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Vibrations of Complete Paraboloidal Shells with Variable Thickness form a Three-Dimensional Theory
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  • Vibrations of Complete Paraboloidal Shells with Variable Thickness form a Three-Dimensional Theory
  • Vibrations of Complete Paraboloidal Shells with Variable Thickness form a Three-Dimensional Theory
저자명
장경호,심현주,강재훈,Chang. Kyong-Ho,Shim. Hyun-Ju,Kang. Jae-Hoon
간행물명
한국쉘·공간구조학회논문집
권/호정보
2004년|4권 4호|pp.113-128 (16 pages)
발행정보
한국공간구조학회
파일정보
정기간행물|ENG|
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이 논문은 한국과학기술정보연구원과 논문 연계를 통해 무료로 제공되는 원문입니다.
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기타언어초록

A three-dimensional (3-D) method of analysis is presented for determining the free vibration frequencies and mode shapes of solid paraboloidal and complete (that is, without a top opening) paraboloidal shells of revolution with variable wall thickness. Unlike conventional shell theories, which are mathematically two-dimensional (2-D), the present method is based upon the 3-D dynamic equations of elasticity. The ends of the shell may be free or may be subjected to any degree of constraint. Displacement components $u_r,;u_{ heta},;and;u_z$ in the radial, circumferential, and axial directions, respectively, are taken to be sinusoidal in time, periodic in ${ heta}$, and algebraic polynomials in the r and z directions. Potential (strain) and kinetic energies of the paraboloidal shells of revolution are formulated, and the Ritz method is used to solve the eigenvalue problem, thus yielding upper bound values of the frequencies by minimizing the frequencies. As the degree of the polynomials is increased, frequencies converge to the exact values. Convergence to four digit exactitude is demonstrated for the first five frequencies of the complete, shallow and deep paraboloidal shells of revolution with variable thickness. Numerical results are presented for a variety of paraboloidal shells having uniform or variable thickness, and being either shallow or deep. Frequencies for five solid paraboloids of different depth are also given. Comparisons are made between the frequencies from the present 3-D Ritz method and a 2-D thin shell theory.