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PMID: 37449099 Published · epublish English Journal Article

A CFD-FFT approach to hemoacoustics that enables degree of stenosis prediction from stethoscopic signals.

Heliyon ·Vol. 9 ·No. 7 ·2023-07-00 ·Pages e17643

Ali AM, Hafez AH, Elkhodary KI, El-Morsi M

Abstract

In this paper, we identify a new (acoustic) frequency-stenosis relation whose frequencies lie within the recommended auscultation threshold of stethoscopy (< 120 Hz). We show that this relation can be used to extend the application of phonoangiography (quantifying the degree of stenosis from bruits) to widely accessible stethoscopes. The relation is successfully identified from an analysis restricted to the acoustic signature of the von Karman vortex street, which we automatically single out by means of a metric we propose that is based on an area-weighted average of the Q-criterion for the post-stenotic region. Specifically, we perform CFD simulations on internal flow geometries that represent stenotic blood vessels of different severities. We then extract their emitted acoustic signals using the Ffowcs Williams-Hawkings equation, which we subtract from a clean signal (stenosis free) at the same heart rate. Next, we transform this differential signal to the frequency domain and carefully classify its acoustic signatures per six (stenosis-)invariant flow phases of a cardiac cycle that are newly identified in this paper. We then automatically restrict our acoustic analysis to the sounds emitted by the von Karman vortex street (phase 4) by means of our Q-criterion-based metric. Our analysis of its acoustic signature reveals a strong linear relationship between the degree of stenosis and its dominant frequency, which differs considerably from the break frequency and the heart rate (known dominant frequencies in the literature). Applying our new relation to available stethoscopic data, we find that its predictions are consistent with clinical assessment. Our finding of this linear correlation is also unlike prevalent scaling laws in the literature, which feature a small exponent (i.e., low stenosis percentage sensitivity over much of the clinical range). They hence can only distinguish mild, moderate, and severe cases. Conversely, our linear law can identify variations in the degree of stenosis sensitively and accurately for the full clinical range, thus significantly improving the utility of the relevant scaling laws... Future research will investigate incorporating the vibroacoustic role of adjacent organs to expand the clinical applicability of our findings. Extending our approach to more complex 3D stenotic morphologies and including the vibroacoustic role of surrounding organs will be explored in future research to advance the clinical reach of our findings.

Keywords
Acoustics CFD Hemodynamics LES Phonocardiography Stenosis Strouhal
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Ali Ahmed M
Department of Mechanical Engineering, The American University in Cairo, 11835 New Cairo, Egypt.
Hafez Ahmed H
Aerospace Engineering Department, Cairo University, 12511 Giza, Egypt. | Department of Mechanical Engineering, The American University in Cairo, 11835 New Cairo, Egypt.
Elkhodary Khalil I
Department of Mechanical Engineering, The American University in Cairo, 11835 New Cairo, Egypt.
El-Morsi Mohamed
Department of Mechanical Engineering, The American University in Cairo, 11835 New Cairo, Egypt.
Conflict of Interest

The authors declare that they have no known competing financial interests or personal relationships that could have appeared to influence the work reported in this paper.

