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Modular and extendable 1D-simulation for microfluidic devices.

Maria Emmerich1, Florina Costamoling2, Robert Wille3,4

  • 1Technical University of Munich (TUM), Arcisstrasse 21, 80333, Munich, Germany. maria.emmerich@tum.de.

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Summary

A new open-source, modular 1D simulation tool offers efficient and adaptable modeling for microfluidic devices. This approach provides quality results for diverse applications, overcoming limitations of existing specialized software.

Keywords:
AbstractionDropletMembraneMicrofluidicsSimulation

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Area of Science:

  • Microfluidics
  • Computational Science
  • Chemical Engineering

Background:

  • Microfluidic devices are crucial for various applications, requiring accurate simulations for development.
  • Traditional Computational Fluid Dynamics (CFD) simulations are often time-consuming.
  • Existing 1D simulation tools are limited in scope and not widely adopted.

Purpose of the Study:

  • To develop a versatile, open-source, and extendable 1D simulation tool for microfluidic devices.
  • To address the need for a comprehensive simulation solution covering novel applications.
  • To facilitate efficient evaluation and validation of microfluidic device designs.

Main Methods:

  • Implementation of a modular 1D simulation approach with a core functionality base module.
  • Development of application-specific modules for common microfluidic functions (e.g., mixing, membranes, droplets).
  • Validation through case studies comparing simulation results with existing data and fabricated devices.

Main Results:

  • The proposed modular 1D simulation approach enables efficient simulation of a wide range of microfluidic applications.
  • The tool demonstrates reasonable quality results, comparable to previous methods and experimental outcomes.
  • The open-source, extendable nature facilitates adaptation to novel and specific microfluidic challenges.

Conclusions:

  • The developed open-source 1D simulation tool provides an efficient and adaptable solution for microfluidic device modeling.
  • This approach overcomes the limitations of specialized tools, offering broader applicability and ease of extension.
  • The software package promotes wider adoption and efficient simulation of microfluidic systems.