Question #46e82
1 Answer
Here's what I got.
Explanation:
As it is written, your problem doesn't provide enough information to allow for a solution to be formulated exclusively in terms of the original volume of the balloon.
More specifically, you would need to know the density of seawater at that depth and temperature.
With this being said, I will assume that the density of seawater at that depth is about
Now, the idea here is that the number of moles of gas and its temperature will remain constant as the balloon makes its way to
Even if that were not the case, the insufficient data would force you to assume temperature constant anyway.
Now, pressure and volume have an inverse relationship when number of moles and temperature are kept constant - this is known as Boyle's Law.
Mathematically, this is written like this
#color(blue)(P_1V_1 = P_2V_2)" "# , where
At the surface of the Earth, atmospheric pressure is equal to
The pressure exerted by a fluid at a depth
#color(blue)(P_h = rho * g * h)" "# , where
Before plugging in your values, convert the density from grams per milliliter to kilograms per cubic meter
#1.025 color(red)(cancel(color(black)("g")))/(color(red)(cancel(color(black)("mL")))) * "1 kg"/(1000color(red)(cancel(color(black)("g")))) * (10^6color(red)(cancel(color(black)("mL"))))/"1 m"^3 = "1025 kg/m"^3#
The pressure exerted by the seawater at
#P_"water" = 1025 "kg"/"m"^3 * 9.81"m"/"s"^2 * "130 m"#
#P_"water" = "1,307,182.5" overbrace("kg"/("m s"^(2)))^(color(blue) (="Pa"))#
#P_"water" = "1,307,182.5 Pa"#
The total pressure exerted on the balloon will include the atmospheric pressure
#P_"total" = P_"atm" + P_"water"#
#P_"total" = "101,325 Pa" + "1,307,182.5 Pa" = "1,408,507.5 Pa"#
Rearrange the Boyle Law equation and solve for
#P_1V_1 = P_2V_2 implies V_2 = P_1/P_2 * V_2#
Here
#V_2 = ("101,325" color(red)(cancel(color(black)("Pa"))))/("1,408,507.5" color(red)(cancel(color(black)("Pa")))) * V_1#
#V_2 = 0.07194 * V_1#
Rounded to two sig figs, the answer will be
#V_2 = color(green)(0.072 * V_1)#
