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Fluid pressure on unanchored rigid flat-bottom cylindrical tanks due to uplift motion and its approximation

机译:上升运动引起的无锚刚性平底圆柱罐上的流体压力及其近似

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As well as the uplift displacement of the tanks, the fluid pressure accompanying the uplift motion of the unanchored tanks has been considered to contribute toward their various damages. Its accurate estimate is indispensable to secure the safety of the tanks at an earthquake event.rnAssuming the ideal fluid and velocity potential, a mathematical solution for evaluating the fluid pressure on a rigid flat-bottom cylindrical tank accompanying the angular acceleration that acts on a pivoting bottom edge is derived. In actual case scenarios, practitioners should calculate the fluid pressure accompanying the rocking motion of the tank which possesses a crescent-like uplift region in a plan view of the bottom plate. To satisfy this demand, this paper also proposes an approximation method featuring a rectangular tank with a unit depth off and parallel with the center line of the rigid flat-bottom cylindrical tank, denoted a slice model.rnThe mathematical solution is given by the explicit function of aspect of the tank but is a Fourier series. It well converges with a few first terms of the Fourier series. A comparison with the FE analysis with a three-dimensional half tank model reveals the analytical accuracy for evaluating values of the fluid pressure on the rigid flat-bottom cylindrical tank. In addition, the slice model reasonably approximates the values of the fluid pressure on the shell off and parallel with the center line of the rigid flat-bottom cylindrical tank. For designer's convenience, diagrams that depict the normalized fluid pressure are also presented. The curved component of the fluid pressure distribution increases as the tank becomes taller or the azimuth angle approaches to 0 or 180 degrees.
机译:除了油箱的上升位移之外,未锚固油箱伴随着油箱上升运动的流体压力也被认为会造成各种损坏。它的准确估算对于确保储罐在地震中的安全是必不可少的。rn假设理想的流体和速度潜能,一种数学方法用于评估刚性平底圆柱形储罐上的流体压力以及作用在枢轴上的角加速度得出底边。在实际情况下,从业者应该计算伴随罐体摇摆运动的流体压力,该罐体在底板的平面图中具有月牙形的隆起区域。为了满足这一需求,本文还提出了一种近似方法,其特征是一个矩形罐,其单位深度与刚性平底圆柱罐的中心线相距一定深度,并与之平行,称为切片模型.rn该数学解由显式函数给出坦克方面,但是傅立叶级数。它很好地与傅立叶级数的几个第一项收敛。通过与三维半罐模型的​​有限元分析进行比较,可以得出用于评估刚性平底圆柱罐上流体压力值的分析精度。另外,切片模型可以合理地近似壳体的流体压力值,该压力与刚性平底圆柱罐的中心线平行并平行。为了方便设计人员,还提供了描述归一化流体压力的图表。随着油箱变高或方位角接近0或180度,流体压力分布的弯曲分量增加。

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