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A hybrid computational method for optimization design of bistable compliant mechanism

机译:一种混合计算方法,用于优化双稳态兼容机制

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Purpose Compliant mechanism has been receiving a great interest in precision engineering. However, analytical methods involving their behavior analysis is still a challenge because there are unclear kinematic behaviors. Especially, design optimization for compliant mechanisms becomes an important task when the problem is more and more complex. Therefore, the purpose of this study is to design a new hybrid computational method. The hybridized method is an integration of statistics, numerical method, computational intelligence and optimization. Design/methodology/approach A tensural bistable compliant mechanism is used to clarify the efficiency of the developed method. A pseudo model of the mechanism is designed and simulations are planned to retrieve the data sets. Main contributions of design variables are analyzed by analysis of variance to initialize several new populations. Next, objective functions are transformed into the desirability, which are inputs of the fuzzy inference system (FIS). The FIS modeling is aimed to initialize a single-combined objective function (SCOF). Subsequently, adaptive neuro-fuzzy inference system is developed to modeling a relation of the main geometrical parameters and the SCOF. Finally, the SCOF is maximized by lightning attachment procedure optimization algorithm to yield a global optimality. Findings The results prove that the present method is better than a combination of fuzzy logic and Taguchi. The present method is also superior to other algorithms by conducting non-parameter tests. The proposed computational method is a usefully systematic method that can be applied to compliant mechanisms with complex structures and multiple-constrained optimization problems. Originality/value The novelty of this work is to make a new approach by combining statistical techniques, numerical method, computational intelligence and metaheuristic algorithm. The feasibility of the method is capable of solving a multi-objective optimization problem for compliant mechanisms with nonlinear complexity.
机译:目的兼容机制已经接受了对精密工程的兴趣。然而,涉及其行为分析的分析方法仍然是一个挑战,因为运动行为不明显。特别是,当问题越来越复杂时,兼容机制的设计优化成为重要任务。因此,本研究的目的是设计一种新的混合计算方法。杂交的方法是统计数据,数值方法,计算智能和优化的集成。设计/方法/方法采用一种张力双稳态兼容机制来阐明开发方法的效率。设计了机制的伪模型,并计划模拟来检索数据集。通过分析初始化几个新种群的方差分析设计变量的主要贡献。接下来,将客观函数转化为可期望,这是模糊推理系统(FIS)的输入。 FIS建模旨在初始化单一组合的目标函数(SCOF)。随后,开发了自适应神经模糊推理系统以建模主要几何参数和SCOF的关系。最后,通过闪电附件过程优化算法最大化SCOF以产生全球最优性。调查结果证明本方法优于模糊逻辑和塔努奇的组合。通过进行非参数测试,本方法也优于其他算法。所提出的计算方法是一种有用的系统方法,可以应用于具有复杂结构的柔顺机制和多约束的优化问题。原创性/价值本作的新颖性是通过组合统计技术,数值,计算智能和成群质算法来制定一种新的方法。该方法的可行性能够解决具有非线性复杂性的柔顺机制的多目标优化问题。

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