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Airflow Simulations in Infant, Child, and Adult Pulmonary Conducting Airways

机译:婴儿,儿童和成人肺部导线的气流模拟

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摘要

The airway structure continuously evolves from birth to adulthood, influencing airflow dynamics and respiratory mechanics. We currently know very little about how airflow patterns change throughout early life and its impact on airway resistance, namely because of experimental limitations. To uncover differences in respiratory dynamics between age groups, we performed subject-specific airflow simulations in an infant, child, and adult conducting airways. Airflow throughout the respiration cycle was calculated by coupling image-based models of the conducting airways to the global respiratory mechanics, where flow was driven by a pressure differential. Trachea diameter was 19, 9, and 4.5 mm for the adult (36 years, female), child (6 years, male), and infant (0.25 years, female), respectively. Mean Reynolds number within the trachea was nearly the same for each subject (1100) and Womersley number was above unity for all three subjects and largest for the adult, highlighting the significance of transient effects. In general, air speeds and airway resistances within the conducting airways were inversely correlated with age; the 3D pressure drop was highest in the infant model. These simulations provide new insight into age-dependent flow dynamics throughout the respiration cycle within subject-specific airways.
机译:气道结构从出生时间不断发展到成年,影响气流动力学和呼吸力学。我们目前了解气流模式如何在整个早期生命中改变以及对气道阻力的影响,即由于实验限制。为了揭示年龄组之间的呼吸动力学差异,我们在婴儿,儿童和成人进行气道中进行了特定主题的气流模拟。通过耦合基于图像的导电通气的模型来计算整个呼吸周期的气流,以通过压差的流动驱动流动的呼吸力学来计算。成人(36岁,女性),儿童(6年,男性)和婴儿(0.25年,女性),气管直径为19,9和4.5mm。对于每个主题(1100),气管内的平均雷诺数几乎是相同的,并且对于成人的所有三个科目和最大的女性,Womersley数量高于统一,突出了瞬态效应的重要性。通常,导电气道内的空气速度和气道电阻与年龄相反;婴儿模型中的3D压降最高。这些模拟在特定于呼吸循环内,在特定于呼吸周期内的年龄相关的流动动态提供了新的洞察力。

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