Office environment purification system with IOT monitoring

Authors

DOI:

https://doi.org/10.35290/ro.v3n2.2022.583

Keywords:

covid-19, ozone, Internet of Things, automation

Abstract

This work presents the development of an automated environment purification system for offices of 30 square meters with monitoring through an Internet of Things (IoT) platform. The applicability of the project is oriented to be used in different environments in order to mitigate the effects of SARS-CoV-2. The system processes the information, stores it and sends it to the IoT tool, thinger.io. This platform displays temperature, humidity and ozone concentration data to establish operating curves and equipment working times. Thus, it is possible for users to access and verify the information from anywhere with an internet connection. In addition, monitoring can be performed from different devices such as computers, tablets or smartphones. After the performance tests carried out, the results show 100% efficiency in terms of operation, connectivity and data storage.

Downloads

Download data is not yet available.

References

Barrio de Vergara, M. D. (2015). Cloración frente a ozonización en el tratamiento de agua potable. Ventajas y desventajas de ambos procesos [Tesis de grado, Universidad Complutense de Madrid]. E-Prints Complutense. https://eprints.ucm.es/id/eprint/48546/

Caicedo, A. (2017). Arduino para principiantes. 2ª Edición. IT Campus Academy.

Carriel, J., Muñoz-Jaramillo, R., Bolaños-Ladinez, O., Heredia-Villacreses, F., Menéndez-Sanchón, J., y Martin-Delgado, J. (2020). CURB-65 como predictor de mortalidad a 30 días en pacientes hospitalizados con COVID-19 en Ecuador: estudio COVID-EC. Revista Clínica Española, 222(1), 37-41. https://doi.org/10.1016/j.rce.2020.10.001 DOI: https://doi.org/10.1016/j.rce.2020.10.001

Grignani, E., Mansi, A., Cabella, R., Castellano, P., Tirabasso, A., Sisto, R., Spagnoli, M., Fabrizi, G., & Frigerio, F. (2020). Safe and effective use of ozone as air and surface disinfectant in the conjuncture of Covid-19. Gases, 1(1), 19-32. http://dx.doi.org/10.3390/gases1010002 DOI: https://doi.org/10.3390/gases1010002

Hubor-Proteus. (2015a). La suite Proteus. https://www.hubor-proteus.com/proteus-pcb/proteus-pcb/240-la-suite-proteus.html

Hubor-Proteus. (2015b). ¿Qué es proteus? https://www.hubor-proteus.com/proteus-pcb/proteus-pcb/2-proteus.html

Junta de Andalucía. (2020). Nota informativa sobre desinfectantes virucidas, ozono y túneles desinfectantes de personas. Dirección General de Salud Pública y Ordenación Farmacéutica. https://www.juntadeandalucia.es/export/drupaljda/Formato%20nota%20informativa_Prueba.pdf

Pizarro, J (2019). Internet de las cosas (IoT) con Arduino. Manual práctico. Ediciones Paraninfo, SA.

Proserquisa. (s.f.). Tutorial 1 Introducción a Arduino. http://proserquisa.com/portal/33-arduino/curso-arduino/93-tutorial-1

PNUD Ecuador. (s.f). COVID-19: la pandemia. La humanidad necesita liderazgo y solidaridad para vencer a COVID-19 https://www.ec.undp.org/content/ecuador/es/home/coronavirus.html

Sivakumar, S. (2021). Outdoor disinfectant sprays for the prevention of COVID-19: Are they safe for the environment? Science of The Total Environment, 759, 144289. https://doi.org/10.1016/j.scitotenv.2020.144289 DOI: https://doi.org/10.1016/j.scitotenv.2020.144289

Published

2022-06-10

How to Cite

Topa, E. S., Rodríguez Fiallos, P. del R. ., & Sánchez Toapanta, J. M. . (2022). Office environment purification system with IOT monitoring. ODIGOS JOURNAL, 3(2), 47–59. https://doi.org/10.35290/ro.v3n2.2022.583

Issue

Section

Articles

Most read articles by the same author(s)