Reb Q. Emnacin, Jon Hubbie E. Layno, Emerson Y. Domingo
{"title":"Perceptions of Muslim Educators on Postcolonial Education in the Philippines: A Qualitative Inquiry","authors":"Reb Q. Emnacin, Jon Hubbie E. Layno, Emerson Y. Domingo","doi":"10.54476/ioer-imrj/231632","DOIUrl":null,"url":null,"abstract":"The utilization of automated systems, controlled by the Arduino UNO microcontroller, can facilitate the efficient growth of plants in a compact greenhouse. The enclosed greenhouse structure helps in plant propagation as it optimizes the surrounding environment while it gathers sensory data. The greenhouse is structured with the corresponding sensors for specific abiotic factors mainly, the DHT11 for temperature and humidity, and The soil moisture sensor. This data from the greenhouse environment will then be processed by the system which utilizes a submersible water pump and irrigation systems, LED lights, and sensors for humidity, temperature, and moisture. The Arduino UNO controls the water resources competently as the major microcontroller, while sensors provide accurate data for managing the greenhouse environment. With automation features like the irrigation system and soil moisture sensor, water conservation, and proficiency are improved. LED light delivers reliable light sources, which promote optimal plant growth. Accurate data collection is ensured by proper sensor placement and protection. Remote monitoring and control via IoT platforms are much more practical and convenient than manually overseeing the plant environment. The Arduino UNO- Based system offers significant advantages, including decreased manual labor, cost-effectiveness, and advancements in agricultural practices to combat the damages brought by climate change to agriculture and meet the demands of a growing world population. Thus, continuous development to the prototype is necessary for the sustainability of both the agriculture and the automated greenhouse as this will further assist in the application of growing advancing technologies of the generation for agricultural development and plant care. Keywords: Automated greenhouse, Arduino UNO, programming, automation, prototype, sensors, agriculture, sustainability","PeriodicalId":513304,"journal":{"name":"International Multidisciplinary Research Journal","volume":"115 1","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-05-12","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"International Multidisciplinary Research Journal","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.54476/ioer-imrj/231632","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
The utilization of automated systems, controlled by the Arduino UNO microcontroller, can facilitate the efficient growth of plants in a compact greenhouse. The enclosed greenhouse structure helps in plant propagation as it optimizes the surrounding environment while it gathers sensory data. The greenhouse is structured with the corresponding sensors for specific abiotic factors mainly, the DHT11 for temperature and humidity, and The soil moisture sensor. This data from the greenhouse environment will then be processed by the system which utilizes a submersible water pump and irrigation systems, LED lights, and sensors for humidity, temperature, and moisture. The Arduino UNO controls the water resources competently as the major microcontroller, while sensors provide accurate data for managing the greenhouse environment. With automation features like the irrigation system and soil moisture sensor, water conservation, and proficiency are improved. LED light delivers reliable light sources, which promote optimal plant growth. Accurate data collection is ensured by proper sensor placement and protection. Remote monitoring and control via IoT platforms are much more practical and convenient than manually overseeing the plant environment. The Arduino UNO- Based system offers significant advantages, including decreased manual labor, cost-effectiveness, and advancements in agricultural practices to combat the damages brought by climate change to agriculture and meet the demands of a growing world population. Thus, continuous development to the prototype is necessary for the sustainability of both the agriculture and the automated greenhouse as this will further assist in the application of growing advancing technologies of the generation for agricultural development and plant care. Keywords: Automated greenhouse, Arduino UNO, programming, automation, prototype, sensors, agriculture, sustainability
利用由 Arduino UNO 微控制器控制的自动化系统,可以促进植物在紧凑型温室中高效生长。封闭式温室结构有助于植物繁殖,因为它在收集感官数据的同时优化了周围环境。温室结构中装有相应的传感器,主要用于测量特定的非生物因素,如温度和湿度传感器 DHT11 和土壤湿度传感器。系统将利用潜水水泵和灌溉系统、LED 灯以及湿度、温度和水分传感器处理来自温室环境的数据。Arduino UNO 作为主要的微控制器,能有效地控制水资源,而传感器则为温室环境管理提供准确的数据。有了灌溉系统和土壤湿度传感器等自动化功能,节水和用水效率都得到了提高。LED 灯提供可靠的光源,促进植物的最佳生长。传感器的正确放置和保护可确保数据收集的准确性。通过物联网平台进行远程监测和控制,比人工监控植物环境更加实用和方便。基于 Arduino UNO 的系统具有显著的优势,包括减少人工劳动、成本效益和农业实践的进步,以应对气候变化给农业带来的破坏,并满足不断增长的世界人口的需求。因此,为了实现农业和自动化温室的可持续发展,有必要对原型进行持续开发,因为这将进一步促进农业发展和植物养护方面的新一代先进技术的应用。关键词自动化温室、Arduino UNO、编程、自动化、原型、传感器、农业、可持续性