Air Pressure and Net Force on a Door in a Tornado

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Homework Statement


In a tornado, the pressure can be 15 percent below normal atmospheric pressure. Suppose that a tornado occurred outside a door that is 195 cm high and 91 cm wide. What net force would be exerted on the door by a sudden 15 percent drop in normal atmospheric pressure? In what direction would the force be exerted?


Homework Equations


Here lies the problem.
I do no know which formula I should be using.
I know that atmospheric pressure is about 1.0 x 10^5 N/m squared at sea level.
Which I'm inferring is what I would use for the problem.
Could someone post a formula or something?
I think that's all I would need.
 
on Phys.org
Never mind.
I just realized that P=F/A would work.
Whoops xP
 
So I tried doing the problem:
P=F/A
Regular pressure = 1.0 x 10^5
15% decrease = 8.5 x 10^3
85000 = F/(195 x 91)
= F/177.45<--- Converted to meters
So I multiplied by the area:
85000 x 177.45=15,083,250 Pa
And that, to me, seems like a completely ridiculous answer.
Would someone care to correct or at least help me?