Henry's Law亨利定律
When a gas is in contact with the surface of a liquid, the amount of the gas which will go into solution is proportional to the partial pressure of that gas. A simple rationale for Henry's law is that if the partial pressure of a gas is twice as high, then on the average twice as many molecules will hit the liquid surface in a given time interval, and on the average twice as many will be captured and go into solution. For a gas mixture, Henry's law helps to predict the amount of each gas which will go into solution, but different gases have different solubilities and this also affects the rate. The constant of proportionality in Henry's law must take this into account. For example, in the gas exchange processes in respiration, the solubility of carbon dioxide is about 22 times that of oxygen when they are in contact with the plasma of the human body. 当气体与液体表面接触时,进入溶液的气体量与该气体的分压成正比。亨利定律的一个简单解释是,如果某种气体的分压是原来的两倍,那么在给定的时间间隔内,平均会有两倍多的分子撞击液体表面,并且平均会有两倍多的分子被捕获并进入溶液。对于气体混合物,亨利定律有助于预测每种气体进入溶液的量,但不同气体的溶解性不同,这也会影响速率。亨利定律中的比例常数必须考虑到这一点。例如,在呼吸过程中的气体交换中,二氧化碳在与人体血浆接触时的溶解性大约是氧气的22倍。
|
Index Kinetic theory concepts Applications of kinetic theory 索引 气体动理论概念 应用 of 气体动理论 | |||||
|
Go Back
返回 |
Graham's Law格雷厄姆定律
When gases are dissolved in liquids, the relative rate of diffusion of a given gas is proportional to its solubility in the liquid and inversely proportional to the square root of its molecular mass. Important in the transport of respiration gases is the relative diffusion rate of oxygen and carbon dioxide in the plasma of the human body. Carbon dioxide has 22 times the solubility, but is more massive (44 amu compared to 32 for oxygen). According to Graham's law, the relative rate of diffusion is given by 当气体溶解于液体时,某种气体的相对扩散速率与其在液体中的溶解度成正比,与其分子质量的平方根成反比。在人体血浆中,氧气和二氧化碳的相对扩散速率对呼吸气体的运输至关重要。二氧化碳的溶解度是氧气的22倍,但其分子质量更大(44 amu 比氧气的32 amu)。根据格雷厄姆定律,相对扩散速率由下式给出:
![]()
|
Index Kinetic theory concepts Applications of kinetic theory 索引 气体动理论概念 应用 of 气体动理论 | |||||||
|
Go Back
返回 |
Fick's Law菲克定律
The net diffusion rate of a gas across a fluid membrane is proportional to the difference in partial pressure, proportional to the area of the membrane and inversely proportional to the thickness of the membrane. Combined with the diffusion rate determined from Graham's law, this law provides the means for calculating exchange rates of gases across membranes. The total membrane surface area in the lungs (alveoli ) may be on the order of 100 square meters and have a thickness of less than a millionth of a meter, so it is a very effective gas exchange interface. 通过流体膜的气体净扩散速率与膜两侧的分压差成正比,与膜的面积成正比,与膜的厚度成反比。结合格雷厄姆定律确定的扩散速率,这一定律为计算气体通过膜的交换速率提供了方法。肺部(肺泡)的总膜表面积可能达到100平方米,厚度不到百万分之一米,因此是一个非常有效的气体交换界面。
|
Index Kinetic theory concepts Applications of kinetic theory 索引 气体动理论概念 应用 of 气体动理论 | |||||
|
Go Back
返回 |
Oxygen Transport in the Lungs肺部氧气运输
The total membrane surface area in the lungs (alveoli ) may be on the order of 100 square meters and have a thickness of less than a millionth of a meter, so it is a very effective gas exchange interface. The relative rate of oxygen and carbon dioxide exchange across these thin membranes depends upon diffusion and the solubility of the gases in the fluid membrane. This is described by Fick's law. 肺部的总膜表面积(肺泡)可能达到约100平方米,厚度不到百万分之一米,因此是一个非常有效的气体交换界面。这些薄膜两侧氧气和二氧化碳交换的相对速率取决于扩散和气体在流体膜中的溶解度。这由菲克定律描述。
|
Index Kinetic theory concepts Applications of kinetic theory 索引 气体动理论概念 应用 of 气体动理论 | ||
|
Go Back
返回 |
Respiration呼吸
The process of respiration involves the lowering of the diaphragm to increase the volume of the thoracic cavity, which by the ideal gas law is seen to lower its pressure. A model of lung action can be made with a bell jar, balloons, and an elastic membrane. The thoracic cavity normally has a negative gauge pressure to keep the lungs inflated, and the diaphragm action must lower it more to accomplish inhalation. The inhalation process must accomplish the inflation of the alveoli of the lungs, which itself is a remarkable process. The pressure achieved by the diaphragm action is only about -4 mmHg compared to a pressure inside the alveoli of about -3 mmHg, so inhalation must be accomplished with a pressure differential of only about 1 mmHg. The remarkable efficiency of oxygen transport across the lung membranes is characterized in Fick's Law. 呼吸过程涉及膈肌下降以增加胸腔体积,根据理想气体定律,这会降低胸腔内的压力。可以用玻璃罩、气球和弹性膜制作一个模拟肺部作用的模型。胸腔通常具有负的表压以保持肺部膨胀,而膈肌的运动必须进一步降低这一压力以完成吸气。吸气过程必须实现肺泡的膨胀,这本身是一个显著的过程。膈肌运动所产生的压力仅约为-4 mmHg,而肺泡内部的压力约为-3 mmHg,因此吸气必须通过约1 mmHg的压力差来完成。肺泡膜中氧气运输的高效性在菲克定律中得到体现。
|
Index Gas law concepts Kinetic theory concepts 索引 气体定律概念 气体动理论概念 | |||
|
Go Back
返回 |
Breathing Pressure Model呼吸压力模型
|
Index Gas law concepts Kinetic theory concepts 索引 气体定律概念 气体动理论概念 | ||||
|
Go Back
返回 |