Javascript must be enabled to continue!
A Bi-Directional Acoustic Micropump Driven by Oscillating Sharp-Edge Structures
View through CrossRef
This paper proposes a bi-directional acoustic micropump driven by two groups of oscillating sharp-edge structures: one group of sharp-edge structures with inclined angles of 60° and a width of 40 μm, and another group with inclined angles of 45° and a width of 25 μm. One of the groups of sharp-edge structures will vibrate under the excitation of the acoustic wave generated with a piezoelectric transducer at its corresponding resonant frequency. When one group of sharp-edge structures vibrates, the microfluid flows from left to right. When the other group of sharp-edge structures vibrates, the microfluid flows in the opposite direction. Some gaps are designed between the sharp-edge structures and the upper surface and the bottom surface of the microchannels, which can reduce the damping between the sharp-edge structures and the microchannels. Actuated with an acoustic wave of a different frequency, the microfluid in the microchannel can be driven bidirectionally by the inclined sharp-edge structures. The experiments show that the acoustic micropump, driven by oscillating sharp-edge structures, can produce a stable flow rate of up to 125 μm/s from left to right, when the transducer was activated at 20.0 kHz. When the transducer was activated at 12.8 kHz, the acoustic micropump can produce a stable flow rate of up to 85 μm/s from right to left. This bi-directional acoustic micropump, driven by oscillating sharp-edge structures, is easy to operate and shows great potential in various applications.
Title: A Bi-Directional Acoustic Micropump Driven by Oscillating Sharp-Edge Structures
Description:
This paper proposes a bi-directional acoustic micropump driven by two groups of oscillating sharp-edge structures: one group of sharp-edge structures with inclined angles of 60° and a width of 40 μm, and another group with inclined angles of 45° and a width of 25 μm.
One of the groups of sharp-edge structures will vibrate under the excitation of the acoustic wave generated with a piezoelectric transducer at its corresponding resonant frequency.
When one group of sharp-edge structures vibrates, the microfluid flows from left to right.
When the other group of sharp-edge structures vibrates, the microfluid flows in the opposite direction.
Some gaps are designed between the sharp-edge structures and the upper surface and the bottom surface of the microchannels, which can reduce the damping between the sharp-edge structures and the microchannels.
Actuated with an acoustic wave of a different frequency, the microfluid in the microchannel can be driven bidirectionally by the inclined sharp-edge structures.
The experiments show that the acoustic micropump, driven by oscillating sharp-edge structures, can produce a stable flow rate of up to 125 μm/s from left to right, when the transducer was activated at 20.
0 kHz.
When the transducer was activated at 12.
8 kHz, the acoustic micropump can produce a stable flow rate of up to 85 μm/s from right to left.
This bi-directional acoustic micropump, driven by oscillating sharp-edge structures, is easy to operate and shows great potential in various applications.
Related Results
Electrostatically driven micropump with peristaltically moving membrane
Electrostatically driven micropump with peristaltically moving membrane
An electrostatically driven valveless micropump with a peristaltically moving membrane for gas chromatography is presented. The one‐chamber micropump has a peristaltically moving m...
Characterization of a 3D Printed Self-Powered Micropump Mould for Microfluidics Application
Characterization of a 3D Printed Self-Powered Micropump Mould for Microfluidics Application
The number of words should not exceed 350 Self-powered infusion micropump is a non-mechanical micropumps for microfluidics application. A three- dimensional (3D) printing is an int...
A SUPERIMPOSED VALVELESS MICROPUMP USING NEW CHANNELS FOR OPTIMAL DRUG DELIVERY
A SUPERIMPOSED VALVELESS MICROPUMP USING NEW CHANNELS FOR OPTIMAL DRUG DELIVERY
In this paper, we propose a valveless micropump with an improved inlet/outlet channel configuration for biomedical applications. To do so, we added curved parts known as "ears" to ...
Magic graphs
Magic graphs
DE LA TESIS<br/>Si un graf G admet un etiquetament super edge magic, aleshores G es diu que és un graf super edge màgic. La tesis està principalment enfocada a l'estudi del c...
Subjective audiometric measures in individuals with repeated acoustic trauma in the combat zone
Subjective audiometric measures in individuals with repeated acoustic trauma in the combat zone
Intense sound exposure that exceeds the pain threshold of human auditory sensitivity, known as acoustic trauma, causes significant and extensive changes in the auditory system. Thr...
A Bioinspired Active Micropump
A Bioinspired Active Micropump
A preliminary design concept is provided for a bioinspired active micropump. The proposed micropump uses light energy to activate the transporter proteins (bacteriorhodopsin protei...
Development of High-Power Micropump Using Inertia Effect of Fluid for Small-Sized Fluid Actuators
Development of High-Power Micropump Using Inertia Effect of Fluid for Small-Sized Fluid Actuators
The authors have been developing a high output micropump for the small but powerful fluid actuator which has a source of fluid power individually. In this paper, a novel piezoelect...
Complication Circumstance Directional and Horizontal Wells Drilling Technology in Iran
Complication Circumstance Directional and Horizontal Wells Drilling Technology in Iran
Abstract
Directional drilling technology has been applied widely since the last century. Directional tools and directional drilling technology shall be applicable to...

