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PERMANENT MEANS OF ACCESS STRUCTURAL DESIGN USING MULTI-OBJECTIVE OPTIMIZATION

机译:基于多目标优化的访问结构设计永久性手段

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Permanent means of access (PMA) of oil tankers and bulk carries consists of a wide platform for walkthrough inspection. Since PMA structures have a tall web plate, they are vulnerable to elastic tripping. A previous paper proposed a Rayleigh-Ritz method to analyze elastic tripping behavior of PMA structures. The method is parametric formulated, mesh free, computational efficient, and is able to predict both the flange plate critical tripping stress as well as the web plate local buckling stress; therefore the solution process is suitable for design space exploration. In this paper, multi-objective optimization methods are used to determine the Pareto solutions of a PMA structure based on the proposed tripping algorithm. The objective is to solve a design problem aimed at simultaneously minimizing the weight of a PMA structure and maximizing its critical buckling stress. Three multi-objective methods, Pareto Simulated Annealing (PSA), Ulungu Multi-objective Simulated Annealing (UMOSA) and Multi-objective Genetic Algorithm (MOGA) are presented for a case study. The numerical results show that all three methods can efficiently and effectively solve such optimization problems within a short search time. The critical buckling stress of the final optimal designs is validated by the linear and non-linear buckling analysis of NX-NASTRAN.
机译:油轮和散装货船的永久通道(PMA)包含用于进行演练检查的宽广平台。由于PMA结构的腹板很高,因此很容易发生弹性绊倒。先前的论文提出了一种Rayleigh-Ritz方法来分析PMA结构的弹性跳闸行为。该方法参数化,无网格,计算效率高,能够预测翼缘板的临界跳闸应力以及腹板的局部屈曲应力。因此,求解过程适用于设计空间探索。本文基于提出的跳闸算法,采用多目标优化方法确定PMA结构的Pareto解。目的是解决旨在同时最小化PMA结构的重量并最大化其临界屈曲应力的设计问题。提出了三种多目标方法:帕累托模拟退火(PSA),Ulugugu多目标模拟退火(UMOSA)和多目标遗传算法(MOGA)进行案例研究。数值结果表明,这三种方法都可以在短时间内有效地解决此类优化问题。 NX-NASTRAN的线性和非线性屈曲分析验证了最终最优设计的临界屈曲应力。

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