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Couette Flow01:22

Couette Flow

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Couette flow represents the flow of fluid between two parallel plates, with one plate fixed and the other moving with a constant velocity. This configuration allows for a simplified analysis using the Navier-Stokes equations, which govern fluid motion under conditions of viscosity and incompressibility. For Couette flow, the assumptions include a steady, laminar, incompressible flow with a zero-pressure gradient in the flow direction. This flow type is beneficial for understanding shear-driven...
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Steady Flow of a Fluid Stream01:27

Steady Flow of a Fluid Stream

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Consider a control volume, such as a pipe with solid boundaries, through which fluid flows and changes direction due to the impulse exerted by the resulting force from the pipe walls. In steady flow, the mass of fluid entering the control volume at a given time, t, with velocity v1, is equal to the mass leaving after infinitesimal time dt, with velocity v2.
During this process, the momentum of the fluid within the control volume remains constant over the time interval dt. By applying the...
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Types of Fluids01:27

Types of Fluids

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Fluids can be classified into Newtonian and non-Newtonian fluids based on their response to shear stress. Newtonian fluids have a linear relationship between shear stress and the shear strain rate, following Newton's law of viscosity. Their viscosity remains constant regardless of the shear rate, making their behavior predictable and easier to analyze. Common examples include water, air, oil, and gasoline.
In contrast, non-Newtonian fluids do not follow Newton's law of viscosity, and...
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General Characteristics of Pipe Flow II01:24

General Characteristics of Pipe Flow II

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When fluid enters a pipe, it first passes through the entrance region, where the velocity profile adjusts due to viscous effects. In this region, a boundary layer forms along the pipe walls and grows until it fully occupies the pipe's cross-section. Once the boundary layer merges, the flow becomes fully developed, with a steady velocity profile that remains consistent along the pipe's length.
The distance to reach a fully developed flow is called the entrance length and depends on the...
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Newtonian Fluid: Problem Solving01:18

Newtonian Fluid: Problem Solving

196
Newtonian fluids exhibit a constant viscosity, meaning their shear stress and shear strain rate are directly proportional. This property ensures a predictable and stable response to applied forces, maintaining a linear relationship between force and flow. Examples include water, air, and light oils, consistently demonstrating this proportional behavior regardless of external conditions.
A velocity gradient forms within the fluid when a Newtonian fluid is placed between two parallel plates, with...
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Laminar and Turbulent Flow01:07

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Fluid dynamics is the study of fluids in motion. Velocity vectors are often used to illustrate fluid motion in applications like meteorology. For example, wind—the fluid motion of air in the atmosphere—can be represented by vectors indicating the speed and direction of the wind at any given point on a map. Another method for representing fluid motion is a streamline. A streamline represents the path of a small volume of fluid as it flows. When the flow pattern changes with time, the...
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Related Experiment Video

Updated: Jun 6, 2025

Fabrication, Operation and Flow Visualization in Surface-acoustic-wave-driven Acoustic-counterflow Microfluidics
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On the Complex Flow Dynamics of Shear Thickening Fluids Entry Flows.

Miguel Montenegro1,2, Francisco J Galindo-Rosales2,3

  • 1Centro de Estudos de Fenómenos de Transporte (CEFT), Departmento de Engenharia Mecânica, Faculdade de Engenharia da Universidade do Porto, Rua Dr. Roberto Frias, 4200-465 Porto, Portugal.

Micromachines
|November 27, 2024
PubMed
Summary

This study analyzes the entry flow of shear thickening fluids (STFs) in microfluidic channels, crucial for designing energy-dissipating composites. The research accurately models STF behavior, improving energy absorption in damping devices.

Keywords:
CFDcontinuous shear thickening fluidsentry flowmicrofluidics

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Area of Science:

  • Materials Science
  • Fluid Dynamics
  • Nanotechnology

Background:

  • Shear thickening fluids (STFs) are utilized in energy-dissipating systems like shock absorbers.
  • Rheinforce technology embeds STF-filled microfluidic channels in composites for customized energy dissipation.
  • Optimizing microchannel shape controls pressure drop and energy dissipation.

Purpose of the Study:

  • To analyze the influence of STF three-region viscosity on entry flow in axisymmetric pipes.
  • To provide a more accurate model for STF behavior compared to the power-law model.
  • To enhance the design of energy-dissipating composites using Rheinforce technology.

Main Methods:

  • Performed two-dimensional numerical simulations.
  • Investigated four STFs with fumed silica nanoparticles in polypropylene glycol at varying concentrations (7.5-20 wt%).
  • Analyzed the fluid flow at the microchannel entry region, considering the complete STF viscosity curve.

Main Results:

  • The study provides the first analysis of STF three-region viscosity effects on entry flow.
  • Numerical simulations offer insights into pressure drop and energy dissipation control.
  • The findings are crucial for accurate design of STF-based energy dissipative systems.

Conclusions:

  • Accurate modeling of STF viscosity is essential for optimizing energy dissipation in microfluidic devices.
  • Understanding entry flow dynamics improves the design of advanced damping and shock absorption systems.
  • This research advances the application of STFs in engineering through improved numerical simulation.