基于隐藏基因遗传算法的异构WEC阵列优化

Habeebullah Abdulkadir, Ahmed Ellithy, Abdelkhalik Ossama
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引用次数: 1

摘要

波浪能转换器(WEC)部署在阵列中,以提高向电网输送电力的整体质量,并通过最大限度地降低设计、部署、系泊、维护和其他相关成本来降低电力生产成本。WEC阵列通常包含相同尺寸和操作模式的设备。这些装置布置得很近,通常具有破坏性的装置间水动力相互作用。然而,在这项工作中,我们探索优化阵列中设备的数量,同时优化单个设备(异构)的尺寸,以实现与具有可比总体淹没体积的相同设备(同质)阵列相比更好的性能。在考虑阵列使用的材料体积的同时,制定了技术经济目标函数来衡量阵列的性能。采用时域阵列动态模型和最优约束控制计算阵列功率。水动力系数的计算采用半解析方法,使计算效率的优化。该优化问题采用了隐基因遗传算法(HGGA)。在优化过程中,将标签分配给基因,以确定它们是活跃的还是隐藏的。主动基因模拟异构阵列中的主动WEC器件,而隐藏基因导致阵列中器件总数比均匀阵列减少。非均匀阵列的体积被约束为接近均匀阵列的体积。这些隐藏标签不会将相关设备排除在优化过程之外;这些设备随着有源设备不断进化,因为它们可能在后代中变得活跃。异构阵列的性能优于均匀阵列。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Heterogeneous WEC array optimization using the Hidden Genes Genetic Algorithm
Wave Energy Converters (WEC) are deployed in arrays to improve the overall quality of the delivered power to the grid and reduce the cost of power production by minimizing the cost of design, deployments, mooring, maintenance, and other associated costs. WEC arrays often contain devices of identical dimensions and modes of operation. The devices are deployed in close proximity, usually having destructive inter-device hydrodynamic interactions. However, in this work, we explore optimizing the number of devices in the array and concurrently, the dimensions of the individual devices (heterogeneous) to achieve better performance compared to an array of identical devices (homogeneous) with comparable overall submerged volume. A  techno-economic objective function is formulated to measure the performance of the array while accounting for the volume of material used by the arrays. The power from the array is computed using a time-domain array dynamic model and an optimal constrained control. The hydrodynamic coefficients are computed using a semi-analytical method to enable computationally efficient optimization. The Hidden Gene Genetic Algorithm (HGGA) formulation is used in this optimization problem.  During the optimization, tags are assigned to genes to determine whether they are active or hidden. An active gene simulates an active WEC device in the heterogeneous array, while the hidden gene results in a reduction in the total number of devices in the array compared with the homogeneous array. The volume of the heterogeneous array is constrained to be close to that of the homogeneous array. These hidden tags do not exclude the associated devices from the optimization process; these devices keep evolving with the active devices as they might become active in subsequent generations. Heterogeneous arrays were found to perform better than homogeneous arrays.
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