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Acoustically and electrokinetically driven transport in microfluidic devices

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Electrokinetically driven flows are widely employed as a primary method for liquid pumping in micro-electromechanical systems. Mixing of analytes and reagents is limited in microfluidic devices due to the low Reynolds number of the flows. Acoustic excitations have recently been suggested to promote mixing in the microscale flow systems. Electrokinetic flows through straight microchannels were investigated using the Poisson-Boltzmann and Nernst-Planck models. The acoustic wave/fluid flow interactions in a microchannel were investigated via the development of two and three-dimensional dynamic predictive models for flows with field couplings of the electrical, mechanical and fluid flow quantities. The effectiveness and applicability of electrokinetic augmentation in flexural plate wave micropumps for enhanced capabilities were explored. The proposed concept can be exploited to integrate micropumps into complex microfluidic chips improving the portability of micro-total-analysis systems along with the capabilities of actively controlling acoustics and electrokinetics for micro-mixer applications. Acoustically excited flows in microchannels consisting of flexural plate wave devices and thin film resonators were considered. Compressible flow fields were considered to accommodate the acoustic excitations produced by a vibrating wall. The velocity and pressure profiles for different parameters including frequency, channel height, wave amplitude and length were investigated. Coupled electrokinetics and acoustics cases were investigated while the electric field intensity of the electrokinetic body forces and actuation frequency of acoustic excitations were varied. Multifield analysis of a piezoelectrically actuated valveless micropump was also presented. The effect of voltage and frequency on membrane deflection and flow rate were investigated. Detailed fluid/solid deformation coupled simulations of piezoelectric valveless micropump have been conducted to predict the generated time averaged flow rates. Developed coupled solid and fluid mechanics models can be utilized to integrate flow-through sensors with microfluidic chips.
Drexel University Libraries
Title: Acoustically and electrokinetically driven transport in microfluidic devices
Description:
Electrokinetically driven flows are widely employed as a primary method for liquid pumping in micro-electromechanical systems.
Mixing of analytes and reagents is limited in microfluidic devices due to the low Reynolds number of the flows.
Acoustic excitations have recently been suggested to promote mixing in the microscale flow systems.
Electrokinetic flows through straight microchannels were investigated using the Poisson-Boltzmann and Nernst-Planck models.
The acoustic wave/fluid flow interactions in a microchannel were investigated via the development of two and three-dimensional dynamic predictive models for flows with field couplings of the electrical, mechanical and fluid flow quantities.
The effectiveness and applicability of electrokinetic augmentation in flexural plate wave micropumps for enhanced capabilities were explored.
The proposed concept can be exploited to integrate micropumps into complex microfluidic chips improving the portability of micro-total-analysis systems along with the capabilities of actively controlling acoustics and electrokinetics for micro-mixer applications.
Acoustically excited flows in microchannels consisting of flexural plate wave devices and thin film resonators were considered.
Compressible flow fields were considered to accommodate the acoustic excitations produced by a vibrating wall.
The velocity and pressure profiles for different parameters including frequency, channel height, wave amplitude and length were investigated.
Coupled electrokinetics and acoustics cases were investigated while the electric field intensity of the electrokinetic body forces and actuation frequency of acoustic excitations were varied.
Multifield analysis of a piezoelectrically actuated valveless micropump was also presented.
The effect of voltage and frequency on membrane deflection and flow rate were investigated.
Detailed fluid/solid deformation coupled simulations of piezoelectric valveless micropump have been conducted to predict the generated time averaged flow rates.
Developed coupled solid and fluid mechanics models can be utilized to integrate flow-through sensors with microfluidic chips.

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