A uniform chain of length $L$ and mass $M$ is lying on a smooth table and one-third of its length is hanging vertically down over the edge of the table. If $g$ is the acceleration due to gravity, the work required to pull the hanging part onto the table is

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Solution

Velocity, Acceleration due to gravity, and Work:
Velocity- It is the rate at which an object's position changes in a relation to the frame of reference and time.
Acceleration due to gravity- Acceleration of freely falling bodies caused by the gravitational force of the earth. Its value is 9.81 m/s².
Work- When a force is applied to a body across a distance, work is done.
Step 1: Given data
Length of chain, $L$
Length of chain hanging, $\frac{1}{3} L$
Mass of chain, $M$
Step 2: Formula used
$W = \int F d l$
Where $W$ is work done, $F$ is the force applied, and $d l$ is the displacement length.
$F = m g$
Where $F$ is force, $m$ is mass, and $g$ acceleration due to gravity.
$m = λ l$
Where $m$ is mass, $λ$ is linear mass density, and $l$ is length.
Step 3: Calculation
Work done is,
$W = \int F d l$
$\Rightarrow W = \int F d l$ …(i)
The force required to draw a body higher when it's under gravity is given as
$F = m g \Rightarrow F = M g$
We calculate mass as
$m = λ l \Rightarrow M = λ l$
Replacing $M$ with $λ l$ in equation (i)
$F = λ l g$
Putting the value of $F$ in the equation of work done
$W = \int λ g l d l W = λ g \int l d l$
As one-third of the chain is hanging
$l = \frac{1}{3} L$
So,
$W = λ g \int_{0}^{\frac{L}{3}} l d l$
$\Rightarrow W = λ g {[\frac{l^{2}}{2}]}_{0}^{\frac{L}{3}}$
$\Rightarrow W = λ g \frac{1}{2} [{(\frac{1}{3} L)}^{2} - 0^{2}]$
$\Rightarrow W = λ g \frac{1}{2} [{(\frac{1}{3} L)}^{2} - 0^{2}] \Rightarrow W = λ g \frac{1}{2} [\frac{1}{9} L^{2}] \Rightarrow W = \frac{λ g L^{2}}{18}$
as, $M = λ L$
so, $W = \frac{M g L}{18}$
The work required to pull the hanging part onto the table, $W = \frac{M g L}{18}$ .

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