Prediction of Vibrational Behavior of Grid-Stiffened Cylindrical Shells
Author(s) -
Gholamhossein Rahimi,
M. Hemmatnezhad,
R. Ansari
Publication year - 2014
Publication title -
advances in acoustics and vibration
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.237
H-Index - 14
eISSN - 1687-627X
pISSN - 1687-6261
DOI - 10.1155/2014/242573
Subject(s) - shell (structure) , stiffness , structural engineering , boundary value problem , grid , fourier series , series (stratigraphy) , finite element method , modal , transformation (genetics) , vibration , dependency (uml) , boundary (topology) , benchmark (surveying) , engineering , geometry , mathematical analysis , mathematics , materials science , physics , mechanical engineering , geology , acoustics , paleontology , biochemistry , chemistry , systems engineering , geodesy , polymer chemistry , gene
A unified analytical approach is applied to investigate the vibrational behavior of grid-stiffened cylindrical shells with different boundary conditions. A smeared method is employed to superimpose the stiffness contribution of the stiffeners with those of shell in order to obtain the equivalent stiffness parameters of the whole panel. Theoretical formulation is established based on Sanders’ thin shell theory. The modal forms are assumed to have the axial dependency in the form of Fourier series whose derivatives are legitimized using Stoke's transformation. A 3D finite element model is also built using ABAQUS software which takes into consideration the exact geometric configuration of the stiffeners and the shell. The achievements from the two types of analyses are compared with each other and good agreement has been obtained. The Influences of variations in shell geometrical parameters, boundary condition, and changes in the cross stiffeners angle on the natural frequencies are studied. The results obtained are novel and can be used as a benchmark for further studies. The simplicity and the capability of the present method are also discussed
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