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Design and simulation of a discrete time controller for regulating temperature in a scale greenhouse

机译:温室大棚调温离散时间控制器的设计与仿真

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This paper describes the process of designing a temperature controller working in discrete time, using as manipulated variables: thermal power applied from a heat flow supply, in combination with the variation of outdoor air volume flow. As a preliminary step, a dynamic model was analytically derived to describe the behavior of the temperature as a function of the variables: thermal power and air volume flow. An experimental procedure was performed to determine the particular parameters of the real system. Among others specific thermal power, surface thermal conductivity between the greenhouse cover and the environment, heat dissipation coefficient of the incoming airflow. With the values obtained proceeded to make a simulation of the greenhouse on scale as a representative of a physical system. The proposed controller was designed based on the limitations and operating ranges of the real system variables for manipulating : up to 20 watts for the heater in a volume of 5750 cm3, from 0°C of external temperature up to 12°C. By including the air flow as an input variable the system became nonlinear but designed controller was able to maintain the inner temperature between acceptable range for tested potato plants. At a simulation work, it was added a warm air supply at a higher temperature than the outside one. In addition to heating, warm air was also used to increase temperature. This work is the basis to build a mechanism that will be implemented for temperature control which shall carry out, in a full-scale greenhouse in which the efficiency of the control system will be evaluated to protect a crop against the frost weather phenomenon.
机译:本文描述了设计离散时间工作的温度控制器的过程,该过程使用以下变量作为操纵变量:由热流供应装置提供的热能,并结合室外空气流量的变化。首先,通过分析得出一个动态模型,以描述温度随变量(热功率和空气流量)变化的行为。执行了一个实验过程,以确定实际系统的特定参数。除其他外,特定的热功率,温室覆盖层与环境之间的表面热导率,传入气流的散热系数。利用获得的值继续进行温室的模拟,以作为物理系统的代表。拟议的控制器是根据实际系统变量的局限性和操作范围进行设计的:从外部温度0°C到最高12°C,在5750 cm3的体积中,加热器的最大功率为20瓦。通过将气流作为输入变量,系统变成了非线性系统,但设计的控制器能够将内部温度保持在测试马铃薯植株的可接受范围内。在模拟工作中,它以比外部温度更高的温度添加了暖空气供应。除了加热外,还使用热空气来提高温度。这项工作是建立将用于温度控制的机制的基础,该机制将在大型温室中进行,在该温室中将评估控制系统的效率以保护农作物免受霜冻天气现象的影响。

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