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Blood Flow01:29

Blood Flow

Blood is pumped by the heart into the aorta, the largest artery in the body, and then into increasingly smaller arteries, arterioles, and capillaries. The velocity of blood flow decreases with increased cross-sectional blood vessel area. As blood returns to the heart through venules and veins, its velocity increases. The movement of blood is encouraged by smooth muscle in the vessel walls, the movement of skeletal muscle surrounding the vessels, and one-way valves that prevent backflow.
Laminar and Turbulent Flow01:07

Laminar and Turbulent Flow

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 streamlines...
Vascular Resistance01:20

Vascular Resistance

Vascular resistance is a critical concept in understanding blood flow dynamics in the circulatory system. It refers to the resistance that blood encounters as it flows through the blood vessels. This resistance is a key factor in determining blood pressure and cardiac workload.
The primary determinants of vascular resistance are vessel diameter, blood viscosity, and vessel length. Among these, vessel diameter plays the most significant role due to the fourth power relationship described by...
Steady, Laminar Flow in Circular Tubes01:23

Steady, Laminar Flow in Circular Tubes

Hagen-Poiseuille flow describes a viscous fluid's steady, incompressible flow through a cylindrical tube with a constant radius R. This flow profile is often applied to understand fluid transport in narrow channels, such as capillaries. It serves as a foundational example of laminar flow. In this model, cylindrical coordinates (r,θ,z) are used to describe the radial (r), angular (θ), and axial (z) dimensions within the tube. For Hagen-Poiseuille flow, the velocity profile is purely axial,...
General Characteristics of Pipe Flow I01:22

General Characteristics of Pipe Flow I

Pipe flow refers to the movement of fluids within fully enclosed conduits, typically cylindrical in shape, such as water pipes or hydraulic hoses. These conduits are designed to withstand high-pressure gradients that drive fluid movement, contrasting with open-channel flows, where gravity is the primary driving force. Rectangular conduits, like air conditioning and heating ducts, generally operate at lower pressures and are less suited for high-pressure applications.
The classification of fluid...
Applications of Integration to Find Blood Flow01:27

Applications of Integration to Find Blood Flow

Blood flow through a cylindrical blood vessel can be mathematically described using the principles of laminar flow, a regime in which fluid moves smoothly in parallel layers. In this model, the velocity of the blood is not uniform across the cross-section of the vessel; rather, it varies with the radial distance from the center. The maximum velocity occurs along the central axis, decreasing progressively toward the vessel walls, where it reaches zero due to viscous drag.Approximating Blood...

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Related Experiment Video

Updated: May 7, 2026

Catheterization of the Carotid Artery and Jugular Vein to Perform Hemodynamic Measures, Infusions and Blood Sampling in a Conscious Rat Model
09:05

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Carotid web catheter angiography hemodynamic parameters.

Mateus Damiani Monteiro1,2, Mohamed A Tarek1,2, Pedro N Martins1,2

  • 1Department of Neurology, Emory University School of Medicine, Atlanta, Georgia, USA.

Journal of Neurointerventional Surgery
|July 17, 2024
PubMed
Summary

Contrast stagnation on digital subtraction angiography (DSA) in patients with carotid web (CaW) did not correlate with anatomical CaW features or clinical presentation. This suggests contrast stagnation time may not accurately reflect the hemodynamic disruption and thrombotic risk associated with carotid webs.

Keywords:
AngiographyStroke

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Area of Science:

  • Vascular imaging and hemodynamics
  • Cerebrovascular diseases
  • Interventional neuroradiology

Background:

  • Carotid web (CaW) is a rare congenital anomaly that can lead to stroke.
  • Contrast stagnation observed on digital subtraction angiography (DSA) in CaW is hypothesized to be a marker of stasis, thrombosis, and embolization.
  • Understanding the relationship between DSA-derived hemodynamic parameters and CaW morphology is crucial for risk stratification.

Purpose of the Study:

  • To assess the correlation between DSA-derived hemodynamic parameters, specifically contrast stagnation time.
  • To evaluate the association of contrast stagnation with CT angiography (CTA) structural measurements of the CaW.
  • To determine the relationship between contrast stagnation and clinical characteristics of patients with CaW.

Main Methods:

  • Cross-sectional analysis of 60 patients with CaW who underwent both CTA and DSA.
  • DSA-derived hemodynamic parameters were calculated using time-density curves (TDC) at the carotid bulb.
  • Mixed effects models were used to evaluate correlations between stagnation time, CaW structural features, and clinical data.

Main Results:

  • Sixty patients (mean age 52.2 years, 63.3% women, 85% Black) with symptomatic CaW were analyzed.
  • The median contrast stagnation time was 2.91 seconds.
  • No significant associations were found between stagnation time and CaW structural measurements (e.g., base, length, thickness, angles, pocket area/perimeter) or clinical characteristics.

Conclusions:

  • A negative exponential pattern was observed in DSA contrast clearance within the CaW pocket.
  • Morphological or clinical features did not correlate with the duration of contrast stagnation on DSA.
  • Contrast stagnation time may not be a reliable indicator of the hemodynamic disruption and thrombotic risk posed by carotid webs.