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A time-invariant visco-elastic windkessel model relating blood flow and blood volume

机译:一种时间不变的粘弹性windkessel模型,涉及血流量和血容量

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摘要

The difference between the rate of change of cerebral blood volume (CBV) and cerebral blood flow (CBF) following stimulation is thought to be due to circumferential stress relaxation in veins (Mandeville, J.B., Marota, J.J.A., Ayata, C., Zaharchuk, G., Moskowitz, M.A., Rosen, B.R., Weisskoff, R.M., 1999. Evidence of a cerebrovascular postarteriole windkessel with delayed compliance. J. Cereb. Blood Flow Metab. 19, 679-689). In this paper we explore the visco-elastic properties of blood vessels, and present a dynamic model relating changes in CBF to changes in CBV. We refer to this model as the visco-elastic windkessel (VW) model. A novel feature of this model is that the parameter characterising the pressure-volume relationship of blood vessels is treated as a state variable dependent oil the rate of change of CBV, producing hysteresis in the pressure-volume space during vessel dilation and contraction. The VW model is nonlinear time-invariant, and is able to predict the observed differences between the time series of CBV and that of CBF measurements following changes in neural activity. Like the windkessel model derived by Mandeville, J.B., Marota, J.J.A., Ayata, C., Zaharchuk, G., Moskowitz, M.A., Rosen, B.R., Weisskoff, R.M., 1999. Evidence of a cerebrovascular postarteriole windkessel with delayed compliance. J. Cereb. Blood Flow Metab. 19, 679-689, the VW model is primarily a model of haemodynamic changes in the venous compartment. The VW model is demonstrated to have the following characteristics typical of visco-elastic materials: (1) hysteresis, (2) creep, and (3) stress relaxation, hence it provides a unified model of the visco-elastic properties of the vasculature. The model will not only contribute to the interpretation of the Blood Oxygen Level Dependent (BOLD) signals from functional Magnetic Resonance Imaging (fMRI) experiments, but also find applications in the study and modelling of the brain vasculature and the haemodynamics of circulatory and cardiovascular systems. (C) 2009 Elsevier Inc. All rights reserved.
机译:刺激后脑血流量(CBV)和脑血流量(CBF)的变化率之差被认为是由于静脉的周向应力松弛引起的(Mandeville,JB,Marota,JJA,Ayata,C.,Zaharchuk, G.,Moskowitz,MA,Rosen,BR,Weisskoff,RM,1999。脑血管后小动脉风疹的依从性延迟的证据(J.Cereb.Blood Flow Metab.19,679-689)。在本文中,我们探讨了血管的粘弹性,并提出了一种将CBF变化与CBV变化联系起来的动力学模型。我们将此模型称为粘弹性风向标(VW)模型。该模型的一个新颖特征是,表征血管压力-体积关系的参数被视为状态变量依赖的油,CBV的变化率在血管扩张和收缩期间在压力-体积空间中产生滞后。 VW模型是非线性时不变的,并且能够预测神经活动发生变化后CBV和CBF测量的时间序列之间观察到的差异。类似于Mandeville,J.B.,Marota,J.A.,Ayata,C.,Zaharchuk,G.,Moskowitz,M.A.,Rosen,B.R.,Weisskoff,R.M.,1999年得出的脑血管模型。 J.塞雷布血流代谢。在19、679-689中,VW模型主要是静脉腔内血液动力学变化的模型。 VW模型被证明具有粘弹性材料的以下典型特征:(1)滞后,(2)蠕变和(3)应力松弛,因此它提供了脉管系统粘弹性特性的统一模型。该模型不仅有助于功能性磁共振成像(fMRI)实验对血氧水平依赖性(BOLD)信号的解释,而且在脑血管系统以及循环系统和心血管系统血流动力学的研究和建模中具有应用价值。 (C)2009 Elsevier Inc.保留所有权利。

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    Zheng Y.; Mayhew J.;

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