基于油菜叶片萎黄坏死与环境温度的旋转水培模糊控制电机转速

Heinrick L. Aquino, Ronnie S. Concepcion, A. Bandala, Christan Hail R. Mendigoria, Oliver John Y. Alajas, E. Dadios, J. Cuello
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引用次数: 3

摘要

坏死和黄化是造成作物生产损失的一些叶片状况,这是由于灌溉和施肥不当引起的叶片褐变和变黄。这项研究的应用灵感来自于美国国家航空航天局(NASA)为节省空间和在空间站上种植食物而提出的轮作水培作物种植概念。利用Mamdani系统开发了一种模糊逻辑控制(FLC)直流电机调速控制器,实现了生菜轮作浇水旋转机构的自动化。采用CIE L*、a*、色彩空间和环境温度作为输入语言值,电机转速将根据叶片的物理色素状况和温度强度进行调节。所生成的模糊控制器具有四个三角隶属函数,每个输入上有16条规则。这导致旋转鱼菜共生电机转速以rpm测量的四种可能输出:非常慢(0.25),慢(0.5),稍快(1.25)和快(2)。在MATLABR2021软件的Simulink环境中模拟建模的FLC,具有10步大小,并且根据输入特性和开发的规则显示出基本准确的结果,输出100%正确。该开发的FLC模型通过根据作物状态和环境温度自动化吸水频率,为减轻轮作水培莴苣作物的损失做出了重大贡献。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fuzzy Logic Controlled Motor Speed in Rotating Aquaponics Based on Lactuca sativa Leaf Chlorosis and Necrosis and Environment Temperature
Necrosis and chlorosis are some of the leaf conditions that contribute to losses in crop production, which is the browning and yellowing of leaves caused by improper irrigation and fertigation. A rotating aquaponics, crop cultivation conceptualized initially by NASA to save space and grow their food on space stations is the inspiration of application of this study. A fuzzy logic controlled (FLC) DC motor speed controller was developed using the Mamdani system to automate the rotating mechanism that is responsible for watering turns of lettuce crops. Using CIE L*, a*, color space, and environment temperature as input linguistic values, the motor speed will adjust depending on the status of the physical pigment condition of leaves as well as the intensity of temperature. The generated fuzzy logic controller has four triangular membership functions with 16 rules on each of the inputs. This resulted in four possible outputs of rotating aquaponics motor speed measured in rpm: very slow (0.25), slow (0.5), slightly fast (1.25), and fast (2). The modeled FLC was simulated in a Simulink environment in MATLABR2021 software and had a 10-step size and manifested essentially accurate results with 100% correct outputs based on input characteristics and rules developed. This developed FLC model is a substantial contribution to mitigating losses on lettuce crops grown under rotating aquaponics by automating the water absorption frequency depending on the status of the crop and the temperature of its environment.
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