Remote Monitoring

DEVELOPMENT OF A REMOTE MONITORING AND CONTROL SYSTEM

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Abstract
A remote monitoring and control system enables real-time monitoring and management of devices or processes remotely. It enhances operational efficiency through continuous data acquisition and automated action. The system uses communication technologies to enable simple interaction between users and remote assets. Its applications cross industries such as manufacturing, agriculture, energy, and smart homes. The aim of this project was to make a remote monitoring and control system that can control and measure power supply remotely from a mobile application that we will also be developing. This remote monitoring and control system was made with the ESP32 microcontroller, making use of its inbuilt Wi-Fi and Bluetooth modules, while the mobile application used to monitor, control, and configure the system was made with the react-native framework. The interface between the mobile application and the system was the Blynk.cloud library and API, which was used to handle the remote online connection, while the BLE (Bluetooth Low Energy) protocol was used to update the Wi-Fi credentials of the system through the mobile application. This project presented the results obtained with the development and testing of the system, as well as the advantages of using a Wi-Fi-enabled system in place of GSM device
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co-supervisor

DESIGN AND INSTALLATION OF A SMART BASED INVERTER SYSTEM FOR EXTENDED REFRIGERATION USING INTERNET OF THINGS

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The goal of this project is to meet the urgent need for dependable extended backup power solutions designed with refrigeration applications in mind. One of the biggest challenges is keeping refrigeration systems running continuously, especially in areas where there are frequent power outages or unstable electrical supplies. A complex 1.5KVA inverter-based smart system that incorporates cutting-edge Internet of Things (IoT) technology is created and put into place to address this problem. The principal aim is to provide a stable and effective backup power supply for refrigeration systems, protecting perishable commodities and enhancing the general standard of living, particularly in neglected rural regions and essential establishments such as hospital blood banks.
The approach used in the creation of this ground-breaking solution include the painstaking
design and integration of essential parts with an emphasis on maximizing overall effectiveness and performance. To ascertain the best specifications for the inverter system, a thorough modeling and evaluation process comprised the first step. Ensuring compliance with the enhanced refrigeration needs while preserving maximum energy efficiency was essential. Furthermore, a charge controller was included to enable smooth integration with solar panels and maximize the system's ability to use renewable energy sources. The system design and component selection might be improved iteratively to match the project's unique goals.
A strong and adaptable smart inverter system with extended backup power for refrigeration applications is the best result of our effort. By using Internet of Things technology, customers can remotely keep an eye on and control vital metrics like battery life, temperature, and system performance in real time. This project intends to improve the resilience of refrigeration systems and aid in the preservation of necessary perishable goods by tackling the inherent difficulties of power outages and unstable electricity supplies. This will have a noticeable effect on community well-being and sustainable development
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co-supervisor