基于logistic的食管多普勒血流动力学测量模型的开发与应用。

Glen M Atlas
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引用次数: 12

摘要

食管多普勒监测器(EDM)是一种临床上有用的微创评估心输出量、前负荷、后负荷和收缩力的设备。建立了一个基于logistic函数的实证模型。该模型的使用说明了EDM如何实时估计主动脉和非主动脉对惯性、阻力和弹性的净影响。这是基于假定的机械阻抗,概念上类似于弹簧、质量和阻尼器的一系列安排。此外,当与有创桡动脉导管一起使用时,EDM还可以估计主动脉脉冲波速度,以及主动脉特征阻抗和特征体积。左心室中风功和中风功率的近似也可以作出。此外,惯量、阻力和弹性对收缩期平均血压的影响可以量化。这些额外的参数可以为临床医生和研究人员提供见解,并可能有助于进一步检查和利用EDM的临床血流动力学。这些额外的测量也强调了将EDM与现有和未来的监测设备集成的必要性。
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Development and application of a logistic-based systolic model for hemodynamic measurements using the esophageal Doppler monitor.

The esophageal Doppler monitor (EDM) is a clinically useful device for minimally invasive assessment of cardiac output, preload, afterload, and contractility. An empirical model, based upon the logistic function, has been developed. Use of this model illustrates how the EDM could estimate the net effect of aortic and non-aortic contributions to inertia, resistance, and elastance within real time. This is based on an assumed mechanical impedance conceptually resembling that of a series arrangement of a spring, mass, and dashpot. In addition, when used with an invasive radial arterial catheter, the EDM may also estimate aortic pulse wave velocity, as well as aortic characteristic impedance, and characteristic volume. Approximations of left ventricular stroke work and stroke power can also be made. Furthermore, the effects of inertia, resistance, and elastance, on mean blood pressure during systole, can be quantified. These additional parameters could offer insight for clinicians, as well as researchers, and may be beneficial in further examining and utilizing clinical hemodynamics with the EDM. These additional measurements also underscore the need to integrate the EDM with existing and future monitoring equipment.

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