The experimental possibility of driving a floating self-propelled rotator by using the Moses effect is demonstrated. A steady magnetic field with a magnitude on the order of B ≅ 0·5 T formed the near-surface dip with a depth of c. 30 μm and lateral dimension of 5 mm, which attracted the floating, millimeter-scaled rotator, made from a polymer tubing filled by camphor and driven by the soluto-capillary Marangoni flows. The Marangoni flows driving the rotator are due to the dissolution of camphor. The Moses effect did not influence the angular velocity of the rotator. The characteristic time span of the rotation was established on the order of a dozen of hours. The longer rotators decrease their initial angular velocity slower. The qualitative analysis of the energy dissipation under rotation is provided. The model is qualitatively supported by the experimental data. The rotator may be exploited as a robotic propulsion unit and also for micro-generation of electrical power.
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1 November 2019
Research Article|
May 13 2019
The Moses effect enables remote control of self-propulsion of a diamagnetic rotator
Alla Vilk, MSc
;
Alla Vilk, MSc
PhD student
Chemical Engineering, Biotechnology and Materials Department, Engineering Faculty, Ariel University, Ariel, Israel
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Irina Legchenkova, PhD
;
Irina Legchenkova, PhD
Postdoctoral Researcher
Chemical Engineering, Biotechnology and Materials Department, Engineering Faculty, Ariel University, Ariel, Israel
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Mark Frenkel, PhD
;
Mark Frenkel, PhD
Researcher
Chemical Engineering, Biotechnology and Materials Department, Engineering Faculty, Ariel University, Ariel, Israel
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Shraga Shoval, PhD
;
Shraga Shoval, PhD
Professor
Chemical Engineering, Biotechnology and Materials Department, Engineering Faculty, Ariel University, Ariel, Israel
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Edward Bormashenko, PhD
Chemical Engineering, Biotechnology and Materials Department, Engineering Faculty, Ariel University, Ariel, Israel
(corresponding author: edward@ariel.ac.il)
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(corresponding author: edward@ariel.ac.il)
Publisher: Emerald Publishing
Received:
March 13 2019
Accepted:
April 17 2019
Online ISSN: 2050-6260
Print ISSN: 2050-6252
ICE Publishing: All rights reserved
2019
Surface Innovations (2019) 7 (5): 244–248.
Article history
Received:
March 13 2019
Accepted:
April 17 2019
Citation
Vilk A, Legchenkova I, Frenkel M, Shoval S, Bormashenko E (2019), "The Moses effect enables remote control of self-propulsion of a diamagnetic rotator". Surface Innovations, Vol. 7 No. 5 pp. 244–248, doi: https://doi.org/10.1680/jsuin.19.00011
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