A cylindrical vessel of a very large cross sectional area is containing two immiscible liquids of density `rho_(1)=600kg//m^(3)` and `rho_(2)=1200kg//m^(3)` as shown in the figure.
A small hole having cross sectional area `5cm^(2)` is made in right side vertical wall as shown. Take atmospheric pressure as `p_(0)=10^(5)N//m^(2), g=10m//s^(2)`. For this situation mark out the correct statement (s). Take cross sectional area of the cylindrical vessel as `1000cm^(2)`. Neglect the mass of the vessel.

The velocity with which the liquid comes out is given by the expression
`P_(0)+rho_(1)gxx30cm=rho_(2)gxx10cm=p_(0)+(rho_(2)v^(2))/2`
`v=2.24m//s`
Due to transfer of liquid, change in moment takes place and hence a force has been exerted on the liquid in backward direction, this force is given by `F=rho_(2)av^(2)`, where a is the cross sectional area of hole `=1200xx5xx10^(-4)xx5=3N`
Normal contact force betwen the vessel and the suface is
`N=mg`
`N=(rho_(1)Axx0.3)g+(rho_(2)xxAxx0.2)G=420`
Where `A` is the cross sectional area of te vessel. Limiting friction force,
`f_(L)=muN=0.04xx420=16.8`
As `f_(L)gtF`, therefore the minimum force necessary to maintain the static equilibrium is `0`. For the maximum value of the applied force
`F_("max")=f_(L)+F=16.8+3=19.8n`