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Optimization design of elastic constrained mechanism in swashplate engine based on neural network and genetic algorithm

机译:基于神经网络和遗传算法的斜盘发动机弹性约束机构的优化设计

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Aiming at the fact that the current method of designing elastic constrained mechanism in swashplate engine is deficient and the vibration noise is very large, a new method for optimization design of constrained mechanism is put forward based on back propagation (BP) artificial neural network and genetic algorithm (GA). Firstly the dynamics model of constrained mechanism-shafting in swashplate engine is set up, and the samples are gained by numerical simulation; then the non-linear mapping relationship of elastic constrained mechanism's designed parameters and the objective function is established with BP neural network; finally the trained network is called back by GA to make global optimization. The optimization results show that the global optimal resolution can be searched rapidly and correctly with the method, besides, the method is precise, and the vibration damping effect of the optimized elastic constrained mechanism is very conspicuous.
机译:针对涡旋发动机中的弹性受限机构的目前的设计方法缺乏,振动噪声非常大,基于反传播(BP)人工神经网络和遗传学,提出了一种新的约束机构优化设计方法。算法(GA)。首先,建立了涡旋引擎中受约束机构的动力学模型,并通过数值模拟来获得样品;然后用BP神经网络建立弹性受限机制设计参数和目标函数的非线性映射关系;最后,通过GA呼叫训练网络以进行全局优化。优化结果表明,通过该方法可以快速且正确地搜索全局最优分辨率,除此之外,该方法精确,优化的弹性受限机构的振动阻尼效果非常显着。

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