Write the mathematical relationship describing the pressure exerted by a liquid at a point inside it.

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Solution

Consider a liquid at rest in a container. In a liquid, all points at the same depth are at the same pressure.
To show it, let us consider a cylindrical column of the liquid of height h, and cross-sectional area a , as shown in (Fig) If d is the density of the liquid.

Mass of the liquid in the column = $a x h x d$
If g is the acceleration due to gravity, then Weight of the liquid in the column = Mass x Acceleration due to gravity= $a h d x g = a h d g$
Therefore, Thrust at the base of the cylindrical column of liquid = $a h d g$
Then,The pressure exerted by the liquid at a depth of h (at point X) $= \frac{T h r u s t}{A r e a}$ $= \frac{a h d g}{a} = h d g$
$P = h d g$

i.e. pressure at a point in a liquid is proportional to its depth, density and acceleration due to gravity.
This shows that at any place, inside a liquid, pressure at all the points at the same depth is the same.

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