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人类鼻腔内的传输现象:一种计算模型。

Transport phenomena in the human nasal cavity: a computational model.

作者信息

Naftali S, Schroter R C, Shiner R J, Elad D

机构信息

Department of Biomedical Engineering, Faculty of Engineering, Tel Aviv University, Israel.

出版信息

Ann Biomed Eng. 1998 Sep-Oct;26(5):831-9. doi: 10.1114/1.108.

Abstract

Nasal inspiration is important for maintaining the internal milieu of the lung, since ambient air is conditioned to nearly alveolar conditions (body temperature and fully saturated with water vapor) on reaching the nasopharynx. We conducted a two-dimensional computational study of transport phenomena in model transverse cross sections of the nasal cavity of normal and diseased human noses for inspiration under various ambient conditions. The results suggest that during breathing via the normal human nose there is ample time for heat and water exchange to enable equilibration to near intraalveolar conditions. A normal nose can maintain this equilibrium under extreme environments (e.g., hot/humid, cold/dry, cold/humid). The turbinates increase the rate of local heat and moisture transport by narrowing the passageways for air and by induction of laminar swirls downstream of the turbinate wall. However, abnormal blood supply or mucous generation may reduce the rate of heat or moisture flux into the inspired air, and thereby affect the efficacy of the process.

摘要

鼻吸气对于维持肺部的内环境很重要,因为环境空气在到达鼻咽部时会被调节至接近肺泡的状态(体温且完全被水蒸气饱和)。我们针对正常人和患病者鼻腔的模型横截面在各种环境条件下吸气时的传输现象进行了二维计算研究。结果表明,在通过正常人类鼻子呼吸时,有足够的时间进行热交换和水交换,以使气体达到接近肺泡内的状态。正常的鼻子能够在极端环境(例如,炎热/潮湿、寒冷/干燥、寒冷/潮湿)下维持这种平衡。鼻甲通过缩小气道以及在鼻甲壁下游诱导层流涡旋来提高局部热量和水分的传输速率。然而,异常的血液供应或黏液生成可能会降低进入吸入空气中的热量或水分通量,从而影响这个过程的效果。

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