首页> 外文学位 >Fluid-structure interaction during seismically excited sloshing within shallow skirt supported pressure vessels.
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Fluid-structure interaction during seismically excited sloshing within shallow skirt supported pressure vessels.

机译:浅裙边支撑压力容器内地震激发晃荡期间的流固耦合。

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摘要

This dissertation describes the finite element considerations employed in a seismic response spectrum analysis of a skirt supported, liquid containing pressure vessel. Like many axisymmetric cylindrical vessels, the gross seismic response to an input response spectrum can be categorized by a simplified lump mass model that includes both the mass of the vessel proper in combination with the associated mass of multiple fluid levels. This simplified response may be utilized to determine the initial sizing of the supporting configuration, such as a skirt, but lacks the ability to properly address the fluid-structure interaction that creates sloshing loads on the vessel walls. The most obvious method to address the fluid-structure interaction when considering the finite element method is to build a three-dimensional model of the vessel proper, including, but not limited to the shell courses, the top and bottom heads (for a vertical vessel), and the support skirt. The inclusion of the fluid effects may now be incorporated with a "contained fluid" finite element, however, for vessels of any significant volume, the number of finite elements can easily exceed 100,0000 and the number of degrees of freedom can sore from as few as 300,0000 to as many as 500,0000 or more. While these types of finite element analysis problems can be solved with today's computer hardware and software, it is not desirable in any analysis to have that volume of information that has to be reviewed and approved in a highly regulated nuclear QA environment (if at all possible).;With these items in mind, the methodology described in this dissertation seeks to minimize the number of degrees of freedom associated with a response spectrum analysis of a liquid filled, skirt supported vertical pressure vessel. The input response spectra are almost always provided in Cartesian coordinates, while many, if not most liquid containing pressure vessels are almost always axisymmetric in geometry without having benefit of being subjected to an axisymmetric load (acceleration in this case) due to the specified seismic event. The use of harmonic finite elements for both the vessel structure and the contained fluid medium permit the efficiencies associated with an axisymmetric geometry to be leveraged when the seismic response spectrum is formulated in terms of a Fourier series and combined to regain the effects of the two orthogonal, horizontally applied accelerations as a function of frequency. The end result as discussed and shown in this dissertation is a finite element model that permits a dense mesh of both the fluid and the structure, while economizing on the number of simultaneous equations required to be solved by the chosen finite element analysis.;The method to obtain results at any chosen circumferential location is first developed for a simpler geometry utilizing a ground supported tank with flat heads. The results of the method developed herein are verified by comparison to published analytical results. The subject methodology is then applied to the skirt supported pressure vessel.
机译:本文描述了裙撑支撑的含液压力容器在地震反应谱分析中的有限元考虑。像许多轴对称圆柱形容器一样,对输入响应谱的总地震响应可以通过简化的块状质量模型进行分类,该模型包括容器的固有质量与多种流体液位的相关质量的组合。这种简化的响应可用于确定支撑结构(如裙边)的初始尺寸,但缺乏适当解决流体结构相互作用的能力,该相互作用会在容器壁上产生晃荡载荷。考虑有限元方法时,解决流固耦合的最明显方法是建立容器的三维模型,包括但不限于壳层,顶部和底部(垂直容器) )和支撑裙。现在可以将流体效果包含在“封闭流体”有限元中,但是,对于任何体积较大的容器,有限元的数量很容易超过100,000,并且自由度可能会从少则300,0000至多达500,0000或更多。尽管可以通过当今的计算机硬件和软件解决这些类型的有限元分析问题,但在任何分析中都不需要在严格监管的核QA环境中检查和批准大量信息(如果可能的话)。考虑到这些问题,本文所描述的方法力图使与充液,裙撑支撑的垂直压力容器的响应谱分析相关的自由度最小。输入响应谱几乎总是以笛卡尔坐标提供,而许多(如果不是大多数的话)含液体的压力容器的几何形状几乎总是轴对称的,而没有因指定的地震事件而承受轴对称载荷(在这种情况下为加速度)的好处。 。在地震响应谱以傅立叶级数形式表示并组合以重新获得两个正交的影响时,在船体结构和所含流体介质中均使用谐波有限元可以利用与轴对称几何形状相关的效率。 ,水平施加的加速度是频率的函数。本文所讨论和显示的最终结果是一个有限元模型,该模型允许流体和结构都密实网格,同时节省了通过选定的有限元分析需要求解的联立方程组的数量。为了获得更简单的几何形状,首先开发了一种在任何选定的圆周位置获得结果的方法,这种方法采用了带有扁平头的地面支撑油箱。通过与公开的分析结果进行比较,可以验证本文开发的方法的结果。然后将本主题方法应用于裙部支撑的压力容器。

著录项

  • 作者

    Antaal, Bikramjit Singh.;

  • 作者单位

    The University of North Carolina at Charlotte.;

  • 授予单位 The University of North Carolina at Charlotte.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 139 p.
  • 总页数 139
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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