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Question

A uniform chain of mass m and length l overhangs a table with its two third part on the table.Find the work to be done, by a person to put the hanging part back on the table.

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Solution

Let 'dx' be the length of an element at distance x from the table of mass 'dx' length

=(ml)dx work done to put back on the table.

w=(ml)dx g(x)

So, total work done to put 13 part back on the table

W=1/30(ml)gx dx

w=(ml)g[x22]1/30

=mgl218l=mgl18


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