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Question

A uniform chain of mass m and length L hangs on a table with two thirds of its length on the table. The work done by a person to put the hanging part back on the table will be

A
mgL18
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B
mgL9
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C
mgL27
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D
mgL
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Solution

The correct option is A mgL18
On applying,
Wext=ΔU=UfUi ...(1)



Let us take a small mass dm of length dx at a distance x below reference level (table) , then its potential energy is dU=dmgx
L3 length of the chain is hanging from the table.
On integrating both sides by taking limits of x=0 to x=L3
U0dU=L/30dmgx
U=L/30(mLdx)gx
[ dm=λdx=mLdx]
U=mgL[x22]L/30
U=mg2L[L290]=mgL18

When L3 length of the chain is hanging from the table, then potential energy
Ui=mgL18
When the hanging part is pulled back on the table, potential energy of the system is
Uf=0 as h=0 from reference level.
Substituting in Eq.(1),
Wext=UfUi
Wext=0(mgL18)
Wext=mgL18
Hence work done by the person to put the hanging part back on the table is mgL18

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