Asked by Lauren

Consider an ideal gas encloesd in a 1.00 L container at an internal pressure of 10.0 atm. Calculate the work, w, if the gas expands against a constant external pressure of 1.00 atm to a final volume of 20.0 L.
w = ____ J

now calculate the work done if this process is carried out in two steps.
1] first let, the gas expand against a constant external pressure of 5.00 atm to a volume of 4.00 L.
2] From there, let the gas expand to 20.0 L against a constant external pressure of 1.00 atm.
w = _____ J


i know that the formula to solve this is w=-(p)(Delta V) but when they give you 2 pressures does that mean the formula turns to w=-(delta p)(delta v)?
Answered by DrBob222
1)
-Pdelta V = -1 atm x (v2-v1) = -1(20-1) = -19 L*atm work.
2)
The first one is -5 x (4-1) = -15 L*atm
Second stage is -1 x (20-4) = -16 L*atm
Total = -31 L*atm
Here is a good site you can read; in fact there is an example problem that is ALMOST the same as this one.
(Broken Link Removed)
Answered by Lauren
Thank you Dr. Bob! That was very helpful
Answered by Long D
2=2
Answered by ilovedrbob69
thanks SO much dr bob this was SO helpful ;);;:;:);0));)
Answered by ihateilovedrbob69
wow ilovedrbob69 that was so not helpful :)
Answered by ILOVEihateilovedrbob69
I love ihateilovedrbob69 >w<
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