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Related Experiment Video

Updated: Dec 28, 2025

Micro-particle Image Velocimetry for Velocity Profile Measurements of Micro Blood Flows
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High Field MicroMRI Velocimetric Measurement of Quantitative Local Flow Curves.

Tatiana Nikolaeva1,2, Frank J Vergeldt1,2, Raquel Serial1,2

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High-field rheo-microMRI velocimetry offers enhanced sensitivity and resolution. New methods minimize artifacts, enabling accurate, noninvasive, real-time assessment of local flow curves in complex fluids.

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Area of Science:

  • Rheology and Magnetic Resonance Imaging (MRI)

Background:

  • High-field rheo-microMRI velocimetry provides superior sensitivity and resolution for studying fluid dynamics.
  • Artifacts like chemical shift dispersion and eddy currents hinder quantitative analysis, especially in concentric cylinder (CC) rheo-cells with small gaps.
  • Accurate measurement of spatially resolved velocity profiles is crucial for constructing local flow curves (LFCs).

Purpose of the Study:

  • To develop and validate a method for minimizing artifacts in high-field rheo-microMRI velocimetry.
  • To enable quantitative assessment of local flow curves (LFCs) in millimeter-gap CC rheo-cells.
  • To demonstrate the capability of rheo-microMRI for real-time analysis of complex fluid flow.

Main Methods:

  • Employed chemical shift selective suppression to mitigate spectral artifacts.
  • Accounted for pulsed magnetic field gradient imperfections.
  • Utilized concentric cylinder (CC) rheo-cells within a high magnetic field MRI setup.

Main Results:

  • Achieved artifact-free local flow curves (LFCs) through artifact suppression techniques.
  • Validated the method for Newtonian and yield stress fluids, showing agreement between local and global flow curves.
  • Demonstrated no systematic effects of gap size or rotational velocity on fluid properties.

Conclusions:

  • High-field rheo-microMRI velocimetry, with artifact correction, enables quantitative, noninvasive, real-time assessment of local constitutive laws.
  • The validated method is effective for diverse fluid types, including heterogeneous and transient systems like fat crystal dispersions.
  • This technique significantly advances the study of complex fluid rheology.