EFFICIENT INDUSTRIAL WASTEWATER RECYCLING WITH IOT

Yehia M. Youssef, Mohamed K. Hassan, Moamen A. Morsi

Abstract


Water treatment is essential for preventing water crises and ensuring water quality for different purposes. Parameters like pH, TDS, and turbidity are used to measure water quality, which varies based on the source of wastewater. Industrial wastewater is typically highly polluted. This paper proposes a smart water quality management system using IoT sensors to monitor parameters in a treatment plant. It focuses on treating detergent production line wastewater, adhering to environmental standards. The system's outputs have applications in water reuse, firefighting, and ornamental plant agriculture. The system is programmed using Arduino coding software, displaying sensor data on a computer with Realterm software. Overall, this study presents an integrated approach to efficient water treatment and quality management.

 

Keywords


Industrial Water Recycling, Smart Water Treatment, Industry 4.0, Quality 4.0.

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References


A. Hassoun et al., “Food quality 4.0: From traditional approaches to digitalized automated analysis,” J. Food Eng., vol. 337, no. April 2022, 2023, doi: 10.1016/j.jfoodeng.2022.111216.

L. Fonseca, A. Amaral, and J. Oliveira, “Quality 4.0: The efqm 2020 model and industry 4.0 relationships and implications,” Sustain., vol. 13, no. 6, pp. 0–20, 2021, doi: 10.3390/su13063107.

M. Javaid, A. Haleem, R. Pratap Singh, and R. Suman, “Significance of Quality 4.0 towards comprehensive enhancement in manufacturing sector,” Sensors Int., vol. 2, no. May, p. 100109, 2021, doi: 10.1016/j.sintl.2021.100109.

C. Pogăciaş and R. Dovleac, “Implementation and impact of Industry 4.0 and Quality 4.0 in the banking sector,” MATEC Web Conf., vol. 342, p. 09008, 2021, doi: 10.1051/matecconf/202134209008.

A. U. and E. Ceren Salkin, Mahir Oner and Abstract, “A Conceptual Framework for Industry 4.0,” in Managing the Digital Transformation, 2022, pp. 3–21. doi: 10.1201/9781003226468.

T. Ibidapo, From Industry 4.0 to Quality 4.0. 2022. [Online]. Available: https://link.springer.com/book/10.1007/978-3-031-04192-1.

J. Ramezani and J. Jassbi, “Quality 4.0 in action: Smart hybrid fault diagnosis system in plaster production,” Processes, vol. 8, no. 6, 2020, doi: 10.3390/pr8060634.

M. Sony, J. Antony, and J. Douglas, “Essential ingredients for the implementation of Quality 4.0: A narrative review of literature and future directions for research,” TQM J., vol. 32, no. 4, pp. 779–793, 2020, doi: 10.1108/TQM-12-2019-0275.

G. Connected, “QUALITY 4.0 IMPACT AND STRATEGY HANDBOOK”.

D. Maganga and I. Taifa, “Quality 4.0 conceptualisation: an emerging quality management concept for manufacturing industries,” TQM J., 2022, doi: 10.1108/TQM-11-2021-0328.

G. Sureshchandar, “Quality 4.0 – a measurement model using the confirmatory factor analysis (CFA) approach,” Int. J. Qual. Reliab. Manag., 2021, doi: 10.1108/IJQRM-06-2021-0172.

N. Yadav, R. Shankar, and S. Singh, “Critical success factors for lean six sigma in quality 4.0,” Int. J. Qual. Serv. Sci., vol. 13, no. 1, pp. 123–156, 2021, 10.1108/IJQSS-06-2020-0099.

J. Antony, “Quality 4.0: Taking quality to its next level: How technology, data drive improvement across value chain.,” ISE Ind. Syst. Eng. Work, vol. 52, no. 6, pp. 46–47, 2020, [Online]. Available: https://ie.binus.ac.id/2020/06/09/quality-4-0-taking-quality-to-its-next-level/.

M. Singh and S. Ahmed, “IoT based smart water management systems: A systematic review,” Mater. Today Proc., vol. 46, no. xxxx, pp. 5211–5218, 2020, 10.1016/j.matpr.2020.08.588.

V. Madhavireddy and B. Koteswarrao, “Smart Water Quality Monitoring System Using Iot Technology,” Int. J. Eng. Technol., vol. 7, no. 4.36, p. 636, 2018, doi: 10.14419/ijet.v7i4.36.24214.

C. Nikhil Binoy, B. Jayalakshmi, A. Nandhan, P. Vishnu, and S. Thasna, “Smart Water Management System,” Lect. Notes Electr. Eng., vol. 750, no. 06, pp. 243–252, 2021, doi: 10.1007/978-981-16-0336-5_20.

R. Cun, Y. Hong, H. Liang, and T. Liu, “A Water quality monitoring system: Design for Dian Lake sewage treatment plants in towns,” IOP Conf. Ser. Earth Environ. Sci., vol. 675, no. 1, 2021, doi: 10.1088/1755-1315/675/1/012018.

N. Chaudhari, S. Ghodinde, S. Sachdev, and S. Pawar, “Water Monitoring System - IoT,” pp. 244–246, 2020.

S. Gejji, D. Patankar, P. Shetty, R. Kangralkar, and S. Mohite, “Smart Monitoring and Testing of Water Quality in IoT Environment,” pp. 825–829, 2020.

H. El Sayed, M. Al-Kady, and Y. Siddik, “Management of Smart Water Treatment Plant using IoT Cloud Services,” 2019 Int. Conf. Smart Appl. Commun. Networking, SmartNets 2019, pp. 3–7, 2019, doi: 10.1109/SmartNets48225.2019.9069763.

R. Kodali, “Smart Waste Water Treatment”.

S. Charazińska, P. Lochyński, M. Markiewicz, S. Stolte, and E. Burszta-Adamiak, “Treatment of electropolishing industrial wastewater and its impact on the immobilisation of Daphnia magna,” Environ. Res., vol. 212, no. January, 2022, doi: 10.1016/j.envres.2022.113438.

A. Fahad, R. Saphira Mohamed, B. Radhi, and M. Al-Sahari, “Wastewater and its Treatment Techniques: An Ample Review,” Indian J. Sci. Technol., vol. 12, no. 25, pp. 1–13, 2019, doi: 10.17485/ijst/2019/v12i25/146059.

G. Bellomar, Improved technique for hand-crafted soaps and detergents production PRO- AGRO 2, no. October. 2017.

“Detergent Spray Drying Tower: A Complete Production Solution.” Accessed: May 02, 2023. [Online]. Available: https://stppgroup.com/products/detergent-plant-equipment/spray-drying-tower/




DOI: https://dx.doi.org/10.21622/MARLOG.2024.13.1.62

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Copyright (c) 2025 Yehia M. Youssef, Mohamed K. Hassan, Moamen A. Morsi

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The International Maritime Transport and Logistics Journal (MARLOG)

E-ISSN: 2974-3141
P-ISSN: 2974-3133

Published by:

Academy Publishing Center (APC)

Arab Academy for Science, Technology and Maritime Transport (AASTMT)

Alexandria, Egypt