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Design of fuzzy logic control system incorporating human expert knowledge for combine harvester

机译:结合人类专业知识的联合收割机模糊逻辑控制系统设计

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摘要

Many factors affect the yield loss in wheat harvesting with a grain combine harvester. Grain harvesting is a non-linear process, is of considerable complexity, and there is no mathematical model to describe the behavior of this complex system. In this paper, a fuzzy logic controller (FLC) incorporating human expert knowledge is designed for automatic adjustment and control of the harvester to achieve minimal grain losses especially at the position of straw walker and upper sieve. The FLC automatically adjusts cylinder speed, concave clearance, fan speed and forward speed of the combine based on the measured losses at straw walker and sieve sections. The designed FLC expert system consists two inputs and four outputs. Trapezoidal membership functions were selected for input fuzzy linguistic variables (straw walker and sieve losses), whereas fuzzy singletons were considered for the outputs. Based on human expert knowledge, six rules with logical AND operator and Mamdani implication are extracted. FLC was implemented in a programmable logic controller (PLC). Field experiments in two different irrigated or non-irrigated cultivated areas in order to evaluate the system. It was found the losses at the position of straw walker and upper sieve in the irrigated wheat cultivated area is much higher than the dry wheat cultivation area. Statistical analysis using t-test was also indicated a significant difference (p < 1%) between loss mean in the combine equipped with the controller and the one without FLC.
机译:许多因素都会影响谷物联合收割机收割小麦的单产。谷物收割是一个非线性过程,相当复杂,并且没有数学模型来描述此复杂系统的行为。在本文中,设计了一种结合了人类专业知识的模糊逻辑控制器(FLC),用于自动调整和控制收割机,以实现最小的谷物损失,尤其是在秸秆助行器和上筛的位置。 FLC根据测得的秸秆助行器和筛网部分的损失自动调整联合收割机的滚筒速度,凹面间隙,风扇速度和前进速度。设计的FLC专家系统包含两个输入和四个输出。选择梯形隶属函数作为输入模糊语言变量(稻草行进和筛分损失),而输出则考虑模糊单例。基于人类的专业知识,提取了六个具有逻辑AND运算符和Mamdani蕴涵的规则。 FLC是在可编程逻辑控制器(PLC)中实现的。为了评估系统,在两个不同的灌溉或非灌溉耕地进行了田间试验。研究发现,在灌溉的小麦种植区,秸秆行进器和上筛的位置损失要比干燥的小麦种植区高得多。使用t检验的统计分析还表明,配备控制器的联合收割机与未配备FLC的联合收割机的平均损失之间存在显着差异(p <1%)。

著录项

  • 来源
    《Expert systems with applications》 |2010年第10期|P.7080-7085|共6页
  • 作者单位

    Department of Agricultural Machinery, College of Agriculture and Natural Resources, Faculty of Agricultural Engineering and Technology, University of Tehran, Karaj, Iran;

    Faculty of Agriculture, University of Arak, Arak, Iran;

    rnDepartment of Agricultural Machinery, College of Agriculture and Natural Resources, Faculty of Agricultural Engineering and Technology, University of Tehran, Karaj, Iran;

    rnDepartment of Agricultural Machinery, College of Agriculture and Natural Resources, Faculty of Agricultural Engineering and Technology, University of Tehran, Karaj, Iran;

    rnDepartment of Agricultural Machinery, College of Agriculture and Natural Resources, Faculty of Agricultural Engineering and Technology, University of Tehran, Karaj, Iran;

    Sharif University of Technology, Tehran, Iran;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    combine harvester; fuzzy logic controller; expert knowledge; programmable logic controller;

    机译:联合收割机;模糊逻辑控制器专业知识;可编程逻辑控制器;

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