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Longitudinal Motion Modeling and Experimental Verification of a Microrobot Subject to Liquid Laminar Flow

dc.contributor.authorDemircali, Ali Anil
dc.contributor.authorVarol, Rahmetullah
dc.contributor.authorAydemir, Gizem
dc.contributor.authorSaruhan, Eda Nur
dc.contributor.authorErkan, Kadir
dc.contributor.authorUvet, Huseyin
dc.date.accessioned2026-06-27T14:35:08Z
dc.date.issued2021
dc.description.abstractThis article presents an untethered magnetic manipulation technique for controlling a microrobot position under high rate laminar flows up to 4.5 mL/min. An increase in flow rate exponentially increases the drag force on the microrobot and negatively impacts its positioning accuracy. Increasing the longitudinal force generated by the microrobot's driving apparatus helps in overcoming the disruptive effects of the fluid flow and increases longitudinal motion stability. To this end, we propose a magnetic configuration with two ring-shaped magnets, one above and the other below the microfluidic channel. This configuration causes the magnetic field lines emanating from the ring-shaped magnets to converge on both sides of the microrobot. Thus, the magnetic trapping forces that hold the microrobot in position are increased. To the best of our knowledge, no prior study exists on investigating the longitudinal motion for high flow velocities (>5 mm/s). Investigating the longitudinal forces (along the x-axis) that affect a magnetically driven microrobot is a novel research topic that has many potential application areas, such as cell research, micromanipulation, and lab-on-a-chip systems. The microrobot's dynamical motion is modeled as a secondorder system, and using this model as a guideline, we demonstrate the ability of a microrobot in a square-shaped microfluidic channel (900x900 mu m(2)) to follow a linear trajectory with a relative velocity up to 132.6 mm/s. A straight and longitudinal trajectory of 4000 mu m has been successfully followed in the same and opposite directions to the flow for different flow rates (1-4.5 mL/min) and different robot speeds (10-50 mm/s).en
dc.description.sponsorshipScientific and Technological Research Council of Turkey Support Program for Priority Research Projects [116E743]
dc.description.urihttps://doi.org/10.1109/tmech.2020.3049069
dc.identifier.doi10.1109/tmech.2020.3049069
dc.identifier.eissn1941-014X
dc.identifier.endpage2966
dc.identifier.issn1083-4435
dc.identifier.issue6
dc.identifier.startpage2956
dc.identifier.urihttps://hdl.handle.net/20.500.14981/62364
dc.identifier.volume26
dc.identifier.wos000730420400017
dc.language.isoeng
dc.publisherIEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
dc.relation.ispartofIEEE-ASME TRANSACTIONS ON MECHATRONICS
dc.subjectDiamagnetic levitation
dc.subjectlaminar flow
dc.subjectmicrorobot motion
dc.subjectmotion in flow
dc.subjectReynolds number
dc.subjectLEVITATION
dc.subjectAutomation & Control Systems
dc.subjectEngineering
dc.titleLongitudinal Motion Modeling and Experimental Verification of a Microrobot Subject to Liquid Laminar Flow
dc.typeArticle
dspace.entity.typePublication
local.import.sourceWOS

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