Applied Mathematics and Mechanics (English Edition) ›› 2007, Vol. 28 ›› Issue (7): 931-942 .doi: https://doi.org/10.1007/s10483-007-0710-x

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Unconventional Hamilton-type variational principles for nonlinear elastodynamics of orthogonal cable-net structures

李纬华, 罗恩, 黄伟江   

  • 收稿日期:2006-08-09 修回日期:2007-05-08 出版日期:2007-07-18 发布日期:2007-07-18
  • 通讯作者: 罗恩

Unconventional Hamilton-type variational principles for nonlinear elastodynamics of orthogonal cable-net structures

LI Wei-hua, LUO En, HUANG Wei-jiang   

  1. Department of Applied Mechanics and Engineering, Sun Yat-sen University, Guangzhou 510275, P. R. China
  • Received:2006-08-09 Revised:2007-05-08 Online:2007-07-18 Published:2007-07-18
  • Contact: LUO En

Abstract: According to the basic idea of classical yin-yang complementarity and modem dual-complementarity, in a simple and unified new way proposed by Luo, the unconventional Hamilton-type variational principles for geometrically nonlinear elastodynamics of orthogonal cable-net structures are established systematically, which can fully characterize the initial-boundary-value problem of this kind of dynamics. An important integral relation is made, which can be considered as the generalized principle of virtual work for geometrically nonlinear dynamics of orthogonal cable-net structures in mechanics. Based on such relationship, it is possible not only to obtain the principle of virtual work for geometrically nonlinear dynamics of orthogonal cable-net structures, but also to derive systematically the complementary functionals for five-field, four-field, three-field and two-field unconventional Hamilton-type variational principles, and the functional for the unconventional Hamilton-type variational principle in phase space and the potential energy functional for one-field unconventional Hamilton-type variational principle for geometrically nonlinear elastodynamics of orthogonal cable-net structures by the generalized Legendre transformation given in this paper. Furthermore, the intrinsic relationship among various principles can be explained clearly with this approach.

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