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Parametric Study and Experimental Investigations of a Single Crank–Slotted Dual Lever Mechanism for MAV Flapping Actuation

Insect RoboFlyers are interesting and active focuses of study but producing high-quality flapping robots that replicate insect flight is challenging., due to the dual requirement of both a sophisticated transmission mechanism with light weight and minimal intervening connections. This innovative mec...

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Autores principales: Singh, Spoorthi, Muralidharan, Aravind Karthik, Radhakrishnan, Jayakrishnan, Zuber, Mohammad, Basri, Adi Azriff, Mazlan, Norkhairunnisa, Hamidon, Mohd Nizar, Ahmad, Kamarul Arifin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9680486/
https://www.ncbi.nlm.nih.gov/pubmed/36412736
http://dx.doi.org/10.3390/biomimetics7040208
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author Singh, Spoorthi
Muralidharan, Aravind Karthik
Radhakrishnan, Jayakrishnan
Zuber, Mohammad
Basri, Adi Azriff
Mazlan, Norkhairunnisa
Hamidon, Mohd Nizar
Ahmad, Kamarul Arifin
author_facet Singh, Spoorthi
Muralidharan, Aravind Karthik
Radhakrishnan, Jayakrishnan
Zuber, Mohammad
Basri, Adi Azriff
Mazlan, Norkhairunnisa
Hamidon, Mohd Nizar
Ahmad, Kamarul Arifin
author_sort Singh, Spoorthi
collection PubMed
description Insect RoboFlyers are interesting and active focuses of study but producing high-quality flapping robots that replicate insect flight is challenging., due to the dual requirement of both a sophisticated transmission mechanism with light weight and minimal intervening connections. This innovative mechanism was created to address the need for a producible structure that is small in size, small in mass, and has reduced design linkages. The proposed Single Crank-Slotted Dual Lever (SC-SDL) mechanism transforms rotational motion into specific angular motion at different velocities for each of its two strokes, i.e., the forward stroke and the return stroke. The discovery of a lag between the left and right lever motions in our design mechanism-I leads us to the conclusion that the flapping is asymmetric. To eliminate the position lag, the design has been altered, and a new design mechanism-II has been developed. Comparative kinematic analysis of both design systems is performed using simulations. Two-dimensional analysis of the base ornithopter configuration using ANSYS FLUENT yielded deeper insights regarding the influence of varying flapping frequency on critical flow metrics regarding adequate lift and thrust. For a flapping frequency of 24 Hz, adequate lift generation was achieved with minimal flow disturbances and wake interactions. Averaged dual wing estimations were made as part of the CFD study, which showed similar agreements. To validate the estimations, experimental tests were performed over the design mechanism-II configuration.
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spelling pubmed-96804862022-11-23 Parametric Study and Experimental Investigations of a Single Crank–Slotted Dual Lever Mechanism for MAV Flapping Actuation Singh, Spoorthi Muralidharan, Aravind Karthik Radhakrishnan, Jayakrishnan Zuber, Mohammad Basri, Adi Azriff Mazlan, Norkhairunnisa Hamidon, Mohd Nizar Ahmad, Kamarul Arifin Biomimetics (Basel) Article Insect RoboFlyers are interesting and active focuses of study but producing high-quality flapping robots that replicate insect flight is challenging., due to the dual requirement of both a sophisticated transmission mechanism with light weight and minimal intervening connections. This innovative mechanism was created to address the need for a producible structure that is small in size, small in mass, and has reduced design linkages. The proposed Single Crank-Slotted Dual Lever (SC-SDL) mechanism transforms rotational motion into specific angular motion at different velocities for each of its two strokes, i.e., the forward stroke and the return stroke. The discovery of a lag between the left and right lever motions in our design mechanism-I leads us to the conclusion that the flapping is asymmetric. To eliminate the position lag, the design has been altered, and a new design mechanism-II has been developed. Comparative kinematic analysis of both design systems is performed using simulations. Two-dimensional analysis of the base ornithopter configuration using ANSYS FLUENT yielded deeper insights regarding the influence of varying flapping frequency on critical flow metrics regarding adequate lift and thrust. For a flapping frequency of 24 Hz, adequate lift generation was achieved with minimal flow disturbances and wake interactions. Averaged dual wing estimations were made as part of the CFD study, which showed similar agreements. To validate the estimations, experimental tests were performed over the design mechanism-II configuration. MDPI 2022-11-21 /pmc/articles/PMC9680486/ /pubmed/36412736 http://dx.doi.org/10.3390/biomimetics7040208 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Singh, Spoorthi
Muralidharan, Aravind Karthik
Radhakrishnan, Jayakrishnan
Zuber, Mohammad
Basri, Adi Azriff
Mazlan, Norkhairunnisa
Hamidon, Mohd Nizar
Ahmad, Kamarul Arifin
Parametric Study and Experimental Investigations of a Single Crank–Slotted Dual Lever Mechanism for MAV Flapping Actuation
title Parametric Study and Experimental Investigations of a Single Crank–Slotted Dual Lever Mechanism for MAV Flapping Actuation
title_full Parametric Study and Experimental Investigations of a Single Crank–Slotted Dual Lever Mechanism for MAV Flapping Actuation
title_fullStr Parametric Study and Experimental Investigations of a Single Crank–Slotted Dual Lever Mechanism for MAV Flapping Actuation
title_full_unstemmed Parametric Study and Experimental Investigations of a Single Crank–Slotted Dual Lever Mechanism for MAV Flapping Actuation
title_short Parametric Study and Experimental Investigations of a Single Crank–Slotted Dual Lever Mechanism for MAV Flapping Actuation
title_sort parametric study and experimental investigations of a single crank–slotted dual lever mechanism for mav flapping actuation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9680486/
https://www.ncbi.nlm.nih.gov/pubmed/36412736
http://dx.doi.org/10.3390/biomimetics7040208
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