粘液清除的相流机制。

M A Sackner, C S Kim
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引用次数: 0

摘要

气道内过多的支气管分泌物可通过正常潮汐呼吸时的气液两相气流输送。在这种机制下,分泌物的运输速度与正常受试者的粘液清除率一样有效。影响两相气液流动所需的支气管分泌物厚度约为气道直径的10%,这对于支气管分泌过多的患者来说并不罕见。在正常呼吸中遇到的周期性气流比在一个方向或另一个方向连续流动的分泌物更有效。然而,为了推动分泌物流向喉部,呼气气流速度应高于吸气气流速度。这种模式可以通过施加有控制的机械通气模式来实现,也可能是胸部物理治疗师教授的清除气道分泌物的“充气操作”的基础。分泌物弹性的增加和黏度的降低促进了两相气液流动的更高运输速率。在第8 ~ 9代气道可以满足潮汐呼吸时气液两相流动的条件。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Phasic flow mechanisms of mucus clearance.

Excessive bronchial secretions within the airways can be transported by two-phase gas-liquid flow with airflow rates encountered during normal tidal breathing. The transport speed of secretions with this mechanism is as effective as the mucus clearance rate in normal subjects. The thickness of bronchial secretions required to effect two-phase gas-liquid flow is about 10% of the airways diameter which is not an unusual situation for patients who have bronchial hypersecretion. Periodic airflow as encountered in normal breathing is more effective than continuous flow in moving secretions in one direction or another. However, to propel the secretions toward the larynx, expiratory airflow velocity should be higher than inspiratory airflow velocity. This pattern can be achieved by imposing a controlled pattern of mechanical ventilation and is also probably the basis for the "huffing manoeuvre" taught by chest physiotherapists to clear airway secretions. Increased elasticity and decreased viscosity of secretions promote higher transport rates by two-phase gas-liquid flow. Conditions for two-phase gas-liquid flow during tidal breathing can be met at the 8th to 9th generation of the airways.

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