Three equal weights A,B and C of mass 2 kg each are hanging on a string passing over a fixed frictionless pulley as shown in the figure. The tension in the string connecting weights B and C is
A
Zero
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B
13N
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C
3.3N
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D
19.6N
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Solution
The correct option is B13N FBD of each mass
Let ′a′ be acceleration of each block
then T−mg=ma T1+mg−T=ma mg−T1=ma
Adding ¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯mg=3ma a=g3
Now mg−T1=ma=mg3 ⇒T1=2mg3=2×2×9.83 ≈13N
Alternative Method; a=Net unbalanced forcetotal mass
As on right side total mass is 4kg and on left side mass is 2kg a=(4−2)g6=g3m/s2