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Question

The force acting on a window of area 50 cm×50 cm of a submarine at a depth of 2000 m in an ocean, interior of which is maintained at sea level atmospheric pressure is
(Density of sea water =103 kg/m3,g=10 m/s2 )

A
106 N
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B
5×105 N
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C
25×106 N
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D
5×106 N
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Solution

The correct option is D 5×106 N
The pressure outside the submarine is P=Pa+ρgh
Pressure inside the submarine is Pa.
Net pressure acting on the window is Pg=PPa=ρgh=103×10×2000
Pg=2×107 Pa
Area of window is
A=50 cm×50 cm=2500×104 m2
So, force acting on the window is
F=PgA=2×107×2500×104
F=5×106 N

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