•  
  •  
 

Abstract

Greenhouse is an important application scene of modern agriculture. In this paper, a set of greenhouse environmental monitoring, facility remote control and production management system is designed and implemented based on Internet of Things technology for the development needs of modern agriculture in greenhouse. The system selects STM32F407 control board as the main controller to realize real-time monitoring of greenhouse environmental parameters including temperature and humidity, soil nutrients, soil pH and other greenhouse environmental information, and can adjust greenhouse environmental parameters by controlling the irrigation system, roller shutters, fans, shading curtains and other facilities in the greenhouse. The main controller uploads the collected environmental data and the status data of the execution equipment to OneNet cloud platform in time. Users can obtain the environmental data and control the facilities in the greenhouse anytime and anywhere through the terminal monitoring software. he greenhouse environment monitoring and control system designed in this paper improves the safety and automation of greenhouse. The system is easy to operate, can help farmers remotely know the situation of greenhouse and carry out unified management of greenhouse which will greatly improve efficiency.

First Page

37

Last Page

43

References

  1. Yan Zhangpeng, Peng Cheng (2013). Research on the implementation plan of intelligent agriculture based on Internet of Things technology. Journal of Xi'an University of Posts and Telecommunications, 18(04), 105-108.
  2. Sun Qibo, Liu J, Li Yuan Yuan, Fan Chun Xiao, Sun Juan Juan (2010). Internet of things: a review of concepts, architectures and key technologies. Journal of Beijing University of Posts and Telecommunications, 33(03), 1-9.
  3. Nilakantha P., C.R.N. (2021). A general architecture for a real-time monitoring system based on the internet of things. Internet of Things, 14.
  4. M.K., V.P., E.S. (2021). An Agricultural Irrigatıon Management System Based on the Internet of Things With MQTT Protocol. IOP Conference Series: Materials Science and Engineering, 1084(1).
  5. Zhou, M. (2014). Research on some key issues of IoT applications. Beijing University of Posts and Telecommunications.
  6. Zhang Zhen (2022). Research on big data processing system of agricultural environment for Internet of Things. Zhejiang Ocean University. DOI:10.27747/d.cnki.gzjhy.2022.000247.
  7. Sivagami, A., Hareeshvare, U., Maheshwar, S., Venkatachalapathy, V.S.K. (2018). Automated Irrigation System for Greenhouse Monitoring. Journal of the Institution of Engineers (India): Series A, 99(2), 183-191.
  8. Shi, Yuanzhen (2023). Multi-node gas monitoring based on OneNET and ZigBee. Internet of Things Technology, 13(05), 20-21+24. DOI: 10.16667 /j.issn. 2095-1302.2023.05.005.
  9. Dai, Z. Chong (2021). Design and implementation of distributed monitoring system for greenhouse greenhouses. Inner Mongolia University. DOI:10.27224/d.cnki. gnmdu.2021.000794.

Share

COinS
 
 

To view the content in your browser, please download Adobe Reader or, alternately,
you may Download the file to your hard drive.

NOTE: The latest versions of Adobe Reader do not support viewing PDF files within Firefox on Mac OS and if you are using a modern (Intel) Mac, there is no official plugin for viewing PDF files within the browser window.