References (46)
46 references, click to expand
  1. Efficient parallel simulation of hemodynamics in patient-specific abdominal aorta with aneurysm.
    Comput Biol Med. 2021 Sep;136:104652 PMID: 34329862
  2. Age-related changes in aortic arch geometry: relationship with proximal aortic function and left ventricular mass and remodeling.
    J Am Coll Cardiol. 2011 Sep 13;58(12):1262-70 PMID: 21903061
  3. Electrocardiogram screening for aortic valve stenosis using artificial intelligence.
    Eur Heart J. 2021 Aug 7;42(30):2885-2896 PMID: 33748852
  4. A coupled flow-acoustic computational study of bruits from a modeled stenosed artery.
    Med Biol Eng Comput. 2012 Oct;50(10):1025-35 PMID: 22610779
  5. CT and MRI assessment of the aortic root and ascending aorta.
    AJR Am J Roentgenol. 2013 Jun;200(6):W581-92 PMID: 23701088
  6. A VERSATILE SHARP INTERFACE IMMERSED BOUNDARY METHOD FOR INCOMPRESSIBLE FLOWS WITH COMPLEX BOUNDARIES.
    J Comput Phys. 2008;227(10):4825-4852 PMID: 20216919
  7. Aortic atherosclerosis and embolic events.
    Curr Cardiol Rep. 2012 Jun;14(3):342-9 PMID: 22437371
  8. Numerical modeling of pulsatile turbulent flow in stenotic vessels.
    J Biomech Eng. 2003 Aug;125(4):445-60 PMID: 12968569
  9. Analysis of the effects of different pulsatile inlet profiles on the hemodynamical properties of blood flow in patient specific carotid artery with stenosis.
    Comput Biol Med. 2013 Jul;43(6):717-28 PMID: 23668347
  10. Computational analyses of aortic blood flow under varying speed CF-LVAD support.
    Comput Biol Med. 2020 Dec;127:104058 PMID: 33091606
  11. Multiphysics computational models for cardiac flow and virtual cardiography.
    Int J Numer Method Biomed Eng. 2013 Aug;29(8):850-69 PMID: 23666911
  12. A biomedical system based on artificial neural network and principal component analysis for diagnosis of the heart valve diseases.
    J Med Syst. 2012 Feb;36(1):61-72 PMID: 20703748
  13. A novel CFD-based computed index of microcirculatory resistance (IMR) derived from coronary angiography to assess coronary microcirculation.
    Comput Methods Programs Biomed. 2022 Jun;221:106897 PMID: 35636354
  14. Numerical analysis of stenoses severity and aortic wall mechanics in patients with supravalvular aortic stenosis.
    Comput Biol Med. 2021 Aug;135:104573 PMID: 34174758
  15. Airway resistance variation correlates with prognosis of critically ill COVID-19 patients: A computational fluid dynamics study.
    Comput Methods Programs Biomed. 2021 Sep;208:106257 PMID: 34245951
  16. The impact of computer-assisted auscultation on physician referrals of asymptomatic patients with heart murmurs.
    Clin Cardiol. 2008 Feb;31(2):79-83 PMID: 18257026
  17. Acoustic detection of coronary artery disease.
    Annu Rev Biomed Eng. 2007;9:449-69 PMID: 17425468
  18. A fluid--structure interaction finite element analysis of pulsatile blood flow through a compliant stenotic artery.
    J Biomech Eng. 1999 Aug;121(4):361-9 PMID: 10464689
  19. Numerical analysis of wall shear stress in ascending aorta before tearing in type A aortic dissection.
    Comput Biol Med. 2017 Oct 1;89:236-247 PMID: 28843154
  20. Transesophageal echocardiography of the aorta.
    JAMA. 1994 Aug 17;272(7):546-51 PMID: 8046810
  21. Numerical analysis of pulsatile blood flow and vessel wall mechanics in different degrees of stenoses.
    J Biomech. 2007;40(16):3715-24 PMID: 17723230
  22. Computational Modeling and Analysis of Murmurs Generated by Modeled Aortic Stenoses.
    J Biomech Eng. 2019 Apr 1;141(4): PMID: 30729979
  23. A general theory of the causes of murmurs in the cardiovascular system.
    Am J Med. 1959 Sep;27:360-74 PMID: 13805382
  24. Atherosclerosis and aortic aneurysm - is inflammation a common denominator?
