Methodology for the structural analysis of a main deck of FPSO vessel supporting an offshore crane

IF 0.3 Q4 ENGINEERING, MULTIDISCIPLINARY UIS Ingenierias Pub Date : 2022-12-27 DOI:10.18273/revuin.v22n1-2023001
D. F. Hernández-Ménez, I. Félix-González, J. Hernández-Hernández, A. Herrera-May
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Abstract

Offshore cranes placed on the surface of Floating Production Storage and Offloading (FPSO) vessels affect the structural response of their main decks, which can alter the safe operation of the FPSO vessels. Generally, classification societies rules are used to predict the structural strength of the main deck of FPSO vessels. However, these classification societies rules are limited to estimate the variation of the structural performance of the main deck caused by the operation of offshore cranes under different hydrodynamic conditions. Here, we present a methodology to determine the alteration of the structural behavior of a main deck of FPSO vessel due to different operation conditions of a board offshore crane. This methodology considers the hydrodynamic response for two ultimate limit states: operating and storm conditions from 1000 m water depth in Gulf of Mexico with a return period of 10 and 100 years, respectively. The methodology includes finite element method (FEM) models of the main deck supporting an offshore crane to predict its structural response. The maximum von Mises stress of the main deck does not overcome its maximum permissible stress, which allows a safe operation of the FPSO crane. The proposed methodology can be used to estimate the structural behavior of main decks of FPSO vessels that are modified for supporting offshore cranes, regarding the hydrodynamic response for each FPSO under the operation and extreme conditions in its location. Thus, naval designers could select the better structural modifications of the main decks that decrease their costs of construction and maintenance.
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支撑海上起重机的FPSO船主甲板结构分析方法
浮式生产储油卸船(FPSO)表面的海上起重机会影响其主甲板的结构响应,从而影响FPSO船舶的安全运行。通常,船级社规则用于预测FPSO船舶主甲板的结构强度。然而,这些船级社规则仅限于估计海上起重机在不同水动力条件下运行引起的主甲板结构性能的变化。在这里,我们提出了一种方法来确定由于板式海上起重机的不同操作条件而导致的FPSO船主甲板结构行为的变化。该方法考虑了两种极限状态的水动力响应:墨西哥湾1000m水深的运行和风暴条件,重现期分别为10年和100年。该方法包括支撑海上起重机的主甲板的有限元模型,以预测其结构响应。主甲板的最大von Mises应力没有超过其最大允许应力,这允许FPSO起重机的安全操作。所提出的方法可用于估计为支撑海上起重机而修改的FPSO船舶主甲板的结构行为,包括每个FPSO在操作和其位置的极端条件下的水动力响应。因此,海军设计师可以选择更好的主甲板结构改造,以降低其建造和维护成本。
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来源期刊
UIS Ingenierias
UIS Ingenierias ENGINEERING, MULTIDISCIPLINARY-
自引率
33.30%
发文量
27
审稿时长
12 weeks
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