2016
DOI: 10.1007/s10404-016-1738-x
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Single-pulse dynamics and flow rates of inertial micropumps

Abstract: Bubble-driven inertial pumps are a novel method of moving liquids through microchannels. We combine high-speed imaging, computational fluid dynamics (CFD) simulations and an effective one-dimensional model to study the fundamentals of inertial pumping. For the first time, single-pulse transient flow through Ushaped microchannels is imaged over the entire pump cycle with 4-µs temporal resolution. Observations confirm the fundamental N-shape flow profile predicted earlier by theory and simulations. Experimental … Show more

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Cited by 11 publications
(15 citation statements)
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“…In addition, at sub kHz operating frequencies, flow induced by successive pulses does not overlap in time and linear scaling of flow rates with pump frequency is expected. (When the pulses overlap, pump efficiency per pulse goes down, but not significantly [8].) The linear dependence was verified experimentally as shown in Fig.…”
Section: Particle Tracking and Post-processingmentioning
confidence: 56%
See 3 more Smart Citations
“…In addition, at sub kHz operating frequencies, flow induced by successive pulses does not overlap in time and linear scaling of flow rates with pump frequency is expected. (When the pulses overlap, pump efficiency per pulse goes down, but not significantly [8].) The linear dependence was verified experimentally as shown in Fig.…”
Section: Particle Tracking and Post-processingmentioning
confidence: 56%
“…8 and are in good agreement with Eq. (8). We close this section by discussing the sources of variation in matrix parameters a and b observed in different experiments.…”
Section: Three-pump Operations Routing Three-fluid Mixingmentioning
confidence: 90%
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“…The dynamics of bubble formation are complex. The expansion and collapse of this bubble occurs within 50 µs [10]. It is useful to consider the boiling process first in equilibrium before considering its transient behavior.…”
Section: Introductionmentioning
confidence: 99%