The excess of pressure inside a soap bubble is twice the excess pressure inside a second soap bubble. The volume of the first bubble is n times the volume of the second where n is (a) 0.125 (b) 0.250 (c) 1 (d) 2
Answers
Answer:
The excess of pressure inside a soap bubble is twice the excess pressure inside a second soap bubble. The volume of
volume of the first bubble is n times the volume of the second when.
HOPE IT HELPS
Hyy Dude ⛛
A) 0.125
Explanation:
Let the excess pressure inside the soap bubble = P
Excess pressure inside the first soap bubble = 2P
Let the radius of first bubble = x
Let the radius of second bubble = R
Thus, excess pressure in first bubble = 2P = 4S/x
Thus, excess pressure in first bubble = 2P = 4S/xexcess pressure in second bubble = P = 4S/r (1)
Thus, excess pressure in first bubble = 2P = 4S/xexcess pressure in second bubble = P = 4S/r (1)Thus,
2(4S/r) = 4S/x
= x = R/2
Volume of first soap bubble (V1) = 4/3πx³
Volume of first soap bubble (V2)= 4/3πR³
ratio of volumes
V1/ V2 = 4/3πx³/4/3πR³
= x³ = nR³
= (R/2)³ = nR³
n = 1/8 = 0.125
Thus, the volume of the first bubble is n times the volume of the second where n is 0.125
Hope it's helps you ♡