Signatures of obstructions and expansions in the arterial frequency response

Joaquín Flores Gerónimo1, Jordi Alastruey2, Alireza Keramat1

  • 1Department of Civil and Environmental Engineering, The Hong Kong Polytechnic University, Hung Hom, Hong Kong SAR.

Insights

This study reveals distinct frequency response signatures for arterial obstructions and expansions, enabling non-invasive detection of vascular abnormalities. These signatures can help monitor the development of conditions like stenosis and aneurysms.

Area of Science:

  • Cardiovascular physiology
  • Biomedical engineering
  • Medical waveform analysis

Background:

  • Blood pressure and flow waveforms offer crucial insights into cardiovascular health.
  • Waveform analysis can be done in time or frequency domains, with physicians preferring the time domain.
  • The frequency response signatures of vascular anomalies like aneurysms and stenoses remain underexplored.

Purpose of the Study:

  • To characterize the frequency response signatures of arterial obstructions (stenoses) and expansions (aneurysms).
  • To differentiate these signatures from those of healthy arteries.
  • To explore the potential for non-invasive detection and monitoring of vascular abnormalities.

Main Methods:

  • Incorporated arterial wall viscosity into a 1D elastic model.
  • Solved governing equations in the frequency domain.
  • Applied volumetric flow excitation to simulated arteries (aorta) with varying geometries, including tapered sections with local obstructions or expansions.

Main Results:

  • Distinct frequency response signatures were identified for obstructions and expansions, differing from healthy artery signatures.
  • Obstructions increased fundamental frequency magnitude, acting as a closed boundary.
  • Expansions decreased fundamental frequency, acting as an open boundary. Signatures correlated with anomaly location.

Conclusions:

  • Arterial obstructions and expansions generate unique frequency response signatures.
  • These signatures can be used to detect and monitor the progression of vascular abnormalities.
  • Continuous monitoring via wearable technology may facilitate early detection and management.
Abstract

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