#engineeringproject #renewableenergy #iot
in hindi
• IOT Dual Axis Solar Panel Monitoring ...
IOT Dual Axis Solar Panel Parameter Monitoring using Arduino, Wi-Fi, DHT11, Voltage, Current, Light
#engineeringproject #capstone Project #major Project
for EEE ECE Mechanical Science Exhibition project
only solar panel version (Without Dual Axis Mechanism )
• IOT Based Solar Panel Monitoring Syst...
To Buy/ Make this project with training
contact us:
👨🏼🏭𝗩𝗶𝗽𝗶𝗻 𝗞𝘂𝗺𝗮𝗿 𝗦𝗵𝗮𝗿𝗺𝗮
Ph.D., M.Tech, B.Tech in ECE
🎓Lecturer 🚀#Researcher #Drone #Robotics
Whatsapp : + 91-9810326343
https://xilirprojects.com
1. Synopsis/ Documents
2. Block diagram and circuit diagram with explanation.
3. Bill of material.
4. Components Specification list
5. Working principle of the project.
6. Datasheet of all components.
7. Program/code of Arduino with training.
8. Complete Working principle description.
9. Complete interfacing description.
10. you can get the project by courier.
11. viva preparation
ask us if other things needed.
Description
An IoT-based dual-axis solar panel parameters monitoring system using Arduino is designed to track the movement of the sun and monitor various parameters such as voltage, current, temperature, and light intensity. The dual-axis mechanism allows the solar panel to tilt both horizontally and vertically to maximize solar energy absorption. The system can send real-time data to a cloud platform, enabling remote monitoring and analysis.
Key Components:
Arduino Board (e.g., Arduino UNO)
LDR Sensors: For detecting the light intensity from different directions.
Servo Motors: To control the movement of the solar panel in two axes.
Voltage and Current Sensors (e.g., INA219)
Temperature Sensor (e.g., LM35)
ESP8266 or ESP32 Wi-Fi Module: For sending data to the cloud.
Solar Panel: The primary energy source.
Battery: For storing energy and powering the system.
Cloud Platform (e.g., ThingSpeak, Blynk): For data visualization and monitoring.
**Working Principle**
Dual-Axis Tracking:
LDR sensors are placed on the panel to detect the direction of maximum sunlight.
Based on the light intensity, the Arduino controls the servo motors to adjust the panel’s position, ensuring it faces the sun directly.
Parameters Monitoring:
Voltage & Current: Measured using sensors and sent to Arduino.
Temperature & HUmidity: Monitored to ensure the panel operates within safe limits.
Light Intensity: Recorded for tracking solar energy availability.
**Applications**
Renewable energy projects
Smart grids
Solar farms
Educational purposes
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