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高频强迫气流振荡期间犬肺内的纵向混合

Longitudinal mixing in dog lungs during high-frequency forced flow oscillation.

作者信息

Reisfeld B, Ultman J S

机构信息

Department of Chemical Engineering, Pennsylvania State University, University Park 16802.

出版信息

Respir Physiol. 1988 Mar;71(3):269-85. doi: 10.1016/0034-5687(88)90021-7.

Abstract

Longitudinal mixing in the conducting airways of eight intubated anesthetized beagles (10.8 +/- 0.9 kg) was studied at functional residual capacity in the presence of forced sinusoidal flow oscillations and in the absence of fresh air bias flow. The ranges of oscillation conditions were: frequencies, f, from 3 to 18 Hz and minute volumes, Vosc, from 50 to 150 ml/sec, corresponding to tidal volumes, Vosc/f, from 0.3 to 4.5 ml/kg body mass. Oscillations were imposed during a breath holding interval incorporated into a modified single-breath nitrogen (N2) washout maneuver. The expired N2 fraction curves were analyzed with a Fickian diffusion model by adjusting the value of a global mixing parameter, (DA2), to achieve an optimal fit of the model to the data. The mixing parameter was an increasing function of minute volume and a decreasing function of frequency, which is well represented by the equation: (DA2) = 2.72 Vosc 1.74 f-1.57 By comparison to available theory and previous measurements in physical systems, this formula implies that Taylor-type dispersion is the dominant mixing mechanism in the conducting airways. Also, the diffusion model predicted, and the data verified, the existence of a mouth-ward 'diffusion flow' during breath holding. This effect, caused by the non-uniform nature of the summed airway cross-section, is directly correlated with the value of (DA2).

摘要

在功能残气量状态下,对8只气管插管的麻醉比格犬(体重10.8±0.9千克)的传导气道内的纵向混合进行了研究,研究时存在强迫正弦流振荡且无新鲜空气偏流。振荡条件范围为:频率f从3至18赫兹,分钟通气量Vosc从50至150毫升/秒,对应潮气量Vosc/f从0.3至4.5毫升/千克体重。振荡施加于纳入改良单次呼吸氮气(N2)冲洗操作的屏气间隔期间。通过调整全局混合参数(DA2)的值,用菲克扩散模型分析呼出N2分数曲线,以使模型与数据达到最佳拟合。混合参数是分钟通气量的增函数和频率的减函数,可用以下方程很好地表示:(DA2)=2.72Vosc1.74f -1.57与现有理论及先前在物理系统中的测量结果相比,该公式意味着泰勒型弥散是传导气道中的主要混合机制。此外,扩散模型预测并经数据验证,屏气期间存在向口腔方向的“扩散流”。这种由气道总横截面积的不均匀性质引起的效应与(DA2)的值直接相关。

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