Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

A holistic framework for PV performance optimization: Integrating intelligent solar tracking and autonomous robotic cleaning

View through CrossRef
Maximizing the energy yield of photovoltaic (PV) systems requires a multi-faceted approach that addresses both optimal energy harvesting and proactive maintenance. This paper presents a holistic, intelligent framework that integrates two critical optimization strategies: dynamic dual-axis solar tracking to maximize incident irradiance and autonomous, rule-based robotic cleaning to mitigate soiling losses. The solar tracker, guided by a four-quadrant LDR sensor array, continuously adjusts the panel’s orientation to maintain perpendicularity with the sun’s rays, significantly boosting energy capture. Complementing this, the autonomous cleaning system leverages a differential data comparison between a soiled test panel and a clean reference panel to make informed decisions. Its rule-based engine triggers cleaning cycles only when performance degradation surpasses a defined threshold, avoiding unnecessary operations. A detailed design of the cleaning robot is presented, featuring a robust tracked locomotion system and a high-torque, dual-brush cleaning head. Experimental results demonstrate that the solar tracker increases daily energy generation by 30.1% on clear days and 115.4% on cloudy days. The cleaning algorithm effectively responds to soiling events while intelligently avoiding redundant cycles during natural cleaning events like rainfall. This integrated platform represents a comprehensive, practical solution for maximizing the lifecycle performance of PV installations.
Title: A holistic framework for PV performance optimization: Integrating intelligent solar tracking and autonomous robotic cleaning
Description:
Maximizing the energy yield of photovoltaic (PV) systems requires a multi-faceted approach that addresses both optimal energy harvesting and proactive maintenance.
This paper presents a holistic, intelligent framework that integrates two critical optimization strategies: dynamic dual-axis solar tracking to maximize incident irradiance and autonomous, rule-based robotic cleaning to mitigate soiling losses.
The solar tracker, guided by a four-quadrant LDR sensor array, continuously adjusts the panel’s orientation to maintain perpendicularity with the sun’s rays, significantly boosting energy capture.
Complementing this, the autonomous cleaning system leverages a differential data comparison between a soiled test panel and a clean reference panel to make informed decisions.
Its rule-based engine triggers cleaning cycles only when performance degradation surpasses a defined threshold, avoiding unnecessary operations.
A detailed design of the cleaning robot is presented, featuring a robust tracked locomotion system and a high-torque, dual-brush cleaning head.
Experimental results demonstrate that the solar tracker increases daily energy generation by 30.
1% on clear days and 115.
4% on cloudy days.
The cleaning algorithm effectively responds to soiling events while intelligently avoiding redundant cycles during natural cleaning events like rainfall.
This integrated platform represents a comprehensive, practical solution for maximizing the lifecycle performance of PV installations.

Related Results

Solar Trackers Using Six-Bar Linkages
Solar Trackers Using Six-Bar Linkages
Abstract A solar panel faces the sun or has the solar ray normal to its face to enhance power reaping. A fixed solar panel can only meet this condition at one moment...
Efficiency Enriched Seawater Intake Through Innovative Inspection and Cleaning Techniques
Efficiency Enriched Seawater Intake Through Innovative Inspection and Cleaning Techniques
Seawater is needed for chemistry, energy, and desalination. These devices collect massive amounts of seawater for desalination, cooling, and processing. These industries’ performan...
Design of Automatic Solar Cleaning System
Design of Automatic Solar Cleaning System
Solar panels are devices in a solar power generation system that utilize solar energy to produce electrical energy. The efficiency of solar panels is affected by the absorption of ...
Eyes on Air
Eyes on Air
Abstract We at ADNOC Logistics & Services have identified the need for a Fully Integrated Inspection and Monitoring Solution to meet our operational, safety and ...
AI-Driven Optimization for Solar Energy Systems: Theory and Applications
AI-Driven Optimization for Solar Energy Systems: Theory and Applications
The transition to renewable energy is critical for achieving sustainability, and solar energy is one of the most promising alternatives to fossil fuels. However, the efficiency of ...
A Review on Solar Tracking Methods
A Review on Solar Tracking Methods
Abstract In the World, perhaps the most significant issue as far as people understood, non-renewable sources would be extinguished. Apart from that, non-renewable en...
Autonomous Robotic Feature-Based Freeform Fabrication Approach
Autonomous Robotic Feature-Based Freeform Fabrication Approach
Robotic additive manufacturing (AM) has gained much attention for its continuous material deposition capability with continuously changeable building orientations, reducing support...
ANALYSIS OF THE OPERATION MODE OF THE SOLAR POWER PLANT
ANALYSIS OF THE OPERATION MODE OF THE SOLAR POWER PLANT
The article examines the load change schedule of the solar power plant in the Ukraine-Moldova energy union. The analysis of data averaged at minute and 15-minute intervals in the p...

Back to Top