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首页> 外文期刊>IEEE Transactions on Biomedical Engineering >A mathematical model of neonatal tidal liquid ventilation integrating airway mechanics and gas transfer phenomena
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A mathematical model of neonatal tidal liquid ventilation integrating airway mechanics and gas transfer phenomena

机译:新生儿潮液通风的数学模型整合气道力学和气体转移现象

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Tidal liquid ventilation (TLV) was proposed as an alternative to conventional mechanical ventilation in the case of surfactant-deficiency diseases, particularly for very premature subjects. Although many experimental studies have been conducted up to now, the effects of variations in ventilatory settings, such as frequency and tidal volume, on blood arterialization and lung mechanics have not been studied quantitatively. We developed a mathematical model simulating the breathing processes occurring during neonatal TLV treatments. The model integrates the description of O2 and CO2 transport, from the trachea to pulmonary capillary blood and vice versa, with the description of fluid mechanics within the airways and the saccules (the alveoli precursors). Gas transfer is described with a mono-dimensional model, accounting for convective and diffusive transport through the airways, coupled with a 3-compartment model, simulating gas diffusion between saccules, plasma and red blood cells, and chemical reactions dependent on the concentrations of gases and related chemical species. Mechanic loads on airways are calculated by means of a lumped-parameters approach. The model calculates mechanical stress and gas exchange as a function of the ventilatory settings. The integration of these results sheds light on possible ventilation strategies to allow for optimal management of blood arterialization and lung mechanical load.
机译:提出潮气液体通气(TLV)作为在表面活性剂缺乏疾病的情况下常规机械通气的替代方案,特别是对于非常过早的受试者。尽管现在已经进行了许多实验研究,但尚未定量研究血液动力学和肺部机械的通气环境的变化的影响,但尚未研究血液动力学和肺部。我们开发了一种模拟新生儿TLV治疗期间发生的呼吸过程的数学模型。该模型将O2和CO2传输的描述与气管到肺毛细血管血液相结合,反之亦然,具有气道内的流体力学和囊状(肺泡前体)。用一维模型描述气体传递,占通过气道的对流和扩散运输,与3室模型相结合,模拟囊囊,血浆和红细胞之间的气体扩散,以及依赖于气体浓度的化学反应和相关的化学物质。气道上的机械载荷通过集总参数方法计算。该模型根据通风设置计算机械应力和气体交换。这些结果的整合揭示了可能的通风策略,以允许对血液动脉化和肺部机械负荷的最佳管理。

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