Remote monitoring systems in greenhouse based on NodeMCU ESP8266 microcontroller and Android

Y. Astutik, Murad, G. M. D. Putra, D. A. Setiawati
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引用次数: 10

Abstract

This study aimed to design a Greenhouse Remote Monitoring system and to immediately evaluate the monitoring system. The Monitoring system was designed based on the NodeMCU ESP8266 microcontroller to expectedly result an Android monitoring display as the output. This research was conducted in Greenhouse at Faculty of Food and Agroindustrial Technology, University of Mataram. An experimental method using greenhouse and hydroponic system was applied to this research. The monitoring system consisted of components that functionally related to each other (NodeMCU ESP8266, Android, DHT11 (temperature and humidity sensor), BH1750 (light sensor), Total Dissolved Solid (TDS) sensors, and other components that further supported by programming language. The observed parameters were the greenhouse temperature (°C); humidity (%); light intensity (lux); and the amount of TDS (ppm). The experiment indicated that the designed monitoring system successfully displayed what the sensor had read then translated it into Android. The average percentage of the Light meter reading errors using the BH1750 sensor (shown) on Android was 2.13%; the average percentage of the hygrometer reading errors using DHT11 sensor on Android was 0.14%; the average value of the thermometer reading errors as well as DHT11 sensor on Android was 0.76%; while the average TDS reading error on Android was slightly above 5% due to increasing temperature inside the greenhouse, especially in the afternoon period.This study aimed to design a Greenhouse Remote Monitoring system and to immediately evaluate the monitoring system. The Monitoring system was designed based on the NodeMCU ESP8266 microcontroller to expectedly result an Android monitoring display as the output. This research was conducted in Greenhouse at Faculty of Food and Agroindustrial Technology, University of Mataram. An experimental method using greenhouse and hydroponic system was applied to this research. The monitoring system consisted of components that functionally related to each other (NodeMCU ESP8266, Android, DHT11 (temperature and humidity sensor), BH1750 (light sensor), Total Dissolved Solid (TDS) sensors, and other components that further supported by programming language. The observed parameters were the greenhouse temperature (°C); humidity (%); light intensity (lux); and the amount of TDS (ppm). The experiment indicated that the designed monitoring system successfully displayed what the sensor had read then translated it into Android...
基于NodeMCU、ESP8266单片机和Android的温室远程监控系统
本研究旨在设计一个温室远程监控系统,并对监控系统进行即时评估。该监控系统以NodeMCU ESP8266单片机为核心,以Android监控显示为输出。这项研究是在马塔兰大学食品和农业工业技术学院的温室中进行的。采用温室和水培系统相结合的试验方法进行了研究。该监测系统由功能相关的组件(NodeMCU ESP8266、Android、温湿度传感器DHT11、光传感器BH1750、总溶解固体(Total Dissolved Solid, TDS)传感器以及编程语言进一步支持的其他组件组成。观测参数为温室温度(℃);湿度(%);光强(勒克斯);TDS含量(ppm)。实验表明,所设计的监控系统成功地显示了传感器读取到的数据,并将其转换为Android。在Android上使用BH1750传感器(如图所示)的光度计读数误差的平均百分比为2.13%;Android平台上使用DHT11传感器的湿度计读数平均误差百分比为0.14%;Android上温度计读数误差与DHT11传感器的平均值为0.76%;而Android上的平均TDS读数误差略高于5%,原因是温室内温度升高,尤其是在下午。本研究旨在设计一个温室远程监控系统,并对监控系统进行即时评估。该监控系统以NodeMCU ESP8266单片机为核心,以Android监控显示为输出。这项研究是在马塔兰大学食品和农业工业技术学院的温室中进行的。采用温室和水培系统相结合的试验方法进行了研究。该监测系统由功能相关的组件(NodeMCU ESP8266、Android、温湿度传感器DHT11、光传感器BH1750、总溶解固体(Total Dissolved Solid, TDS)传感器以及编程语言进一步支持的其他组件组成。观测参数为温室温度(℃);湿度(%);光强(勒克斯);TDS含量(ppm)。实验表明,所设计的监测系统成功地将传感器读取到的数据显示出来,并将其转换成Android系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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