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The measurement of viscosity in rubber mixing process based on fuzzy-GA modeling

机译:基于模糊遗传算法的橡胶混炼过程中粘度测量

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Rubber mixing is a complicated process and online measurement of viscosity is very difficult to achieve. To cope with the problem, a soft sensing approach based on fuzzy-GA modeling is proposed. During modeling, T-S fuzzy model is employed to approximate the non-linearity of rubber mixing process, an improved Gustafon-Kessel fuzzy clustering algorithm based on similarity assessing is proposed to determine the optimum number of clusters and real-coded GA (genetic algorithm) is adopted to optimize model parameters. All these techniques make the fuzzy model simple and accurate. Based on the approach, a test is conducted. The results show that the proposed approach provides a result near laboratory measurement, and the error is lower and acceptable. It decreases the time involved with tests in laboratory and can be seen as a powerful tool for online measurement of viscosity.
机译:橡胶混合是一个复杂的过程,很难在线测量粘度。针对该问题,提出了一种基于模糊遗传算法的软传感方法。在建模过程中,采用TS模糊模型来近似橡胶混合过程的非线性,提出了一种基于相似度评估的改进的Gustafon-Kessel模糊聚类算法,确定了最佳的聚类数量,并采用了实编码GA(遗传算法)。用于优化模型参数。所有这些技术使模糊模型变得简单而准确。基于该方法,进行了测试。结果表明,所提出的方法可提供接近实验室测量的结果,且误差较低且可以接受。它减少了实验室测试的时间,可以看作是在线测量粘度的强大工具。

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