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A light rod of length 200 cm is suspende...

A light rod of length 200 cm is suspended from the ceiling horizontally by means of two vertical wires of equal length tied to its ends. One of the wires is made of steel and is of cross- section 0.1 `cm^(2)` and the other of brass of cross-section 0.2 `cm^(2)` . Along the rod at which distance a weight may be hung to produce equal stresses in both the wires ?

A

` 4/3` m from steel wire

B

`4/3 ` m from brass wire

C

1 m, from steel wire

D

`1/4` m from brass wire

Text Solution

Verified by Experts

The correct Answer is:
A

As stresses are equal, ` T_(1)/A_(1) = T_(2)/A_(2)`
` i.e, T_(1)/T_(2) = A_(1)/A_(2) = (0.1)/(0.2) or T_(2) = 2T_(1)`
Now for translatory equilibrium of the rod,
`T_(1) + T_(2) =W`
From (i) and (ii) , we get
` T_(1) = W/3 , T_(2) = (2W)/3`
Now if x is the distance of weight W from steel wire, then for rotational equilibrium of rod,
` T_(1)x = T_(2) (2 -x) or W/3 x = (2 W)/ 3 (2 -x) therefore x = 4/3 m`
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