Home
Class 11
PHYSICS
Two very large open tanks A & F both con...

Two very large open tanks `A & F` both contain the same liquid. A horizontal pipe `BCD`, having a small constriction at `C`, leads out of the bottom of tank `A`, and a vertical pipe `E` containing air opens into the constriction at `C` and dips into the liquid in tank `F`. Assume stremline flow and no viscosity. If the cross section area at `C` is one-half that at `D`, and if `D` is at distance `h_(1)` below the level of the liquid in `A`, to what height `h_(2)` will liquid rise in pipe `E`? Express your answer in terms of `h_(1)`.
[Neglect changes in atmosphere pressure with elevation. In the containers there is atmosphere above the water surface and `D` is also open to atmosphere.]

Text Solution

Verified by Experts

The correct Answer is:
`h_(2) = 3h_(1)`

Apply Bernolli's equation `b//w` point `P` & `D`
`P_(atm) + rhogh_(1) + (1)/(2)rhoV_(P)^(2) = P_(atm) + rhog(o) + (1)/(2)rhov_(D)^(2)`
[Assume zero level `D`]
`V_(p) approx 0` Area of cross section is very large
`V_(D) = sqrt(2gh_(1)`
Since area at `C` is half than area at `D`
so according to continuity equation
`V_(C)A_(C) = V_(D)A_(D) rArr V_(C) = 2V_(D) = 2sqrt2gh_(1)`
Now for point `P` & `C` according to Bernolli's equation.
`P_(P) + rhogh_(1) + (1)/(2)rhoV_(p)^(2) = P_(C) + rhog(0) + (1)/(2)rho.V_(C)^(2)`
`V_(P) approx 0`
`rArr P_(atm) + rhogh_(1) = P_(C) + (1)/(2)rho.(2sqrt(2gh_(1)))^(2)`
`rArr P_(atm) = P_(C) + 3rhogh_(1) ....(i)`
for point `E`
`P_(E) = P_(C) + rhogh_(2) = P_(atm)`
from `(i)` & `(ii)`
`3rhogh_(1) = rhogh_(2)`
`rArr h_(2) = 3h_(1)`
Promotional Banner

Topper's Solved these Questions

  • FLUID MECHANICS

    RESONANCE ENGLISH|Exercise Exercise- 3 PART - II|5 Videos
  • ELECTROSTATICS

    RESONANCE ENGLISH|Exercise Exercise|52 Videos
  • FULL TEST 1

    RESONANCE ENGLISH|Exercise Exercise|30 Videos

Similar Questions

Explore conceptually related problems

An organ pipe, open at both ends, contains

The pressure at the bottom of a tank of liquid is not proprtional to

There is a small hole near the botton of an open tank filled with liquid. The speed of the water ejected does not depend on

A non viscous inconpressible liquid is flowing from a horizontal pipe of non-uniform cross section as shown, Choose the correct option

A sealed tank containing a liquid of density rho moves with a horizontal acceleration a, as shown in the figure. The difference in pressure between the points A and B is

A sealed tank containing a liquid of density rho moves with horizontal acceleration a as shown in the figure. The difference in pressure between two points A and B will be

A large open top container of negligible mass and uniform cross sectional area A a has a small hole of cross sectional area A//100 in its side wall near the bottom. The container is kept on a smooth horizontal floor and contains a liquid of density rho and mass M_(0) . Assuming that the liquid starts flowing out horizontally through the hole at t=0 , calculate a the acceleration of the container and its velocity when 75% of the liquid has drained out.

A horizontal pipe of shown cross - section has a liquid flowing through it and follows Bernouli's theorem . Which of the following is/are constant through out pipe ?

A horizontal pipe of area of cross-section a and 3a respectively, then the ratio of velocity of flow at two different cross-section (If flow is streamline) is

The pipe shows the volume flow rate of an ideal liquid at certain time and its direction. What is the value of Q in m^(3)//s ? (Assume steady state and equal area of cross section at each opening)