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首页> 外文期刊>International journal of intelligent unmanned systems >Multi-modular design optimization and multidisciplinary design optimization
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Multi-modular design optimization and multidisciplinary design optimization

机译:多模块设计优化和多学科设计优化

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Purpose - For complex engineering problems, multidisciplinary design optimization (MDO) techniques use some disciplines that need to be run several times in different modules. In addition, mathematical modeling of a discipline can be improved for each module. The purpose of this paper is to show that multi-modular design optimization (MMO) improves the design performances in comparison with MDO technique for complex systems. Design/methodology/approach - MDO framework and MMO framework are developed to optimum design of a complex system. The nonlinear equality and inequality constrains are considered. The system optimizers included Genetic Algorithm and Sequential Quadratic Programming. Findings - As shown, fewer design variables (optimization variables) are needed at the system level for MMO. Unshared variables are optimized in the related module when shared variables are optimized at the system level. The results of this research show that MMO has lower elapsed times (14 percent) with lower F-count (16 percent). Practical implications - The monopropellant propulsion upper-stage is selected as a case study. In this paper, the efficient model of the monopropellant propulsion system is proposed. According to the results, the proposed model has acceptable accuracy in mass model (error <2 percent), performance estimation (error < 6 percent) and geometry estimation (error < 10 percent). Originality/value - The monopropellant propulsion system is broken down into the three important modules including propellant tank (tank and propellant), pressurized feeding (tank and gas) and thruster (catalyst, nozzle and catalysts bed) when chemical decomposition, aerothermodynamics, mass and configuration, catalyst and structure have been considered as the disciplines. The both MMO and MDO frameworks are developed for the monopropellant propulsion system.
机译:目的-对于复杂的工程问题,多学科设计优化(MDO)技术使用一些需要在不同模块中多次运行的学科。另外,可以为每个模块改进学科的数学建模。本文的目的是证明与复杂系统的MDO技术相比,多模块设计优化(MMO)可以提高设计性能。设计/方法/方法-开发MDO框架和MMO框架以优化复杂系统的设计。考虑了非线性等式和不等式约束。系统优化器包括遗传算法和顺序二次规划。结果-如图所示,MMO在系统级别需要较少的设计变量(优化变量)。当在系统级别优化共享变量时,将在相关模块中优化未共享变量。这项研究的结果表明,MMO的经过时间较短(14%),F计数较低(16%)。实际意义-选择单级推进剂推进作为案例研究。本文提出了单推进系统的有效模型。根据结果​​,所提出的模型在质量模型(误差<2%),性能估计(误差<6%)和几何形状估计(误差<10%)方面具有可接受的精度。独创性/价值-单药推进系统分为三个重要模块,包括化学分解,空气热力学,质量和热能时的推进剂箱(罐和推进剂),加压进料(罐和气)和推进器(催化剂,喷嘴和催化剂床)。配置,催化剂和结构已被视为学科。 MMO和MDO框架都是针对单推进系统开发的。

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