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A 3D Spheroid Model for Glioblastoma
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A floating prolate spheroid.

C Pozrikidis1

  • 1Department of Chemical Engineering, University of Massachusetts, Amherst, MA 01003, USA. cpozrikidis@ecs.umass.edu

Journal of Colloid and Interface Science
|September 6, 2011
PubMed
Summary

This study analyzes the equilibrium of needle-like particles at fluid interfaces. It develops numerical and approximate methods to determine particle position based on capillary forces, buoyancy, and weight.

Area of Science:

  • Fluid dynamics
  • Interfacial phenomena
  • Capillary hydrodynamics

Background:

  • Floating particles at fluid interfaces experience capillary forces due to surface tension.
  • The particle's shape and interaction with the interface determine its equilibrium position.
  • Understanding these forces is crucial for applications involving particle suspensions and interfacial behavior.

Purpose of the Study:

  • To investigate the equilibrium position of spherical and prolate spheroidal particles at the interface between two immiscible fluids.
  • To develop and compare numerical and approximate analytical methods for calculating capillary forces and particle equilibrium.
  • To analyze the influence of fluid properties, particle characteristics, and contact angle on interfacial behavior.

Main Methods:

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  • Accurate numerical solution of a boundary-value problem for a floating sphere.
  • Approximate analytical solution using an inclined flat plate model for meniscus elevation.
  • Local approximate formulation for prolate spheroids, leading to a nonlinear algebraic equation.
  • Main Results:

    • Numerical results for a sphere show good agreement with the approximate analytical solution.
    • A nonlinear algebraic equation was derived for the prolate spheroid's position and contact line elevation.
    • The study discusses the effects of densities, contact angle, and capillary length on the system.

    Conclusions:

    • The methods provide accurate predictions for particle equilibrium at fluid interfaces.
    • The study quantifies the interplay between capillary forces, buoyancy, and particle properties.
    • The shape of the contact line around the particle was successfully reconstructed.