    FEBS J. 2016 May;283(9):1636-52 PMID: 26700480
  25. CT and MRI in diseases of the aorta.
    AJR Am J Roentgenol. 2009 Oct;193(4):928-40 PMID: 19770313
  26. Patient-specific finite element analysis of heart failure and the impact of surgical intervention in pulmonary hypertension secondary to mitral valve disease.
    Med Biol Eng Comput. 2022 Jun;60(6):1723-1744 PMID: 35442004
  27. Grading carotid stenosis using ultrasonic methods.
    Stroke. 2012 Mar;43(3):916-21 PMID: 22343647
  28. The FDA nozzle benchmark: "In theory there is no difference between theory and practice, but in practice there is".
    Int J Numer Method Biomed Eng. 2019 Jan;35(1):e3150 PMID: 30211982
  29. On delayed transition to turbulence in an eccentric stenosis model for clean vs. noisy high-fidelity CFD.
    J Biomech. 2021 Aug 26;125:110588 PMID: 34218038
  30. First successful trans-catheter aortic valve implantation through ascending aorta using Edwards SAPIEN THV system.
    Eur J Cardiothorac Surg. 2010 Dec;38(6):811-3 PMID: 20692179
  31. Measurement of human blood viscosity a using Falling Needle Rheometer and the correlation to the Modified Herschel-Bulkley model equation.
    Heliyon. 2020 Sep 25;6(9):e04792 PMID: 33015382
  32. CFD simulations of respiratory airflow in human upper airways response to walking and running for oral breathing condition.
    Heliyon. 2022 Jul 21;8(8):e10039 PMID: 35982840
  33. Mild and moderate aortic stenosis. Natural history and risk stratification by echocardiography.
    Eur Heart J. 2004 Feb;25(3):199-205 PMID: 14972419
  34. Audible Coronary Artery Stenosis.
    Am J Med. 2016 May;129(5):515-521.e3 PMID: 26841299
  35. Supra-annular mitral valve replacement in children.
    Ann Thorac Surg. 2011 Dec;92(6):2221-7; discussion 2227-9 PMID: 21962266
  36. Design of an Auscultation System for Phonoangiography and Monitoring of Carotid Artery Diseases.
    Annu Int Conf IEEE Eng Med Biol Soc. 2019 Jul;2019:1776-1779 PMID: 31946241
  37. Computational fluid dynamics modelling in cardiovascular medicine.
    Heart. 2016 Jan;102(1):18-28 PMID: 26512019
  38. Validation of numerical simulation methods in aortic arch using 4D Flow MRI.
    Heart Vessels. 2017 Aug;32(8):1032-1044 PMID: 28444501
  39. Research on the effect of visceral artery Aneurysm's cardiac morphological variation on hemodynamic situation based on time-resolved CT-scan and computational fluid dynamics.
    Comput Methods Programs Biomed. 2022 Jun;221:106928 PMID: 35701249
  40. In-vivo flow simulation in coronary arteries based on computed tomography datasets: feasibility and initial results.
    Eur Radiol. 2007 May;17(5):1291-300 PMID: 17061068
  41. Simulating the effect of sodium channel blockage on cardiac electromechanics.
    Proc Inst Mech Eng H. 2020 Jan;234(1):16-27 PMID: 31625448
  42. Acoustic diagnosis of aortic stenosis.
    J Heart Valve Dis. 2005 Mar;14(2):186-94 PMID: 15792178
  43. Atherosclerosis of the aorta: risk factor, risk marker, or innocent bystander? A prospective population-based transesophageal echocardiography study.
    J Am Coll Cardiol. 2004 Sep 1;44(5):1018-24 PMID: 15337213
  44. Frequency Responses of Conventional and Amplified Stethoscopes for Measuring Heart Sounds.
    Saudi J Med Med Sci. 2020 May-Aug;8(2):112-117 PMID: 32587492
  45. Evaluation of carotid stenosis by phonoangiography.
    N Engl J Med. 1975 Nov 27;293(22):1124-8 PMID: 127121
  46. Natural history of supravalvular aortic stenosis and pulmonary artery stenosis.
    J Am Coll Cardiol. 1990 Jun;15(7):1625-30 PMID: 2345244
Article Info
Journal
Heliyon
Abbr.
Heliyon
ISSN
2405-8440
Published
2023-07-00
Epub
2023-00-29
Pages
e17643
Language
English
Region
England
NLM ID
101672560
PMCID
PMC10336451
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