Study on Design Approach for Tall Pressure Vessels With Intermediate Support in Consideration of Bottom Structure Flexibility

S. Sasaki, Takanori Nanjo, Toshikazu Miyashita, S. Kataoka, Yoshiaki Uno
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Abstract

The skirt and shell thicknesses of vertical tall pressure vessels are sometimes much increased in FPSO (Floating Production, Storage and Offloading) due to ship motion acceleration. In that case, intermediate support is used as an additional support from steel structure surrounding the vessels. By theoretical calculation, Nanjo et.al. introduced dimensionless parameter N that can represent stiffness of pressure vessel and acceleration load with the assumption of structure drift at intermediate support [1]. The authors proposed N-chart to investigate the necessity and effective elevation of intermediate support by using the parameter N. The flexibility of steel structure on the bottom affects the function of intermediate support (e.g. increasing reaction force at intermediate support, effect on bottom skirt calculation); however, the flexibility is not included in the parameter N. In this paper, an additional factor for the flexibility was studied and introduced by structural analysis. A model with flexibility of structure supporting the bottom skirt was used for the analysis. The variable flexibility of steel structure was applied to the bottom of the model to study the impact of bottom structure flexibility on the pressure vessel design. The analysis result was compared with the bottom fixed model without structure flexibility to study an additional factor. Finally, appropriate design approach for tall pressure vessels with intermediate supports was proposed.
考虑底部结构柔性的中间支撑高压力容器设计方法研究
在浮式生产、储存和卸载(FPSO)中,由于船舶运动加速,立式高压力容器的裙边和壳体厚度有时会大大增加。在这种情况下,中间支撑被用作容器周围钢结构的额外支撑。通过理论计算,Nanjo等。引入无量纲参数N,该参数可以表示压力容器的刚度和加速度载荷,并假设结构在中间支撑处发生漂移[1]。底部钢结构的柔韧性影响中间支撑的作用(如增加中间支撑处的反力,影响底裙的计算);然而,柔度并没有包含在参数n中。本文通过结构分析,研究并引入了柔度的一个附加因素。采用结构柔性支撑下裙的模型进行分析。将钢结构的变柔度应用于模型的底部,研究底部结构柔度对压力容器设计的影响。将分析结果与无结构柔性的底部固定模型进行比较,研究附加因素。最后,提出了具有中间支撑的高压力容器的合理设计方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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