Non-Ideal Gases and the Van der Waals Equation
Professor Dave Explains Professor Dave Explains
3.02M subscribers
175,026 views
0

 Published On May 3, 2019

We learned about ideal gases, as well as kinetic molecular theory, which explains the laws that govern ideal gases. But some of the postulates of this theory won't always hold true. When a gas is highly pressurized and/or very cold, it will deviate from ideal gas behavior. Why might this be, and is there some other way we can do calculations on this sample of gas? There is! Take a look.

Watch the whole General Chemistry playlist: http://bit.ly/ProfDaveGenChem

Organic Chemistry Tutorials: http://bit.ly/ProfDaveOrgChem
Biochemistry Tutorials: http://bit.ly/ProfDaveBiochem
Biology Tutorials: http://bit.ly/ProfDaveBio
Classical Physics Tutorials: http://bit.ly/ProfDavePhysics1
Modern Physics Tutorials: http://bit.ly/ProfDavePhysics2
Mathematics Tutorials: http://bit.ly/ProfDaveMaths

EMAIL► [email protected]
PATREON►   / professordaveexplains  

Check out "Is This Wi-Fi Organic?", my book on disarming pseudoscience!
Amazon: https://amzn.to/2HtNpVH
Bookshop: https://bit.ly/39cKADM
Barnes and Noble: https://bit.ly/3pUjmrn
Book Depository: http://bit.ly/3aOVDlT

show more

Share/Embed