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Question

A metal rod of length 50 cm having mass 2 kg is supported on two edges placed 10 cm from each end. A 3 kg load is suspended at 20 cm from one end. Find the reactions at the edges (take g=10 m/s2)

A
30 N,10 N
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B
20 N,20 N
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C
30 N,20 N
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D
30 N,30 N
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Solution

The correct option is C 30 N,20 N

As the rod is uniform and homogeneous, therefore COM is at the centre of the rod.
For translational equilibrium, iFi=0
R1+R23×102×10=0
(R1 and R2 are acting in vertically upward direction)
R1+R2=50 ... (1)
For rotational equilibrium, iτi=0
(Taking counter-clockwise moment as positive)
R1(EC)+30(CD)+R2(FC)=0

R1(0.15)+30(0.05)+R2(0.15)=0
R1R2=10 ... (2)
Adding (1) and (2), we get
2R1=60R1=30 N
and R2=R110=3010=20 N
R2=20 N
So, the reaction forces at the edges E and F are 30 N and 20 N respectively.

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