In the figure shown, block A is displaced by 0.75m to the right and block B is displaced by 0.25m to left. Find the reading of the spring balance. Take g=10m/s2
A
10kg
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B
20kg
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C
100kg
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D
200kg
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Solution
The correct option is B20kg Let the displacement of the two blocks are as shown.
Here spring constant k=200N/m
As we know that the spring balance reads the net spring force applied by the spring on the body in order to get restored.
So, from the figure shown above we can say that
Spring force on body A is FsA=kx1=200×0.75=150N
Similarly, spring force on body B is FsB=kx2=200×0.25=50N
So, net force applied by the spring is Fnet=150+50=200N
Thus, the equivalent mass measured by the spring balance is Fnetg=20010=20Kg
Alternate:
Net displacement of the spring, δx=(0.75+0.25)=1m
Spring force, Fs=k.δx=200×1=200N ∴Equivalent mass=Fg=20010=20kg