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Evaluation of surrogate models for optimization of herringbone groove micromixer

机译:人字形凹槽微混合器优化的替代模型评估

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摘要

Surrogate models have been applied to shape optimizations of a micromixer with the aim of assessing the performance of the models. The surrogate models considered include polynomial response surface approximation, Kriging, and radial basis neural network. In addition, a weighted average model based on global error measures is constructed. A mixing index at the exit of the micromixer is used as the objective function. The mixing index is calculated based on Navier-Stokes equations. Two cases of optimization, one with two design variables and the other with three design variables, have been tested. The design variables are selected among the ratio of the groove depth to channel height, the angle of groove, and the ratio of groove width to groove pitch. D-Optimal design generated sampling points are used for sampling. It is found that although the weighted average model does not predict the best optimal point, it does show consistent and reliable performance.
机译:替代模型已应用于微混合器的形状优化,目的是评估模型的性能。考虑的替代模型包括多项式响应面逼近,Kriging和径向基神经网络。另外,构建了基于全局误差测度的加权平均模型。微型混合器出口处的混合指数用作目标函数。混合指数是根据Navier-Stokes方程计算的。已测试了两种优化情况,一种具有两个设计变量,另一种具有三个设计变量。设计变量是在凹槽深度与通道高度的比率,凹槽角度以及凹槽宽度与凹槽间距的比率之间选择的。 D-Optimal设计生成的采样点用于采样。发现虽然加权平均模型不能预测最佳最优点,但它确实显示出一致和可靠的性能。

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