Detail publikačního výsledku

Affordable method for channel geometry–specific flow control in microfluidics without commercial pumps

LIU, X.; BRODSKÝ, J.; VÍROSTKO, J.; JARUŠEK, J.; MIGLIACCIO, L.; ZÍTKA, O.; GABLECH, I.; NEUŽIL, P.

Originální název

Affordable method for channel geometry–specific flow control in microfluidics without commercial pumps

Anglický název

Affordable method for channel geometry–specific flow control in microfluidics without commercial pumps

Druh

Článek WoS

Originální abstrakt

Microfluidic experiments often require precise flow control, but commercial pumps and pressure regulators are costly and can limit accessibility. We introduce a calibration-based strategy that links channel geometry with predictable relationships between pressure drop (Δp) and flow rate (Q), enabling stable operation of microfluidic systems using only pressurized syringes and inexpensive tubing. Silicon–glass microfluidic chips with systematically varied channel dimensions were fabricated and tested to quantify how width, depth, and length affect hydrodynamic resistance. The results revealed consistent geometry-dependent scaling of Δp and Q, with experimental values closely matching theoretical predictions. This calibration framework allows researchers to pre-determine safe operating conditions for syringe-driven flow, preventing chip failure and connector leakage while providing reliable flow control without specialized equipment. Beyond lowering system cost, the method highlights how chip geometry dictates achievable flow regimes, offering a design tool for laboratories where commercial pumps are unavailable.

Anglický abstrakt

Microfluidic experiments often require precise flow control, but commercial pumps and pressure regulators are costly and can limit accessibility. We introduce a calibration-based strategy that links channel geometry with predictable relationships between pressure drop (Δp) and flow rate (Q), enabling stable operation of microfluidic systems using only pressurized syringes and inexpensive tubing. Silicon–glass microfluidic chips with systematically varied channel dimensions were fabricated and tested to quantify how width, depth, and length affect hydrodynamic resistance. The results revealed consistent geometry-dependent scaling of Δp and Q, with experimental values closely matching theoretical predictions. This calibration framework allows researchers to pre-determine safe operating conditions for syringe-driven flow, preventing chip failure and connector leakage while providing reliable flow control without specialized equipment. Beyond lowering system cost, the method highlights how chip geometry dictates achievable flow regimes, offering a design tool for laboratories where commercial pumps are unavailable.

Klíčová slova

flow rate; geometry; hydrodynamics; lab on a chip; microfluidic device; microfluidics; prediction; pressure; pressure regulator; pump; syringe

Klíčová slova v angličtině

flow rate; geometry; hydrodynamics; lab on a chip; microfluidic device; microfluidics; prediction; pressure; pressure regulator; pump; syringe

Autoři

LIU, X.; BRODSKÝ, J.; VÍROSTKO, J.; JARUŠEK, J.; MIGLIACCIO, L.; ZÍTKA, O.; GABLECH, I.; NEUŽIL, P.

Vydáno

18.11.2025

Periodikum

Scientific Reports

Svazek

15

Číslo

11

Stát

Spojené království Velké Británie a Severního Irska

Strany od

1

Strany do

8

Strany počet

8

URL

Plný text v Digitální knihovně

BibTex

@article{BUT199477,
  author="{} and Jan {Brodský} and Ján {Vírostko} and Jaromír {Jarušek} and Ludovico {Migliaccio} and Ondřej {Zítka} and Imrich {Gablech} and Pavel {Neužil}",
  title="Affordable method for channel geometry–specific flow control in microfluidics without commercial pumps",
  journal="Scientific Reports",
  year="2025",
  volume="15",
  number="11",
  pages="8",
  doi="10.1038/s41598-025-24442-5",
  issn="2045-2322",
  url="https://www.nature.com/articles/s41598-025-24442-5"
}

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