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Neural Network Optimal Controller for Commercial Ice Thermal Storage Systems

机译:商业冰蓄热系统的神经网络最优控制器

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This paper describes the construction and measured performance of a neural network-based optimal controller for an ice thermal storage system. The controller consists of four neural networks, three of which map equipment behavior and one that acts as a global controller. The controller self-learns equipment responses to the environment and then determines the control settings that should be used. Issues to be addressed are the cost function and selection of a planning window over which the optimization is conducted. The neural network (NN) controller then determines the sequence of control actions that minimize total cost over the planning window. Verification, reported on in a companion paper, is accomplished through computer simulation and on an operational plant.
机译:本文介绍了一种基于神经网络的冰蓄热系统最优控制器的构造和测量性能。控制器由四个神经网络组成,其中三个映射设备行为,另一个充当全局控制器。控制器自学习设备对环境的响应,然后确定应使用的控制设置。要解决的问题是成本函数和计划窗口的选择,在该窗口上进行优化。然后,神经网络(NN)控制器确定在计划窗口内使总成本最小化的控制动作的顺序。随附论文中进行的验证是通过计算机仿真和在运行工厂中完成的。

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