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Development of Practical Integrated Optimization Method for Ship Geometry with High Performance in Waves

机译:波浪中高性能船舶几何实用综合优化方法的发展

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摘要

To enhance performance of a ship in waves, improvement of its geometry appears to be important and should be treated properly. For this purpose, a practical integrated optimization method is developed to acquire improved ship geometry. Namely the Enhanced Unified Theory (EUT) and the Binary-Coded Genetic Algorithm (BCGA) are integrated together to optimize the ship hull geometry of a basis hull through its Sectional Area Curve (SAC). A modified Wigley model is firstly employed as a basis hull and optimized for some wavelength regions. From the obtained results, the added resistance of modified Wigley model decreases in large amount at the desired wavelength region. Furthermore, optimization with an actual ship e.g. SR-108 is also performed with the aim of illustrating effectiveness of the present method for practical purposes. The obtained results show alarge reduction of the added resistance while discrepancy in the steady wave resistance is negligible and the total resistance is confirmed to diminish accordingly.
机译:为了提高船舶在波浪中的性能,改善其几何形状似乎很重要,应适当对待。为此,开发了一种实用的集成优化方法来获取改进的船舶几何形状。即,增强统一理论(EUT)和二进制编码遗传算法(BCGA)集成在一起,以通过基础船体的截面积曲线(SAC)优化基础船体的船体几何形状。修改后的Wigley模型首先用作基础船体,并针对某些波长区域进行了优化。根据获得的结果,在所需的波长区域,改进的Wigley模型的附加电阻会大量降低。此外,以实际船舶为例进行优化,例如执行SR-108的目的还在于出于实际目的说明本方法的有效性。所获得的结果表明,增加的电阻大大减小,而稳态波电阻的差异可以忽略不计,并且总电阻据此减小。

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