Calculating Force on a Diving Bell Port at 147m Depth | Simple Pressure Problem

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A spherical diving bell at a depth of 147 meters has a circular port with a diameter of 12.7 cm, and the total force on the port needs to be calculated using seawater density of 1025 kg/m³. The pressure at this depth is determined by adding atmospheric pressure to the hydrostatic pressure from the water column. Calculating the area of the port and using the formula for force (F = pressure × area) yields a total force of approximately 20,000 N. It's important to ensure that units are correctly inputted, as the system may not recognize certain notations. The final answer should reflect the correct total force on the port, which is around 20 kN.
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Homework Statement


A spherical diving bell containing a camera is in the ocean at a depth of 147 m. It has a flat, transparent, circular port with a diameter of 12.7 cm. Find the total force on the port (use ρsea water = 1025 kg/m3).


Homework Equations


p = po + pgd
P = F/A
F = pA


The Attempt at a Solution


So do I find the total pressure and then multiply it be the area? I get a really big number (2.00 x 10 ^ 8) which doesn't seem right?
 
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No I don't think so cause it is worded differently and in our class they are all worded the same just different numbers...but that's weird its almost identical!
 
yea that answer isn't right...I just tried it :(
 
does anyone know how to do this?
 
Sorry - I thought your comment meant you had solved it!
The area of the window is A = pi r^2
There is a column of water on top of it 147m high
So the volume of water sitting on the window is V = pi r^2 * depth
Add the density of water and you get the mass of water on the window.

V = pi * (0.127/2)^2 * 147 = 1.89m^3
Density is 1025 kg/m^3 so mass of water is 1900kg
Total force is F = mass * g = 18.7KN

Note there is also an extra 1 atmosphere of pressure pushing down on the surface of the water, but there is also an atmosphere of pressure inside the bell pushing out which cancel out.
 
thats ok...but its telling me that's incorrect?
 
this is the msg it gave me...
Calculate the total pressure at the given depth by adding up the atmospheric pressure (1.01e5 N/m2) plus the pressure due to the sea water. This assumes that there is no air in the bell, (probably a bad assumption).
 
Alternate method - the weight of the column of water = m g h = 1.47MN
Area A= pi r^2 = 0.0127m^2
Force = pressure * area = 1.47MN/m^2 * 0.0127m^2 = 18.67N

EDIT - then just add atmospheric pressure to the water pressure, answer should be 20KN.
 
Last edited:
  • #10
I'm having deja vu and amnesia at the same time...I think I've forgotten this once before.
 
  • #11
LoL...
 
  • #12
I don't understand I enter 0.02 N (it doesn't recognize units like KN or MN) and it says incorrect??
 
  • #13
20 KiloNewtons ie 20,000N or 2E4 N
 

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