$A$ large number of droplets,each of radius $r$,coalesce to form a bigger drop of radius $R$. An engineer designs a machine so that the energy released in this process is converted into the kinetic energy of the drop. The velocity of the drop is ($T=$ surface tension,$\rho =$ density)

  • A
    ${\left[ {\frac{T}{\rho }\left( {\frac{1}{r} - \frac{1}{R}} \right)} \right]^{1/2}}$
  • B
    ${\left[ {\frac{6T}{\rho }\left( {\frac{1}{r} - \frac{1}{R}} \right)} \right]^{1/2}}$
  • C
    ${\left[ {\frac{3T}{\rho }\left( {\frac{1}{r} - \frac{1}{R}} \right)} \right]^{1/2}}$
  • D
    ${\left[ {\frac{2T}{\rho }\left( {\frac{1}{r} - \frac{1}{R}} \right)} \right]^{1/2}}$

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Similar Questions

Consider the following statements:
$A.$ Surface tension arises due to extra energy of the molecules at the surface as compared to the molecules in the interior of a liquid.
$B.$ As the temperature of a liquid rises, the coefficient of viscosity increases.
$C.$ As the temperature of a gas increases, the coefficient of viscosity increases.
$D.$ The onset of turbulence is determined by Reynolds number.
$E.$ In a steady flow, two streamlines never intersect.
Choose the correct answer from the options given below:

Statement $(A)$: When the temperature increases,the viscosity of gases increases and the viscosity of liquids decreases.
Statement $(B)$: Water does not wet an oily glass because the cohesive force of oil is less than that of water.
Statement $(C)$: $A$ liquid will wet a surface of a solid if the angle of contact is greater than $90^{\circ}$.

$A$ drop of liquid of density $\rho$ is floating half-immersed in a liquid of density $d$. If $T$ is the surface tension,then the diameter of the drop is:

Drops of liquid of density $d$ are floating half immersed in a liquid of density $\rho$. If the surface tension of the liquid is $T$, then the radius of the drop is

$A$ drop of water detaches itself from the exit of a tap when $(\sigma=$ surface tension of water, $\rho=$ density of water, $R=$ radius of the tap exit, $r=$ radius of the drop $)$

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