JoVE Logo

Zaloguj się

20.14 : Adiabatic Processes for an Ideal Gas

When an ideal gas is compressed adiabatically, that is, without adding heat, work is done on it, and its temperature increases. In an adiabatic expansion, the gas does work, and its temperature drops. Adiabatic compressions actually occur in the cylinders of a car, where the compressions of the gas-air mixture take place so quickly that there is no time for the mixture to exchange heat with its environment. Nevertheless, because work is done on the mixture during the compression, its temperature does rise significantly. In fact, the temperature increase can be so large that the mixture can explode without the addition of a spark. Such explosions, since they are not timed, make a car run poorly—it usually “knocks.” As the ignition temperature rises with the octane of the gasoline, the usage of higher-octane gasoline is one way to overcome this issue.

Another interesting adiabatic process is the free expansion of a gas. Imagine a gas is confined by a membrane to one side of a two-compartment, thermally insulated container. When the membrane is punctured, the gas rushes into the empty side of the container, thereby expanding freely. As the gas expands “against a vacuum”, the pressure decreases (p = 0), it does no work, and, because the vessel is thermally insulated, the expansion is adiabatic. With Q = 0 and W = 0 in the first law, dU = 0, so the internal energy in the initial and final equilibrium states is the same for the free expansion. If the gas is ideal, the internal energy depends only on the temperature. Therefore, when an ideal gas expands freely, its temperature does not change.

Tagi

Adiabatic ProcessIdeal GasTemperature IncreaseAdiabatic ExpansionGas CompressionWork DoneCar CylindersIgnition TemperatureOctane RatingFree ExpansionThermally Insulated ContainerInternal EnergyPressure Decrease

Z rozdziału 20:

article

Now Playing

20.14 : Adiabatic Processes for an Ideal Gas

The First Law of Thermodynamics

3.0K Wyświetleń

article

20.1 : Układy termodynamiczne

The First Law of Thermodynamics

4.8K Wyświetleń

article

20.2 : Praca wykonana podczas zmiany głośności

The First Law of Thermodynamics

3.7K Wyświetleń

article

20.3 : Ścieżka między stanami termodynamiki

The First Law of Thermodynamics

2.9K Wyświetleń

article

20.4 : Ciepło i swobodna ekspansja

The First Law of Thermodynamics

1.6K Wyświetleń

article

20.5 : Energia wewnętrzna

The First Law of Thermodynamics

4.3K Wyświetleń

article

20.6 : Pierwsza zasada termodynamiki

The First Law of Thermodynamics

3.9K Wyświetleń

article

20.7 : Pierwsza zasada termodynamiki: rozwiązywanie problemów

The First Law of Thermodynamics

2.3K Wyświetleń

article

20.8 : Procesy cykliczne i systemy izolowane

The First Law of Thermodynamics

2.7K Wyświetleń

article

20.9 : Procesy izotermiczne

The First Law of Thermodynamics

3.5K Wyświetleń

article

20.10 : Procesy izochoryczne i izobaryczne

The First Law of Thermodynamics

3.2K Wyświetleń

article

20.11 : Pojemności cieplne gazu doskonałego I

The First Law of Thermodynamics

2.5K Wyświetleń

article

20.12 : Pojemności cieplne gazu doskonałego II

The First Law of Thermodynamics

2.3K Wyświetleń

article

20.13 : Pojemności cieplne gazu doskonałego III

The First Law of Thermodynamics

2.1K Wyświetleń

article

20.15 : Ciśnienie i objętość w procesie adiabatycznym

The First Law of Thermodynamics

2.6K Wyświetleń

See More

JoVE Logo

Prywatność

Warunki Korzystania

Zasady

Badania

Edukacja

O JoVE

Copyright © 2025 MyJoVE Corporation. Wszelkie prawa zastrzeżone