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A submarine has a "crush depth" (the depth at which water pressure will crush the submarine) of 100 m. What is the approximate pressure (water plus atmospheric) at this depth?

(Recall that the density of seawater is [tex]1025 \, \text{kg/m}^3[/tex], [tex]g = 9.81 \, \text{m/s}^2[/tex], and [tex]1 \, \text{kg/(m}\cdot\text{s}^2) = 1 \, \text{Pa} = 9.8692 \times 10^{-6} \, \text{atm}[/tex].)

A) 10.9 atm
B) 9.9 atm
C) 37.9 atm
D) 25.9 atm​

Answer :

Answer:

25.9atm

Explanation:

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Rewritten by : Barada

Answer: my grandfather was a marine so he kept me in check

25.8 atm

Explanation:

Total pressure is:

P = Patm + ρgh

where Patm is the atmosphere pressure,

ρ is the fluid density,

g is acceleration due to gravity,

and h is the depth of the fluid.

P = (1 atm) + (1025 kg/m³) (9.81 m/s²) (250 m) (9.8692×10⁻⁶ atm/Pa)

P = 1 atm + 24.8 atm

P = 25.8 atm