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Quantum behaved Particle Swarm Optimization (QPSO) for multi-objective design optimization of composite structures

机译:用于复合结构多目标设计的量子行为粒子群算法(QPSO)

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We present a new, generic method/model for multi-objective design optimization of laminated composite components using a novel multi-objective optimization algorithm developed on the basis of the Quantum behaved Particle Swarm Optimization (QPSO) paradigm. QPSO is a co-variant of the popular Particle Swarm Optimization (PSO) and has been developed and implemented successfully for the multi-objective design optimization of composites. The problem is formulated with multiple objectives of minimizing weight and the total cost of the composite component to achieve a specified strength. The primary optimization variables are - the number nf layers, its stacking sequence (the orientation of the layers) and thickness of each layer. The classical lamination theory is utilized to determine the stresses in the component and the design is evaluated based on three failure criteria; Failure Mechanism based Failure criteria, Maximum stress failure criteria and the Tsai-Wu Failure criteria. The optimization method is validated for a number of different loading configurations - uniaxial, biaxial and bending loads. The design optimization has been carried for both variable stacking sequences as well as fixed standard stacking schemes and a comparative study of the different design configurations evolved has been presented. Also, the performance of QPSO is compared with the conventional PSO.
机译:我们提出了一种新的通用方法/模型,该方法/模型使用了基于量子行为粒子群优化(QPSO)范式开发的新型多目标优化算法,对层压复合材料组件进行了多目标设计优化。 QPSO是流行的粒子群优化(PSO)的协变量,并且已成功开发并实现,用于复合材料的多目标设计优化。解决该问题的目的是使复合部件的重量和总成本最小化,以达到指定的强度。最主要的优化变量是-nf层的数量,其堆叠顺序(各层的方向)和每层的厚度。利用经典的叠层理论确定部件中的应力,并根据三个失效标准评估设计。基于失效机制的失效准则,最大应力失效准则和蔡-吴失效准则。优化方法针对多种不同的载荷配置(单轴,双轴和弯曲载荷)进行了验证。对可变的堆叠顺序以及固定的标准堆叠方案都进行了设计优化,并且对所开发的不同设计配置进行了比较研究。此外,将QPSO的性能与常规PSO进行了比较。

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