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首页> 外文期刊>KSCE journal of civil engineering >Optimal Design of Stormwater Detention Basin using the Genetic Algorithm
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Optimal Design of Stormwater Detention Basin using the Genetic Algorithm

机译:基于遗传算法的雨水滞洪池优化设计

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The urbanization of an undeveloped area often shortens outflow travel time and increases peak discharge from the basin, thereby increasing the downstream flood frequency. Stormwater detention ponds are the most common measure to maintain the outflow from the post-developed basin to a flow similar to that under the pre-developed condition. The design criteria of stormwater detention ponds are to minimize construction cost while achieving the flood control purpose. The tedious and time-consuming, trial-and-error method is commonly used to determine the optimal size and location of the pond and outlet structure for a design storm period. In this study, a stochastic search algorithm, a Genetic Algorithm (GA), is used to optimize the detention pond design. The decision variables are the pond storage, and the pipe diameters and number of pipes for the service outlet. The flood control objective considered in this study is that the peak discharge in the post-developed condition does not exceed that under the pre-developed condition and that the maximum water level in the pond during the flood remains below the allowable water level. The proposed optimization algorithm method was applied to the real design of two detention ponds in South Korea, where it generated better design options comprising smaller pond storage and smaller outlet standpipe dimensions than those of the traditional trial-and-error method, and in a much shorter computational time. Therefore, the stochastic search algorithm, GA, can be successfully applied in the design of a stormwater detention basin to improve accuracy and convenience. The engineers can accordingly assess the development plan in terms of the potential basin disaster more efficiently than is possible when using the tedious computation method.
机译:欠发达地区的城市化通常会缩短流出时间,增加流域的洪峰排放量,从而增加下游洪水的频率。雨水滞留池是保持从开发后流域到与开发前状态类似流量的最常用措施。雨水蓄水池的设计标准是在达到防洪目的的同时,尽量减少建设成本。繁琐且费时的反复试验方法通常用于确定设计风暴期间池塘和出口结构的最佳尺寸和位置。在这项研究中,随机搜索算法,遗传算法(GA),用于优化滞留池设计。决策变量是池塘的存储量,服务出口的管道直径和管道数量。本研究中考虑的防洪目标是,后开发条件下的峰值流量不超过预开发条件下的峰值流量,并且洪水期间池塘中的最大水位保持在允许水位以下。所提出的优化算法方法被应用于韩国的两个滞留池的实际设计中,与传统的试错法相比,该方法产生了更好的设计选择,包括较小的池塘存储量和较小的出口立管尺寸。计算时间更短。因此,随机搜索算法GA可以成功地应用于雨水滞洪盆地的设计中,以提高准确性和便利性。因此,与使用繁琐的计算方法时相比,工程师可以更有效地根据潜在的流域灾害评估开发计划。

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