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Design and Robustness Analysis of Intelligent Controllers for Commercial Greenhouse

机译:商业温室智能控制器的设计与鲁棒性分析

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In a commercial greenhouse, variables, such as temperature and humidity, should be controlled with minimal human intervention. A systematically designed climate control system can enhance the yield of commercial greenhouses. This study aims to formulate a nonlinear multivariable transfer function model of the greenhouse model using thermodynamic laws by taking into account the variables that affect the Greenhouse Climate Control System. To control its parameters, Mamdani model-based Fuzzy PID is designed which is compared with the performance of proportional-integral (PI) and proportional-integral-derivative (PID) controllers to achieve a smooth control action. The Fuzzy logic based PID provides robust control actions eliminating the need for conventional tuning methods. The robustness analysis is performed using values obtained from real-time implementation for the greenhouse model for Fuzzy based PID, PI and PID controllers by minimizing the Integral Absolute Error (IAE) and Integral Square Error (ISE). The greenhouse model has strong interactions between its parameters, which are removed by Relative Gain Array (RGA) analysis, thereby providing an effective control strategy for complex greenhouse production. Further, the stability analysis of non-linear greenhouse model is conducted with the help of the bode plot and Nyquist plot. Results show that good control performance can be achieved by tuning the gain parameters of controllers via step responses such as small overshoot, fast settling time, less rise time, and steady-state error. Also, smoother control action was obtained with Fuzzy based PID making the Greenhouse Climate Control System stable.
机译:在商业温室中,应控制诸如温度和湿度的变量,以最小的人为干预。系统设计的气候控制系统可以增强商业温室的产量。本研究旨在通过考虑影响温室气候控制系统的变量,制定使用热力学定律的温室模型的非线性多变量传递函数模型。为了控制其参数,设计了基于Mamdani模型的模糊PID,其与比例积分(PI)和比例积分 - 衍生物(PID)控制器的性能进行了比较,以实现平滑的控制动作。基于模糊的基于逻辑的PID提供了强大的控制动作,消除了传统调谐方法的需要。通过最小化积分绝对误差(IAE)和整体方误差(ISE)来使用从基于模糊的PID,PI和PID控制器的温室模型获得的实时实现来执行鲁棒性分析。温室模型在其参数之间具有强烈的相互作用,其通过相对增益阵列(RGA)分析除去,从而为复杂的温室生产提供有效的控制策略。此外,在Bode Plot和Nyquist Plot的帮助下进行非线性温室模型的稳定性分析。结果表明,通过通过诸如小过冲,快速沉降时间,上升时间和稳态误差等步骤响应,可以通过调整控制器的增益参数来实现良好的控制性能。此外,通过基于模糊的PID获得更平滑的控制作用,使温室气候控制系统稳定。

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