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相关概念视频

Breathing01:05

Breathing

The process of breathing, inhaling and exhaling, involves the coordinated movement of the chest wall, the lungs, and the muscles that move them. Two muscle groups with important roles in breathing are the diaphragm, located directly below the lungs, and the intercostal muscles, which lie between the ribs. When the diaphragm contracts, it moves downward, increasing the volume of the thoracic cavity and creating more room for the lungs to expand. When the intercostal muscles contract, the ribs...
Pressure Relationships in Thoracic Cavity01:24

Pressure Relationships in Thoracic Cavity

Breathing, otherwise known as pulmonary ventilation, is the process of air movement into and out of the lungs. The main mechanisms propelling pulmonary ventilation are atmospheric pressure (Patm), intra-pulmonary (Ppul ) or intra-alveolar pressure (Palv) within the alveoli, and intrapleural pressure (Pip) within the pleural cavity.
Breathing Mechanisms
Both intra-alveolar and intrapleural pressures rely on specific lung properties. The ability to breathe—allowing air to enter the lungs during...
Pulmonary Cycle: Exhalation01:17

Pulmonary Cycle: Exhalation

In terms of human respiration, the act of expelling air, known as exhalation (or expiration), operates on the principle of pressure gradients. During expiration, the pressure within the lungs exceeds that of the surrounding atmosphere. Under normal conditions, quiet breathing involves passive exhalation and is free of muscular contractions. This is because the exhalation process is driven by the natural elastic recoil of the lungs and chest wall, both of which have an inherent tendency to...
Factors Affecting Pulmonary Ventilation01:19

Factors Affecting Pulmonary Ventilation

Besides the pressure difference between the external environment and the lungs, the airflow rate and ease of pulmonary ventilation are also influenced by three other factors: surface tension of the fluid in the alveoli, compliance of the lungs, and airway resistance.
Alveolar Surface Tension
The alveolar fluid lines the luminal surface of the alveoli and exerts a force called surface tension. This force is caused by the polar water molecules in the liquid being more strongly attracted to each...
Physical Principles Governing Gas Exchange01:16

Physical Principles Governing Gas Exchange

Gas behavior plays a vital role in understanding bodily processes such as external and internal respiration. External respiration involves the diffusion of oxygen into the blood and carbon dioxide out of it in the lungs. In contrast, internal respiration happens in body tissues, where these gases move in opposite directions.
Gas Laws Governing Respiration
The behavior of gases is guided by Dalton's Law of partial pressures and Henry's Law.
Dalton's Law asserts that the total pressure exerted by...
Application of Integration: Problem Solving01:30

Application of Integration: Problem Solving

The process of breathing involves the periodic intake and expulsion of air, known as the respiratory cycle, which typically lasts about five seconds. Modeling the volume of air inhaled into the lungs as a function of time provides insight into both the dynamics and efficiency of pulmonary ventilation. This volume is determined by integrating the airflow rate over time, which captures the cumulative effect of air entering the lungs.Sinusoidal Model of AirflowAirflow during respiration is not...

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相关实验视频

Updated: Jul 9, 2026

Combining Volumetric Capnography And Barometric Plethysmography To Measure The Lung Structure-function Relationship
08:25

Combining Volumetric Capnography And Barometric Plethysmography To Measure The Lung Structure-function Relationship

Published on: January 8, 2019

生理学:充气肺中的动态不稳定性

Adriano M Alencar1, Stephen P Arold, Sergey V Buldyrev

  • 1Department of Biomedical Engineering, Boston University, Boston, Massachusetts 02215, USA. adriano@bu.edu

Nature
|June 21, 2002
PubMed
概括

在喘等疾病中,肺部的呼吸道可能会崩. 建模这揭示了"雪崩冲击"导致负弹性阻力,改善了对气体交换条件受损的深肺通风的理解.

科学领域:

  • 肺部医学 肺部医学
  • 生物物理学的生物物理.
  • 流体动力学 流体动力学

背景情况:

  • 像喘这样的肺部疾病限制了呼吸道的流量,导致呼吸道崩和气体交换受损.
  • 了解肺膨胀的机制,特别是在崩的区域,对于呼吸系统健康至关重要.

研究的目的:

  • 为了模拟灵感过程中肺部区域崩的通胀动态.
  • 研究动态压力不稳定的现象及其与肺机械学的关系.
  • 为深层肺部区域的通风及其对呼吸道疾病的影响提供见解.

主要方法:

  • 开发了一个肺膨胀模型,使用雪崩通过分叉的呼吸道网络传播.
  • 分析了动态压力不稳定的级联,称为"雪崩冲击".
  • 研究了这些不稳定的热力学影响,特别是负弹性电阻.

主要成果:

  • 缩的肺部区域的膨胀可以用气道网络中的雪崩来建模.
  • 雪崩冲击导致动态压力不稳定,表现为负弹性阻力.
  • 这种负弹性阻力是一个明显的热力学悖论,由雪崩模型解释.

结论:

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Dual Test Gas Pulmonary Diffusing Capacity Measurement During Exercise in Humans Using the Single-Breath Method

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  • 雪崩模型为崩地区的肺膨胀动态提供了新的解释.
  • 了解负弹性阻力为深肺区域的通风提供了新的见解.
  • 这些发现可能有助于治疗气体交换受损的疾病,例如严重的喘.