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Optimal Layout of Gill Cells for Very Large Floating Structures

机译:大型漂浮结构of细胞的最佳布局

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A pontoon-type, very large floating structure (VLFS) undergoes uneven deformation when loaded unevenly. The resulting differential deflection may lead to a cessation of equipment operation, and even compromising the structural integrity of the VLFS. One cost effective solution for reducing the differential deflection is by introducing the innovative gill cells at appropriate locations in the VLFS. Gill cells are compartments in VLFS with holes or slits at their bottom surfaces to allow water to enter or leave freely. At these gill cell locations, the buoyancy forces are eliminated and this allows uneven buoyancy forces acting at the bottom hull of the VLFS to somewhat counterbalance the applied nonuniform loading. In this paper, we investigate the effectiveness of gill cells in pontoon-type VLFS in reducing the differential deflection and von Mises stresses as well as the optimal layout (i.e., the number and locations) of gill cells that minimizes the differential deflection subject to a draft constraint. As the decision variables, objective functions and the constraints are not continuous and differentiable, genetic algorithms are adopted as an optimization tool. The optimal layouts for gill cells are determined for various VLFS shapes such as square, rectangular and I-shape and loading configurations.
机译:当负载不均匀时,浮船型超大型浮动结构(VLFS)会发生不均匀变形。产生的偏差会导致设备停止运行,甚至损害VLFS的结构完整性。降低差分偏转的一种经济有效的解决方案是在VLFS的适当位置引入创新的g细胞。细胞是VLFS中的隔室,在其底表面带有孔或缝,可让水自由进出。在这些g细胞位置,消除了浮力,这使作用于VLFS底部船体的不均匀浮力在某种程度上抵消了所施加的不均匀载荷。在本文中,我们研究了浮桥型VLFS中的g细胞在减少微分挠度和von Mises应力以及the细胞的最佳布局(即数量和位置)方面的有效性,该方法可以最大程度地减小受a突影响的微分挠度。草稿约束。由于决策变量,目标函数和约束条件不是连续且可微的,因此采用遗传算法作为优化工具。 various细胞的最佳布局是针对各种VLFS形状(例如方形,矩形和I形)和加载配置确定的。

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