Airflow, pressure, and resistance

Airflow, pressure, and resistance

Watch later

Watch later

Pressure-volume loops
Frank-Starling relationship
Action potentials in pacemaker cells
Action potentials in myocytes
Ventilation-perfusion ratios and V/Q mismatch
Chewing and swallowing
Bile secretion and enterohepatic circulation
Metabolic acidosis
Metabolic alkalosis
Respiratory acidosis
Respiratory alkalosis
Glomerular filtration
Renal clearance
Baroreceptors
Chemoreceptors
Renin-angiotensin-aldosterone system
Cardiac cycle
Cardiac work
Changes in pressure-volume loops
Measuring cardiac output (Fick principle)
Stroke volume, ejection fraction, and cardiac output
Cardiovascular system anatomy and physiology
Coronary circulation
Cardiac and vascular function curves
Altering cardiac and vascular function curves
Cardiac afterload
Cardiac contractility
Cardiac preload
Law of Laplace
Physiological changes during exercise
Cardiovascular changes during hemorrhage
Cardiovascular changes during postural change
Cardiac conduction velocity
Cardiac conduction system
ECG basics
ECG normal sinus rhythm
ECG intervals
ECG QRS transition
ECG axis
ECG rate and rhythm
ECG cardiac infarction and ischemia
ECG cardiac hypertrophy and enlargement
Control of blood flow circulation
Microcirculation and Starling forces
Blood pressure, blood flow, and resistance
Compliance of blood vessels
Laminar flow and Reynolds number
Pressures in the cardiovascular system
Resistance to blood flow
Cardiac excitation-contraction coupling
Excitability and refractory periods
Airflow, pressure, and resistance
Alveolar gas equation
Boyle's law
Breathing cycle and regulation
Dalton's law
Diffusion-limited and perfusion-limited gas exchange
Fick's laws of diffusion
Gas exchange in the lungs, blood and tissues
Graham's law
Henry's law
Ideal (general) gas law
Reading a chest X-ray
Respiratory system anatomy and physiology
Alveolar surface tension and surfactant
Combined pressure-volume curves for the lung and chest wall
Compliance of lungs and chest wall
Carbon dioxide transport in blood
Oxygen binding capacity and oxygen content
Oxygen-hemoglobin dissociation curve
Anatomic and physiologic dead space
Lung volumes and capacities
Pulmonary changes at high altitude and altitude sickness
Pulmonary changes during exercise
Breathing control
Pulmonary chemoreceptors and mechanoreceptors
Pulmonary shunts
Regulation of pulmonary blood flow
Ventilation
Zones of pulmonary blood flow
Acid-base map and compensatory mechanisms
Buffering and Henderson-Hasselbalch equation
Physiologic pH and buffers
The role of the kidney in acid-base balance
Plasma anion gap
Renal system anatomy and physiology
Body fluid compartments
Hydration
Movement of water between body compartments
Measuring renal plasma flow and renal blood flow
Regulation of renal blood flow
TF/Px ratio and TF/Pinulin
Phosphate, calcium and magnesium homeostasis
Potassium homeostasis
Sodium homeostasis
Erythropoietin
Vitamin D
Antidiuretic hormone
Free water clearance
Kidney countercurrent multiplication
Osmoregulation
Distal convoluted tubule
Loop of Henle
Proximal convoluted tubule
Tubular reabsorption and secretion
Tubular reabsorption and secretion of weak acids and bases
Tubular reabsorption of glucose
Tubular secretion of PAH
Urea recycling
Anatomy and physiology of the teeth
Gastrointestinal system anatomy and physiology
Liver anatomy and physiology
Carbohydrates and sugars
Fats and lipids
Intestinal fluid balance
Pancreatic secretion
Prebiotics and probiotics
Proteins
Vitamins and minerals
Gastrointestinal hormones
Enteric nervous system
Esophageal motility
Gastric motility

Flashcards

Airflow, pressure, and resistance

0 of 18 complete

Transcript

Watch video only

When we breathe, air moves between the atmosphere and the alveoli inside the lungs.

This movement of air is driven by the pressure difference between the two sites; where air flows from an area of higher pressure to an area of lower pressure.

The journey of air within airways is not easy though, due to the presence of airway resistance.

Alright, pressure difference and airway resistance determine how much air flows through an airway in a period of time, which is known as airflow.

Airflow can be measured in liters per minute.

The relationship between airflow and pressure difference is directly proportional, which can be represented as airflow, or Q, and that is directly proportional, (which looks like a stretched out Greek letter alpha) , to ∆P, which is the pressure difference. Q ∝ ∆P

This means that the higher the pressure difference between two sites, the more air flowing between them.

On the other hand, the relationship between airflow and airway resistance is inversely proportional, represented as Q ∝ 1R , where R is airway resistance, meaning if airway resistance increases, airflow decreases.

Alright, by setting up these two relationships in one equation, we will get Ohm’s law, which states that airflow Q, equals the pressure difference ∆P, divided by airway resistance R. Q = ΔPR

Now, the pressure difference, or ∆P, between the atmosphere and the alveoli can be created by changing the volume of the lungs during inspiration and expiration.

So, during inspiration, contraction of the diaphragm and chest muscles causes the lungs to expand, increasing their volume and the volume of the alveoli.

Now, if we look at a single alveolus, as its volume has increased, there’s now more room inside for gas particles, so the pressure inside goes down and becomes lower than the atmospheric pressure.

As a result, air flows from the atmosphere into the alveolus

At the end of inspiration, the alveolus becomes filled with oxygen-rich air from the atmosphere, which increases the pressure inside until it becomes equal to the pressure in the atmosphere.

At this point, there’s no pressure difference to drive more air into the alveolus.

Now, during expiration, the muscles relax allowing the lungs to spring back to their normal size, leading to a decrease in their volume.

So, as the volume of the alveolus goes down, the pressure inside goes up to become higher than the atmospheric pressure.

This again creates a pressure gradient, which will push the air from the alveoli out into the atmosphere.

While airflow is increased by increasing the pressure difference, it is however, decreased by increasing airway resistance.

Airway resistance is influenced by three main factors.

The first factor is air viscosity, represented by the Greek letter eta η.

Air viscosity means how hard it is for gas particles in the air to slide past each other.

The relationship between airway resistance and air viscosity is directly proportional, R ∝ η.

So, as air viscosity increases, airway resistance increases.

The second factor that affects airway resistance is airway length, represented by the letter l.

Just like viscosity, the relationship with airway resistance is directly proportional, R ∝ l, where longer airways have higher resistance than shorter airways.

Key Takeaways

Airflow is the measure of the movement of air through a given space. Usually, airflow is measured in cubic feet per minute (cfm). Pressure is the force that drives air through a space. Resistance is the opposing force to pressure; it's what makes it difficult for air to flow through a space. The higher the resistance, the lower the airflow. Resistance can be caused by many things, including friction, obstructions, and temperature differences. To improve airflow, you need to either reduce resistance or increase pressure.

Sources

  1. "Medical Physiology" Elsevier (2016)
  2. "Physiology" Elsevier (2017)
  3. "Human Anatomy & Physiology" Pearson (2018)
  4. "Principles of Anatomy and Physiology" Wiley (2014)
  5. "The Number of Alveoli in the Human Lung" American Journal of Respiratory and Critical Care Medicine (2004)
  6. "Cellular structure, function and organization in the lower respiratory tract." Environmental Health Perspectives (1984)