Calculating Force Exerted by Gas on Container Walls

  • Thread starter Thread starter sun
  • Start date Start date
  • Tags Tags
    Force Gas
AI Thread Summary
The discussion focuses on calculating the force exerted by gas on the walls of a sealed cubical container. The container holds three times Avogadro's number of molecules at a temperature of 23.0°C, leading to confusion about the number of moles and the correct application of the ideal gas law. Participants clarify that the ideal gas law (PV = nRT) should be used to find pressure, which can then be multiplied by the area of one wall to determine force. The correct approach involves calculating the pressure and ensuring the area used corresponds to a single wall of the cube. Ultimately, the solution hinges on accurately determining the number of moles and applying the formulas correctly.
sun
Messages
39
Reaction score
0
[SOLVED] Force exerted by a gas

Homework Statement



A sealed cubical container 30.0 cm on a side contains three times Avogadro's number of molecules at a temperature of 23.0°C. Find the force exerted by the gas on one of the walls of the container.

Homework Equations


F=Nm/d(v^2)
P=F/A


The Attempt at a Solution


There always seems to be a missing variable to plug into the equations. Are there any hints that can get me pointed in the correct direction?

thanks
 
Physics news on Phys.org
V of one mole of ideal gas=22.4x10^-3m^3
V of container=2.7x10^-5
T=296K
R=8.31j/mol*k
A=.54m^3
n=?
 
Last edited:
This is what I've done:
V=m(He)/density(He))
m=.004Kg/(6.02x10^-23*3)=2.21x10^-27kg
V(He)=2.21x10^-27kg/1.79x10^-1Kg/m^3=1.23x10^-26m^3

Am i on the correct path? If so, all i need to figure out is how many moles there are, correct? Then i can solve for P.
 
does this essentially mean there are 3 moles?
 
any help would be appreciated :)
 
I'm not sure how to calculate the moles.

I tried V(f)/V(i)=n(f)T(f)/n(i)T(i)

when i solved for n(i) i got .0011mol. But i guess that isn't correct.
 
I also tried PV=NkT

would N equal 3*(6.02*10^23)?
If so, what i did was P(.027m^3)=1.81*10^24(1.381*10^-23)(296)
i got 2.74*10^5

Then i multiplied that by the area .54 and got 1.47*10^5N, but that's wrong.
 
argg still lost and confused
 
  • #10
Yes 3 times Avogadro's number means there are 3 moles of the gas. You want to use the ideal gas law with the molar constant R. Thus:

PV = n R T

If you work out the pressure you can find the force exerted on one wall.
 
  • #11
this is what I've done:
P(.027m^3)=(3mol)(8.31J/mol*K)(296K)

P=2.73*10^5

F=2.73*10^5(.54)=1.47*10^55 N, but that is incorrect. any idea as to what i may be doing wrong.

And thank you for your help.
 
  • #12
do i divide 1.47*10^5 by 6, b/c there are 6 sides to the cube?
 
  • #13
The question asks for the force on one side, and the 0.54 you've used is the total area of the box.

EDIT: or you could divide your answer by 6.
 
  • #14
YES!
Thank you !
I got it :)
<3
 

Similar threads

Average velocity of gas molecules in a container
Replies
3
Views
5K
Work done on container receiving gas from high pressure container
Replies
1
Views
1K
Thermally insulated container with alternating series of walls
Replies
49
Views
2K
Finding the exerting forces in a container
Replies
2
Views
7K
Brownian Ratchet (exercise framed by Feynman's Lectures, l. 46)
Replies
32
Views
2K
Calculating Force to Push Steel Rod Up 50 cm
Replies
24
Views
3K
What is the Ideal Gas Force on a Container at Temperature T?
Replies
16
Views
6K
Gas Collisions in Containers: Comparing Ratios of Wall Collisions"
Replies
1
Views
1K
Change in temperature when a gas is in a moving container
Replies
6
Views
3K
Internal energy of an ideal gas as a function of temperature
Replies
2
Views
3K

Hot Threads

Recent Insights

Back
Top