The work done in forming a soap film of size ` 10 cm xx 10 ` cm will be , it if the surface tension of soap solution is ` 3xx 10^(-2)` N/m

Calculate the work done in blowing out a soap bubble of diameter 1 cm. given that the surface tension of soap solution is 28 xx 10^(-3) Nm^(-1)

The amount of work done in forming a soap film of size 10 cm x 10 cm is (Surface tension T=3xx10^(-2) N//m )

What will be the work done in blowing a soap bubble of radius 1 cm to 2 cm ? (If surface tension of soap solution is 25 xx 10^(-3) N/m)

Calculate the work down against surface tension in blowing a soap bubble from a radius of 10 cm to 20 cm , if the surface tension of soap solution in 25xx10^(-3)N//m .

The work done in blowing a soap bubble from a radius of 6 cm to 9 cm if surface tension of soap solution is 25xx10^(-3) N//m , is

Calculate the work done agains surface tension in blowing a soap bubble from a radius 10 cm to 20 cm if the surface tension of soap solution is 25xx10^(-3)N//m then compare it with liquid drop of same radius.

The amount of work done in blowing up a soap bubble of radius 2 cm is [Given surface tension of soap solution = 4 xx 10^(-2) N m^(-1) ]

A soap bubble has a radius of 6cm. The work done in increasing the radius from 6 cm to 10 on will be (in mJ). (Surface tension of soap solution is 0.04 Nm.)

What will be the work done in blowing out a soap bubble of radius 0.4 cm? The surface tension of soap solution is 30 xx 10^(-3)" N/m".

What is the potential energy of a soap film formed on a frame of area 5 xx 10^(-3) m^(2) ? The surface tension of soap solution is 30 xx 10^(-3) N/m