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Genetic algorithm-based fuzzy-PID control methodologies for enhancement of energy efficiency of a dynamic energy system

机译:基于遗传算法的模糊-PID控制方法,以提高动态能源系统的能源效率

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摘要

The simplicity in coding the heuristic judgment of experienced operator by means of fuzzy logic can be exploited for enhancement of energy efficiency. Fuzzy logic has been used as an effective tool for scheduling conventional PID controllers gain coefficients (F-PID). However, to search for the most desirable fuzzy system characteristics that allow for best performance of the energy system with minimum energy input, optimization techniques such as genetic algorithm (GA) could be utilized and the control methodology is identified as GA-based F-PID (GA-F-PID). The objective of this study is to examine the performance of PID, F-PID, and GA-F-PID controllers for enhancement of energy efficiency of a dynamic energy system. The performance evaluation of the controllers is accomplished by means of two cost functions that are based on the quadratic forms of the energy input and deviation from a setpoint temperature, referred to as energy and comfort costs, respectively. The GA-F-PID controller is examined in two different forms, namely, global form and local form. For the global form, all possible combinations of fuzzy system characteristics in the search domain are explored by GA for finding the fittest chromosome for all discrete time intervals during the entire operation period. For the local form, however, GA is used in each discrete time interval to find the fittest chromosome for implementation. The results show that the global form GA-F-PID and local form GA-F-PID control methodologies, in comparison with PID controller, achieve higher energy efficiency by lowering energy costs by 51.2%, and 67.8%, respectively. Similarly, the comfort costs for deviation from setpoint are enhanced by 54.4%, and 62.4%, respectively. It is determined that GA-F-PID performs better in local from than global form.
机译:可以利用通过模糊逻辑对经验丰富的操作员的启发式判断进行编码的简单性来提高能源效率。模糊逻辑已被用作调度常规PID控制器增益系数(F-PID)的有效工具。但是,为了搜索最理想的模糊系统特性,以最小的能量输入实现能源系统的最佳性能,可以利用诸如遗传算法(GA)之类的优化技术,并将控制方法识别为基于GA的F-PID (GA-F-PID)。这项研究的目的是检查PID,F-PID和GA-F-PID控制器的性能,以增强动态能源系统的能源效率。控制器的性能评估是通过两个成本函数完成的,这两个函数基于能量输入和与设定点温度的偏差的二次形式,分别称为能量成本和舒适成本。 GA-F-PID控制器以两种不同的形式进行检查,即全局形式和局部形式。对于全局形式,GA会探索搜索域中模糊系统特征的所有可能组合,以便在整个操作期间内针对所有离散时间间隔找到最适合的染色体。但是,对于局部形式,在每个离散的时间间隔中使用GA查找最合适的染色体以进行实施。结果表明,与PID控制器相比,全局形式GA-F-PID和局部形式GA-F-PID控制方法通过分别降低51.2%和67.8%的能源成本实现了更高的能源效率。同样,偏离设定值的舒适性成本分别提高了54.4%和62.4%。可以确定,GA-F-PID从本地到本地的性能要优于全局。

著录项

  • 来源
    《Energy Conversion & Management》 |2011年第1期|p.725-732|共8页
  • 作者

    G. Jahedi; M.M. Ardehali;

  • 作者单位

    Energy Research Center, Department of Electrical Engineering. Amirkabir University of Technology (Tehran Polytechnic), 424 Hafez Ave, Tehran, Iran;

    Energy Research Center, Department of Electrical Engineering. Amirkabir University of Technology (Tehran Polytechnic), 424 Hafez Ave, Tehran, Iran;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    energy; efficiency; fuzzy logic; genetic algorithm; control; PID;

    机译:能源;效率;模糊逻辑;遗传算法控制;PID;

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