Vascular Hemodynamics Principles Flashcards
7 cards from real CCI practice questions. Tap to flip, then mark Knew It or Still Learning — missed cards come back until you master them.
Read the first 7 Vascular Hemodynamics Principles flashcards as text
Which hemodynamic principle explains why blood velocity increases when a vessel narrows?
Answer: Continuity of flow equation
The continuity equation states that flow volume is conserved, so velocity must increase when cross-sectional area decreases.
In a stenotic vessel, the pressure gradient across the lesion is primarily determined by:
Answer: Flow velocity and lesion geometry
The pressure gradient across a stenosis depends on flow velocity squared and the geometric characteristics of the narrowing.
The ankle-brachial index (ABI) in a normal individual should be approximately:
Answer: 0.9–1.3
A normal ABI ranges from 0.9 to 1.3; values below 0.9 suggest peripheral arterial disease.
Which waveform characteristic indicates high distal vascular resistance in a peripheral artery?
Answer: Triphasic waveform with prominent reverse component
A triphasic waveform with a prominent reverse-flow component in early diastole is the hallmark of high distal resistance.
What does a markedly elevated pulsatility index (PI) in a renal artery most likely indicate?
Answer: Elevated renal vascular resistance
An elevated PI in the renal artery reflects increased downstream vascular resistance, often seen in chronic renal disease.
Which parameter best distinguishes a hemodynamically significant carotid stenosis from a non-significant one on Doppler?
Answer: Peak systolic velocity in the ICA
Peak systolic velocity in the internal carotid artery is the primary Doppler criterion for grading stenosis severity.
Turbulent flow in a blood vessel is most likely to occur when the Reynolds number exceeds:
Answer: 2000
Reynolds numbers above approximately 2000 are associated with the transition from laminar to turbulent flow.