Literature DB >> 19068419

Impedance boundary conditions for the pulmonary vasculature including the effects of geometry, compliance, and respiration.

Rachel B Clipp1, Brooke N Steele.   

Abstract

With few exceptions, previous models of the pulmonary vascular system have neglected the effects of respiration. This practice is acceptable for normal cardiac function; however, for compromised function, respiration may be critical. Therefore, we have initiated the steps to develop boundary conditions that incorporate the effects of respiration through the use of an impedance boundary condition derived from a bifurcating structured tree geometry. The benefit to using the geometry based method lies in that strategic changes can be made to the geometry to mimic physiologic changes in vascular impedance. In this paper, a scaling factor was used to modify the radius of resistance vessels of the structured tree to capture the maximum change in impedance caused by respiration. A large vessel geometry was established from a lung cast, the structured trees were applied at the outlets, and an experimental flow waveform was applied at the inlet. Finite-element analysis was used to compute the resulting inlet pressure waveform. An optimization minimizing the difference between measured and computed pressure waveforms was performed for two respiratory states, maximal expiration and inspiration, to determine best-fit models for the pulmonary vasculature, resulting in pressure waveforms with an rms error of 0.4224 and 0.7270 mmHg, respectively.

Mesh:

Year:  2008        PMID: 19068419     DOI: 10.1109/TBME.2008.2010133

Source DB:  PubMed          Journal:  IEEE Trans Biomed Eng        ISSN: 0018-9294            Impact factor:   4.538


  5 in total

1.  Computational Simulation of the Pulmonary Arteries and its Role in the Study of Pediatric Pulmonary Hypertension.

Authors:  Kendall S Hunter; Jeffrey A Feinstein; D Dunbar Ivy; Robin Shandas
Journal:  Prog Pediatr Cardiol       Date:  2010-12-01

2.  Numerical simulation of blood flow and pressure drop in the pulmonary arterial and venous circulation.

Authors:  M Umar Qureshi; Gareth D A Vaughan; Christopher Sainsbury; Martin Johnson; Charles S Peskin; Mette S Olufsen; N A Hill
Journal:  Biomech Model Mechanobiol       Date:  2014-03-09

3.  Image-based scaling laws for somatic growth and pulmonary artery morphometry from infancy to adulthood.

Authors:  Melody Dong; Weiguang Yang; John S Tamaresis; Frandics P Chan; Evan J Zucker; Sahana Kumar; Marlene Rabinovitch; Alison L Marsden; Jeffrey A Feinstein
Journal:  Am J Physiol Heart Circ Physiol       Date:  2020-07-03       Impact factor: 4.733

Review 4.  Considerations for numerical modeling of the pulmonary circulation--a review with a focus on pulmonary hypertension.

Authors:  V O Kheyfets; W O'Dell; T Smith; J J Reilly; E A Finol
Journal:  J Biomech Eng       Date:  2013-06       Impact factor: 2.097

5.  Outflow boundary conditions for blood flow in arterial trees.

Authors:  Tao Du; Dan Hu; David Cai
Journal:  PLoS One       Date:  2015-05-22       Impact factor: 3.240

  5 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.