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首页> 外文期刊>Annals of Biomedical Engineering >Modeling Water Vapor and Heat Transfer in the Normal and the Intubated Airways
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Modeling Water Vapor and Heat Transfer in the Normal and the Intubated Airways

机译:模拟正常和插管中的水蒸气和传热

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摘要

Intubation of the artificially ventilated patient with an endotracheal tube bypasses the usual conditioning regions of the nose and mouth. In this situation any deficit in heat or moisture in the air is compensated for by evaporation and thermal transfer from the pulmonary airway walls. To study the dynamics of heat and water transport in the intubated airway, a coupled system of nonlinear equations is solved in airway models with symmetric geometry and anatomically based geometry. Radial distribution of heat, water vapor, and velocity in the airway are described by power-law equations. Solution of the time-dependent system of equations yields dynamic airstream and mucosal temperatures and air humidity. Comparison of model results with two independent experimental studies in the normal and intubated airway shows a close correlation over a wide range of minute ventilation. Using the anatomically based model a range of spatially distributed temperature paths is demonstrated, which highlights the model's ability to predict thermal behavior in airway regions currently inaccessible to measurement. Accurate representation of conducting airway geometry is shown to be necessary for simulating mouth-breathing at rates between 15 and 100 l⋅min−1, but symmetric geometry is adequate for the low minute ventilation and warm inspired air conditions that are generally supplied to the intubated patient.
机译:用气管插管对人工通气患者进行插管会绕过鼻子和嘴巴的通常调节区域。在这种情况下,空气中任何热量或水分的不足都可以通过肺气道壁的蒸发和热传递来补偿。为了研究插管气道中的热和水传输动力学,在具有对称几何形状和基于解剖学的几何形状的气道模型中求解了非线性方程的耦合系统。幂律方程描述了气道中热量,水蒸气和速度的径向分布。时变方程组的求解产生动态气流,粘膜温度和空气湿度。模型结果与正常和插管呼吸道的两项独立实验研究的比较表明,在很大的分钟通气量范围内,二者具有密切的相关性。使用基于解剖模型的模型,展示了一系列空间分布的温度路径,突出了该模型预测当前无法测量的气道区域中热行为的能力。已经证明,以15至100 l·min−1 的速率模拟口呼吸时,必须准确地表示出呼吸道的几何形状,但对称的几何形状足以满足通常需要的低分钟通气和温暖的进气条件提供给插管患者。

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