Pressure and temperature. As pressure increases, volume decreases; as temperature increases, volume increases with it. At standard temperature and pressure (1 atm, 273 degrees Kelvin), one mole of a gas (6.022 x 1023 particles) has the volume of 22.4 liters.
The shape of a gas inside a container is determined by the shape of the container itself, while the volume is determined by the pressure, temperature, and amount of gas present. The ideal gas law, PV = nRT, describes the relationship between these factors.
The shape of a gas in a container is determined by the shape of the container itself. The volume of a gas in a container is determined by factors such as temperature, pressure, and the amount of gas present. These factors affect the motion of gas particles, which in turn influences the volume the gas occupies.
Of the three classic phases or states (solid, liquid, gas), gases do not have a defined shape or volume, which is determined by the shape and volume of their containers. A sample will have a defined mass, and the volume into which that mass is confined determines the pressure of the gas.
The initial pressure, temperature, and volume of the gas will determine how far it expands. When heated or when pressure is reduced, gas molecules move faster and spread out over a larger area, causing the gas to expand.
To calculate tidal volume (TV) from gas volume and respiratory rate (RR), you would divide the gas volume by the respiratory rate. The formula is TV = Gas Volume / RR. This calculation gives you the average volume of air moved in and out of the lungs with each breath.
Just dont do it -.-
the container that it is in
Volume.
The container.
The container.
A gas's volume is determined by the amount of space it occupies. The volume of a gas can be influenced by factors such as temperature, pressure, and the quantity of gas present. According to the ideal gas law, volume is inversely proportional to pressure and directly proportional to temperature and quantity of gas.
The shape of a gas inside a container is determined by the shape of the container itself, while the volume is determined by the pressure, temperature, and amount of gas present. The ideal gas law, PV = nRT, describes the relationship between these factors.
The shape of a gas in a container is determined by the shape of the container itself. The volume of a gas in a container is determined by factors such as temperature, pressure, and the amount of gas present. These factors affect the motion of gas particles, which in turn influences the volume the gas occupies.
Thoracic gas volume can be measured using techniques such as helium dilution or nitrogen washout. These methods involve introducing a known volume of inert gas into the lungs and measuring the decrease in concentration over time to calculate the thoracic gas volume. Alternatively, thoracic gas volume can also be estimated using body plethysmography, which determines lung volume changes during breathing.
Pressure and temperature. As pressure increases, volume decreases; as temperature increases, volume increases with it. At standard temperature and pressure (1 atm, 273 degrees Kelvin), one mole of a gas (6.022 x 1023 particles) has the volume of 22.4 liters.
The shape of the containerA property of a gas is that it expands to fill the shape and volume of a container. An exception may be the case where there is more than one gas and the heavier gasses will tend to settle to the bottom of the container.
Yes it does. The size of the balloon determines how much volume of gas can be held in it.