Novel Design of Lightweight Aerial Manipulator for Solar Panel Cleaning Applications

In this research, a novel design of a lightweight aerial manipulator system is proposed for solar panel cleaning with active (CoG) compensation mechanism. Recently, separate solar panel arrays or units are commonly installed on residential, commercial rooftops or roads, making it inconvenient for la...

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Main Authors: Muhannad Alkaddour, Mohammad A. Jaradat, Sara Tellab, Nidal A. Sherif, Muhammad H. Alvi, Lotfi Romdhane, Khaled S. Hatamleh
Format: Article
Language:English
Published: IEEE 2023-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/10271364/
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author Muhannad Alkaddour
Mohammad A. Jaradat
Sara Tellab
Nidal A. Sherif
Muhammad H. Alvi
Lotfi Romdhane
Khaled S. Hatamleh
author_facet Muhannad Alkaddour
Mohammad A. Jaradat
Sara Tellab
Nidal A. Sherif
Muhammad H. Alvi
Lotfi Romdhane
Khaled S. Hatamleh
author_sort Muhannad Alkaddour
collection DOAJ
description In this research, a novel design of a lightweight aerial manipulator system is proposed for solar panel cleaning with active (CoG) compensation mechanism. Recently, separate solar panel arrays or units are commonly installed on residential, commercial rooftops or roads, making it inconvenient for land robots to perform the cleaning tasks. The proposed light weight solar panel cleaning aerial manipulator with the gravity compensation mechanism is intended to be attached beneath a drone to increase its stability during operation. The manipulator workspace given the proposed system is analyzed under CoG shift constraints. The kinematics and dynamics of the aerial manipulator coupled with the compensation mechanism are presented, and a path-planning scheme for solar panel cleaning is detailed. A dynamic control law based on pitch and counterweight position reduced-order dynamics is derived, and its equivalence to the static compensation law is shown. An experimental test bench is used to simulate the aerial manipulation during operations to validate the performance of the proposed manipulator and its stability. Its tilting pitch angle is collected and examined during operation. The results show that the system is less susceptible to unwanted tilting. A tilt angle reduction of 2 degrees was observed between an uncompensated and compensated system, with a difference in shift of CoG location of 1.72% of the total system length. The CoG location shift is also simulated without the presence of a slider mechanism and shows a difference of 24.5% with the compensated system. The compensation mechanism significantly reduces the tilt angle, avoiding potential instability, and consequently decreases the power required by the carrying drone.
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spelling doaj.art-32cab825924645b8af58c1d5a83ddd9e2023-10-16T23:00:42ZengIEEEIEEE Access2169-35362023-01-011111117811119910.1109/ACCESS.2023.332185910271364Novel Design of Lightweight Aerial Manipulator for Solar Panel Cleaning ApplicationsMuhannad Alkaddour0Mohammad A. Jaradat1https://orcid.org/0000-0002-5655-0664Sara Tellab2Nidal A. Sherif3Muhammad H. Alvi4Lotfi Romdhane5https://orcid.org/0000-0001-8509-2386Khaled S. Hatamleh6https://orcid.org/0000-0001-7708-6939Department of Mechanical Engineering, American University of Sharjah, Sharjah, United Arab EmiratesDepartment of Mechanical Engineering, American University of Sharjah, Sharjah, United Arab EmiratesMechatronics Engineering Graduate Program, American University of Sharjah, Sharjah, United Arab EmiratesMechatronics Engineering Graduate Program, American University of Sharjah, Sharjah, United Arab EmiratesDepartment of Mechanical Engineering, American University of Sharjah, Sharjah, United Arab EmiratesDepartment of Mechanical Engineering, American University of Sharjah, Sharjah, United Arab EmiratesMechanical Engineering Department, Jordan University of Science and Technology, Irbid, JordanIn this research, a novel design of a lightweight aerial manipulator system is proposed for solar panel cleaning with active (CoG) compensation mechanism. Recently, separate solar panel arrays or units are commonly installed on residential, commercial rooftops or roads, making it inconvenient for land robots to perform the cleaning tasks. The proposed light weight solar panel cleaning aerial manipulator with the gravity compensation mechanism is intended to be attached beneath a drone to increase its stability during operation. The manipulator workspace given the proposed system is analyzed under CoG shift constraints. The kinematics and dynamics of the aerial manipulator coupled with the compensation mechanism are presented, and a path-planning scheme for solar panel cleaning is detailed. A dynamic control law based on pitch and counterweight position reduced-order dynamics is derived, and its equivalence to the static compensation law is shown. An experimental test bench is used to simulate the aerial manipulation during operations to validate the performance of the proposed manipulator and its stability. Its tilting pitch angle is collected and examined during operation. The results show that the system is less susceptible to unwanted tilting. A tilt angle reduction of 2 degrees was observed between an uncompensated and compensated system, with a difference in shift of CoG location of 1.72% of the total system length. The CoG location shift is also simulated without the presence of a slider mechanism and shows a difference of 24.5% with the compensated system. The compensation mechanism significantly reduces the tilt angle, avoiding potential instability, and consequently decreases the power required by the carrying drone.https://ieeexplore.ieee.org/document/10271364/Solar panel cleaning aerial manipulatoraerial manipulatorsCoG compensation mechanism
spellingShingle Muhannad Alkaddour
Mohammad A. Jaradat
Sara Tellab
Nidal A. Sherif
Muhammad H. Alvi
Lotfi Romdhane
Khaled S. Hatamleh
Novel Design of Lightweight Aerial Manipulator for Solar Panel Cleaning Applications
IEEE Access
Solar panel cleaning aerial manipulator
aerial manipulators
CoG compensation mechanism
title Novel Design of Lightweight Aerial Manipulator for Solar Panel Cleaning Applications
title_full Novel Design of Lightweight Aerial Manipulator for Solar Panel Cleaning Applications
title_fullStr Novel Design of Lightweight Aerial Manipulator for Solar Panel Cleaning Applications
title_full_unstemmed Novel Design of Lightweight Aerial Manipulator for Solar Panel Cleaning Applications
title_short Novel Design of Lightweight Aerial Manipulator for Solar Panel Cleaning Applications
title_sort novel design of lightweight aerial manipulator for solar panel cleaning applications
topic Solar panel cleaning aerial manipulator
aerial manipulators
CoG compensation mechanism
url https://ieeexplore.ieee.org/document/10271364/
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