد مشاهده مقاله: 1,619 تعداد دریافت فایل اصل مقاله: 818 |