肺树形结构对肺弹性后坐力的贡献。

J C Smith, J P Butler, F G Hoppin
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引用次数: 30

摘要

分析了肺树形结构的力对肺后坐力的直接贡献,以及力的变化引起肺后坐力的变化。分析区分了树的轴向和周向张力的贡献,并指出只有轴向张力直接贡献静态后坐力。这一贡献来源于对横贯肺的随机平面的轴向力的分析。由轴向张力的变化引起的后坐力的变化也得到了类似的推导。树木周围张力的变化通过引起周围肺实质的不均匀变形间接改变后坐力,并且导出了变形引起的应力的连续弹性解。基于气道形态计量学和力学性能的现有数据,给出了气道树的样例计算。还分析了随着气道平滑肌收缩而增加的轴向张力和周向张力所伴随的反冲压力的增加。计算结果表明,气道树向细支气管的轴向应力只直接贡献了静态反冲压力的一小部分。然而,我们发现这些气道中平滑肌的收缩可以明显增加反冲压力(10-20%),这主要是由于小气道中软组织的变形和周向张力的增加。结果表明,气道树的几何和力学特性是这样的,只有气道树的外围元素才能实质性地影响肺的弹性特性。文中还讨论了维管树在力学和形态特性方面的数据较为有限的可能贡献。
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Contribution of tree structures in the lung to lung elastic recoil.

The direct contribution of forces in tree structures in the lung to lung recoil pressure and changes in recoil pressure induced by alterations of the forces are analyzed. The analysis distinguishes the contributions of axial and circumferential tensions in the trees and indicates that only axial tensions directly contribute to static recoil. This contribution is derived from analysis of the axial forces transmitted across a random plane transecting the lung. The change in recoil pressure induced by changes in axial tension is similarly derived. Alterations of circumferential tensions in the trees indirectly change recoil by causing nonuniform deformations of the surrounding lung parenchyma, and a continuum elasticity solution for the stress induced by the deformations is derived. Sample calculations are presented for the airway tree based on available data on airway morphometric and mechanical properties. The increase in recoil pressure accompanying increases in axial and circumferential tensions with contraction of airway smooth muscle is also analyzed. The calculations indicate that axial stresses in the airway tree out to bronchioles directly contribute only a small fraction of the static recoil pressure. However, it is found that contraction of smooth muscle in these airways can increase recoil pressure appreciably (10-20%), mainly by the deformation of the parenchyma with increases in circumferential tension in smaller airways. The results indicate that the geometric and mechanical properties of the airway tree are such that only peripheral elements of the tree can substantially affect the elastic properties of the lung. The possible contributions of vascular trees for which data on mechanical and morphometric properties are more limited are also discussed.

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