Literature DB >> 971472

Reflection in the systemic arterial system: effects of aortic and carotid occlusion.

G C Van Den Bos, N Westerhof, G Elzinga, P Sipkema.   

Abstract

Experiments were performed in seven closed-chest anaesthetized male dogs to determine the role of pulse wave reflection in the pattern of flow and pressure in the ascending aorta. Ten days after implantation of an electromagnetic flow transducer around the ascending aorta a balloon catheter was placed in the descending aorta via the femoral arteries. At the same time a tip manometer was introduced into the ascending aorta. Aortic occlusions at three different sites caused pressure pulses with secondary systolic rises and flow pulses with biphasic deceleration. Secondary rises occurred 45 +/- 9.0 ms after the initial pressure rise for high aortic occlusion; this time was 75 +/- 8.5 ms for occlusion at the level of the diaphragm and 114 +/- 16.5 ms for occlusion near the level of the renal arteries. These times approximate the times in which the pulse travels from the tip manometer to the inflated balloons and back. Forward and reflected pressure and flow waves were calculated from reflection coefficients. Aortic occlusion caused larger reflected waves and the recorded wave forms were caused by the summation of forward and backward waves, the latter contributing the secondary pressure rise and the increased flow deceleration. Occlusion of both carotid arteries showed no specific reflection site but reflected waves were larger. This increased reflection can probably be explained as the result of greater total reflection from distributed sites under increased peripheral resistance.

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Year:  1976        PMID: 971472     DOI: 10.1093/cvr/10.5.565

Source DB:  PubMed          Journal:  Cardiovasc Res        ISSN: 0008-6363            Impact factor:   10.787


  14 in total

1.  Analysis of wave reflections in the arterial system using wave intensity: a novel method for predicting the timing and amplitude of reflected waves.

Authors:  T W Koh; J R Pepper; A C DeSouza; K H Parker
Journal:  Heart Vessels       Date:  1998       Impact factor: 2.037

2.  Simultaneous determination of wave speed and arrival time of reflected waves using the pressure-velocity loop.

Authors:  A W Khir; M J P Swalen; J Feng; K H Parker
Journal:  Med Biol Eng Comput       Date:  2007-08-21       Impact factor: 2.602

3.  What stops the flow of blood from the heart?

Authors:  K H Parker; C J Jones; J R Dawson; D G Gibson
Journal:  Heart Vessels       Date:  1988       Impact factor: 2.037

4.  Attenuation of reflected waves in man during retrograde propagation from femoral artery to proximal aorta.

Authors:  A John Baksi; Justin E Davies; Nearchos Hadjiloizou; Resham Baruah; Beth Unsworth; Rodney A Foale; Olga Korolkova; Jennifer H Siggers; Darrel P Francis; Jamil Mayet; Kim H Parker; Alun D Hughes
Journal:  Int J Cardiol       Date:  2015-09-28       Impact factor: 4.164

5.  Fluid mechanics of Windkessel effect.

Authors:  C C Mei; J Zhang; H X Jing
Journal:  Med Biol Eng Comput       Date:  2018-01-08       Impact factor: 2.602

6.  The calculation of forward and backward waves in the arterial system.

Authors:  S Laxminarayan
Journal:  Med Biol Eng Comput       Date:  1979-01       Impact factor: 2.602

Review 7.  Age-related changes in venticular-arterial coupling: pathophysiologic implications.

Authors:  David A Kass
Journal:  Heart Fail Rev       Date:  2002-01       Impact factor: 4.214

8.  Aortic input impedance during nitroprusside infusion. A reconsideration of afterload reduction and beneficial action.

Authors:  C J Pepine; W W Nichols; R C Curry; C R Conti
Journal:  J Clin Invest       Date:  1979-08       Impact factor: 14.808

9.  Arterial hemodynamics in human hypertension.

Authors:  C T Ting; K P Brin; S J Lin; S P Wang; M S Chang; B N Chiang; F C Yin
Journal:  J Clin Invest       Date:  1986-12       Impact factor: 14.808

Review 10.  An introduction to wave intensity analysis.

Authors:  Kim H Parker
Journal:  Med Biol Eng Comput       Date:  2009-02-11       Impact factor: 2.602

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