Electrokinetic coupling in unsteady pressure-driven flow through a porous transducer: Fractal capillary bundle model

Ke Ning, Meiling Wang, Francis A. Kulacki, Shen Kai*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

4 Citations (Scopus)

Abstract

The liquid circular angular accelerometer (LCAA) is a novel fluid-mechanical device based on the principle of electrokinetic effect, which is featured as the streaming potential coefficient (SPC) to convert elastic wave energy into electromagnet energy within the porous transducer. To determine its dynamic response, we present an analytical expression for the frequency-dependent SPC of a porous transducer in the LCAA. The electrokinetic coupling process in unsteady pressure-driven flow is developed by using the fractal capillary bundle model. Electrical potential distribution in a torturous capillary of the arbitrary radius is modeled by a modified approximation for the Poisson-Boltzmann equation with high zeta potential condition. We present an apparatus for measuring the dynamic SPC of transducers that are sintered with glass beads and have high porosity. Measurements on natural and sintered porous samples validate the proposed model and demonstrate satisfactory agreement. According to the sensitivity analysis, changes in fluid and structural properties have a significant impact on the unsteady SPC response, particularly the solution concentration and mean particle size. The findings of this study can pave the way for the frequency-dependent SPC prediction of the porous transducer as well as a better understanding of the LCAA design optimization.

Original languageEnglish
Article number122764
JournalInternational Journal of Heat and Mass Transfer
Volume195
DOIs
Publication statusPublished - Oct 2022

Keywords

  • Angular accelerometer
  • Capillary bundle model
  • Fractal theory
  • Steaming potential

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