A coin vibrational motor swimming at low Reynolds number


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Low-cost coin vibrational motors, used in haptic feedback, exhibit rotational internal motion inside a rigid case. Because the motor case motion exhibits rotational symmetry, when placed into a fluid such as glycerin, the motor does not swim even though its oscillatory motions induce steady streaming in the fluid. However, a piece of rubber foam stuck to the curved case and giving the motor neutral buoyancy also breaks the rotational symmetry allowing it to swim. We measured a 1 cm diameter coin vibrational motor swimming in glycerin at a speed of a body length in 3 seconds or at 3 mm/s. The swim speed puts the vibrational motor in a low Reynolds number regime similar to bacterial motility, but because of the oscillations of the motor it is not analogous to biological organisms. Rather the swimming vibrational motor may inspire small inexpensive robotic swimmers that are robust as they contain no external moving parts. A time dependent Stokes equation planar sheet model suggests that the swim speed depends on a steady streaming velocity Vstream ~ Res1/2U0 where U0 is the velocity of surface oscillations, and streaming Reynolds number Res = U02/(ων) for motor angular frequency ω and fluid kinematic viscosity ν.

作者简介

Alice Quillen

Dept. of Physics and Astronomy

编辑信件的主要联系方式.
Email: alice.quillen@rochester.edu
美国, Rochester, NY, 14627

Hesam Askari

Dept. of Mechanical Engineering

Email: alice.quillen@rochester.edu
美国, Rochester, NY, 14627

Douglas Kelley

Dept. of Mechanical Engineering

Email: alice.quillen@rochester.edu
美国, Rochester, NY, 14627

Tamar Friedmann

Dept. of Physics and Astronomy; Dept. of Mathematics; Dept. of Mathematics and Statistics

Email: alice.quillen@rochester.edu
美国, Rochester, NY, 14627; Rochester, NY, 14627; Northampton, MA, 01063

Patrick Oakes

Dept. of Physics and Astronomy

Email: alice.quillen@rochester.edu
美国, Rochester, NY, 14627

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