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Learning control for batch thermal sterilization of canned foods

机译:罐装食品批量热灭菌的学习控制

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摘要

A control technique based on Reinforcement Learning is proposed for the thermal sterilization of canned foods. The proposed controller has the objective of ensuring a given degree of sterilization during Heating (by providing a minimum temperature inside the cans during a given time) and then a smooth Cooling, avoiding sudden pressure variations. For this, three automatic control valves are manipulated by the controller: a valve that regulates the admission of steam during Heating, and a valve that regulate the admission of air, together with a bleeder valve, during Cooling. As dynamical models of this kind of processes are too complex and involve many uncertainties, controllers based on learning are proposed. Thus, based on the control objectives and the constraints on input and output variables, the proposed controllers learn the most adequate control actions by looking up a certain matrix that contains the state-action mapping, starting from a preselected state-action space. This state-action matrix is constantly updated based on the performance obtained with the applied control actions. Experimental results at laboratory scale show the advantages of the proposed technique for this kind of processes.
机译:提出了一种基于强化学习的罐装食品热灭菌控制技术。提出的控制器的目的是确保在加热过程中达到一定程度的灭菌(通过在给定时间内在罐内提供最低温度),然后平稳冷却,避免突然的压力变化。为此,控制器将操纵三个自动控制阀:一个在加热期间调节蒸汽进入的阀,一个在冷却期间调节空气进入的阀以及一个泄放阀。由于此类过程的动力学模型过于复杂且涉及许多不确定性,因此提出了基于学习的控制器。因此,基于控制目标以及对输入和输出变量的约束,建议的控制器通过从预选的状态动作空间开始查找包含状态动作映射的特定矩阵来学习最适当的控制动作。该状态操作矩阵会根据通过应用控制操作获得的性能不断更新。实验室规模的实验结果表明了该技术在此类过程中的优势。

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