physics/calculus problem?
a flat triangular plate whose dimensions are 5, 5, and 6 ft. is submerged vertically in water (density 62.4 lbs/ft³) so that its longer side is at the bottom and parallel to the surface and its vertex is 2 ft. below the surface. find the force against the surface of the plate.
Comments
F = ρ ∫ h x dx .. . .
where x is the length of the partition
and h is the distance of the horizontal partition from the surface
ρ = 62.4
h = ax + b
h(2)=0
h(6) = 6 ... if the triangular plate is 5,5,6 in dimension
then there is a right triangle whose dimension is 5,3,4
thus 4 ft is the height of the vertical triangle
then
2a + b = 0
6a + b = 6
4a = 6
a = 3/2
b = -3
thus
F = ρ ∫ (from 2 to 6) (3/2 x - 3) x dx
.. . .. .