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In vivo guided numerical modeling of pulmonary venous waveforms: a paradigm for applied physiology research

机译:肺静脉波形的体内指导数值建模:应用生理学研究的范例

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The determination of pulmonary venous velocities from pulsed Doppler echocardiography is valuable for the assessment of left ventricular diastolic dysfunction, yet little is known regarding the relationship between actual pressure gradients and measured velocities. Combining results of in vivo experiments and numerical modeling, a linear relationship was observed between actual pulmonary venous-left atrial pressure gradients and measured velocities (convective forces) measured using pulsed Doppler echocardiography. Strong model correlations were observed for the systolic (y=0.20x-0.13, r=0.97) and diastolic (y=0.25x-0.34, r=0.99) phases of the pulmonary venous waveform. In vivo results were similar for the systolic (y=0.234x+0.01x, r=0.82) and diastolic (y=0.22x+0.09, r=0.81) phases. Modeling, combined with in vivo experiments can complement each other in understanding complex physiology.
机译:脉冲多普勒超声心动图的肺部静脉速度的测定对于左心室舒张功能障碍的评估有价值,但关于实际压力梯度和测量速度之间的关系很少。在使用脉冲多普勒超声心动图测量的实际肺部左心房压力梯度和测量速度(对流力)之间观察到在体内实验和数值模拟中,观察到线性关系的结合。对于肺静脉波形的肺静脉波形的舒张(Y = 0.20x-0.13,r = 0.97)和舒张(Y = 0.25×0.34,r = 0.99)相,观察到强的模型相关性。体内结果类似于收缩系统(Y = 0.234倍+ 0.01x,r = 0.82)和舒张(Y = 0.22×+ 0.09,r = 0.81)相。建模,与体内实验相结合可以相互补充,以了解复杂的生理学。

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