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Dynamical analysis of spinning functionally graded pipes conveying fluid with multiple spans

机译:用多种跨度传送液体输送流体的动态分析

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In this paper, a dynamical model of spinning multi-span pipes conveying fluid is proposed and the transverse natural and resonant frequencies and mode characteristics of such system are explored. The pipe body is considered to be composed of functionally graded materials (FGMs), in which a power law is used to govern the distribution of material properties along the pipe wall thickness. The partial differential equations (PDEs) governing two transverse motions of the pipe are derived by the extended Hamilton principle, in which the contributions of the FGM and intermediate supports are highlighted. The PDEs are dis-cretized by the Galerkin procedure and the eigensystem theorem is applied to find the numerical solutions. The results show that various frequency characteristics can be attainable by use of different materials and mixing patterns. Attachments of intermediate supports can heighten the rigidity and improve the stability of spinning FG pipes conveying fluid, which are consequently used as "stabilizers" for the slender drill strings. Also, the mode characteristics of different spans will determine the locations of vibration amplitude of the pipes.
机译:本文提出了一种纺丝多跨管传输流体的动力学模型,探索了这种系统的横向自然和谐振频率和模式特性。管体被认为是由功能渐变的材料(FGMS)组成,其中动力法用于沿管壁厚度控制材料特性的分布。控制管道的两个横向运动的部分微分方程(PDE)由扩展的汉密尔顿原理推导,其中突出了FGM和中间支撑件的贡献。 PDE通过Galerkin手术分配,并应用了Eigensystem定理来查找数值解决方案。结果表明,通过使用不同的材料和混合图案,可以实现各种频率特性。中间支撑件的附着可以提高刚性并提高旋转FG管传送流体的稳定性,从而用作细长钻杆的“稳定剂”。此外,不同跨度的模式特征将确定管道的振动幅度的位置。

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