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A uniform chain of length 2 m is kept on a table such that a length of 60 cm hangs freely from the edge of the table. The total mass of the chain is 4 kg. What is the work done in pulling the entire chain on the table?

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As we learnt in

Definition of work done by variable force -

$W=\int \vec{F}\cdot \vec{ds}$

- wherein

$\vec{F}$ is variable force and $\vec{ds}$ is small displacement

Consider a small part dx at a depth x from table.

Work done in lifting this small portion is dw = dm gx

Total work done $=\int dw=\int_{0}^{h}(\frac{m}{l}dx)gx$

$=\frac{mg}{l}\int_{0}^{h}x dx=\frac{4\times 10}{2}\times \frac{(0.6)^{2}}{2}$

$=\frac{mg}{l}\int_{0}^{h}x dx=\frac{4\times 10}{2}\times \frac{(0.6)^{2}}{2}=3.6J$

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Get Answers to all your Questions

A uniform chain of length 2 m is kept on a table such that a length of 60 cm hangs freely from the edge of the table. The total mass of the chain is 4 kg. What is the work done in pulling the entire chain on the table?

Answers (1)

Posted by

lovekush

JEE Main high-scoring chapters and topics

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