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Nonlinear predictive control of a drying process using genetic algorithms

机译:使用遗传算法的干燥过程的非线性预测控制

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A nonlinear predictive control technique is developed to determine the optimal drying profile for a drying process. A complete nonlinear model of the baker's yeast drying process is used for predicting the future control actions. To minimize the difference between the model predictions and the desired trajectory throughout finite horizon, an objective function is described. The optimization problem is solved using a genetic algorithm due to the successful overconventional optimization techniques in the applications of the complex optimization problems. The control scheme comprises a drying process, a nonlinear prediction model, an optimizer, and a genetic search block. The nonlinear predictive control method proposed in this paper is applied to the baker's yeast drying process. The results show significant enhancement of the manufacturing quality, considerable decrease of the energy consumption and drying time, obtained by the proposed nonlinear predictive control.
机译:开发了一种非线性预测控制技术来确定干燥过程的最佳干燥曲线。面包酵母干燥过程的完整非线性模型用于预测未来的控制措施。为了使模型预测与整个有限水平范围内的期望轨迹之间的差异最小,描述了一个目标函数。由于在复杂优化问题的应用中成功的过常规优化技术,使用遗传算法解决了优化问题。该控制方案包括干燥过程,非线性预测模型,优化器和遗传搜索模块。本文提出的非线性预测控制方法被应用于面包师的酵母干燥过程中。结果表明,通过所提出的非线性预测控制,可以显着提高制造质量,显着降低能耗和干燥时间。

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