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人体气道中热、水和可溶性气体交换的动力学:1. 模型研究。

Dynamics of heat, water, and soluble gas exchange in the human airways: 1. A model study.

作者信息

Tsu M E, Babb A L, Ralph D D, Hlastala M P

机构信息

University of Washington, Department of Chemical Engineering, Seattle 98195.

出版信息

Ann Biomed Eng. 1988;16(6):547-71. doi: 10.1007/BF02368015.

DOI:10.1007/BF02368015
PMID:3228218
Abstract

In order to provide a means for analysis of heat, water, and soluble gas exchange with the airways during tidal ventilation, a one dimensional theoretical model describing heat and water exchange in the respiratory airways has been extended to include soluble gas exchange with the airway mucosa and water exchange with the mucous layer lining the airways. Not only do heat, water, and gas exchange occur simultaneously, but they also interact. Heating and cooling of the airway surface and mucous lining affects both evaporative water and soluble gas exchange. Water evaporation provides a major source of heat exchange. The model-predicted mean airway temperature profiles agree well with literature data for both oral and nasal breathing validating that part of the model. With model parameters giving the best fit to experimental data, the model shows: (a) substantial heat recovery in the upper airways, (b) minimal respiratory heat and water loss, and (c) low average mucous temperatures and maximal increases in mucous thickness. For resting breathing of room air, heat and water conservation appear to be more important than conditioning efficiency. End-tidal expired partial pressures of very soluble gases eliminated by the lungs are predicted to be lower than the alveolar partial pressures due to the absorption of the expired gases by the airway mucosa. The model may be usable for design of experiments to examine mechanisms associated with the local hydration and dehydration dynamics of the mucosal surface, control of bronchial perfusion, triggering of asthma, mucociliary clearance and deposition of inhaled pollutant gases.

摘要

为了提供一种在潮气通气期间分析气道与空气之间的热、水和可溶性气体交换的方法,一个描述呼吸道热交换和水交换的一维理论模型已得到扩展,以包括与气道黏膜的可溶性气体交换以及与气道内衬黏液层的水交换。热、水和气体交换不仅同时发生,而且相互作用。气道表面和黏液内衬的加热和冷却会影响蒸发水和可溶性气体交换。水蒸发是热交换的主要来源。模型预测的平均气道温度分布与口腔呼吸和鼻腔呼吸的文献数据吻合良好,验证了模型的这一部分。在模型参数与实验数据最佳拟合的情况下,该模型显示:(a) 上呼吸道有大量的热回收;(b) 呼吸热和水损失最小;(c) 黏液平均温度低且黏液厚度增加最大。对于在室内空气中的静息呼吸,热量和水分的保存似乎比调节效率更重要。由于气道黏膜对呼出气体的吸收,预计肺部排出的极易溶性气体的呼气末分压低于肺泡分压。该模型可用于设计实验,以研究与黏膜表面局部水合和脱水动力学、支气管灌注控制、哮喘触发、黏液纤毛清除以及吸入污染气体沉积相关的机制。

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本文引用的文献

1
Studies on the conditioning of air in the respiratory tract.呼吸道空气调节的研究。
Acta Otolaryngol Suppl. 1956;131:1-80.
2
Further observations on the conditioning of respiratory air.关于呼吸空气调节的进一步观察
J Laryngol Otol. 1953 Nov;67(11):669-81. doi: 10.1017/s0022215100049161.
3
Control of mucus hydration as a Donnan equilibrium process.作为唐南平衡过程的黏液水合作用控制
Front Physiol. 2021 Jun 8;12:649497. doi: 10.3389/fphys.2021.649497. eCollection 2021.
4
Modeling of the transport, hygroscopic growth, and deposition of multi-component droplets in a simplified airway with realistic thermal boundary conditions.在具有实际热边界条件的简化气道中对多组分液滴的传输、吸湿增长和沉积进行建模。
J Aerosol Sci. 2021 Jan;151:105626. doi: 10.1016/j.jaerosci.2020.105626. Epub 2020 Jul 24.
5
A numerical study of heat and water vapor transfer in MDCT-based human airway models.基于多探测器计算机断层扫描(MDCT)的人体气道模型中热与水汽传输的数值研究。
Ann Biomed Eng. 2014 Oct;42(10):2117-31. doi: 10.1007/s10439-014-1074-9. Epub 2014 Aug 1.
6
Particle transport and deposition: basic physics of particle kinetics.粒子输运和沉积:粒子动力学的基础物理。
Compr Physiol. 2013 Oct;3(4):1437-71. doi: 10.1002/cphy.c100085.
7
Airway exchange of highly soluble gases.高水溶性气体的气道交换。
J Appl Physiol (1985). 2013 Mar 1;114(5):675-80. doi: 10.1152/japplphysiol.01291.2012. Epub 2013 Jan 10.
8
A mathematical model for breath gas analysis of volatile organic compounds with special emphasis on acetone.一种用于挥发性有机化合物呼吸气体分析的数学模型,特别侧重于丙酮。
J Math Biol. 2011 Nov;63(5):959-99. doi: 10.1007/s00285-010-0398-9. Epub 2011 Jan 14.
9
Impact of airway gas exchange on the multiple inert gas elimination technique: theory.气道气体交换对多惰性气体消除技术的影响:理论。
Ann Biomed Eng. 2010 Mar;38(3):1017-30. doi: 10.1007/s10439-009-9884-x.
10
Effects of the ventilation pattern and pulmonary blood flow on lung heat transfer.通气模式和肺血流对肺热传递的影响。
Eur J Appl Physiol. 2004 Mar;91(2-3):314-23. doi: 10.1007/s00421-003-0966-4. Epub 2003 Oct 28.
Nature. 1981 Jul 23;292(5821):340-2. doi: 10.1038/292340a0.
4
Pulmonary gas exchange during high-frequency ventilation.高频通气期间的肺气体交换
J Appl Physiol Respir Environ Exerc Physiol. 1982 May;52(5):1278-87. doi: 10.1152/jappl.1982.52.5.1278.
5
Model simulation of heat and water transport dynamics in an airway.
J Biomech Eng. 1983 May;105(2):188-93. doi: 10.1115/1.3138404.
6
Hydration kinetics of exocytosed mucins in cultured secretory cells of the rabbit trachea: a new model.兔气管培养分泌细胞中外排黏蛋白的水合动力学:一种新模型。
Ciba Found Symp. 1984;109:212-25. doi: 10.1002/9780470720905.ch15.
7
Respiratory and inert gas exchange during high-frequency ventilation.高频通气期间的呼吸与惰性气体交换
J Appl Physiol Respir Environ Exerc Physiol. 1982 Mar;52(3):683-9. doi: 10.1152/jappl.1982.52.3.683.
8
Determination of liquid/air partition coefficients for dilute solutions of ethanol in water, whole blood, and plasma.
J Anal Toxicol. 1983 Jul-Aug;7(4):193-7. doi: 10.1093/jat/7.4.193.
9
Measurement of continuous distributions of ventilation-perfusion ratios: theory.通气-灌注比连续分布的测量:理论
J Appl Physiol. 1974 May;36(5):588-99. doi: 10.1152/jappl.1974.36.5.588.
10
Breathing pattern affects airway wall temperature during cold air hyperpnea in humans.
Am Rev Respir Dis. 1985 Oct;132(4):853-7. doi: 10.1164/arrd.1985.132.4.853.