The system is designed to provide comprehensive monitoring of water quality parameters, including pH level, and turbidity, in real-time. Central to the system is the utilization of advanced sensors integrated into a Node MCU microcontroller, which serves as the main control unit. The pH sensor monitors the acidity or alkalinity of the water, which is crucial for determining its suitability for various applications. Additionally, the turbidity sensor measures the cloudiness or haziness of the water caused by suspended particles, offering valuable information about its clarity and overall quality. The collected data from these sensors is transmitted wirelessly to an Internet of Things (IoT) application, where it is visualized and analysed in real-time. This enables stakeholders, including water management authorities, environmental agencies, and end-users, to monitor the quality of water remotely and take timely action if any anomalies are detected. The IoT application provides user-friendly interfaces and dashboards, allowing for easy interpretation of the data and facilitating informed decision-making. This ensures efficient distribution of water while maintaining its quality throughout the delivery process. Additionally, a filtration mechanism is integrated into the system to further enhance water quality by removing impurities and contaminants. This multi-stage filtration process ensures that the water delivered to end-users meets stringent quality standards and is safe for consumption and various other applications. The data from this sensor is seamlessly integrated into the IoT application, providing a comprehensive overview of water quality across the entire system.
Beula et al. (Wed,) studied this question.
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