Free vibration analysis of rotating functionally graded cylindrical shells in thermal environment
The free vibration analysis of rotating functionally graded (FG) cylindrical shells subjected to thermal environment is investigated based on the first order shear deformation theory (FSDT) of shells. The formulation includes the centrifugal and Coriolis forces due to rotation of the shell. The mate...
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Veröffentlicht in: | Composite structures 2012-09, Vol.94 (9), p.2971-2981 |
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description | The free vibration analysis of rotating functionally graded (FG) cylindrical shells subjected to thermal environment is investigated based on the first order shear deformation theory (FSDT) of shells. The formulation includes the centrifugal and Coriolis forces due to rotation of the shell. The material properties are assumed to be temperature-dependent and graded in the thickness direction. The initial thermo-mechanical stresses are obtained by solving the thermoelastic equilibrium equations. The equations of motion and the related boundary conditions are derived using Hamilton’s principle. The differential quadrature method (DQM) as an efficient and accurate numerical tool is adopted to discretize the thermoelastic equilibrium equations and the equations of motion. The convergence behavior of the method is demonstrated and comparison studies with the available solutions in the literature are performed. Finally, the effects of angular velocity, Coriolis acceleration, temperature dependence of material properties, material property graded index and geometrical parameters on the frequency parameters of the FG cylindrical shells with different boundary conditions are investigated. |
doi_str_mv | 10.1016/j.compstruct.2012.04.011 |
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The formulation includes the centrifugal and Coriolis forces due to rotation of the shell. The material properties are assumed to be temperature-dependent and graded in the thickness direction. The initial thermo-mechanical stresses are obtained by solving the thermoelastic equilibrium equations. The equations of motion and the related boundary conditions are derived using Hamilton’s principle. The differential quadrature method (DQM) as an efficient and accurate numerical tool is adopted to discretize the thermoelastic equilibrium equations and the equations of motion. The convergence behavior of the method is demonstrated and comparison studies with the available solutions in the literature are performed. 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The formulation includes the centrifugal and Coriolis forces due to rotation of the shell. The material properties are assumed to be temperature-dependent and graded in the thickness direction. The initial thermo-mechanical stresses are obtained by solving the thermoelastic equilibrium equations. The equations of motion and the related boundary conditions are derived using Hamilton’s principle. The differential quadrature method (DQM) as an efficient and accurate numerical tool is adopted to discretize the thermoelastic equilibrium equations and the equations of motion. The convergence behavior of the method is demonstrated and comparison studies with the available solutions in the literature are performed. Finally, the effects of angular velocity, Coriolis acceleration, temperature dependence of material properties, material property graded index and geometrical parameters on the frequency parameters of the FG cylindrical shells with different boundary conditions are investigated.</description><subject>Coriolis force</subject><subject>Cylindrical shells</subject><subject>Equations of motion</subject><subject>Equilibrium equations</subject><subject>Free vibration</subject><subject>Functionally graded materials (FGMs)</subject><subject>Functionally gradient materials</subject><subject>Mathematical models</subject><subject>Rotating</subject><subject>Shells</subject><subject>Thermal environment</subject><subject>Thermal environments</subject><issn>0263-8223</issn><issn>1879-1085</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2012</creationdate><recordtype>article</recordtype><recordid>eNqFkM1OwzAQhC0EEqXwDj5ySdh1Esc9QsWfVIkLnC3H2bSuErvYaaW-PamKxJHTSrMzo92PMY6QI6B82OY2DLs0xr0dcwEocihzQLxgM1T1IkNQ1SWbgZBFpoQortlNSlsAUCXijJmXSMQProlmdMFz401_TC7x0PEYxkn0a97tvT1tTd8f-Tqallpuj73zbXTW9DxtqO8Td56PG4rDpJA_uBj8QH68ZVed6RPd_c45-3p5_ly-ZauP1_fl4yqzRYVjVgsJYFQDjaFKULUoUXbSyqaztaoqVAZUTaWSxpaiKBuosFBSdQtJpu1EUczZ_bl3F8P3ntKoB5fsdJjxFPZJo6yxBAULmKzqbLUxpBSp07voBhOPGkGfqOqt_qOqT1Q1lHqiOkWfzlGaXjk4ijpZR95S6yJN3ja4_0t-ANqYiAM</recordid><startdate>201209</startdate><enddate>201209</enddate><creator>Malekzadeh, P.</creator><creator>Heydarpour, Y.</creator><general>Elsevier Ltd</general><scope>AAYXX</scope><scope>CITATION</scope><scope>7SR</scope><scope>8FD</scope><scope>H8D</scope><scope>JG9</scope><scope>L7M</scope></search><sort><creationdate>201209</creationdate><title>Free vibration analysis of rotating functionally graded cylindrical shells in thermal environment</title><author>Malekzadeh, P. ; Heydarpour, Y.</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c351t-72600a8b0bae52e59416f6c6bfc785518a087e486ac4234b0513868f96eadf233</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2012</creationdate><topic>Coriolis force</topic><topic>Cylindrical shells</topic><topic>Equations of motion</topic><topic>Equilibrium equations</topic><topic>Free vibration</topic><topic>Functionally graded materials (FGMs)</topic><topic>Functionally gradient materials</topic><topic>Mathematical models</topic><topic>Rotating</topic><topic>Shells</topic><topic>Thermal environment</topic><topic>Thermal environments</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Malekzadeh, P.</creatorcontrib><creatorcontrib>Heydarpour, Y.</creatorcontrib><collection>CrossRef</collection><collection>Engineered Materials Abstracts</collection><collection>Technology Research Database</collection><collection>Aerospace Database</collection><collection>Materials Research Database</collection><collection>Advanced Technologies Database with Aerospace</collection><jtitle>Composite structures</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Malekzadeh, P.</au><au>Heydarpour, Y.</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Free vibration analysis of rotating functionally graded cylindrical shells in thermal environment</atitle><jtitle>Composite structures</jtitle><date>2012-09</date><risdate>2012</risdate><volume>94</volume><issue>9</issue><spage>2971</spage><epage>2981</epage><pages>2971-2981</pages><issn>0263-8223</issn><eissn>1879-1085</eissn><abstract>The free vibration analysis of rotating functionally graded (FG) cylindrical shells subjected to thermal environment is investigated based on the first order shear deformation theory (FSDT) of shells. The formulation includes the centrifugal and Coriolis forces due to rotation of the shell. The material properties are assumed to be temperature-dependent and graded in the thickness direction. The initial thermo-mechanical stresses are obtained by solving the thermoelastic equilibrium equations. The equations of motion and the related boundary conditions are derived using Hamilton’s principle. The differential quadrature method (DQM) as an efficient and accurate numerical tool is adopted to discretize the thermoelastic equilibrium equations and the equations of motion. The convergence behavior of the method is demonstrated and comparison studies with the available solutions in the literature are performed. Finally, the effects of angular velocity, Coriolis acceleration, temperature dependence of material properties, material property graded index and geometrical parameters on the frequency parameters of the FG cylindrical shells with different boundary conditions are investigated.</abstract><pub>Elsevier Ltd</pub><doi>10.1016/j.compstruct.2012.04.011</doi><tpages>11</tpages></addata></record> |
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subjects | Coriolis force Cylindrical shells Equations of motion Equilibrium equations Free vibration Functionally graded materials (FGMs) Functionally gradient materials Mathematical models Rotating Shells Thermal environment Thermal environments |
title | Free vibration analysis of rotating functionally graded cylindrical shells in thermal environment |
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