Multi-Disciplinary Design Optimization for Large-Scale Reverse Osmosis Systems

B. Yu, Tomonori Honda, S. Zubair, M. Sharqawy, Maria C. Yang
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引用次数: 1

Abstract

Large-scale desalination plants are complex systems with many inter-disciplinary interactions and different levels of sub-system hierarchy. Advanced complex systems design tools have been shown to have a positive impact on design in aerospace and automotive, but have generally not been used in the design of water systems. This work presents a multi-disciplinary design optimization approach to desalination system design to minimize the total water production cost of a 30,000m3/day capacity reverse osmosis plant situated in the Middle East, with a focus on comparing monolithic with distributed optimization architectures. A hierarchical multi-disciplinary model is constructed to capture the entire system’s functional components and subsystem interactions. Three different multi-disciplinary design optimization (MDO) architectures are then compared to find the optimal plant design that minimizes total water cost. The architectures include the monolithic architecture multidisciplinary feasible (MDF), individual disciplinary feasible (IDF) and the distributed architecture analytical target cascading (ATC). The results demonstrate that an MDF architecture was the most efficient for finding the optimal design, while a distributed MDO approach such as analytical target cascading is also a suitable approach for optimal design of desalination plants, but optimization performance may depend on initial conditions.
大型反渗透系统的多学科设计优化
大型海水淡化厂是一个复杂的系统,具有许多跨学科的相互作用和不同层次的子系统层次。先进的复杂系统设计工具已经被证明对航空航天和汽车的设计有积极的影响,但通常没有被用于水系统的设计。本研究提出了一种多学科设计优化方法来设计海水淡化系统,以最大限度地降低位于中东的3万立方米/天的反渗透工厂的总产水成本,并重点比较了单片优化架构和分布式优化架构。构建了一个多层次的多学科模型来捕捉整个系统的功能组件和子系统之间的相互作用。然后比较了三种不同的多学科设计优化(MDO)架构,以找到使总水成本最小化的最佳工厂设计。这些体系结构包括单片体系结构多学科可行性(MDF)、单学科可行性(IDF)和分布式体系结构分析目标级联(ATC)。结果表明,MDF体系结构对于寻找最优设计是最有效的,而分布式MDO方法(如解析目标级联)也适用于海水淡化厂的优化设计,但优化性能可能取决于初始条件。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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